Authors,Author full names,Author(s) ID,Title,Year,Source title,Volume,Issue,Art. No.,Page start,Page end,Page count,Cited by,DOI,Link,Affiliations,Authors with affiliations,Abstract,Author Keywords,Index Keywords,Correspondence Address,Editors,Publisher,Sponsors,Conference name,Conference date,Conference location,Conference code,ISSN,ISBN,CODEN,PubMed ID,Language of Original Document,Abbreviated Source Title,Document Type,Publication Stage,Open Access,Source,EID Ai B.; Lai Z.; Zeng J.; Jian Z.; Zhao J.; Sun S.,"Ai, Bin (57200738501); Lai, Zhenlin (57219251851); Zeng, Jiali (58164357100); Jian, Zhuokai (57416407100); Zhao, Jun (38562401000); Sun, Shaojie (55611510700)",57200738501; 57219251851; 58164357100; 57416407100; 38562401000; 55611510700,Detection of wetland degradation and restoration in urbanizing Zhuhai City based on google earth engine,2025,Ocean and Coastal Management,261,,107518,,,,1,10.1016/j.ocecoaman.2024.107518,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85211480644&doi=10.1016%2fj.ocecoaman.2024.107518&partnerID=40&md5=ef32b155e2bbf75184a2b3dcdeb8db18,"School of Marine Sciences, Sun Yat-sen University, Guangdong, Zhuhai, 519082, China; Southern Marine Science and Engineering Guangdong Laboratory (Zhuhai), Guangdong, Zhuhai, 519000, China; Pearl River Estuary Marine Ecosystem Research Station, Ministry of Education, Guangdong, Zhuhai, 519000, China; Guangdong Provincial Key Laboratory of Marine Resources and Coastal Engineering, Guangdong, Guangzhou, 510275, China","Ai B., School of Marine Sciences, Sun Yat-sen University, Guangdong, Zhuhai, 519082, China, Southern Marine Science and Engineering Guangdong Laboratory (Zhuhai), Guangdong, Zhuhai, 519000, China, Pearl River Estuary Marine Ecosystem Research Station, Ministry of Education, Guangdong, Zhuhai, 519000, China, Guangdong Provincial Key Laboratory of Marine Resources and Coastal Engineering, Guangdong, Guangzhou, 510275, China; Lai Z., School of Marine Sciences, Sun Yat-sen University, Guangdong, Zhuhai, 519082, China, Southern Marine Science and Engineering Guangdong Laboratory (Zhuhai), Guangdong, Zhuhai, 519000, China; Zeng J., School of Marine Sciences, Sun Yat-sen University, Guangdong, Zhuhai, 519082, China, Southern Marine Science and Engineering Guangdong Laboratory (Zhuhai), Guangdong, Zhuhai, 519000, China; Jian Z., School of Marine Sciences, Sun Yat-sen University, Guangdong, Zhuhai, 519082, China, Southern Marine Science and Engineering Guangdong Laboratory (Zhuhai), Guangdong, Zhuhai, 519000, China; Zhao J., School of Marine Sciences, Sun Yat-sen University, Guangdong, Zhuhai, 519082, China, Southern Marine Science and Engineering Guangdong Laboratory (Zhuhai), Guangdong, Zhuhai, 519000, China, Pearl River Estuary Marine Ecosystem Research Station, Ministry of Education, Guangdong, Zhuhai, 519000, China, Guangdong Provincial Key Laboratory of Marine Resources and Coastal Engineering, Guangdong, Guangzhou, 510275, China; Sun S., School of Marine Sciences, Sun Yat-sen University, Guangdong, Zhuhai, 519082, China, Southern Marine Science and Engineering Guangdong Laboratory (Zhuhai), Guangdong, Zhuhai, 519000, China, Pearl River Estuary Marine Ecosystem Research Station, Ministry of Education, Guangdong, Zhuhai, 519000, China, Guangdong Provincial Key Laboratory of Marine Resources and Coastal Engineering, Guangdong, Guangzhou, 510275, China","Wetlands play a crucial role in maintaining ecological balance and promoting sustainable social development. Accurately detecting the spatio-temporal changes of wetlands is essential for coastal ecological conservation and management. Taking Zhuhai City as a case study, we employed a methodology combining random forest classification and recursive feature elimination to classify long-term scale wetlands based on the Google Earth Engine cloud platform. Landscape pattern indices were introduced to detect the spatial and temporal evolution of wetlands over the past 35 years. The degradation and restoration of wetlands between 2013 and 2022 were evaluated by examining landscape changes. The results indicate that incorporating seasonal variation features can effectively distinguish between mangroves and paddy fields. Feature selection has significantly improved the classification accuracy. From 1988 to 2022, the area of wetlands in Zhuhai City decreased by 11.88%, with natural wetlands continuously declining. Human activities have escalated fragmentation, decreased homogeneity, and reduced interconnectivity of wetland landscapes. Between 2013 and 2022, the total area of degraded wetlands exceeded that of recovered wetlands. Although the extent of functional wetlands with high degradation rates has decreased since 2018, the area of recovered wetlands has also declined. Urbanization and variation of natural environmental factors are conducive to the wetland degradation. This study proposes a generic approach for monitoring wetland dynamics, providing data support and a scientific basis for wetland conservation and risk management in coastal regions. In the future, it is advisable to implement multi-departmental coordination mechanism in the management of wetland resource, strictly restrain the activities of reclamation and aquaculture, establish protection red lines, maintain existing protection areas, and enhance public awareness on wetland conservation. These measures aim to balance economic growth with wetland conservation, ensuring the long-term health of Zhuhai's vital wetland ecosystems. © 2024 Elsevier Ltd",landscape pattern; random forest; recursive feature elimination; wetland change; wetland degradation,China; Guangdong; Zhuhai; Abiotic; Forest ecology; Ecological balance; Google earths; Landscape pattern; Random forests; Recursive feature elimination; Sustainable social development; Wetland change; Wetland conservation; Wetland restoration; Wetlands degradation; biodegradation; conservation management; Earth; economic growth; landscape; risk assessment; seasonal variation; temporal evolution; urbanization; wetland management,"B. Ai; School of Marine Sciences, Sun Yat-sen University, Zhuhai, Guangdong, 519082, China; email: abin@mail.sysu.edu.cn",,Elsevier Ltd,,,,,,09645691,,OCMAE,,English,Ocean Coast. Manage.,Article,Final,,Scopus,2-s2.0-85211480644 Naskar M.; Neogy S.; Roy A.K.; Datta D.,"Naskar, Mrinmoyee (57214099077); Neogy, Sohini (57219028359); Roy, Asit Kumar (57204268864); Datta, Debajit (35224494800)",57214099077; 57219028359; 57204268864; 35224494800,"A landscape in turmoil: characterizing the multi-decadal growth trajectory of brackishwater aquaculture in Medinipur Coastal Plain, India",2024,Ecological Questions,35,3,,,,,0,10.12775/EQ.2024.033,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85190618204&doi=10.12775%2fEQ.2024.033&partnerID=40&md5=f5016bf831065e695c70cf8102ac6c17,"Landscape Ecology Lab, Department of Geography, Jadavpur University, Kolkata, 700032, India; Department of Geography, Banwarilal Bhalotia College, West Bengal, Asansol, 713303, India; Department of Geography, Baruipur College, Baruipur, 743610, India","Naskar M., Landscape Ecology Lab, Department of Geography, Jadavpur University, Kolkata, 700032, India, Department of Geography, Baruipur College, Baruipur, 743610, India; Neogy S., Department of Geography, Banwarilal Bhalotia College, West Bengal, Asansol, 713303, India; Roy A.K., Landscape Ecology Lab, Department of Geography, Jadavpur University, Kolkata, 700032, India; Datta D., Landscape Ecology Lab, Department of Geography, Jadavpur University, Kolkata, 700032, India","The spatio-temporal growth trajectory of coastal brackishwater aquaculture (CBA) in the coastal tracts of Purba Medinipur, India and its impending repercussions on the immediate environs, was primarily assessed in this study through application of geostatistics, landscape metrics, and geospatial technologies. Three Community Development (CD) Blocks, namely, Contai-I, Deshapran, and Ramnagar-II were considered to analyze the growth pattern of the area under CBA. Landsat datasets of the assessment years (1991, 2001, 2011, 2021, and 2023) were used to prepare the land use/ land cover (LULC) maps and to derive pertinent landscape metrics of patch and class levels for this region. This brought forward a highly fragmented and dispersive spatial concentration of the CBA farms in the entire study area. Additionally, Census Village-wise growth pattern of CBA was analyzed by conducting a spatial autocorrelation analysis which depicted prominent clustering of villages with a higher concentration of CBA. Results showed that there has been an incessant growth of CBA in the last three decades, however, a sharp drop has been recorded owing to recurrent bouts of diseases, swelling production costs, and a sharp drop-in market rate. The nature of growth and/ or decay of the CBA was predicted for the year 2025 using Cellular Automata and Artificial Neural Network (CA-ANN) model. After careful calibration and validation, the model projected further lessening of the CBA area along with a continued expansion of abandoned aquaculture. Accordingly, ecologically viable livelihood alternatives and environmentally sustainable management measures were suggested for the efficient monitoring of these highly fragile tropical ecosystems. © 2024 Nicolaus Copernicus University. All rights reserved.",abandoned shrimp-farm; ca-ann modelling; coastal aquafarming; hotspots; land engulfment; spatial clustering,East Midnapore; India; West Bengal; abandoned land; aquaculture; artificial neural network; autocorrelation; brackish water; calibration; cellular automaton; cluster analysis; ecological modeling; environmental monitoring; growth modeling; land cover; Landsat; landscape ecology; livelihood; model validation; spatial analysis; trajectory,"D. Datta; Landscape Ecology Lab, Department of Geography, Jadavpur University, Kolkata, 700032, India; email: debajit.geo@gmail.com",,Nicolaus Copernicus University,,,,,,16447298,,,,English,Ecol. Quest.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85190618204 Cai J.; Chan H.L.; Yan X.; Leung P.,"Cai, Junning (8560216900); Chan, Hing Ling (57191416301); Yan, Xue (57963712900); Leung, PingSun (7401748972)",8560216900; 57191416301; 57963712900; 7401748972,A global assessment of species diversification in aquaculture,2023,Aquaculture,576,,739837,,,,13,10.1016/j.aquaculture.2023.739837,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85164253227&doi=10.1016%2fj.aquaculture.2023.739837&partnerID=40&md5=8601ef99f4dec29930699b74acd171b3,"Fisheries and Aquaculture Division, Food and Agriculture Organization of the United Nations (FAO), Viale delle Terme di Caracalla, Rome, 00153, Italy; Pacific Islands Fisheries Science Center, NOAA - National Oceanic & Atmospheric Administration, Honolulu, United States; Chinese Academy of Fishery Sciences (CAFS), Beijing, China; University of Hawai'i at Manoa, Honolulu, United States","Cai J., Fisheries and Aquaculture Division, Food and Agriculture Organization of the United Nations (FAO), Viale delle Terme di Caracalla, Rome, 00153, Italy; Chan H.L., Pacific Islands Fisheries Science Center, NOAA - National Oceanic & Atmospheric Administration, Honolulu, United States; Yan X., Chinese Academy of Fishery Sciences (CAFS), Beijing, China; Leung P., University of Hawai'i at Manoa, Honolulu, United States","Aquaculture is a diverse food production system, and a high species diversity in aquaculture can make the global food system more resilient. Species diversification could facilitate aquaculture growth through multiple mechanisms and increase the sector's resilience and long-term sustainability. Facing increasing challenges from climate change, disease outbreaks, market fluctuations, and other disturbances, species diversification has become a widely recognized and endorsed development strategy in the policy and scientific communities for the growth and resilience of the aquaculture sector. However, many attempts to establish new species have yielded little long-term success, and the private sector often concentrates efforts on the most advantageous species for rapid growth. This paper presents a comprehensive assessment of aquaculture species diversification at the global, regional (more than 30 country groups), and national (nearly 200 countries) levels, covering the period 1950 to 2020 with a focus on 1990 to 2020. The assessment employs the concept of “effective number of species” as a measure of diversity and uses two sub-indicators to assess within-group versus between-group diversity. The indicator system reveals detailed patterns of species diversity and uncovers different driving forces of species diversification. Additionally, the study maps the status and trends of species diversity to offer a refined perspective on species diversity profiles and diversification patterns. The findings reveal that beneath high species diversity in world aquaculture lies generally low diversity at the national level; nearly half of national aquaculture has no within-group or between-group diversity. Furthermore, species diversification has been losing momentum in recent decades, and concentration has become a more prominent development pathway, with a tendency to drive aquaculture towards a low-diversity system similar to terrestrial farming. Public interventions are crucial to promote species diversification in aquaculture for the sector's resilience and long-term sustainability. It is important to not only reduce the cost of species diversification for the private sector but also to dedicate more public efforts towards increasing its benefits and viability. While diverse diversification patterns among national aquaculture indicate no one-style-fits-all species diversification pathway, a country may draw guidance from others' experiences, especially since countries with similar species diversity profiles or diversification patterns tend to cluster geographically. Evidence-based policymaking and sector management regarding species diversification entail collaborative efforts among policymakers, scientists, and the aquaculture community to expand and refine assessment frameworks, improve data availability and quality, and efficiently utilize information, knowledge, and insights generated by these assessments to inform decision making at various levels. © 2023",aquaculture; between-group diversity; diversity; effective number of species; species diversification; within-group diversity,agricultural diversification; aquaculture; climate change; decision making; development strategy; food production; global perspective; private sector; species diversity,"J. Cai; Fisheries and Aquaculture Division, Food and Agriculture Organization of the United Nations (FAO), Rome, Viale delle Terme di Caracalla, 00153, Italy; email: junning.cai@fao.org",,Elsevier B.V.,,,,,,00448486,,AQCLA,,English,Aquaculture,Article,Final,All Open Access; Bronze Open Access; Green Open Access,Scopus,2-s2.0-85164253227 Mulanda Aura C.; Lewo Mwarabu R.; Sangara Nyamweya C.; Onyango Ongore C.; Musa S.; Last Keyombe J.; Guya F.; Fonda Awuor J.; Owili M.; Muriithi Njiru J.,"Mulanda Aura, Christopher (56055313800); Lewo Mwarabu, Ruth (57745620600); Sangara Nyamweya, Chrisphine (59251843600); Onyango Ongore, Collins (59252475300); Musa, Safina (54788024300); Last Keyombe, James (59252475400); Guya, Fredrick (55775278800); Fonda Awuor, Jane (59252161500); Owili, Monica (23969151400); Muriithi Njiru, James (59251688300)",56055313800; 57745620600; 59251843600; 59252475300; 54788024300; 59252475400; 55775278800; 59252161500; 23969151400; 59251688300,Unbundling sustainable community-based cage aquaculture in an afrotropical lake for blue growth,2024,Journal of Great Lakes Research,50,5,102410,,,,3,10.1016/j.jglr.2024.102410,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85200720789&doi=10.1016%2fj.jglr.2024.102410&partnerID=40&md5=a1513f8eb0042d3365b170d56d4c87d2,"Kenya Marine and Fisheries Research Institute, P.O. Box 1881-40100, Kisumu, Kenya; Western Region Coordination Office, Aquaculture Business Development Programme (ABDP), Kisumu, Kenya; Pelagic Ecology Research Group, Scottish Oceans Institute, Gatty Marine Laboratory, University of St. Andrews, Scotland, Fife, KY16 8LB, United Kingdom; Kenya Marine and Fisheries Research Institute, P.O. Box 3259-40200, Kisii, Kegati, Kenya; Kenya Marine and Fisheries Research Institute, P.O. Box 81651-80100, Mombasa, Kenya","Mulanda Aura C., Kenya Marine and Fisheries Research Institute, P.O. Box 1881-40100, Kisumu, Kenya; Lewo Mwarabu R., Western Region Coordination Office, Aquaculture Business Development Programme (ABDP), Kisumu, Kenya; Sangara Nyamweya C., Kenya Marine and Fisheries Research Institute, P.O. Box 1881-40100, Kisumu, Kenya; Onyango Ongore C., Kenya Marine and Fisheries Research Institute, P.O. Box 1881-40100, Kisumu, Kenya, Pelagic Ecology Research Group, Scottish Oceans Institute, Gatty Marine Laboratory, University of St. Andrews, Scotland, Fife, KY16 8LB, United Kingdom; Musa S., Kenya Marine and Fisheries Research Institute, P.O. Box 3259-40200, Kisii, Kegati, Kenya; Last Keyombe J., Kenya Marine and Fisheries Research Institute, P.O. Box 1881-40100, Kisumu, Kenya; Guya F., Kenya Marine and Fisheries Research Institute, P.O. Box 1881-40100, Kisumu, Kenya; Fonda Awuor J., Kenya Marine and Fisheries Research Institute, P.O. Box 1881-40100, Kisumu, Kenya; Owili M., Kenya Marine and Fisheries Research Institute, P.O. Box 1881-40100, Kisumu, Kenya; Muriithi Njiru J., Kenya Marine and Fisheries Research Institute, P.O. Box 81651-80100, Mombasa, Kenya","Cage aquaculture is rapidly expanding in the African Great Lakes Region, with the potential of boosting fish output while also providing food security, poverty reduction, and job creation. However, there is growing concern that the proliferation of fish cages in Lake Victoria will have a detrimental effect on the lake's ecology. Using Lake Victoria, Kenya as a case study, the current study evaluated the sustainability features of a community-based cage aquaculture that are based on socio-economic, physico-chemical, biological variables and risks in the lake and proposed potential mitigation measures. The potential production carrying capacity was estimated to be more than 500% of current cage culture production, but subject to the use of good aquaculture practices (GAPs) and best management practices (BMPs) for sustainable lake ecology. The study suggests using a community-based cage culture framework, appropriate policies and regulations, to improve lake and resource management, as well as to guide cage culture businesses, improve security, and facilitate resource usage dispute resolution procedures. © 2024 International Association for Great Lakes Research",cage culture; lacustrine water resources; lake victoria; sustainability,East African Lakes; Kenya; Lake Victoria; Aquaculture; Ecology; Economics; Fish; Food supply; Risk assessment; Sustainable development; 'current; Cage culture; Community-based; Food security; Great Lakes regions; Lacustrine water resource; Lake Victoria; Sustainable communities; Unbundling; Waters resources; aquaculture; cage culture; carrying capacity; dispute resolution; fish culture; growth response; sustainability; water resource; Lakes,"C. Mulanda Aura; Kenya Marine and Fisheries Research Institute, Kisumu, P.O. Box 1881-40100, Kenya; email: auramulanda@yahoo.com",,International Association of Great Lakes Research,,,,,,03801330,,JGLRD,,English,J. Great Lakes Res.,Article,Final,,Scopus,2-s2.0-85200720789 Bhattacharya S.; Das B.K.; Roy A.; Nayak P.K.; Saha A.; Parida P.K.; Lianthuamluaia L.; Mondal K.; Chakraborty S.,"Bhattacharya, Shreya (57201441586); Das, Basanta Kumar (57218947443); Roy, Aparna (57214503519); Nayak, Prateep Kumar (7102623406); Saha, Avishek (57557225800); Parida, Pranaya Kumar (57192931612); Lianthuamluaia, Lianthuamluaia (57103834000); Mondal, Kausik (23397712200); Chakraborty, Sangeeta (57221617628)",57201441586; 57218947443; 57214503519; 7102623406; 57557225800; 57192931612; 57103834000; 23397712200; 57221617628,Socio-Economic Profile and Vulnerabilities Assessment in Small-Scale Fisheries of Lower Gangetic Flood Plain Wetland: An Initiative Towards Achieving Wetland Ecosystem Sustainability and Community Well-Being,2024,Sustainability (Switzerland),16,21,9583,,,,0,10.3390/su16219583,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85208598816&doi=10.3390%2fsu16219583&partnerID=40&md5=137bac7e936030b2d5358a67d018fabd,"ICAR-Central Inland Fisheries Research Institute, Kolkata, 700076, India; School of Environment, Enterprise and Development, University of Waterloo, Waterloo, N2L 3G1, ON, Canada","Bhattacharya S., ICAR-Central Inland Fisheries Research Institute, Kolkata, 700076, India, School of Environment, Enterprise and Development, University of Waterloo, Waterloo, N2L 3G1, ON, Canada; Das B.K., ICAR-Central Inland Fisheries Research Institute, Kolkata, 700076, India; Roy A., ICAR-Central Inland Fisheries Research Institute, Kolkata, 700076, India; Nayak P.K., School of Environment, Enterprise and Development, University of Waterloo, Waterloo, N2L 3G1, ON, Canada; Saha A., ICAR-Central Inland Fisheries Research Institute, Kolkata, 700076, India; Parida P.K., ICAR-Central Inland Fisheries Research Institute, Kolkata, 700076, India; Lianthuamluaia L., ICAR-Central Inland Fisheries Research Institute, Kolkata, 700076, India; Mondal K., ICAR-Central Inland Fisheries Research Institute, Kolkata, 700076, India; Chakraborty S., ICAR-Central Inland Fisheries Research Institute, Kolkata, 700076, India","ICAR-CIFRI has been continuously working to develop wetland fisheries in a transdisciplinary knowledge-to-action mode to upscale the livelihood of vulnerable small-scale fishermen communities. The integrated development approach was initiated in different lower Gangetic floodplain wetlands of North 24 Parganas, West Bengal, India, to increase the fish production and socio-economic development of small-scale fishermen communities of the wetlands. Duma is one of the most extensive horseshoe-shaped wetlands in Asia. To augment the fish production from this wetland, the pen culture system was adopted by the fishers under the supervision of ICAR-CIFRI in 2021. Within a year, they received 15 tons of commercial fish, valued at around 30 lakhs apart from the small indigenous fish. It has recently been advised that auto-stocked, high-value minor carp in the wetland be adopted to improve income and conserve small indigenous species. In this article, SDG 14 (Life below water) addresses sustainable ecosystem management and livelihood enhancement for the wellbeing of the local people (SDG 3). Nutritional security of the local people is maintained through the small indigenous fish species which is crucial for addressing ‘No hunger’ as per SDG-2. The research also proves that women can play a crucial role in small-scale fisheries and they can economically stand alone, which is the main aim of SDG-5 (gender equality). However, significant issues such as lack of jurisdictional coordination, ecological changes, inequitable distribution of benefits, and income reduction persist in wetland management. The need for urgent reformation of policy and resource management systems is crucial to boost the economic efficiency of the SSF in the wetland. Training for more knowledge on fishing and fish farming, acquiring alternative livelihood and education on financial management should be brought to the fishermen’s communities. These could develop a resilient community that is more equipped to respond to future crises. © 2024 by the authors.",participatory approach; production efficiency; reformation; technology,Gangetic Plain; India; West Bengal; floodplain; livelihood; small and medium-sized enterprise; socioeconomic status; Sustainable Development Goal; vulnerability; wetland,"B.K. Das; ICAR-Central Inland Fisheries Research Institute, Kolkata, 700076, India; email: basantakumard@gmail.com",,Multidisciplinary Digital Publishing Institute (MDPI),,,,,,20711050,,,,English,Sustainability,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85208598816 Berhitu P.T.; Boreel A.; Pattiasina A.G.,"Berhitu, Pieter T. (58888720500); Boreel, Aryanto (59753035000); Pattiasina, Atris G. (59753018200)",58888720500; 59753035000; 59753018200,"Adaptation Strategies to Climate Change in Coastal Communities of Ambon City, Indonesia",2025,Egyptian Journal of Aquatic Biology and Fisheries,29,2,,1939,1955,16,0,10.21608/ejabf.2025.421408,https://www.scopus.com/inward/record.uri?eid=2-s2.0-105003511514&doi=10.21608%2fejabf.2025.421408&partnerID=40&md5=53fc0cba07510056bf8c3b3e76e6ec2e,"Department of Urban and Regional Planning, Faculty of Engineering, Pattimura University, Ambon, Indonesia","Berhitu P.T., Department of Urban and Regional Planning, Faculty of Engineering, Pattimura University, Ambon, Indonesia; Boreel A., Department of Urban and Regional Planning, Faculty of Engineering, Pattimura University, Ambon, Indonesia; Pattiasina A.G., Department of Urban and Regional Planning, Faculty of Engineering, Pattimura University, Ambon, Indonesia","Climate change has significantly impacted coastal communities in Ambon City, leading to coastal erosion, tidal flooding, and declining fish catches. This study analyzed adaptation strategies employed by coastal communities using a socio-ecological approach. The research employed a qualitative case study method, including field observations, in-depth interviews, and geospatial analysis. Data were collected from several coastal areas in Ambon City and were analyzed using the Social-Ecological System (SES) model to understand community adaptation patterns. The findings revealed that communities implement three main adaptation strategies: (1) physical adaptation, such as constructing seawalls and rehabilitating coastal ecosystems; (2) economic adaptation through livelihood diversification, including ecotourism and small-scale enterprises; and (3) social adaptation, involving institutional strengthening and environmental education. The integration of technology, such as early warning systems and ecology-based aquaculture, plays a crucial role in enhancing community resilience. Collaboration among communities, the government, and other stakeholders is essential for developing more sustainable adaptation policies. This study recommends a more holistic, community-based approach to strengthen the resilience of coastal communities in Ambon City against the ongoing impacts of climate change. © 2025, Egyptian Society for the Development of Fisheries and Human Health. All rights reserved.",climate change; coastal communities; mitigation strategies; sustainability,,"P.T. Berhitu; Department of Urban and Regional Planning, Faculty of Engineering, Pattimura University, Ambon, Indonesia; email: pieter.berhitu@lecturer.unpatti.ac.id",,Egyptian Society for the Development of Fisheries and Human Health,,,,,,11106131,,,,English,Egypt. J. Aquat. Biol. Fish.,Article,Final,,Scopus,2-s2.0-105003511514 Upadhyay N.; Rana N.S.; Hooda R.C.; Desai T.,"Upadhyay, Naveen (59315184500); Rana, Naveen Singh (59315002500); Hooda, Ramesh Chander (59522269100); Desai, Tripti (59522113500)",59315184500; 59315002500; 59522269100; 59522113500,Evaluating the effectiveness of eco-labeling schemes in promoting sustainable fishing practices,2024,International Journal of Aquatic Research and Environmental Studies,4,S1,,113,118,5,1,10.70102/IJARES/V4S1/19,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85215619972&doi=10.70102%2fIJARES%2fV4S1%2f19&partnerID=40&md5=9688b5003306c0fdf1e98ccb15b50fd6,"Department of Management, Kalinga University, Raipur, India; Department of PGDM Finance, New Delhi Institute of Management, New Delhi, India","Upadhyay N., Department of Management, Kalinga University, Raipur, India; Rana N.S., Department of Management, Kalinga University, Raipur, India; Hooda R.C., Department of PGDM Finance, New Delhi Institute of Management, New Delhi, India; Desai T., Department of PGDM Finance, New Delhi Institute of Management, New Delhi, India","Fish are an important ecological component that aids in the distribution of marine production among terrestrial creatures. Phytoplankton contributes 45–50 Gt C year-1 to global net primary production, which is half of global net primary productivity. In contrast, 1.9 Gt C year-1 of net primary production is contributed by the world's coastal vegetation. Ocean life is sustained by this enormous productivity, which is distributed among higher order creatures through energy transfer and trophic interactions. Fish store a large amount of this energy, which humans then eat. Fish are so crucial to the cycling of nutrients and energy between aquatic and terrestrial ecosystems. To guarantee a sustainable marine fishery, it is crucial to comprehend the structure of marine ecosystems and the energy transfer at the trophic level. Initiatives to encourage sustainably managed fisheries and draw attention to their products are known as eco-labelling. The goal of eco-labelling product claims is to meet the public's increasing need for environmentally friendly goods. Life-cycle assessments are typically used by eco-labels to ascertain a product's environmental impact ""from cradle to grave."" The underlying premise of all eco-labelling programs is that consumers' purchase decisions are influenced by factors other than price and required quality and health criteria. Instead, customers' considerations of product features can be related to both economic and social goals as well as ecological and environmental goals. © 2024, Green Wave Publication. All rights reserved.",aquaculture; ecosystem services; ecosystem services; national marine fisheries service,,"N. Upadhyay; Department of Management, Kalinga University, Raipur, India; email: ku.naveenupadhyay@kalingauniversity.ac.in",,Green Wave Publication,,,,,,29807840,,,,English,Int. J. Aquat. Res. Environ. Stud.,Article,Final,,Scopus,2-s2.0-85215619972 Spillias S.; Cottrell R.S.; Layton C.; O'Brien K.R.; McDonald-Madden E.,"Spillias, Scott (57219594447); Cottrell, Richard S. (57196122128); Layton, Cayne (55548123500); O'Brien, Katherine R. (7202076951); McDonald-Madden, Eve (25031826200)",57219594447; 57196122128; 55548123500; 7202076951; 25031826200,Having our kelp and eating it too: Minimizing trade-offs from seaweed farming,2024,Journal of Cleaner Production,448,,141150,,,,2,10.1016/j.jclepro.2024.141150,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85187216046&doi=10.1016%2fj.jclepro.2024.141150&partnerID=40&md5=e306c22a3ae77d5b798657f803758f27,"School of Earth and Environmental Sciences, The University of Queensland, St Lucia, QLD 4072, Australia; Centre for Biodiversity and Conservation Science, The University of Queensland, St Lucia, QLD 4072, Australia; Centre for Marine Socioecology, University of Tasmania, Hobart, TAS, 7004, Australia; Institute for Marine and Antarctic Studies, University of Tasmania, Hobart, TAS, 7004, Australia; School of Chemical Engineering, The University of Queensland, St Lucia, QLD 4072, Australia","Spillias S., School of Earth and Environmental Sciences, The University of Queensland, St Lucia, QLD 4072, Australia, Centre for Biodiversity and Conservation Science, The University of Queensland, St Lucia, QLD 4072, Australia, Centre for Marine Socioecology, University of Tasmania, Hobart, TAS, 7004, Australia; Cottrell R.S., School of Earth and Environmental Sciences, The University of Queensland, St Lucia, QLD 4072, Australia, Centre for Biodiversity and Conservation Science, The University of Queensland, St Lucia, QLD 4072, Australia, Centre for Marine Socioecology, University of Tasmania, Hobart, TAS, 7004, Australia, Institute for Marine and Antarctic Studies, University of Tasmania, Hobart, TAS, 7004, Australia; Layton C., Centre for Marine Socioecology, University of Tasmania, Hobart, TAS, 7004, Australia, Institute for Marine and Antarctic Studies, University of Tasmania, Hobart, TAS, 7004, Australia; O'Brien K.R., School of Chemical Engineering, The University of Queensland, St Lucia, QLD 4072, Australia; McDonald-Madden E., School of Earth and Environmental Sciences, The University of Queensland, St Lucia, QLD 4072, Australia, Centre for Biodiversity and Conservation Science, The University of Queensland, St Lucia, QLD 4072, Australia","Seaweed farming is promoted as a facet of the Blue Economy that may provide food, support local livelihoods, bolster marine biodiversity, and sequester carbon. While the potential for each of these benefits is often studied in isolation, here we explore the potential for ‘holistic’ management, which realizes all four benefits simultaneously. Applying a stock and flow model to different environmental and socio-economic scenarios, we simulate ten years of operations on a one-hectare kelp (Macrocystis pyrifera) farm. We explore trade-offs among the food, livelihoods, marine biodiversity, and carbon sequestration benefits of each scenario to identify the management conditions under which holistic seaweed farming can be achieved. Our results demonstrate that holistic seaweed farming is possible under many – but not all – scenarios, and that holistic management is distinct from management that prioritizes maximizing any single benefit, frequently requiring a reduction in financial benefits to maintain others. Proper farm placement and robust management in marine environments will be critical for seaweed industries to support multiple sustainable development objectives at once. © 2024 The Author(s)",blue economy; mariculture; multi-objective decision-making; sustainability; system dynamics,Biodiversity; Carbon; Commerce; Decision making; Economic and social effects; Farms; Marine biology; Seaweed; Blue economies; Flow modelling; Mariculture; Marine biodiversity; Multi objective decision making; Seaweed farming; Stock models; Stocks and flows; System Dynamics; Trade off; Sustainable development,"S. Spillias; CSIRO Environment, HobartTAS, 7004, Australia; email: scott.spillias@csiro.au",,Elsevier Ltd,,,,,,09596526,,JCROE,,English,J. Clean. Prod.,Article,Final,All Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85187216046 Ainsworth G.B.; Pita P.; Pita C.; Roumbedakis K.; Pierce G.J.; Longo C.; Verutes G.; Fonseca T.; Castelo D.; Montero-Castaño C.; Valeiras J.; Rocha F.; García-de-la-Fuente L.; Acuña J.L.; del Pino Fernández Rueda M.; Fabregat A.G.; Martín-Aristín A.; Villasante S.,"Ainsworth, Gillian B. (35766340900); Pita, Pablo (36337336600); Pita, Cristina (36832195100); Roumbedakis, Katina (50263161500); Pierce, Graham J. (7202450331); Longo, Catherine (55332597700); Verutes, Gregory (51462368600); Fonseca, Tereza (15753273300); Castelo, Daniela (58110919100); Montero-Castaño, Carlos (58125240400); Valeiras, Julio (18839173500); Rocha, Francisco (7006040546); García-de-la-Fuente, Laura (35773144600); Acuña, Jose Luis (7004505799); del Pino Fernández Rueda, M. (58124656600); Fabregat, Alberto Garazo (58124507900); Martín-Aristín, Alberto (58125240500); Villasante, Sebastián (24176215600)",35766340900; 36337336600; 36832195100; 50263161500; 7202450331; 55332597700; 51462368600; 15753273300; 58110919100; 58125240400; 18839173500; 7006040546; 35773144600; 7004505799; 58124656600; 58124507900; 58125240500; 24176215600,Identifying sustainability priorities among value chain actors in artisanal common octopus fisheries,2023,Reviews in Fish Biology and Fisheries,33,3,,669,698,29,5,10.1007/s11160-023-09768-5,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85149242623&doi=10.1007%2fs11160-023-09768-5&partnerID=40&md5=bba81c6cd99f8194eeee67476e39b37e,"Faculty of Business Administration and Management, University of Santiago de Compostela, Santiago de Compostela, Spain; Department of Applied Economics, CRETUS, University of Santiago de Compostela, Santiago de Compostela, Spain; International Institute for Environment and Development (IIED), London, United Kingdom; CESAM - Centre for Environmental and Marine Studies, Department of Environment and Planning, University of Aveiro, Aveiro, Portugal; Instituto de Investigaciones Marinas (CSIC), Vigo, Spain; Marine Stewardship Council (MSC), London, United Kingdom; Instituto Español de Oceanografía, Madrid, Spain; Departamento de Ecología y Biología Animal, Universidade de Vigo. BA2, Campus de Vigo As Lagoas-Marcosende, Vigo, 36310, Spain; INDUROT, Universidad de Oviedo, Oviedo, Spain; OMA, Universidad de Oviedo, Oviedo, Spain; Centro de Experimentación Pesquera, Consejería de Medio Rural y Cohesión Territorial del Principado de Asturias, Gijón, Spain; Marine Stewardship Council (MSC), Madrid, Spain","Ainsworth G.B., Faculty of Business Administration and Management, University of Santiago de Compostela, Santiago de Compostela, Spain, Department of Applied Economics, CRETUS, University of Santiago de Compostela, Santiago de Compostela, Spain; Pita P., Faculty of Business Administration and Management, University of Santiago de Compostela, Santiago de Compostela, Spain, Department of Applied Economics, CRETUS, University of Santiago de Compostela, Santiago de Compostela, Spain; Pita C., International Institute for Environment and Development (IIED), London, United Kingdom, CESAM - Centre for Environmental and Marine Studies, Department of Environment and Planning, University of Aveiro, Aveiro, Portugal; Roumbedakis K., Faculty of Business Administration and Management, University of Santiago de Compostela, Santiago de Compostela, Spain, Department of Applied Economics, CRETUS, University of Santiago de Compostela, Santiago de Compostela, Spain, CESAM - Centre for Environmental and Marine Studies, Department of Environment and Planning, University of Aveiro, Aveiro, Portugal; Pierce G.J., Instituto de Investigaciones Marinas (CSIC), Vigo, Spain; Longo C., Marine Stewardship Council (MSC), London, United Kingdom; Verutes G., Faculty of Business Administration and Management, University of Santiago de Compostela, Santiago de Compostela, Spain, Department of Applied Economics, CRETUS, University of Santiago de Compostela, Santiago de Compostela, Spain; Fonseca T., CESAM - Centre for Environmental and Marine Studies, Department of Environment and Planning, University of Aveiro, Aveiro, Portugal; Castelo D., CESAM - Centre for Environmental and Marine Studies, Department of Environment and Planning, University of Aveiro, Aveiro, Portugal; Montero-Castaño C., Marine Stewardship Council (MSC), London, United Kingdom; Valeiras J., Instituto Español de Oceanografía, Madrid, Spain; Rocha F., Departamento de Ecología y Biología Animal, Universidade de Vigo. BA2, Campus de Vigo As Lagoas-Marcosende, Vigo, 36310, Spain; García-de-la-Fuente L., INDUROT, Universidad de Oviedo, Oviedo, Spain; Acuña J.L., OMA, Universidad de Oviedo, Oviedo, Spain; del Pino Fernández Rueda M., Centro de Experimentación Pesquera, Consejería de Medio Rural y Cohesión Territorial del Principado de Asturias, Gijón, Spain; Fabregat A.G., Marine Stewardship Council (MSC), Madrid, Spain; Martín-Aristín A., Marine Stewardship Council (MSC), Madrid, Spain; Villasante S., Faculty of Business Administration and Management, University of Santiago de Compostela, Santiago de Compostela, Spain, Department of Applied Economics, CRETUS, University of Santiago de Compostela, Santiago de Compostela, Spain","The United Nations (UN) Decade of Ocean Science highlights a need to improve the way in which scientific results effectively inform action and policies regarding the ocean. Our research contributes to achieving this goal by identifying practical actions, barriers, stakeholder contributions and resources required to increase the sustainability of activities carried out in the context of artisanal fisheries to meet UN Sustainable Development Goals (SDG) and International Year of Artisanal Fisheries and Aquaculture (IYAFA) Global Action Plan (GAP) Pillar targets. We conducted a novel ‘social value chain analysis’ via a participatory workshop to elicit perspectives of value chain actors and fisheries stakeholders associated with two Spanish artisanal common octopus (Octopus vulgaris) fisheries (western Asturias—Marine Stewardship Council [MSC] certified, and Galicia—non-MSC certified) about their priorities regarding sustainable octopus production and commercialization. Our adapted Rapfish sustainability framework emphasised the importance of economic, environmental, ethical, institutional, social, and technological indicators to different actors across the value chain. We mapped participants’ shared sustainability priorities (e.g. integrated fisheries management, knowledge-based management, product traceability) to six Rapfish indicators, seven IYAFA Pillars and twelve SDGs to reveal how our results can inform ocean policy and actions. This identified how certification incentives and other cooperative approaches can facilitate environmental, economic and social sustainability (e.g. value-added products, price premiums for producers, gender inclusive organisations); support IYAFA priority outcomes (raised awareness, strengthened science-policy interface, empowered stakeholders, partnerships); and help to achieve UN SDG targets (e.g. SDG 14.b, SDG 17.17). The results can inform actors, stakeholders and policymakers about how different actors contribute to efforts to achieve the SDGs and how to manage priorities for sustainable actions within artisanal fisheries and their value chains. We recommend inclusive and equitable participatory knowledge transfer and governance platforms as part of the UN Decade of Ocean Science and beyond where participants can create theories of change towards sustainability involving the development of multi-sectoral ocean policies framed at the level of the value chain and supported by appropriate governance structures. Graphical Abstract: [Figure not available: see fulltext.] © 2023, The Author(s).",ecological mangrove restoration; economic; ethical; institutional; octopus vulgaris; social value; technological,artisanal fishery; ethics; incentive; stakeholder; supply chain management; sustainability,"G.B. Ainsworth; Faculty of Business Administration and Management, University of Santiago de Compostela, Santiago de Compostela, Spain; email: gill.ainsworth@usc.es",,Springer Science and Business Media Deutschland GmbH,,,,,,09603166,,,,English,Rev. Fish Biol. Fish.,Article,Final,All Open Access; Green Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85149242623 Singhar A.S.; Gundimeda H.,"Singhar, Aditi Samant (59014098500); Gundimeda, Haripriya (16039449100)",59014098500; 16039449100,"Ranking sustainable management alternatives for Chilika wetland ecosystem, in India, using decision support system",2024,"Environment, Development and Sustainability",,,,,,,0,10.1007/s10668-024-05500-w,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85206910587&doi=10.1007%2fs10668-024-05500-w&partnerID=40&md5=a087011810ce49b4cc5f7de397ad6979,"Department of Economics, Indian Institute of Technology-Bombay, Mumbai, 400076, India","Singhar A.S., Department of Economics, Indian Institute of Technology-Bombay, Mumbai, 400076, India; Gundimeda H., Department of Economics, Indian Institute of Technology-Bombay, Mumbai, 400076, India","Conserving and managing ecosystems while guaranteeing economic growth can be seen as a complex decision-making challenge due to the requirement of balancing multiple objectives, the diverse nature of the resources involved, and the influence of various factors—ecological, social, and economic. Additionally, the presence of different stakeholders, including public and private entities from sectors like fisheries, tourism, and aquaculture, add to this complexity. Even though the importance of local capacity-building measures (like access to credit facilities and knowledge or awareness) is acknowledged, policies continue to be unidirectional and not adaptive enough to sensitive areas such as wetlands. This oversight sidesteps the fundamental ecological limits of wetlands, leading to further degradation and loss of these crucial ecosystems. When making decisions for sustainable management, conflicts can occur, so having strong analytical frameworks to guide the process is becoming increasingly important. Using Chilika wetland, a Ramsar site, the study aims to fill this gap by exploring the contribution of Interpretive Structural Modelling (ISM) and Cross-impact matrix multiplication (MIC-MAC), for decision problems in the field of natural resource management and sustainable development. Through this knowledge of systemic factors, we aim to find leverage points for collective action and increase the system's resilience, by identifying essential players in sustainable transitions or empowering marginalised sections of the community. By mapping out the network of cause and effect relationships, the study highlights how inaction on key variables can amplify negative impacts on other parts of the system. Additionally, the study makes identifying and prioritising impacts on system variables easier, thereby aiding decision-making processes that consider all targets equally important but still prioritise immediate and critical actions. © The Author(s), under exclusive licence to Springer Nature B.V. 2024.",interpretive structural model; mic-mac; policy interventions; ramsar; sustainability,,"A.S. Singhar; Department of Economics, Indian Institute of Technology-Bombay, Mumbai, 400076, India; email: aditisinghar@iitb.ac.in",,Springer Science and Business Media B.V.,,,,,,1387585X,,EDSNB,,English,Environ. Dev. Sustainability,Article,Article in press,,Scopus,2-s2.0-85206910587 O’farrell S.; Perruso L.; Sanchirico J.N.; Chollett I.,"O’farrell, Shay (56461053800); Perruso, Larry (55489587200); Sanchirico, James N. (6603128224); Chollett, Iliana (15520470700)",56461053800; 55489587200; 6603128224; 15520470700,Linking real world fisheries datasets for mapping of revenue from fishing grounds to dependent communities,2024,Canadian Journal of Fisheries and Aquatic Sciences,81,1,,14,27,13,1,10.1139/cjfas-2023-0123,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85174054709&doi=10.1139%2fcjfas-2023-0123&partnerID=40&md5=b2d6f5bcb6d032772574aa269a0870de,"Sea Cottage, Louisburgh, Co. Mayo, Ireland; Southeast Fisheries Science Center, NOAA Fisheries, Miami, FL, United States; Department of Environmental Science and Policy, University of California, Davis, CA, United States","O’farrell S., Sea Cottage, Louisburgh, Co. Mayo, Ireland; Perruso L., Southeast Fisheries Science Center, NOAA Fisheries, Miami, FL, United States; Sanchirico J.N., Department of Environmental Science and Policy, University of California, Davis, CA, United States; Chollett I., Sea Cottage, Louisburgh, Co. Mayo, Ireland","Mapping the economic value of the ocean is pivotal to understand how marine ecosystems contribute to human well-being and to support fisheries management. We present a framework to analyse fisheries data and map fishing revenues by linking Vessel Monitoring System (VMS) information to logbooks and observer data. We provide a detailed step-by-step methodology and describe different approaches available to fulfill each step, with special notes for the processing of real-world messy data. The framework consists of six processing steps: (1) identifying the target fishery and subsetting VMS data, (2) extracting relevant variables, (3) linking observer and VMS data, (4) identifying fishing activity, (5) linking VMS and logbook data, and (6) extracting derived variables and mapping revenue back to the communities that extracted the resources. Building this framework opens a broad range of applications including marine spatial planning, rapid response analyses, high-resolution stock assessments, and spatially explicit-socioeconomic analyses. We demonstrate the framework in the reef fishery of the Gulf of Mexico, where spatial planning for aquaculture is currently underway. © 2023 Authors O’Farrell, Sanchirico, and Chollett.",fisheries management; gulf of mexico; logbooks; marine spatial planning; usa; vessel monitoring system,Atlantic Ocean; Gulf of Mexico; United States; data processing; data set; fishery management; fishing community; mapping; monitoring system; socioeconomic conditions; spatial planning,"I. Chollett; Sea Cottage, Louisburgh, Co. Mayo, Ireland; email: iliana.chollett@gmail.com",,Canadian Science Publishing,,,,,,0706652X,,CJFSD,,English,Can. J. Fish. Aquatic Sci.,Article,Final,All Open Access; Green Open Access,Scopus,2-s2.0-85174054709 Diederichsen S.D.; Weiss C.V.C.; Lima F.A.V.; dos Santos B.A.Q.; Guyot-Téphany J.; Thomas J.-B.E.; Lukic I.; Rebours C.; Walsh J.P.; McCann J.; Juell-Skielse E.; Gröndahl F.; Scherer M.E.G.,"Diederichsen, Sereno D. (59371184900); Weiss, Carlos V.C. (57201253495); Lima, Francisco A.V. (57210751879); dos Santos, Bruno A.Q. (57203384758); Guyot-Téphany, Josselin (59239233500); Thomas, Jean-Baptiste E. (57190873896); Lukic, Ivana (57208407736); Rebours, Céline (55247994100); Walsh, John Patrick (55258479200); McCann, Jennifer (55567481200); Juell-Skielse, Elea (56454446400); Gröndahl, Fredrik (30967456600); Scherer, Marinez E.G. (56037545900)",59371184900; 57201253495; 57210751879; 57203384758; 59239233500; 57190873896; 57208407736; 55247994100; 55258479200; 55567481200; 56454446400; 30967456600; 56037545900,Exploring the contribution of multi-use approach in fostering local blue economy: Insights from the Global South,2025,Ocean and Coastal Management,266,,107689,,,,0,10.1016/j.ocecoaman.2025.107689,https://www.scopus.com/inward/record.uri?eid=2-s2.0-105002258854&doi=10.1016%2fj.ocecoaman.2025.107689&partnerID=40&md5=40abfebb7ff94ca243a0db5cd82d062f,"Laboratory of Integrated Coastal Zone Management, Federal University of Santa Catarina, Graduate Program in Geography, Campus Universitário Trindade, Caixa Postal 476, SC, Florianópolis, CEP 88.040 – 970, Brazil; IHCantabria - Instituto de Hidráulica Ambiental de la Universidad de Cantabria, Santander, Spain; University of Nantes, France; KTH Royal Institute of Technology, Sweden; s.Pro – sustainable projects GmbH, Germany; Møreforsking AS, Norway; University of Rhode Island Coastal Resources Center and Rhode Island Sea Grant, United States","Diederichsen S.D., Laboratory of Integrated Coastal Zone Management, Federal University of Santa Catarina, Graduate Program in Geography, Campus Universitário Trindade, Caixa Postal 476, SC, Florianópolis, CEP 88.040 – 970, Brazil; Weiss C.V.C., Laboratory of Integrated Coastal Zone Management, Federal University of Santa Catarina, Graduate Program in Geography, Campus Universitário Trindade, Caixa Postal 476, SC, Florianópolis, CEP 88.040 – 970, Brazil, IHCantabria - Instituto de Hidráulica Ambiental de la Universidad de Cantabria, Santander, Spain; Lima F.A.V., Laboratory of Integrated Coastal Zone Management, Federal University of Santa Catarina, Graduate Program in Geography, Campus Universitário Trindade, Caixa Postal 476, SC, Florianópolis, CEP 88.040 – 970, Brazil; dos Santos B.A.Q., Laboratory of Integrated Coastal Zone Management, Federal University of Santa Catarina, Graduate Program in Geography, Campus Universitário Trindade, Caixa Postal 476, SC, Florianópolis, CEP 88.040 – 970, Brazil; Guyot-Téphany J., University of Nantes, France; Thomas J.-B.E., KTH Royal Institute of Technology, Sweden; Lukic I., s.Pro – sustainable projects GmbH, Germany; Rebours C., Møreforsking AS, Norway; Walsh J.P., University of Rhode Island Coastal Resources Center and Rhode Island Sea Grant, United States; McCann J., University of Rhode Island Coastal Resources Center and Rhode Island Sea Grant, United States; Juell-Skielse E., KTH Royal Institute of Technology, Sweden; Gröndahl F., KTH Royal Institute of Technology, Sweden; Scherer M.E.G., Laboratory of Integrated Coastal Zone Management, Federal University of Santa Catarina, Graduate Program in Geography, Campus Universitário Trindade, Caixa Postal 476, SC, Florianópolis, CEP 88.040 – 970, Brazil","Ocean Multi-use (MU) has gained significant attention as an approach with great potential to promote a more sustainable and space efficient' Blue Economy development. Despite many efforts to implement the multi-use concept into practice, MU still has many practical challenges, which is even more evident outside the European context, where there is significant policy support for MU. This paper aims to elucidate how MU can bolster the local blue economy, particularly within the context of the Global South. The research is based on a case study in southern Brazil, within a traditional fishing community that occupies a marine protected area. A practical analysis of the synergies between community-based tourism, artisanal fishing and conservation was done through interviews with key stakeholders. The main benefits, constraints, opportunities, and risks of MU activities were identified. Results demonstrate the positive impact of MU promoting revenue, environmental education, and cultural and historical attributes. MU has shown great positive impact on social, economic, and environmental aspects within this case study. Key enabling factors that allowed the MU development were horizontal participatory governance and the protagonist of fishers. In terms of existing challenges, the absence of investment in infrastructure, fragmented governance and lack of institutional support was pointed out as the main constraint and limitations to strengthening MU. We argue that MU can be an important strategy for promoting the local blue economy. In the Global South context, the efficacy of MU initiatives appears intricately tied to the participation of local actors in a manner tailored to local contexts and challenges. © 2025 Elsevier Ltd",artisanal fisheries; community-based conservation; local blue economy; marine protected area; multi-use; pestel analysis,Brazil; Green economy; Artisanal fishing; Blue economies; Case-studies; Community-based; Community-based tourism; Local blue economy; Marine protected area; Multi-use; PESTEL analyze; Space efficient; aquaculture; ecotourism; fishing community; marine environment; protected area; risk assessment; stakeholder; Circular economy,"S.D. Diederichsen; Federal University of Santa Catarina, Florianópolis, SC, Brazil; email: sereno.diederichsen@gmail.com; C.V.C. Weiss; IHCantabria - Instituto de Hidráulica Ambiental de la Universidad de Cantabria, Santander, Spain; email: dacruzcv@unican.es",,Elsevier Ltd,,,,,,09645691,,OCMAE,,English,Ocean Coast. Manage.,Article,Final,,Scopus,2-s2.0-105002258854 Sumarga E.; Rosleine D.; Hutajulu G.B.; Plaurint R.P.; Tsabita; Basyuni M.; Larekeng S.H.; Taqiyudin M.F.; Shohihah N.N.; Ali H.M.,"Sumarga, E. (56189783300); Rosleine, D. (57205222897); Hutajulu, G.B. (59164920600); Plaurint, R.P. (59164656400); Tsabita (59165052300); Basyuni, M. (15055287200); Larekeng, S.H. (57200256258); Taqiyudin, M.F. (59164787200); Shohihah, N.N. (59164525400); Ali, H.M. (36865958000)",56189783300; 57205222897; 59164920600; 59164656400; 59165052300; 15055287200; 57200256258; 59164787200; 59164525400; 36865958000,Quantification of ecosystem services from mangrove silvofishery,2024,Global Journal of Environmental Science and Management,10,3,,1333,1344,11,4,10.22034/gjesm.2024.03.23,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85195485290&doi=10.22034%2fgjesm.2024.03.23&partnerID=40&md5=b0a3321bba305cd3df5274b844b60a2c,"School of Life Sciences and Technology, Institut Teknologi Bandung, Bandung, 40132, Indonesia; Forestry Engineering Study Program, School of Life Sciences and Technology, Institut Teknologi Bandung, Sumedang, 45363, Indonesia; Center of Excellence for Mangrove, Universitas Sumatera Utara, alan Perpustkaan No. 3A, Medan, 20155, Indonesia; Biodiversity Research Group, Faculty of Forestry, Hasanuddin University, Makassar, 90245, Indonesia; Agricultural Economics Department, Faculty of Agriculture, Padjadjaran University, Jalan Raya Bandung-Sumedang, Jatinangor Sumedang, 45363, Indonesia; Department of Botany and Microbiology, College of Science, King Saud University, Riyadh, 11451, Saudi Arabia","Sumarga E., School of Life Sciences and Technology, Institut Teknologi Bandung, Bandung, 40132, Indonesia; Rosleine D., Forestry Engineering Study Program, School of Life Sciences and Technology, Institut Teknologi Bandung, Sumedang, 45363, Indonesia; Hutajulu G.B., Center of Excellence for Mangrove, Universitas Sumatera Utara, alan Perpustkaan No. 3A, Medan, 20155, Indonesia; Plaurint R.P., Forestry Engineering Study Program, School of Life Sciences and Technology, Institut Teknologi Bandung, Sumedang, 45363, Indonesia; Tsabita, Forestry Engineering Study Program, School of Life Sciences and Technology, Institut Teknologi Bandung, Sumedang, 45363, Indonesia; Basyuni M., Center of Excellence for Mangrove, Universitas Sumatera Utara, alan Perpustkaan No. 3A, Medan, 20155, Indonesia; Larekeng S.H., Biodiversity Research Group, Faculty of Forestry, Hasanuddin University, Makassar, 90245, Indonesia; Taqiyudin M.F., Agricultural Economics Department, Faculty of Agriculture, Padjadjaran University, Jalan Raya Bandung-Sumedang, Jatinangor Sumedang, 45363, Indonesia; Shohihah N.N., Agricultural Economics Department, Faculty of Agriculture, Padjadjaran University, Jalan Raya Bandung-Sumedang, Jatinangor Sumedang, 45363, Indonesia; Ali H.M., Department of Botany and Microbiology, College of Science, King Saud University, Riyadh, 11451, Saudi Arabia","BACKGROUND AND OBJECTIVES: Mangrove silvofishery, a unique system that combine aquaculture with mangrove forests, presents a promising sustainable solution for Indonesia’s coastal communities. However, in order to achieve broad implementation, it is essential to bridge the existing knowledge gap concerning the economic and environmental benefits associated with it. The aim of this study was to assess the four primary services rendered by the Blanakan mangrove silvofishery area in Subang District, West Java: carbon sequestration, fisheries productivity, naturebased tourism, and bird sanctuary. METHODS: Carbon storage was calculated by conducting vegetation surveys and utilizing allometric equations, which took into account both aboveground and belowground biomass. During the vegetation survey, data regarding the types of mangrove plants and the diameter of each tree at breast height was gathered. To quantify fisheries production, interviews were conducted with area managers and pond farmers who are engaged in silvofishery practices within the region. The pointcount method was used to inventory the diversity of bird species. The analysis of natural tourism services encompassed an examination of visitor statistics, the state of the mangroves as a popular tourist destination, and the range of tourist activities available. FINDINGS: The study revealed the high capacity of the mangrove stands at the study location for carbon storage, with an estimated 137.9 tonnes carbon per hectare aboveground and 79 tonnes carbon per hectare belowground. Local communities actively engage in silvofishery practices within the Blanakan mangroves, cultivating fish and shrimp, with an average annual income of around 1,513 United States dollar per hectare. 2. The natural beauty of the Blanakan mangrove area attracts tourists with its diverse ecosystem and opportunities to see crocodile breeding facilities. Visitor numbers vary, averaging around 128 people per month until mid-2023. The Blanakan mangroves are home to a total of 23 bird species, contributing to a species diversity index of 2.1. Two species with significant conservation value were found: the critically endangered Javan Blue-banded Kingfisher (Alcedo euryzona) and the vulnerable Black-capped Kingfisher (Halcyon pileata). CONCLUSION: The results emphasize the importance of advancing and advocating for silvofishery as a primary alternative in Indonesia’s mangrove conservation and rehabilitation initiatives, enhancing coastal environmental management. Community engagement is of utmost importance in the successful development of mangrove silvofishery, as it aims to tackle the issue of limited awareness and participation among the local community. © (2024), All Rights Reserved.",carbon storage; climate regulation; coastal management; mangrove restoration,Indonesia; aboveground biomass; belowground biomass; carbon sequestration; carbon storage; coastal zone management; conservation management; ecosystem service; endangered species; environmental restoration; fishery management; local participation; mangrove; participatory approach; quantitative analysis; restoration ecology; silviculture; species diversity; species inventory; sustainable forestry,"E. Sumarga; School of Life Sciences and Technology, Institut Teknologi Bandung, Bandung, 40132, Indonesia; email: elham.sumarga@itb.ac.id",,GJESM Publication,,,,,,23833572,,,,English,Glob. J. Environ. Sci. Manag.,Article,Final,,Scopus,2-s2.0-85195485290 Apine E.; Ramappa P.; Bhatta R.; Turner L.M.; Rodwell L.D.,"Apine, Elina (57205346378); Ramappa, Prashanth (58317286800); Bhatta, Ramachandra (8314628300); Turner, Lucy M. (36935249300); Rodwell, Lynda D. (8373422000)",57205346378; 58317286800; 8314628300; 36935249300; 8373422000,Challenges and opportunities in achieving sustainable mud crab aquaculture in tropical coastal regions,2023,Ocean and Coastal Management,242,,106711,,,,16,10.1016/j.ocecoaman.2023.106711,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85162079815&doi=10.1016%2fj.ocecoaman.2023.106711&partnerID=40&md5=da8b96938128b6e83f6677a039802fa4,"School of Biological and Marine Sciences, University of Plymouth, Plymouth, PL4 8AA, United Kingdom; Department of Fisheries Resources Management, Karnataka Veterinary Animal and Fisheries Sciences University, College of Fisheries, Mangalore, 575002, India; ICAR-Emeritus Scientist (Economics), Department of Fisheries Economics, Karnataka Veterinary Animal and Fisheries Sciences University, College of Fisheries, Mangalore, 575002, India; School of Geography, Earth and Environmental Sciences, University of Plymouth, Plymouth, PL4 8AA, United Kingdom","Apine E., School of Biological and Marine Sciences, University of Plymouth, Plymouth, PL4 8AA, United Kingdom; Ramappa P., Department of Fisheries Resources Management, Karnataka Veterinary Animal and Fisheries Sciences University, College of Fisheries, Mangalore, 575002, India; Bhatta R., ICAR-Emeritus Scientist (Economics), Department of Fisheries Economics, Karnataka Veterinary Animal and Fisheries Sciences University, College of Fisheries, Mangalore, 575002, India; Turner L.M., School of Biological and Marine Sciences, University of Plymouth, Plymouth, PL4 8AA, United Kingdom; Rodwell L.D., School of Geography, Earth and Environmental Sciences, University of Plymouth, Plymouth, PL4 8AA, United Kingdom","Aquaculture plays a significant role in food security and provides livelihoods and employment for millions of people among coastal communities worldwide. However, the growing aquaculture sector has also created debates around its long-term ecological sustainability, economic viability, potential social inequalities and governance issues. We investigated the perceived challenges and opportunities to achieving sustainable mud crab aquaculture in tropical coastal regions by using the case study of coastal mud crab farms in Andhra Pradesh, India. Informed by perceptions and indicative financial data from a sample of stakeholders we investigated the potential economic outcomes under different scenarios representing varying yield levels, risk factors and project time periods. The main risks identified by the stakeholders were associated with the limited supply of mud crab seeds and the lack of access to governmental and non-governmental support schemes. There are no financial buffers, therefore major disease outbreaks or extreme weather conditions caused by climate change would lead to a loss of livelihoods. This paper also highlights the most critical factor determining the level of success of mud crab farming being the crab survival rate which is influenced by a variety of factors including increasing sea surface temperature. The results of this study show that small-scale mud crab farming has fewer risks and higher flexibility involved than large-scale mud crab farming. It could be an economically sustainable enterprise and serve as a tool for poverty alleviation in developing countries if microfinance support and training are available. © 2023 The Authors",benefit-cost analysis; crustaceans; fish farming; livelihoods; subsistence,Andhra Pradesh; India; Aquaculture; Climate change; Coastal zones; Cost benefit analysis; Developing countries; Farms; Food supply; Oceanography; Risk perception; Surface waters; Benefit/cost analysis; Coastal communities; Coastal regions; Crustacean; Ecological sustainability; Economic viability; Fish farming; Food security; Livelihood; Subsistence; aquaculture; climate change; cost-benefit analysis; crab fishery; crustacean culture; employment; food security; livelihood; microfinance; poverty alleviation; subsistence; survival; sustainability; tropical region; Tropics,"E. Apine; School of Geography and Sustainable Development, University of St Andrews, St Andrews, KY16 9AL, United Kingdom; email: ea93@st-andrews.ac.uk",,Elsevier Ltd,,,,,,09645691,,OCMAE,,English,Ocean Coast. Manage.,Article,Final,All Open Access; Green Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85162079815 Nyamweya C.; Lawrence T.J.; Ajode M.Z.; Smith S.; Achieng A.O.; Barasa J.E.; Masese F.O.; Taabu-Munyaho A.; Mahongo S.; Kayanda R.; Rukunya E.; Kisaka L.; Manyala J.; Medard M.; Otoung S.; Mrosso H.; Sekadende B.; Walakira J.; Mbabazi S.; Kishe M.; Shoko A.; Dadi T.; Gemmell A.; Nkalubo W.,"Nyamweya, Chrispine (36061299600); Lawrence, Ted J. (55153649400); Ajode, Migeni Z. (58000519000); Smith, Stephanie (57225852385); Achieng, Alfred O. (56549963500); Barasa, James E. (55934773500); Masese, Frank O. (26647663400); Taabu-Munyaho, Anthony (55437733800); Mahongo, Shigalla (6506813157); Kayanda, Robert (52263896500); Rukunya, Edward (58484850200); Kisaka, Lilian (58484712500); Manyala, Julius (7801482534); Medard, Modesta (23019315600); Otoung, Simon (57471223500); Mrosso, Hillary (6507354131); Sekadende, Baraka (8298258100); Walakira, John (57191908764); Mbabazi, Stella (57470725800); Kishe, Mary (6506560724); Shoko, Amon (56117139500); Dadi, Tallent (56463034300); Gemmell, Andrew (57471397400); Nkalubo, Winnie (56073259800)",36061299600; 55153649400; 58000519000; 57225852385; 56549963500; 55934773500; 26647663400; 55437733800; 6506813157; 52263896500; 58484850200; 58484712500; 7801482534; 23019315600; 57471223500; 6507354131; 8298258100; 57191908764; 57470725800; 6506560724; 56117139500; 56463034300; 57471397400; 56073259800,Lake Victoria: Overview of research needs and the way forward,2023,Journal of Great Lakes Research,49,6,102211,,,,18,10.1016/j.jglr.2023.06.009,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85164593494&doi=10.1016%2fj.jglr.2023.06.009&partnerID=40&md5=27d690c4338a9f2cf6ebd144fbd8ec1f,"Kenya Marine and Fisheries Research Institute, P.O. Box 1881-40100, Kisumu, Kenya; African Center for Aquatic Research and Education, 2200 Commonwealth Blvd., Ste. 100, Ann Arbor, 48105, MI, United States; Department of Fisheries & Aquatic Science, University of Eldoret, P. O. Box 1125-30100, Eldoret, Kenya; Lake Victoria Fisheries Organization, P.O. Box 1625, Jinja, Uganda; Kibabii University, P.O. Box 1699-50200, Bungoma, Kenya; Jaramogi Oginga, Odinga University of Science and Technology, P.O. Box 210 – 40601, Bondo, Kenya; World Wide Fund for Nature Tanzania, PO Box 63117, Tanzania; Lake Victoria Basin Commission, PO Box 1510, Kisumu, Kenya; Tanzania Fisheries Research Institute, P.O. Box 475, Mwanza, Tanzania; Abi Zonal Agricultural Research and Development Institute, P.O. Box 219, Arua, Uganda; Ministry of Agriculture, Animal Industry and Fisheries, P.O. Box 102, Entebbe, Uganda; Tanzania Fisheries Research Institute, P.O. Box 9750, Dar es salaam, Tanzania; Department Lake Research, Helmholtz Centre for Environmental Research – UFZ, Brückstr.3a 39114, Magdeburg, Germany; The Umvoto Foundation, P.O. Box 61 Muizenberg 7950, Cape Town, South Africa; National Fisheries Resources Research Institute, P.O.Box 343, Jinja, Uganda; International Institute for Sustainable Development, 325-111 Lombard Ave, Winnipeg, R3B 0T4, MB, Canada","Nyamweya C., Kenya Marine and Fisheries Research Institute, P.O. Box 1881-40100, Kisumu, Kenya; Lawrence T.J., African Center for Aquatic Research and Education, 2200 Commonwealth Blvd., Ste. 100, Ann Arbor, 48105, MI, United States, International Institute for Sustainable Development, 325-111 Lombard Ave, Winnipeg, R3B 0T4, MB, Canada; Ajode M.Z., African Center for Aquatic Research and Education, 2200 Commonwealth Blvd., Ste. 100, Ann Arbor, 48105, MI, United States; Smith S., African Center for Aquatic Research and Education, 2200 Commonwealth Blvd., Ste. 100, Ann Arbor, 48105, MI, United States; Achieng A.O., Department of Fisheries & Aquatic Science, University of Eldoret, P. O. Box 1125-30100, Eldoret, Kenya; Barasa J.E., Department of Fisheries & Aquatic Science, University of Eldoret, P. O. Box 1125-30100, Eldoret, Kenya; Masese F.O., Department of Fisheries & Aquatic Science, University of Eldoret, P. O. Box 1125-30100, Eldoret, Kenya; Taabu-Munyaho A., Lake Victoria Fisheries Organization, P.O. Box 1625, Jinja, Uganda; Mahongo S., Lake Victoria Fisheries Organization, P.O. Box 1625, Jinja, Uganda; Kayanda R., Lake Victoria Fisheries Organization, P.O. Box 1625, Jinja, Uganda; Rukunya E., Lake Victoria Fisheries Organization, P.O. Box 1625, Jinja, Uganda; Kisaka L., Kibabii University, P.O. Box 1699-50200, Bungoma, Kenya; Manyala J., Jaramogi Oginga, Odinga University of Science and Technology, P.O. Box 210 – 40601, Bondo, Kenya; Medard M., World Wide Fund for Nature Tanzania, PO Box 63117, Tanzania; Otoung S., Lake Victoria Basin Commission, PO Box 1510, Kisumu, Kenya; Mrosso H., Tanzania Fisheries Research Institute, P.O. Box 475, Mwanza, Tanzania; Sekadende B., Tanzania Fisheries Research Institute, P.O. Box 475, Mwanza, Tanzania; Walakira J., Abi Zonal Agricultural Research and Development Institute, P.O. Box 219, Arua, Uganda; Mbabazi S., Ministry of Agriculture, Animal Industry and Fisheries, P.O. Box 102, Entebbe, Uganda; Kishe M., Tanzania Fisheries Research Institute, P.O. Box 9750, Dar es salaam, Tanzania; Shoko A., Tanzania Fisheries Research Institute, P.O. Box 9750, Dar es salaam, Tanzania; Dadi T., Department Lake Research, Helmholtz Centre for Environmental Research – UFZ, Brückstr.3a 39114, Magdeburg, Germany; Gemmell A., The Umvoto Foundation, P.O. Box 61 Muizenberg 7950, Cape Town, South Africa; Nkalubo W., National Fisheries Resources Research Institute, P.O.Box 343, Jinja, Uganda","Over 42 million people rely on Lake Victoria as their primary source of food, employment, and clean drinking water. The lake's fisheries have produced around one million tonnes in recent years, but the lake's growing population has resulted in a lower catch rate per capita. And the lake and its catchment have been negatively impacted by a wide variety of human activities, such as overfishing, oil spills, discharge of untreated waste, spread of invasive species, over-abstraction of water from the lake basin, and climate change, among other drivers of change. This paper presents existing research gaps, existing capacity, and presents a way forward for priority research on issues ranging from fish and fisheries, biodiversity, pollution, invasive species, aquaculture, human population growth and socio-economics, land use changes, habitat degradation, climate change and skills and knowledge. The purpose of this paper is to document: information that is currently available from previous research; the existing scientific capacity; and the resources required to guarantee that Lake Victoria becomes a heathy and biologically diverse resource for the millions of people who are dependent on it. It is clear from this synthesis that the biological, social, and economic benefits that can be derived from Lake Victoria can only be accomplished through the utilization of multi-disciplinary approaches in the research and monitoring of both basin-wide and lake-wide biophysical processes, as well as the modeling of all potential interactions between the ecology of the basin and the lake. © 2023 The Authors",capacity building; climate change; research needs; sustainability; transboundary,East African Lakes; Lake Victoria; Biodiversity; Economic and social effects; Economics; Fisheries; Lakes; Land use; Oil spills; Oils and fats; Population statistics; Potable water; Sustainable development; Capacity building; Catch rates; Human activities; Invasive species; Lake Victoria; Per capita; Primary sources; Research needs; Sustainable management; Trans-boundary; capacity building; catchment; climate change; land use change; population growth; sustainability; transboundary cooperation; Climate change,"C. Nyamweya; Kenya Marine and Fisheries Research Institute, Kisumu, P.O. Box 1881-40100, Kenya; email: sanychris@yahoo.com",,International Association of Great Lakes Research,,,,,,03801330,,JGLRD,,English,J. Great Lakes Res.,Article,Final,All Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85164593494 Shi X.; Xu Y.; Dong B.; Nishino N.,"Shi, Xiuyi (57210450565); Xu, Yingzhi (56530924800); Dong, Biying (57202035867); Nishino, Nariaki (16040689700)",57210450565; 56530924800; 57202035867; 16040689700,Mariculture carbon sequestration efficiency in China: Its measurement and socio-economic factor analysis,2023,Sustainable Production and Consumption,40,,,101,121,20,18,10.1016/j.spc.2023.06.003,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85163279654&doi=10.1016%2fj.spc.2023.06.003&partnerID=40&md5=b8b1854f651fc791ab3715826afa2b4a,"School of Economics and Management, Southeast University, Nanjing, 211189, China; Department of Technology Management for Innovation, School of Engineering, The University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, Tokyo, 113-8656, Japan","Shi X., School of Economics and Management, Southeast University, Nanjing, 211189, China; Xu Y., School of Economics and Management, Southeast University, Nanjing, 211189, China; Dong B., School of Economics and Management, Southeast University, Nanjing, 211189, China; Nishino N., Department of Technology Management for Innovation, School of Engineering, The University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, Tokyo, 113-8656, Japan","The main characteristic of mariculture carbon sequestration is the high carbon storage and flux with minor negative impact on eco-environment. It may be an efficient way to net-zero carbon emissions (carbon neutrality) and sustainable development due to the combination of environmental and economic values. Therefore, this paper defines Mariculture Carbon Sequestration Efficiency (MCSE) as the carbon sequestration effect and economic effect in mariculture based on a certain input. First of all, this paper measures China's MCSE based on a series of data from 9 coastal provincial-level regions during 2013–2020 by Super-SBM model. Next, this paper explores the socio-economic factors of China's MCSE by STIRPAT model. Finally, this paper summarizes the advantages of China's mariculture carbon sequestration. It can be concluded from the results that China's 9 coastal provincial-level regions shows an approximate upward trend during 2013–2020, and similar trends are more obvious in the Circum-Bohai Sea (CBS) and Pan-Pearl River Delta (PPRD) Economic Zone. In 2020, 6 in 9 regions in the sample are efficient on technical efficiency (efficiency measured with constant returns to scale), and all regions in the sample are efficient on pure technical efficiency (efficiency measured with variable returns to scale). The MCSE in the PPRD Economic Zone such as Guangdong has the highest level. Shandong also has a high level of MCSE because of the high economic outputs in mariculture. The main drawback in the Yangtze River Delta (YRD) Economic Zone and Hebei province is that the scale efficiency is not very high. Jiangsu is hampered by the low efficiency of energy utilization. The analysis of socio-economic factors based on ridge regression model and panel regression model presents that the level of population and service industry produce positive impacts on China's MCSE, whereas the level of affluence and energy intensity produce negative impacts on China's MCSE. Some policy implications, such as developing the advantages of the featured mariculture in scale, exploring new growth drivers for developing mariculture carbon sequestration, developing a market economy of mariculture carbon sequestration, and forming a sustainable modes of mariculture carbon sequestration, are proposed. © 2023 Institution of Chemical Engineers",carbon neutrality; carbon sequestration; carbon sequestration; mariculture; net-zero carbon emissions,Digital storage; Economic analysis; Economic and social effects; Energy Intensity; Factor analysis; Public policy; Regression analysis; Sustainable development; Carbon emissions; Carbon neutralities; Carbon sequestration; Carbon sequestration efficiency; Economic zones; Mariculture; Net-zero carbon emission; Socio-economic factor; Zero carbons; Energy utilization,"Y. Xu; Nanjing, Jingguan Building, Dongnandaxue Road 2, Jiangning District, 211189, China; email: xuyingzhi@hotmail.com",,Elsevier B.V.,,,,,,23525509,,,,English,Sustain. Prod. Consum.,Article,Final,All Open Access; Bronze Open Access,Scopus,2-s2.0-85163279654 Paxton A.B.; Lester S.E.; Smith C.S.; Narayan S.; Angelini C.; Runde B.J.; Saunders M.I.; Gittman R.K.; Allgeier J.; Vozzo M.L.; Steward D.N.; Lemoine H.R.; Valdez S.R.; Morris R.L.; Nowacek D.P.; Seaman W.; Halpin P.N.; Silliman B.R.,"Paxton, Avery B (57193010978); Lester, Sarah E (8134852700); Smith, Carter S (57191156029); Narayan, Siddharth (52464215100); Angelini, Christine (53663113400); Runde, Brendan J (57201725631); Saunders, Megan I (22035939200); Gittman, Rachel K (55999207900); Allgeier, Jacob (21733706500); Vozzo, Maria L (57194786475); Steward, D'amy N (59697391300); Lemoine, Hayley R (57225019242); Valdez, Stephanie R (57192697735); Morris, Rebecca L (56652504900); Nowacek, Douglas P (6603551887); Seaman, William (7102992315); Halpin, Patrick N (6603899068); Silliman, Brian R (6701473658)",57193010978; 8134852700; 57191156029; 52464215100; 53663113400; 57201725631; 22035939200; 55999207900; 21733706500; 57194786475; 59697391300; 57225019242; 57192697735; 56652504900; 6603551887; 7102992315; 6603899068; 6701473658,Recommendations for built marine infrastructure that supports natural habitats,2025,Frontiers in Ecology and the Environment,,,,,,,0,10.1002/fee.2840,https://www.scopus.com/inward/record.uri?eid=2-s2.0-105000338567&doi=10.1002%2ffee.2840&partnerID=40&md5=dd413a2159e1c1e15ab57932b8b7360d,"National Centers for Coastal Ocean Science, National Ocean Service, National Oceanic and Atmospheric Administration, Beaufort, NC, United States; Southeast Fisheries Science Center, National Marine Fisheries Service, National Oceanic and Atmospheric Administration, Beaufort, NC, United States; Department of Biological Science, Florida State University, Tallahassee, FL, United States; Duke University Marine Lab, Beaufort, NC, United States; School of Aquatic and Fishery Science, University of Washington, Seattle, WA, United States; Coastal Studies Institute, East Carolina University, Wanchese, NC, United States; Department of Coastal Studies, Integrated Coastal Programs, East Carolina University, Greenville, NC, United States; Department of Environmental Engineering Sciences, Engineering School of Sustainable Infrastructure & Environment, University of Florida, Gainesville, FL, United States; The Nature Conservancy, Charlottesville, VA, United States; Commonwealth Scientific and Industrial Research Organisation (CSIRO) Environment, St Lucia, Australia; Centre for Biodiversity and Conservation Science, The University of Queensland, St Lucia, Australia; Department of Biology, East Carolina University, Greenville, NC, United States; Department of Ecology and Evolutionary Biology, University of Michigan, Ann Arbor, MI, United States; University of Guam Marine Laboratory, UOG Station, Mangilao, Guam; Department of Geography, Florida State University, Tallahassee, FL, United States; National Centre for Coasts and Climate, School of BioSciences, University of Melbourne, Melbourne, Australia; Coastal and Estuarine Adaptation Lab, School of Biosciences, University of Melbourne, Melbourne, Australia; Pratt School of Engineering, Duke University, Durham, NC, United States; Fisheries and Aquatic Sciences, University of Florida, Montreat, NC, United States; Marine Geospatial Ecology Lab, Nicholas School of the Environment, Duke University, Durham, NC, United States","Paxton A.B., National Centers for Coastal Ocean Science, National Ocean Service, National Oceanic and Atmospheric Administration, Beaufort, NC, United States, Southeast Fisheries Science Center, National Marine Fisheries Service, National Oceanic and Atmospheric Administration, Beaufort, NC, United States; Lester S.E., Department of Biological Science, Florida State University, Tallahassee, FL, United States; Smith C.S., Duke University Marine Lab, Beaufort, NC, United States, School of Aquatic and Fishery Science, University of Washington, Seattle, WA, United States; Narayan S., Coastal Studies Institute, East Carolina University, Wanchese, NC, United States, Department of Coastal Studies, Integrated Coastal Programs, East Carolina University, Greenville, NC, United States; Angelini C., Department of Environmental Engineering Sciences, Engineering School of Sustainable Infrastructure & Environment, University of Florida, Gainesville, FL, United States; Runde B.J., The Nature Conservancy, Charlottesville, VA, United States; Saunders M.I., Commonwealth Scientific and Industrial Research Organisation (CSIRO) Environment, St Lucia, Australia, Centre for Biodiversity and Conservation Science, The University of Queensland, St Lucia, Australia; Gittman R.K., Department of Coastal Studies, Integrated Coastal Programs, East Carolina University, Greenville, NC, United States, Department of Biology, East Carolina University, Greenville, NC, United States; Allgeier J., Department of Ecology and Evolutionary Biology, University of Michigan, Ann Arbor, MI, United States; Vozzo M.L., Commonwealth Scientific and Industrial Research Organisation (CSIRO) Environment, St Lucia, Australia; Steward D.N., University of Guam Marine Laboratory, UOG Station, Mangilao, Guam; Lemoine H.R., Department of Geography, Florida State University, Tallahassee, FL, United States; Valdez S.R., Duke University Marine Lab, Beaufort, NC, United States, School of Aquatic and Fishery Science, University of Washington, Seattle, WA, United States; Morris R.L., National Centre for Coasts and Climate, School of BioSciences, University of Melbourne, Melbourne, Australia, Coastal and Estuarine Adaptation Lab, School of Biosciences, University of Melbourne, Melbourne, Australia; Nowacek D.P., Duke University Marine Lab, Beaufort, NC, United States, Pratt School of Engineering, Duke University, Durham, NC, United States; Seaman W., Fisheries and Aquatic Sciences, University of Florida, Montreat, NC, United States; Halpin P.N., Marine Geospatial Ecology Lab, Nicholas School of the Environment, Duke University, Durham, NC, United States; Silliman B.R., Duke University Marine Lab, Beaufort, NC, United States","The extent of built marine infrastructure—from energy infrastructure and ports to artificial reefs and aquaculture—is increasing globally. The rise in built structure coverage is concurrent with losses and degradation of many natural habitats. Although historically associated with net negative impacts on natural systems, built infrastructure—with proper design and innovation—could offer a largely unrealized opportunity to reduce those impacts and support natural habitats. We present nine recommendations that could catalyze momentum toward using built structures to both serve their original function and benefit natural habitats (relative to the status quo, for example). These recommendations integrate functional, economic, and social considerations with marine spatial planning and holistic ecosystem management. As the footprint of the Anthropocene expands into ocean spaces, adopting these nine recommendations at global scales can help to ensure that ecological harm is minimized and that, where feasible, ecological benefits from marine built structures are accrued. Published 2025. This article is a U.S. Government work and is in the public domain in the USA. Frontiers in Ecology and the Environment published by Wiley Periodicals LLC on behalf of The Ecological Society of America.",,,"A.B. Paxton; National Centers for Coastal Ocean Science, National Ocean Service, National Oceanic and Atmospheric Administration, Beaufort, United States; email: avery.paxton@noaa.gov",,John Wiley and Sons Inc,,,,,,15409295,,,,English,Frontiers Ecol. Envir.,Article,Article in press,All Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-105000338567 Divu D.N.; Mojjada S.K.; Sudhakaran P.O.; Sundaram S.L.P.; Menon M.; Mojjada R.K.; Tade M.S.; Vishwambharan V.S.; Shree J.; Subramanian A.; Ignatius B.; Gopalakrishnan A.,"Divu, Damodaran Nair (55841053200); Mojjada, Suresh Kumar (55387142800); Sudhakaran, Pratheesh Omana (45961387600); Sundaram, Swathi Lekshmi Perumal (55521069500); Menon, Muktha (56321637700); Mojjada, Ramesh Kumar (57659137400); Tade, Mayur Shivdas (57219651366); Vishwambharan, Vinuja Syamala (58904498700); Shree, Jai (58700955800); Subramanian, Aarsha (58016995600); Ignatius, Boby (14060182600); Gopalakrishnan, Achamveetil (14119839700)",55841053200; 55387142800; 45961387600; 55521069500; 56321637700; 57659137400; 57219651366; 58904498700; 58700955800; 58016995600; 14060182600; 14119839700,"Economic performance and marine policy implications of mud spiny lobster mariculture in Tropical Sea Cages, North-Eastern Arabian Sea, India: An empirical study in marine economics",2024,Marine Policy,161,,106041,,,,3,10.1016/j.marpol.2024.106041,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85185893405&doi=10.1016%2fj.marpol.2024.106041&partnerID=40&md5=005d0afb5b2a59aca09656198559f0e7,"Mariculture Division, Indian Council of Agricultural Research-Central Marine Fisheries Research Institute (ICAR-CMFRI), Veraval Regional Station, Matsya Bhavan, Bhidia plot, Gujarat, Veraval, 362 269, India; Department of Agricultural Science, Texas State University, San Marcos Campus, 601 University Drive, San Marcos, 78666–4684, TX, United States; Fisheries Resource Assessment, Economics and Extension Division, Indian Council of Agricultural Research-Central Marine Fisheries Research Institute (ICAR-CMFRI), Vizhinjam Regional Centre, P.B. No. 9., Vizhinjam P.O., Kerala, Thiruvananthapuram, 692 521, India; Finfish Fisheries Division, Indian Council of Agricultural Research-Central Marine Fisheries Research Institute (ICAR-CMFRI), Visakhapatnam Regional Centre, Ocean view layout, Pandurangapuram, Andhra Pradesh, Visakhapatnam, 530 003, India; Department of Computer Science, KL University, Greenfields, Vaddeswaram, Guntur, Andhra Pradesh, Vijayawada, 522 302, India; Mariculture Division, Indian Council of Agricultural Research-Central Marine Fisheries Research Institute (ICAR-CMFRI), North P.O Abraham Madamakkal Road, Ernakulam, Ayyappankavu, Kerala, Kochi, 682 018, India","Divu D.N., Mariculture Division, Indian Council of Agricultural Research-Central Marine Fisheries Research Institute (ICAR-CMFRI), Veraval Regional Station, Matsya Bhavan, Bhidia plot, Gujarat, Veraval, 362 269, India; Mojjada S.K., Mariculture Division, Indian Council of Agricultural Research-Central Marine Fisheries Research Institute (ICAR-CMFRI), Veraval Regional Station, Matsya Bhavan, Bhidia plot, Gujarat, Veraval, 362 269, India; Sudhakaran P.O., Department of Agricultural Science, Texas State University, San Marcos Campus, 601 University Drive, San Marcos, 78666–4684, TX, United States; Sundaram S.L.P., Fisheries Resource Assessment, Economics and Extension Division, Indian Council of Agricultural Research-Central Marine Fisheries Research Institute (ICAR-CMFRI), Vizhinjam Regional Centre, P.B. No. 9., Vizhinjam P.O., Kerala, Thiruvananthapuram, 692 521, India; Menon M., Finfish Fisheries Division, Indian Council of Agricultural Research-Central Marine Fisheries Research Institute (ICAR-CMFRI), Visakhapatnam Regional Centre, Ocean view layout, Pandurangapuram, Andhra Pradesh, Visakhapatnam, 530 003, India; Mojjada R.K., Department of Computer Science, KL University, Greenfields, Vaddeswaram, Guntur, Andhra Pradesh, Vijayawada, 522 302, India; Tade M.S., Mariculture Division, Indian Council of Agricultural Research-Central Marine Fisheries Research Institute (ICAR-CMFRI), Veraval Regional Station, Matsya Bhavan, Bhidia plot, Gujarat, Veraval, 362 269, India; Vishwambharan V.S., Fisheries Resource Assessment, Economics and Extension Division, Indian Council of Agricultural Research-Central Marine Fisheries Research Institute (ICAR-CMFRI), Vizhinjam Regional Centre, P.B. No. 9., Vizhinjam P.O., Kerala, Thiruvananthapuram, 692 521, India; Shree J., Mariculture Division, Indian Council of Agricultural Research-Central Marine Fisheries Research Institute (ICAR-CMFRI), Veraval Regional Station, Matsya Bhavan, Bhidia plot, Gujarat, Veraval, 362 269, India; Subramanian A., Mariculture Division, Indian Council of Agricultural Research-Central Marine Fisheries Research Institute (ICAR-CMFRI), Veraval Regional Station, Matsya Bhavan, Bhidia plot, Gujarat, Veraval, 362 269, India; Ignatius B., Mariculture Division, Indian Council of Agricultural Research-Central Marine Fisheries Research Institute (ICAR-CMFRI), North P.O Abraham Madamakkal Road, Ernakulam, Ayyappankavu, Kerala, Kochi, 682 018, India; Gopalakrishnan A., Mariculture Division, Indian Council of Agricultural Research-Central Marine Fisheries Research Institute (ICAR-CMFRI), North P.O Abraham Madamakkal Road, Ernakulam, Ayyappankavu, Kerala, Kochi, 682 018, India","Lobsters are one of the premium ocean resources and a highly sought-after seafood commodity globally. The increasing demand for spiny lobsters in both domestic and international markets has led to a growing interest in mariculture as a means of meeting demand. Capture-based mariculture (CBM) by the coastal communities is the only way to cater the existing demand. However, there is scant published information and continued ambiguity on the viability of spiny lobster aquaculture in the Indian subcontinent and a similar gap exists in countries engaged in lobster fattening. Thus, to bridge the gap between the viability information and CBM stakeholders, we examined the profitability and economic performance of mud spiny lobster, Panulirus polyphagus, production in open sea farming systems, specifically sea cages. Our analysis focused on economic indicators such as input costs and return value. We found that the estimated annual revenue for a single operation was USD $3605.04, with an internal rate of return (IRR) of 33% and a net present value (NPV) of USD $1226.17, demonstrating profitability. Despite this, certain bottlenecks such as limited seedstock and feed availability and cost concerns, disease management issues, regulatory complexities, market demand fluctuations limit the expansion of the industry beyond a certain threshold. This study provides useful information for enterprise building and developing better strategies for building food security and supporting traditional communities-oriented commercial lobster farming in India, and potentially in other lobster farming nations as well. © 2024 Elsevier Ltd",benefit cost ratio (bcr); economic benefits; mariculture; sea cage culture; spiny lobster; sustainability,Arabian Sea; India; Indian Ocean; cage culture; cost-benefit analysis; economic analysis; empirical analysis; lobster culture; mariculture; marine policy; sustainability,"S.K. Mojjada; Indian Council of Agricultural Research-Central Marine Fisheries Research Institute (ICAR-CMFRI), Veraval, Veraval Regional Station, Matsya Bhavan, Bhidia plot, Gujarat, 362 269, India; email: sureshkumar.mjd@gmail.com",,Elsevier Ltd,,,,,,0308597X,,,,English,Mar. Policy,Article,Final,,Scopus,2-s2.0-85185893405 Lester S.E.; Gentry R.R.; Froehlich H.E.,"Lester, Sarah E. (8134852700); Gentry, Rebecca R. (55574287000); Froehlich, Halley E. (55818148100)",8134852700; 55574287000; 55818148100,The role of marine aquaculture in contributing to the diversity and stability of U.S. seafood production,2024,Marine Policy,160,,105994,,,,4,10.1016/j.marpol.2023.105994,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85182410163&doi=10.1016%2fj.marpol.2023.105994&partnerID=40&md5=6a70f35f0c916079c28983688caf6dfe,"Department of Biological Science, Florida State University, Tallahassee, 32306, FL, United States; Department of Geography, Florida State University, Tallahassee, 32306, FL, United States; Department of Ecology, Evolution & Marine Biology and Environmental Studies, University of California, Santa Barbara, 93106, CA, United States","Lester S.E., Department of Biological Science, Florida State University, Tallahassee, 32306, FL, United States, Department of Geography, Florida State University, Tallahassee, 32306, FL, United States; Gentry R.R., Department of Geography, Florida State University, Tallahassee, 32306, FL, United States; Froehlich H.E., Department of Ecology, Evolution & Marine Biology and Environmental Studies, University of California, Santa Barbara, 93106, CA, United States","Seafood systems are likely to face increasing environmental, economic, and political stressors, leading to disruptions to marine ecosystems and to the communities that depend on harvest of marine resources. Drawing from portfolio theory, we suggest that a more diverse industry might be more stable and resilient in the face of these stressors; and one important source of diversification could be from increasing and broadening marine aquaculture production. This is one argument for encouraging development of marine aquaculture within the United States, where the industry currently accounts for < 10% of domestic seafood value. Using regional production data, we explore the evidence that marine aquaculture development helps diversify the seafood system in the United States and make it less vulnerable to outside stressors, while also highlighting data limitations that hinder a more rigorous analysis. Our results suggest that a seafood strategy that focuses on diversity – both within marine aquaculture and by increasing the sector's contribution to U.S. seafood production – may help achieve a more stable and resilient national seafood industry. © 2023 Elsevier Ltd",aquaculture; diversity; fisheries; portfolio effect; seafood; stability,United States; aquaculture; biodiversity; fishery management; food product; seafood,"S.E. Lester; Department of Biological Science, Florida State University, Tallahassee, 319 Stadium Drive, 32306-4295, United States; email: slester@fsu.edu",,Elsevier Ltd,,,,,,0308597X,,,,English,Mar. Policy,Article,Final,,Scopus,2-s2.0-85182410163 Rifi M.; Basti L.; Rizzo L.; Tanduo V.; Radulovici A.; Jaziri S.; Uysal İ.; Souissi N.; Mekki Z.; Crocetta F.,"Rifi, Mouna (37015727400); Basti, Leila (26424490200); Rizzo, Lucia (56180096900); Tanduo, Valentina (57211005498); Radulovici, Adriana (26533096800); Jaziri, Sabri (57189851169); Uysal, İrfan (57202151556); Souissi, Nihel (58519646500); Mekki, Zeineb (58520239900); Crocetta, Fabio (8593775700)",37015727400; 26424490200; 56180096900; 57211005498; 26533096800; 57189851169; 57202151556; 58519646500; 58520239900; 8593775700,"Tackling bioinvasions in commercially exploitable species through interdisciplinary approaches: A case study on blue crabs in Africa's Mediterranean coast (Bizerte Lagoon, Tunisia)",2023,"Estuarine, Coastal and Shelf Science",291,,108419,,,,8,10.1016/j.ecss.2023.108419,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85166577522&doi=10.1016%2fj.ecss.2023.108419&partnerID=40&md5=522fff209a2ad74d42adec324c1a2c2a,"Laboratoire de Recherche Ecosystèmes et Ressources Aquatiques, National Agronomic Institute of Tunisia, 43 Avenue Charles Nicolle, Tunis, 1082, Tunisia; Méditerranée Action Nature (MAN), 01 Rue Istanbul, Bizerte, 7000, Tunisia; Department of Integrative Agriculture, College of Agriculture and Veterinary Medicine, United Arab Emirates University, Abu Dhabi, United Arab Emirates; Department of Ocean Science, Faculty of Marine Resources and Environment, Tokyo University of Marine Science and Technology, Minato, Tokyo, 108-8477, Japan; Institute of Sciences of Food Production, National Research Council, Via Monteroni, Lecce, I-73025, Italy; Department of Integrative Marine Ecology, Stazione Zoologica Anton Dohrn, Villa Comunale, Napoli, I-80121, Italy; GEO BON, McGill University, 1205 Dr. Penfield Avenue, H3A 1B1 Montréal, Canada; General Directorate of Nature Conservation and National Parks, Ministry of Agriculture and Forestry, Ankara, 06560, Turkey","Rifi M., Laboratoire de Recherche Ecosystèmes et Ressources Aquatiques, National Agronomic Institute of Tunisia, 43 Avenue Charles Nicolle, Tunis, 1082, Tunisia, Méditerranée Action Nature (MAN), 01 Rue Istanbul, Bizerte, 7000, Tunisia; Basti L., Department of Integrative Agriculture, College of Agriculture and Veterinary Medicine, United Arab Emirates University, Abu Dhabi, United Arab Emirates, Department of Ocean Science, Faculty of Marine Resources and Environment, Tokyo University of Marine Science and Technology, Minato, Tokyo, 108-8477, Japan; Rizzo L., Institute of Sciences of Food Production, National Research Council, Via Monteroni, Lecce, I-73025, Italy, Department of Integrative Marine Ecology, Stazione Zoologica Anton Dohrn, Villa Comunale, Napoli, I-80121, Italy; Tanduo V., Department of Integrative Marine Ecology, Stazione Zoologica Anton Dohrn, Villa Comunale, Napoli, I-80121, Italy; Radulovici A., GEO BON, McGill University, 1205 Dr. Penfield Avenue, H3A 1B1 Montréal, Canada; Jaziri S., Méditerranée Action Nature (MAN), 01 Rue Istanbul, Bizerte, 7000, Tunisia; Uysal İ., General Directorate of Nature Conservation and National Parks, Ministry of Agriculture and Forestry, Ankara, 06560, Turkey; Souissi N., Laboratoire de Recherche Ecosystèmes et Ressources Aquatiques, National Agronomic Institute of Tunisia, 43 Avenue Charles Nicolle, Tunis, 1082, Tunisia, Méditerranée Action Nature (MAN), 01 Rue Istanbul, Bizerte, 7000, Tunisia; Mekki Z., Laboratoire de Recherche Ecosystèmes et Ressources Aquatiques, National Agronomic Institute of Tunisia, 43 Avenue Charles Nicolle, Tunis, 1082, Tunisia, Méditerranée Action Nature (MAN), 01 Rue Istanbul, Bizerte, 7000, Tunisia; Crocetta F., Department of Integrative Marine Ecology, Stazione Zoologica Anton Dohrn, Villa Comunale, Napoli, I-80121, Italy","The Mediterranean Sea is a well-known bioinvasion hotspot, with an increasing number of non-indigenous species spreading and becoming established. Among them, the blue crabs Callinectes sapidus and Portunus pelagicus have recently called the attention due to their notable ecosystem impacts but also potential economic importance. We hereby first tackled these species through interdisciplinary approaches along the Africa's Mediterranean coast (Bizerte Lagoon, Tunisia). Molecular analyses assigned C. sapidus specimens to the Lineage 1 sensu Windsor et al. (2019), while revealed uncertainties, mismatches, and low genetic distances within the P. pelagicus species complex, suggesting that multilocus or complete mitogenomes approaches are still needed to shed light on the taxonomy and distribution of these species worldwide. Replies to questionnaires and participatory monitoring confirmed the scattered literature data available and revealed that both species have already colonized the Bizerte Lagoon and showed similar distributions, although P. segnis is more abundant and is presumably sustained by the presence of nursery grounds. Awareness campaigns strongly contributed improving the level of engagement of the local community, with low catch discards and crab taste ranked as “good” to “excellent” mostly during the second phase of the project. Crab abundances significantly affected the general perception of the fishermen in considering these species as new promising fishing targets, although educational background also played a major role among the other investigated variables. As the Bizerte Lagoon hosts a wide and native biological diversity that historically sustained local communities through small scale fishery activities and aquaculture, ecosystem-based management strategies are urged ahead of the proliferation of alien species. © 2023 Elsevier Ltd",citizen science; coastal ecosystems; invasive decapods; molecular taxonomy; non-indigenous species (nis); participatory approach,Bizerte; Bizerte Lagoon; Mediterranean Sea; Tunisia; biological invasion; coastal zone; commercial species; crab; geographical distribution; interdisciplinary approach; invasive species; nursery ground; participatory approach; taxonomy,"M. Rifi; Laboratoire de Recherche Ecosystèmes et Ressources Aquatiques, National Agronomic Institute of Tunisia, Tunis, 43 Avenue Charles Nicolle, 1082, Tunisia; email: mouna.rifi@inat.ucar.tn; F. Crocetta; Department of Integrative Marine Ecology, Stazione Zoologica Anton Dohrn, Napoli, Villa Comunale, I-80121, Italy; email: fabio.crocetta@szn.it",,Academic Press,,,,,,02727714,,ECSSD,,English,Estuar. Coast. Shelf Sci.,Article,Final,,Scopus,2-s2.0-85166577522 Cramer L.A.; Beaullieu J.; Doyle J.; Maldonado M.; Egna H.; Johnson M.; Conway F.D.L.,"Cramer, Lori A. (8537100100); Beaullieu, Jennifer (58546174100); Doyle, Jamie (57222208526); Maldonado, Marta (35146354500); Egna, Hillary (6507631239); Johnson, Maria (57194902556); Conway, Flaxen D.L. (7004103331)",8537100100; 58546174100; 57222208526; 35146354500; 6507631239; 57194902556; 7004103331,The importance of the seafood processing sector to coastal community resilience,2023,Marine Policy,156,,105797,,,,9,10.1016/j.marpol.2023.105797,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85168586123&doi=10.1016%2fj.marpol.2023.105797&partnerID=40&md5=39219c0122049fce9c978fd734a34ec0,"School of Public Policy, Oregon State University, United States; Marine Resource Management, Oregon State University, United States; Oregon Sea Grant, Oregon State University, United States; School of Language, Culture, and Society, Oregon State University, United States; Fisheries, Wildlife, and Conservation Sciences, Oregon State University, United States","Cramer L.A., School of Public Policy, Oregon State University, United States; Beaullieu J., Marine Resource Management, Oregon State University, United States; Doyle J., Oregon Sea Grant, Oregon State University, United States; Maldonado M., School of Language, Culture, and Society, Oregon State University, United States; Egna H., Fisheries, Wildlife, and Conservation Sciences, Oregon State University, United States; Johnson M., School of Language, Culture, and Society, Oregon State University, United States; Conway F.D.L., Marine Resource Management, Oregon State University, United States","Coastal communities face a myriad of social, economic, and ecological facets that affect their well-being and resilience capacity. For those places dependent on commercial fishing, resilience includes the processing sector of the seafood industry. Yet, there is a dearth of knowledge and understanding of the contribution of the seafood processing workforce to coastal community resilience. This study incorporates secondary data and collects new data through semi-structured interviews. The first set of interviews were collected with sector workers and leaders, and with coastal community leaders, in two Oregon counties. To supplement this data, interviews were conducted with knowledgeable sector contacts in New England and Norway. All interviews were conducted to contextualize perceptions of the seafood processing sector and resiliency within coastal communities. Analyses revealed three overarching themes related to the importance of the product, the work and workforce, and the seafood processing sector to the community. Results and discussion elaborate on the symbiotic connections between policy, management, and socio-cultural dependence of seafood processing to coastal community resilience. © 2023",aquaculture; commercial fishing community; community resilience; seafood processing,New England; Norway; Oregon; United States; aquaculture; fishing community; food industry; food processing; seafood,"L.A. Cramer; School of Public Policy, Oregon State University, United States; email: cramerl@oregonstate.edu",,Elsevier Ltd,,,,,,0308597X,,,,English,Mar. Policy,Article,Final,All Open Access; Bronze Open Access,Scopus,2-s2.0-85168586123 Carrasco-Bahamonde D.; Casellas A.; Araos F.,"Carrasco-Bahamonde, Daniel (57415631400); Casellas, Antònia (14059502600); Araos, Francisco (55962944800)",57415631400; 14059502600; 55962944800,Getting our sea back: Indigenous governance and biocultural conservation of coastal and marine commons,2025,Marine Policy,178,,106705,,,,0,10.1016/j.marpol.2025.106705,https://www.scopus.com/inward/record.uri?eid=2-s2.0-105002035959&doi=10.1016%2fj.marpol.2025.106705&partnerID=40&md5=43042ccc07780623102fd804936a8e57,"Geography Department, Universitat Autònoma de Barcelona, Spain; Anthropology Department, Universidad de Chile, Chile","Carrasco-Bahamonde D., Geography Department, Universitat Autònoma de Barcelona, Spain; Casellas A., Geography Department, Universitat Autònoma de Barcelona, Spain; Araos F., Anthropology Department, Universidad de Chile, Chile","The Indigenous management of the commons has been the subject of considerable interest by the scientific community in recent decades. One area of growing interest is the study of how these groups organise and act to confront external development initiatives that threaten their livelihoods and the ecosystems that sustain them. This article examines the challenges and opportunities created by a law in Chile that establishes Indigenous Marine Areas, which allows Indigenous peoples to manage marine and coastal areas to protect their customary uses. Integrating insights from critical geography and political ecology on commons governance, Indigenous resurgence, and local social-ecological well-being, this study aims to advance understanding of how Indigenous peoples respond to the socio-ecological impacts of aquaculture in southern Chile under the new law. The analysis focuses on the changes in the access and use of coastal marine space and resources. The findings illustrate that establishing these Indigenous Marine Areas fosters alternative models of territorial development and marine conservation, thereby contributing to local socio-ecological well-being. Despite the socio-territorial intricacy of these processes and the opposition from global industries such as salmon aquaculture, the study concluded that the law has the potential to significantly broaden the range of actors, knowledge, and practices involved in the governance of coastal and marine commons, thereby promoting equity in access to and management of marine spaces and resources. © 2025 Elsevier Ltd",aquaculture; blue justice; chile; chiloé archipelago; coastal governance; ecmpo; indigenous resurgence; marine conservation,Chile; aquaculture; conservation management; ecological impact; livelihood; marine resource,"D. Carrasco-Bahamonde; Geography Department, Universitat Autònoma de Barcelona, Spain; email: Daniel.CarrascoB@autonoma.cat",,Elsevier Ltd,,,,,,0308597X,,,,English,Mar. Policy,Article,Final,,Scopus,2-s2.0-105002035959 Syarif E.; Marlina; Saputro A.,"Syarif, Erman (57202054757); Marlina (57220034777); Saputro, Alief (58250546800)",57202054757; 57220034777; 58250546800,Environmental Friendship Levels of Bajo Fishers to Build a Blue Economy in Achieving the 2030 SDGs,2024,EnvironmentAsia,17,2,,38,49,11,0,10.14456/ea.2024.19,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85195108908&doi=10.14456%2fea.2024.19&partnerID=40&md5=7677af3b9d853aeeb11bad78956c3162,"Department of Geography, Faculty of Mathematics and Science, Universitas Negeri Makassar, Makassar, Indonesia","Syarif E., Department of Geography, Faculty of Mathematics and Science, Universitas Negeri Makassar, Makassar, Indonesia; Marlina, Department of Geography, Faculty of Mathematics and Science, Universitas Negeri Makassar, Makassar, Indonesia; Saputro A., Department of Geography, Faculty of Mathematics and Science, Universitas Negeri Makassar, Makassar, Indonesia","Marine ecosystems, essential for human survival, are under threat from overfishing and environmental degradation. Indonesia’s fishing industry is a significant contributor to the national economy. To address these challenges, the Coral Triangle region, including Indonesia, is striving for marine conservation through Marine Protected Areas. Striking a balance between environmental sustainability and economic growth is vital, and this is being achieved through Blue Economy policies and the adoption of eco-friendly fishing technology. The Bajo tribe, renowned for their maritime culture, plays a crucial role in managing marine resources. This study focuses on evaluating the effectiveness of fishing gear used by the Bajo community in Wakatobi, Indonesia, with a specific emphasis on achieving Sustainable Development Goals. The research employed quantitative and qualitative methods, gathering primary data through interviews, observations, and focus groups, as well as secondary data from government sources. A SWOT analysis was utilized to assess the strengths, weaknesses, opportunities, and threats within the Blue Economy sector. The results revealed that the Bajo community’s involvement in resource management is demonstrated by their careful use of eco-friendly fishing gear, which effectively protects the sea and enhances the welfare of Bajo fishermen. Additionally, their partnership with the Forestry Police aids in marine monitoring and fishing operations, contributing to the sustainability of Wakatobi National Park. The Bajo Mola community, deeply reliant on the sea, holds a unique position among sea nomadic tribes, and their maritime culture is intertwined with marine resources. The development of a Blue Economy policy is crucial for both environmental preservation and economic sustainability, with a focus on maximizing strengths and opportunities identified through the SWOT analysis. This approach aligns with the United Nations’ Sustainable Development Goal 14, which emphasizes the conservation and sustainable use of marine resources. © 2024, Thai Society of Higher Eduation Institutes on Environment. All rights reserved.",blue economy; eco-friendly fishing gear (effg); sustainability,Coral Triangle; Indonesia; Pacific Ocean; aquaculture; environmental degradation; marine ecosystem; marine park; overfishing; protected area; Sustainable Development Goal; United Nations,"E. Syarif; Department of Geography, Faculty of Mathematics and Science, Universitas Negeri Makassar, Makassar, Indonesia; email: ermansyarif@unm.ac.id",,Thai Society of Higher Eduation Institutes on Environment,,,,,,19061714,,,,English,EnvironmentAsia,Article,Final,,Scopus,2-s2.0-85195108908 Wang W.; Zhai D.; Li X.; Fang H.; Yang Y.,"Wang, Weiye (57193757965); Zhai, Daye (58138391300); Li, Xinyang (58719150700); Fang, Haowen (58718004200); Yang, Yuanyuan (56496105600)",57193757965; 58138391300; 58719150700; 58718004200; 56496105600,Conflicts in mangrove protected areas through the actor-centred power framework - Insights from China,2024,Forest Policy and Economics,158,,103122,,,,11,10.1016/j.forpol.2023.103122,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85177784849&doi=10.1016%2fj.forpol.2023.103122&partnerID=40&md5=72f37961ba6b16ff9b2be2d29ce0b91b,"School of Agricultural Economics and Rural Development, Renmin University of China, Beijing, 100872, China; School of Public Administration and Policy, Renmin University of China, Beijing, 100872, China","Wang W., School of Agricultural Economics and Rural Development, Renmin University of China, Beijing, 100872, China; Zhai D., School of Agricultural Economics and Rural Development, Renmin University of China, Beijing, 100872, China; Li X., School of Agricultural Economics and Rural Development, Renmin University of China, Beijing, 100872, China; Fang H., School of Agricultural Economics and Rural Development, Renmin University of China, Beijing, 100872, China; Yang Y., School of Public Administration and Policy, Renmin University of China, Beijing, 100872, China","Mangroves as a critical ecosystem in tropical and subtropical intertidal zones are undergoing accelerated degradation. Efforts to establish protected areas have been credited as a plausible way to protect mangroves. However, the rapid expansion of protected areas has severely eroded communities' livelihoods and power balance with local authorities, creating tensions between mangrove conservation and local aquaculture development. Based on the actor-centered power framework, we analyzed local residents' reactions and resistance to the highly politicized policies in the K Mangrove National Nature Reserve in China. By revealing power dynamics hidden in multi-actor conflicts under an authoritarian regime, our research sheds new light on how conflicts arise and escalate through the strategic use of power resources and imbalanced power configuration during structural change and policy implementation. Power relations between groups of actors are reshaped from tacit complicity to opposition between the policy coalition and the interest expression coalition. The deprivation by local authorities of community-owned soft power resources significantly exacerbates the power asymmetry between coalitions and triggers the adoption of stronger power strategies by the community and the escalation of resistance intensity. Our research has important implications for better conflict management and coastal resource management under authoritarianism. © 2023 Elsevier B.V.",actor-centered power; aquaculture; conflict escalation; mangroves; power asymmetry; power dynamics,Conservation; Mangrove; Power; Research; Resistance; Resource Management; Resources; Tropics; Conservation; Environmental protection; Tropics; Actor-centered power; Conflict escalation; Local authorities; Mangrove; Power; Power asymmetry; Power dynamics; Power resources; Protected areas; Aquaculture,"Y. Yang; School of Public Administration and Policy, Renmin University of China, Beijing, 100872, China; email: yangyuanyuan@ruc.edu.cn",,Elsevier B.V.,,,,,,13899341,,FPEOA,,English,For. Policy Econ.,Article,Final,,Scopus,2-s2.0-85177784849 Olowe O.S.; Jacinto H.S.; Limbago J.S.; Folorunso E.A.; Sarfo I.; Brown C.,"Olowe, Olumide Samuel (57222028080); Jacinto, Harliqueen S. (58634108800); Limbago, Jomel S. (57220119024); Folorunso, Ewumi Azeez (57219129844); Sarfo, Isaac (57213592089); Brown, Christopher (57201579578)",57222028080; 58634108800; 57220119024; 57219129844; 57213592089; 57201579578,Assessing Social Vulnerability to Climate Change in a Fishery-Dependent Village in South Central Vietnam,2023,Environment and Natural Resources Journal,21,5,,390,401,11,0,10.32526/ennrj/21/20230027,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85173443185&doi=10.32526%2fennrj%2f21%2f20230027&partnerID=40&md5=0375ec94dd1bfe3628ef4c8043986750,"Graduate School of World Fisheries University, Pukyong National University, Busan, South Korea; Fisheries and Aquatic Sciences Department, Cavite State University Naic, Bucana Malaki, Naic, Cavite, Philippines; Faculty of Fisheries and Protection of Waters, South Bohemian Research Center of Aquaculture and Biodiversity of Hydrocenoses, Institute of Aquaculture and Protection of Waters, University of South Bohemia in Ceske Budejovice, České Budějovice, 370 05, Czech Republic; Research Institute for History of Science and Technology, Nanjing University of Information Science and Technology, Jiangsu, Nanjing, 210044, China","Olowe O.S., Graduate School of World Fisheries University, Pukyong National University, Busan, South Korea; Jacinto H.S., Fisheries and Aquatic Sciences Department, Cavite State University Naic, Bucana Malaki, Naic, Cavite, Philippines; Limbago J.S., Fisheries and Aquatic Sciences Department, Cavite State University Naic, Bucana Malaki, Naic, Cavite, Philippines; Folorunso E.A., Faculty of Fisheries and Protection of Waters, South Bohemian Research Center of Aquaculture and Biodiversity of Hydrocenoses, Institute of Aquaculture and Protection of Waters, University of South Bohemia in Ceske Budejovice, České Budějovice, 370 05, Czech Republic; Sarfo I., Research Institute for History of Science and Technology, Nanjing University of Information Science and Technology, Jiangsu, Nanjing, 210044, China; Brown C., Graduate School of World Fisheries University, Pukyong National University, Busan, South Korea","Fishery-dependent communities are highly susceptible to the impacts of climate change due to their proximity to vulnerable coastal areas and reliance on ecosystem services for their livelihoods. The study assessed the effects of climate change on the socioeconomic livelihoods and adaptive capacity of Xuan Tu, a community located in South Central Vietnam. The assessment employed the social vulnerability index (SVI) and adaptive capacity index (ACI). A hybrid data collection approach was utilized to gather information from households, and a composite method was employed to aggregate the data, enabling an assessment of community vulnerability. The findings indicated exposure, sensitivity, and adaptive capacity index values of 0.16, 0.34, and 0.26, respectively. The community exhibited a moderate vulnerability to climate change, with a social vulnerability index of 0.43. Notably, economic sufficiency, access to social groups, and level of education emerged as significant factors in reducing social vulnerability. To adapt to climate change, the community modified their fish feeding practices, fish culture methods, increased technology usage, and diversified their sources of income. However, the study identified a lack of institutional support as a significant obstacle to the community's autonomous adaptation. Based on these results, the study recommends livelihood diversification and the implementation of planned adaptation strategies to enhance preparedness for climate emergencies in South Central Vietnam. © 2023, Faculty of Environment and Resource Studies,Mahidol University. All rights reserved.",aquaculture; climate change; fisheries; resources-dependent livelihoods; social vulnerability; vietnam,Viet Nam; adaptation; adaptive management; aquaculture; climate change; fishing community; livelihood; vulnerability,"H.S. Jacinto; Fisheries and Aquatic Sciences Department, Cavite State University Naic, Cavite, Bucana Malaki, Naic, Philippines; email: harliqueen.jacinto@cvsu-naic.edu.ph",,"Faculty of Environment and Resource Studies,Mahidol University",,,,,,16865456,,,,English,Environm. Nat. Resour. J.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85173443185 Bhargavi K.S.S.; Kumaran M.; Ravisankar T.; Kumar J.A.; Kumar T.S.; Muralidhar M.; Elakkiya N.; S A.P.,"Bhargavi, K. Sai Susmitha (58045493300); Kumaran, M. (57207612975); Ravisankar, T. (6507370305); Kumar, J Ashok (57206811041); Kumar, T. Sathish (57057750800); Muralidhar, M. (36145078000); Elakkiya, N. (59203700200); S, Ananthan P (59410215100)",58045493300; 57207612975; 6507370305; 57206811041; 57057750800; 36145078000; 59203700200; 59410215100,Is the price volatility risk in shrimp farming manageable and can profitability be sustained?,2025,Aquaculture International,33,1,57,,,,0,10.1007/s10499-024-01684-0,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85209104989&doi=10.1007%2fs10499-024-01684-0&partnerID=40&md5=81a2315efdc15d4c1c9e6b8dd2174e62,"ICAR-Central Institute of Brackishwater Aquaculture, Chennai, India; ICAR-CIFE, Mumbai, India","Bhargavi K.S.S., ICAR-CIFE, Mumbai, India; Kumaran M., ICAR-Central Institute of Brackishwater Aquaculture, Chennai, India; Ravisankar T., ICAR-Central Institute of Brackishwater Aquaculture, Chennai, India; Kumar J.A., ICAR-Central Institute of Brackishwater Aquaculture, Chennai, India; Kumar T.S., ICAR-Central Institute of Brackishwater Aquaculture, Chennai, India; Muralidhar M., ICAR-Central Institute of Brackishwater Aquaculture, Chennai, India; Elakkiya N.; S A.P., ICAR-CIFE, Mumbai, India","Shrimp price volatility vis-a-vis increased production costs puts the shrimp farmers in debt, reduces further investments, and threatens the sustainability of shrimp farming. The cost and price analysis using the time series data drawn from primary and secondary sources substantiated that the production cost per kg of shrimp has increased gradually whereas the corresponding prices reveal a declining trend across the years. Further analyses indicated that shrimp price instability was higher for the largely supplied 21–30 g shrimp size vis-a-vis small- (15–20 g) and large-sized shrimps (> 30 g) over a period of time. Moreover, price trend scrutiny revealed that the price of small- and large-sized shrimps were higher in January, February, September and November months across the years. Likewise, higher price trends were observed in winter, spring, and monsoon seasons, whereas in summer, the price tended to decline. The ARIMA model fitted to predict the shrimp prices for the immediate future, forecasted an increasing price trend for 15 to 20 g size shrimps. Therefore, market based farming with phase-wise stocking of ponds with the adoption of on-farm nursery that would supply quality seed for a scattered stocking and produce different sized shrimps meeting the market demand is the prudent strategy to minimize the price risk. Similarly, partial harvesting of shrimps at 15 g size and its sale in the domestic markets could secure the investments made and continuing the crop for large size shrimps for the niche market would minimize the price risk and sustain the profitability. Further, insurance cover for shrimp price volatility and social capital development in the form of fish farmer producer organizations for collectively procuring inputs and sale of shrimps are suggested as strategies towards reducing the price risk and sustain the profitability of shrimp farming in India. © The Author(s), under exclusive licence to Springer Nature Switzerland AG 2024.",costs and price analysis; forecasting; price volatility; risk and profitability; shrimp farming; trend analysis,India; cost analysis; farmers knowledge; fishery management; forecasting method; price dynamics; profitability; qualitative analysis; risk assessment; shrimp culture; stock assessment; strategic approach; trend analysis,"M. Kumaran; ICAR-Central Institute of Brackishwater Aquaculture, Chennai, India; email: mariappankumaran@gmail.com",,Springer Science and Business Media Deutschland GmbH,,,,,,09676120,,,,English,Aquac. Int.,Article,Final,,Scopus,2-s2.0-85209104989 Zhu Z.; Tan J.; Abakari G.; Hu X.; Tan H.; Liu W.; Luo G.,"Zhu, Ze (57219218856); Tan, Jinghong (57211506158); Abakari, Godwin (57203532126); Hu, Xin (57320908000); Tan, Hongxin (15763707600); Liu, Wenchang (55961672400); Luo, Guozhi (26667015700)",57219218856; 57211506158; 57203532126; 57320908000; 15763707600; 55961672400; 26667015700,Effects of settleable versus unsettled biofloc removal strategy on aquaculture system performance and microbial community,2025,Aquaculture,595,,741553,,,,1,10.1016/j.aquaculture.2024.741553,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85203071424&doi=10.1016%2fj.aquaculture.2024.741553&partnerID=40&md5=e4b7b2a444d70f3308776cc30d6d1c5f,"Shanghai Engineering Research Center of Aquaculture, Shanghai Ocean University, Shanghai, China; Zuckerberg Institute for Water Research, Jacob Blaustein Institutes for Desert Research, Ben Gurion University of the Negev, Midreshet Ben Gurion, 84990, Israel; Shanghai Collaborative Innovation Center for Cultivating Elite Breeds and Green-culture of Aquaculture Animals, Shanghai, China; Biometris, Wageningen University and Research, P.O. Box 16, Wageningen, 6700, AA, Netherlands","Zhu Z., Zuckerberg Institute for Water Research, Jacob Blaustein Institutes for Desert Research, Ben Gurion University of the Negev, Midreshet Ben Gurion, 84990, Israel, Biometris, Wageningen University and Research, P.O. Box 16, Wageningen, 6700, AA, Netherlands; Tan J., Shanghai Engineering Research Center of Aquaculture, Shanghai Ocean University, Shanghai, China; Abakari G., Shanghai Engineering Research Center of Aquaculture, Shanghai Ocean University, Shanghai, China; Hu X., Shanghai Engineering Research Center of Aquaculture, Shanghai Ocean University, Shanghai, China; Tan H., Shanghai Engineering Research Center of Aquaculture, Shanghai Ocean University, Shanghai, China, Shanghai Collaborative Innovation Center for Cultivating Elite Breeds and Green-culture of Aquaculture Animals, Shanghai, China; Liu W., Shanghai Engineering Research Center of Aquaculture, Shanghai Ocean University, Shanghai, China, Shanghai Collaborative Innovation Center for Cultivating Elite Breeds and Green-culture of Aquaculture Animals, Shanghai, China; Luo G., Shanghai Engineering Research Center of Aquaculture, Shanghai Ocean University, Shanghai, China, Shanghai Collaborative Innovation Center for Cultivating Elite Breeds and Green-culture of Aquaculture Animals, Shanghai, China","The management of biofloc quality and quantity is critical in biofloc-based aquaculture systems. This research explores the effects of the selective removal of settleable and unsettled bioflocs on biofloc quality, fish growth, nitrogen transformation and bacterial community dynamics in these systems. Nile tilapia (Oreochromis niloticus) was reared at a density of 2.7 kg/m3 in nine 250-L conical breeding tanks over a 47-day period. Systems where unsettled bioflocs were removed outperformed others, achieving a 26 % higher weight gain in tilapia and maintaining more stable and lower levels of total ammonia (0.45 mg-N/L) and nitrite (0.35 mg-N/L). Additionally, these systems maintained a healthier bacterial environment, evidenced by a 27 % increase in beneficial bacterial populations and a 30 % reduction in harmful bacteria. Conversely, tanks removing settleable bioflocs showed a 19 % higher microbial diversity but experienced fluctuations in nitrogen levels. Notably, the intestinal bacterial community in tilapia from the unsettled biofloc group closely mirrored (87 % similarity) that of their corresponding bioflocs, with significant pathogenic symptoms observed (p < 0.05). These findings suggest the importance of implementing precise biofloc management strategies, highlighting that the selective removal of unsettled bioflocs enhances fish growth and improves overall system health. Future research should explore the mechanistic relationships between settleable and unsettled bioflocs to refine management strategies that bolster sustainability and economic benefits. © 2024",biofloc management strategy; biofloc technology aquaculture system; gut microbiome; microbial community; settleable bioflocs; unsettled bioflocs,ammonia; aquaculture system; bacterium; cichlid; food quality; management practice; microbial community; nitrite; nitrogen; population density,"G. Luo; College of Fisheries and Life Science, Shanghai Ocean University, Shanghai, Hucheng Ring Road 999, 201306, China; email: gzhluo@shou.edu.cn",,Elsevier B.V.,,,,,,00448486,,AQCLA,,English,Aquaculture,Article,Final,,Scopus,2-s2.0-85203071424 Getahun T.B.; Bitew W.T.; Ayele T.G.; Zawka S.D.,"Getahun, Temesgen B. (58260358100); Bitew, Worku T. (37060385200); Ayele, Tsegaye G. (55845472400); Zawka, Simon D. (57200224091)",58260358100; 37060385200; 55845472400; 57200224091,"Optimal effort, fish farming, and marine reserve in fisheries management",2024,Aquaculture and Fisheries,9,6,,975,980,5,3,10.1016/j.aaf.2023.03.001,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85159578187&doi=10.1016%2fj.aaf.2023.03.001&partnerID=40&md5=8b3d79c4b9d18f0f2d3dc348cb61868c,"Department of Mathematics, Arba Minch University, Arba Minch, 4400, Ethiopia; Department of Mathematics, State University of New York, Farmingdale, 11735, NY, United States; Department of Mathematics, Addis Ababa University, Addis Ababa, 1000, Ethiopia","Getahun T.B., Department of Mathematics, Arba Minch University, Arba Minch, 4400, Ethiopia; Bitew W.T., Department of Mathematics, State University of New York, Farmingdale, 11735, NY, United States; Ayele T.G., Department of Mathematics, Addis Ababa University, Addis Ababa, 1000, Ethiopia; Zawka S.D., Department of Mathematics, Arba Minch University, Arba Minch, 4400, Ethiopia","In this paper, we develop a bioeconomic model to determine an optimal wild catch harvest and freshwater commercial aquaculture production in a lake that uses cages or floating rafts. Although off-bottom aquaculture activities have less impact on the environment compared to on-bottom aquaculture, it has negative externalities. It takes away the fishing area and hence creates pressure in the open-access fishing ground. It also changes the nutrient and ecological composition of the environment. We recommend the implementation of a reserved area to minimize the impact of fishing and aquaculture activities. The reserve also helps in improving the habitat and restocking the fish population which is declining rapidly. We determine the optimal sizes of the aquaculture and reserve and the optimal effort level that maximizes social welfare. We illustrate our findings using numerical simulations and perform an analysis of the optimal solutions with respect to biological and economic parameters involved in the model. © 2023 Shanghai Ocean University.",aquaculture; growth rate; marine reserve; optimal effort,,"W.T. Bitew; Department of Mathematics, State University of New York, Farmingdale, 11735, United States; email: biteww@farmingdale.edu; T.B. Getahun; Department of Mathematics, Arba Minch University, Arba Minch, 4400, Ethiopia; email: temesgen.berhanu@amu.edu.et",,KeAi Communications Co.,,,,,,20961758,,,,English,Aquac. Fish.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85159578187 Fiorella K.J.; Magnuson H.; Stable A.F.; Sim C.; Phan V.; Fox E.L.,"Fiorella, Kathryn J. (35368559500); Magnuson, Heather (56585743100); Stable, Antara Finney (58750300700); Sim, Chork (58749853100); Phan, Voleak (58750300800); Fox, Elizabeth L. (57075787500)",35368559500; 56585743100; 58750300700; 58749853100; 58750300800; 57075787500,Environmental change and resource access in aquatic food systems: a Photovoice case study of Cambodian fisheries,2023,Ecology and Society,28,4,25,,,,1,10.5751/ES-14273-280425,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85178922998&doi=10.5751%2fES-14273-280425&partnerID=40&md5=be9ceb2fbcaf1b9b6d134373c5366a93,"Department of Public and Ecosystem Health, Cornell University, United States; College of Veterinary Medicine, Cornell University, United States; School of Veterinary Medicine, University of Pennsylvania, United States; Independent Scholar, United States; Beloit College, United States","Fiorella K.J., Department of Public and Ecosystem Health, Cornell University, United States; Magnuson H., College of Veterinary Medicine, Cornell University, United States; Stable A.F., School of Veterinary Medicine, University of Pennsylvania, United States; Sim C., Independent Scholar, United States; Phan V., Beloit College, United States; Fox E.L., Department of Public and Ecosystem Health, Cornell University, United States","Ecosystem services and the biodiversity that supports them directly provision food and livelihoods to millions around the world within environments increasingly facing multifaceted changes. Yet the perspectives of resource users on the value of those resources and the challenges they face amid social-ecological change are still too often poorly understood. In this study, we use Photovoice methodology and a social-ecological systems perspective to understand the value of access to fish resources and the impacts of changing access for small-scale fishing communities in Cambodia. Contrasting the perspectives of households in different ecological settings, including adjacent to the Tonle Sap Lake and within its floodplain, revealed stark differences in the experiences of regulation enforcement and fisheries management for communities that had viable alternatives to fishing compared to those without options beyond fishing. The study addresses the need to understand both the lived experiences of those on the frontlines of environmental changes, and to disentangle the heterogeneous experiences across and within communities to improve resource management and community support in complex, changing social-ecological systems. © 2023, Resilience Alliance. All rights reserved.",coupled human natural systems; fish decline; human well-being; participatory approach; social-ecological systems,Cambodia; aquaculture; aquatic ecosystem; ecosystem service; environmental change; fishery management; food provisioning; livelihood; resource management,,,Resilience Alliance,,,,,,17083087,,,,English,Ecol. Soc.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85178922998 Samaddar A.; Kacha D.; Kaviraj A.; Freed S.; Padiyar A.P.; Das S.; Saha S.,"Samaddar, Ayan (56589878200); Kacha, Dani (57191472516); Kaviraj, Anilava (7003280599); Freed, Sarah (57217783490); Padiyar, Arun Panemangalore (36574123300); Das, Sambhu (57198673940); Saha, Subrata (55751743561)",56589878200; 57191472516; 7003280599; 57217783490; 36574123300; 57198673940; 55751743561,"A novel strategy to optimize resources to boost production in rice-fish coculture at Ziro Valley, India",2025,Aquaculture Reports,41,,102679,,,,0,10.1016/j.aqrep.2025.102679,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85218091616&doi=10.1016%2fj.aqrep.2025.102679&partnerID=40&md5=23b71848dc59d6e03ef8f5cf60f505d9,"WorldFish-Odisha Program Office, Plot No. A15, Sharma Street, Unit 7, Surya Nagar, Odisha State, Bhubaneswar, 751025, India; Department of Economics, Government College Yachuli, Arunachal Pradesh, India; Department of Zoology, University of Kalyani, West Bengal, Kalyani, 741235, India; International Center for Tropical Agriculture (CIAT), Kenya; Future Institute of Technology, 240 Boral Main Road, Garia, West Bengal, Kolkata, 154, India; Department of Basic Sciences and Humanities, University of Engineering and Management, Action Area III, B/5, Newtown, Kolkata, 700160, India","Samaddar A., WorldFish-Odisha Program Office, Plot No. A15, Sharma Street, Unit 7, Surya Nagar, Odisha State, Bhubaneswar, 751025, India; Kacha D., Department of Economics, Government College Yachuli, Arunachal Pradesh, India; Kaviraj A., Department of Zoology, University of Kalyani, West Bengal, Kalyani, 741235, India; Freed S., International Center for Tropical Agriculture (CIAT), Kenya; Padiyar A.P., WorldFish-Odisha Program Office, Plot No. A15, Sharma Street, Unit 7, Surya Nagar, Odisha State, Bhubaneswar, 751025, India; Das S., Future Institute of Technology, 240 Boral Main Road, Garia, West Bengal, Kolkata, 154, India; Saha S., Department of Basic Sciences and Humanities, University of Engineering and Management, Action Area III, B/5, Newtown, Kolkata, 700160, India","The Apatani community in Arunachal Pradesh, India has long practiced rice-fish coculture, integrating rice cultivation with fish farming to enhance food security and promote environmental sustainability. This traditional method utilizes the region's wet rice terraces, allowing for the simultaneous production of rice and fish, contributing to efficient land and water resource utilization. Despite the organic nature of this practice, challenges such as suboptimal input distribution, inappropriate combinations of rice and fish species, and limited access to training have hindered productivity. The overall average yields of 1389 kg/ha for rice and 209 kg/ha for fish, indicating room for improvement. This study focused on optimizing resource utilization and fund allocation among Apatani farmers in Ziro Valley to address these issues. Data were collected from a random sample of 200 farmers across the valley. Using Cobb-Douglas production functions, researchers estimated rice and fish yields through regression models. Subsequently, a non-linear constrained optimization problem based on the Nash-bargaining framework was solved to assess the effects of optimization on fund allocation for various inputs. The findings revealed that rice and fish yields could potentially exceed 2000 kg/ha and 300 kg/ha, respectively, with proper resource management. Critical factors identified for enhancing productivity included using mixed manure and stocking fingerlings. Moreover, improving farmers’ technical knowledge and skills through institutional support and policy interventions was deemed vital for establishing rice-fish coculture as a sustainable livelihood in Ziro Valley. In conclusion, while the Apatani community's traditional rice-fish coculture system offers a foundation for sustainable agriculture, targeted optimization of resource utilization, combined with enhanced training and institutional support, is essential to realize its full potential in improving productivity and ensuring long-term sustainability. © 2025 The Authors",environmental sustainability; food productivity; nash bargaining; optimization; resource optimization; rice-fish coculture,,"S. Saha; Department of Basic Sciences and Humanities, University of Engineering and Management, Kolkata, Action Area III, B/5, Newtown, 700160, India; email: subrata.scm@gmail.com",,Elsevier B.V.,,,,,,23525134,,,,English,Aquacult. Rep.,Article,Final,,Scopus,2-s2.0-85218091616 Islam M.A.; Kunda M.; Harun-Al-Rashid A.; Sunny A.R.; Mithun M.H.; Sazzad S.A.; Bhuiyan M.K.A.,"Islam, Mohammed Ariful (58590705500); Kunda, Mrityunjoy (23982987700); Harun-Al-Rashid, Ahmed (57200141353); Sunny, Atiqur Rahman (57190220331); Mithun, Mahmudul Hasan (57221853430); Sazzad, Sharif Ahmed (57221851820); Bhuiyan, Md Khurshid Alam (56897161300)",58590705500; 23982987700; 57200141353; 57190220331; 57221853430; 57221851820; 56897161300,Can Climate-Resilient Tilapia Cage Culture Support Sustainable Livelihoods in Flood-Prone Bangladesh?,2025,Water (Switzerland),17,4,585,,,,0,10.3390/w17040585,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85219056226&doi=10.3390%2fw17040585&partnerID=40&md5=5c8a9d75f295622958fc514e4a023869,"Department of Aquatic Resource Management, Sylhet Agricultural University, Sylhet, 3100, Bangladesh; Department of Genetic Engineering and Biotechnology, Shahjalal University of Science and Technology, Sylhet, 3100, Bangladesh; Pathfinder Research and Consultancy Center, 3100, Sylhet, Bangladesh; Bangladesh Fisheries Research Institute, Floodplain Sub-Station, Bogura, Santahar, 5891, Bangladesh; Department of Biology (INMAR), Faculty of Marine and Environmental Sciences, University of Cádiz, Puerto Real Campus, Puerto Real, 11510, Spain","Islam M.A., Department of Aquatic Resource Management, Sylhet Agricultural University, Sylhet, 3100, Bangladesh; Kunda M., Department of Aquatic Resource Management, Sylhet Agricultural University, Sylhet, 3100, Bangladesh; Harun-Al-Rashid A., Department of Aquatic Resource Management, Sylhet Agricultural University, Sylhet, 3100, Bangladesh; Sunny A.R., Department of Genetic Engineering and Biotechnology, Shahjalal University of Science and Technology, Sylhet, 3100, Bangladesh, Pathfinder Research and Consultancy Center, 3100, Sylhet, Bangladesh; Mithun M.H., Bangladesh Fisheries Research Institute, Floodplain Sub-Station, Bogura, Santahar, 5891, Bangladesh; Sazzad S.A., Pathfinder Research and Consultancy Center, 3100, Sylhet, Bangladesh; Bhuiyan M.K.A., Department of Biology (INMAR), Faculty of Marine and Environmental Sciences, University of Cádiz, Puerto Real Campus, Puerto Real, 11510, Spain","The Haor region in northeastern Bangladesh, characterized by seasonal wetlands and a heavy reliance on fisheries, faces significant challenges due to climate change. Erratic rainfall, prolonged flooding, and ecosystem degradation threaten traditional fishing practices and community livelihoods. This study investigates the potential of climate-resilient cage aquaculture as a sustainable, alternative income-generating solution for vulnerable Haor communities. An 80-day experiment was conducted in five villages of Sunamganj district, Sylhet division, Bangladesh, where tilapia (Oreochromis niloticus) fry were reared in climate-resilient floating cages at five stocking densities: T1 (800 fry/m3), T2 (900 fry/m3), T3 (1000 fry/m3), T4 (1100 fry/m3), and T5 (1200 fry/m3). Key environmental parameters, including temperature (28.12–29.55 °C), dissolved oxygen (4.61–6.55 mg/L), pH (7.53–7.72), and ammonia (0.05–0.76 mg/L), remained within optimal ranges across treatments. Growth performance, survival rate, and economic feasibility were evaluated with T5 yielding the highest gross production (51.77 ± 4.80 kg/m3) and net benefits (7500 ± 500 BDT/m3), achieving a benefit–cost ratio of 1:2.86. The survey findings revealed that a majority of fishers (82%) identified tilapia cage culture as a promising alternative livelihood, yet financial constraints and limited access to credit hinder adoption. Despite these socioeconomic challenges, our findings suggest that tilapia cage culture offers a viable income-generating solution, particularly during flood periods. The study highlights floating cage aquaculture as a climate-resilient strategy to mitigate climate impacts, enhance food security, and improve economic resilience in flood-prone and ecologically sensitive regions. © 2025 by the authors.",alternative aquafeeds; climate change; floating cage aquaculture; food security; haor wetlands; oreochromis niloticus; sustainability,Bangladesh; Sunamganj; Sylhet; Climate change; Ecosystems; Elastin; Alternative income generation; Bangladesh; Cage culture; Floating cage aquaculture; Food security; Haor wetland; Income generation; Oreochromis niloticus; Sustainable fishery; Sustainable livelihood; aquaculture; cage culture; climate change; dissolved oxygen; fish; fishery management; flooding; food security; income; livelihood; wetland; Fisheries,"M.A. Islam; Department of Aquatic Resource Management, Sylhet Agricultural University, Sylhet, 3100, Bangladesh; email: arif19df1.sau@gmail.com; M.K.A. Bhuiyan; Department of Biology (INMAR), Faculty of Marine and Environmental Sciences, University of Cádiz, Puerto Real, Puerto Real Campus, 11510, Spain; email: khurshid.bhuiyan@uca.es",,Multidisciplinary Digital Publishing Institute (MDPI),,,,,,20734441,,,,English,Water,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85219056226 Viera-Romero A.M.; Selfa T.L.; Luzadis V.A.; Diemont S.A.W.,"Viera-Romero, Andrea Michelle (58762873300); Selfa, Theresa L. (6507703484); Luzadis, Valerie A. (6507941314); Diemont, Stewart A.W. (8619995900)",58762873300; 6507703484; 6507941314; 8619995900,Ecological modernization in practice: a multiple case study in Ecuador,2025,Environmental Sociology,,,,,,,0,10.1080/23251042.2025.2479052,https://www.scopus.com/inward/record.uri?eid=2-s2.0-105000486332&doi=10.1080%2f23251042.2025.2479052&partnerID=40&md5=2d34bf9288a6454bb65e34587a7a083d,"Facultad de Ciencias Administrativas, Universidad de Guayaquil, Guayaquil, Ecuador; Department of Environmental Studies, SUNY College of Environmental Science and Forestry, Syracuse, NY, United States; Department of Environmental Studies, SUNY College of Environmental Science and Forestry, Syracuse, NY, United States; Department of Environmental Biology, Syracuse, NY, United States","Viera-Romero A.M., Facultad de Ciencias Administrativas, Universidad de Guayaquil, Guayaquil, Ecuador, Department of Environmental Studies, SUNY College of Environmental Science and Forestry, Syracuse, NY, United States; Selfa T.L., Department of Environmental Studies, SUNY College of Environmental Science and Forestry, Syracuse, NY, United States; Luzadis V.A., Department of Environmental Studies, SUNY College of Environmental Science and Forestry, Syracuse, NY, United States; Diemont S.A.W., Department of Environmental Biology, Syracuse, NY, United States","This research examines Ecuador’s efforts to operationalize the concept of Buen Vivir (BV) -which prioritizes harmony with nature, social equity and environmental sustainability- within its industrial development policies, utilizing Ecological Modernization (EM) as the interpretative framework to evaluate these initiatives. The analysis distinguishes between weak and strong EM: weak EM emphasizes technological improvements and eco-efficiency, while strong EM advocates for profound shifts in production practices to achieve long-term sustainability through plural and democratic action. Despite BV’s potential to drive systemic change that redefines development, its principles have not been fully embraced in key economic sectors. Using the EM framework, we analyze the electricity generation, metallic mining, and shrimp aquaculture industries to explore how BV is operationalized. We find that weak EM is prevalent, as hegemonic sustainability frameworks centered on eco-efficiency and cleaner production dominate, often obscuring broader social and environmental concerns and marginalizing less powerful stakeholders. We argue that unless systemic shifts in industry structures and political dynamic occur, guided by strong EM principles, the transformative potential of BV will remain unrealized. © 2025 Informa UK Limited, trading as Taylor & Francis Group.",buen vivir; ecological mangrove restoration; ecuador; stakeholders; sustainability,,"A.M. Viera-Romero; Facultad de Ciencias Administrativas, Universidad de Guayaquil, Guayaquil, Ecuador; email: michelle.vierarom@ug.edu.ec",,Routledge,,,,,,23251042,,,,English,Environ. Soc.,Article,Article in press,,Scopus,2-s2.0-105000486332 Nurhabib A.; Sartimbul A.; Primyastanto M.; Widodo M.S.; Handoko L.T.; Rahayu A.R.; Martudi S.,"Nurhabib, Asro (59307918600); Sartimbul, Aida (15623685600); Primyastanto, Mimit (57191192405); Widodo, Maheno Sri (57190676948); Handoko, Lugu Tri (59307618400); Rahayu, Andra Rejekining (59308377200); Martudi, Suharun (58731443200)",59307918600; 15623685600; 57191192405; 57190676948; 59307618400; 59308377200; 58731443200,"Sustainable Pangasius Aquaculture Management Strategy using Multidimensional Scaling (MDS) and Analytical Hierarchy Process (AHP) in Tulungagung Regency, East Java, Indonesia",2024,Jurnal Ilmiah Perikanan dan Kelautan,16,1,,66,91,25,2,10.20473/jipk.v16i1.49377,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85202742572&doi=10.20473%2fjipk.v16i1.49377&partnerID=40&md5=94173297e2a25c00cb50ef63bd8a7f11,"Faculty of Fisheries and Marine Science, Universitas Brawijaya, East Java, Malang, Indonesia; Aquaculture, Faculty of Agriculture, Prof Dr Hazairin SH University, Bengkulu, Indonesia; Fisheries Agribusiness, Faculty of Fisheries and Marine Science, Universitas Brawijaya, East Java, Malang, Indonesia; Aquaculture, Faculty of Fisheries and Marine Science, Universitas Brawijaya, East Java, Malang, Indonesia; Marine Resources Exploration and Management (MEXMA) Research Group, Universitas Brawijaya, East Java, Malang, Indonesia; Fisheries Agency, Tulungagung Regency Government, Tulungagung, East Java, Indonesia","Nurhabib A., Faculty of Fisheries and Marine Science, Universitas Brawijaya, East Java, Malang, Indonesia, Aquaculture, Faculty of Agriculture, Prof Dr Hazairin SH University, Bengkulu, Indonesia; Sartimbul A., Faculty of Fisheries and Marine Science, Universitas Brawijaya, East Java, Malang, Indonesia, Marine Resources Exploration and Management (MEXMA) Research Group, Universitas Brawijaya, East Java, Malang, Indonesia; Primyastanto M., Fisheries Agribusiness, Faculty of Fisheries and Marine Science, Universitas Brawijaya, East Java, Malang, Indonesia; Widodo M.S., Aquaculture, Faculty of Fisheries and Marine Science, Universitas Brawijaya, East Java, Malang, Indonesia; Handoko L.T., Fisheries Agency, Tulungagung Regency Government, Tulungagung, East Java, Indonesia; Rahayu A.R., Fisheries Agency, Tulungagung Regency Government, Tulungagung, East Java, Indonesia; Martudi S., Aquaculture, Faculty of Agriculture, Prof Dr Hazairin SH University, Bengkulu, Indonesia","Aquaculture activities in Tulungagung Regency provide livelihoods for 12,050 households. Therefore, ensuring the sustainability of Pangasius aquaculture activities is crucial for the welfare of fish farmers. This study aims to analyze the sustainability of existing Pangasius aquaculture businesses in Tulungagung Regency, East Java, Indonesia, and to create a sustainable Pangasius aquaculture policy strategy. This quantitative study used Multi-Dimensional Scaling (MDS) and Analytical Hierarchy Process (AHP) analyses to determine the sustainability status of Pangasius aquaculture based on five dimensions: ecological, economic, social, institutional, and technological infrastructure. Among these dimensions, two are less sustainable, particularly infrastructure technology and the economy. © 2024 Faculty of Fisheries and Marine Universitas Airlangga.",pangasius; rapfish; sustainability; tulungagung,,"A. Sartimbul; Faculty of Fisheries and Marine Science, Universitas Brawijaya, Malang, East Java, Indonesia; email: aida@ub.ac.id",,Faculty of Fisheries and Marine Universitas Airlangga,,,,,,20855842,,,,English,J. Ilm. Perikan. dan. Kelaut.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85202742572 Orina P.S.; Chepkirui M.; Orina T.; Akwany L.; Joseph R.; Matuma M.; Kyule D.; Okechi J.; Munguti J.,"Orina, Paul Sagwe (35784944800); Chepkirui, Mercy (57192210664); Orina, Tonny (58895057300); Akwany, Leonard (57191311890); Joseph, Rasowo (58895496000); Matuma, Mercy (58895938200); Kyule, Domitilah (56188864800); Okechi, John (6506496614); Munguti, Jonathan (9535244900)",35784944800; 57192210664; 58895057300; 57191311890; 58895496000; 58895938200; 56188864800; 6506496614; 9535244900,An overview of the current status of Lake Jipe and its biodiversity dilemma,2024,"Lakes and Reservoirs: Science, Policy and Management for Sustainable Use",29,1,e12450,,,,1,10.1111/lre.12450,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85185499467&doi=10.1111%2flre.12450&partnerID=40&md5=b0e803824e71edfb6e68e9b6122b6c60,"Kegati Aquaculture Centre, Kenya Marine & Fisheries Research Institute (KMFRI), Kisii, Kenya; Department of Agriculture, Natural Resource and Aquatic Sciences, Kisii University, Kisii, Kenya; School of Biological Sciences, Zoology Department, Jomo Kenyatta University of Agriculture and Technology, Nairobi, Kenya; Conservation International, Arlington, VA, United States; Technical University of Mombasa, Mombasa, Kenya; County Government of Taita Taveta, Wundanyi, Kenya; National Aquaculture Research Development & Training Center, Kenya Marine & Fisheries Research Institute, Sagana, Kenya; Kisumu Research Centre, Kenya Marine and Fisheries Research Institute (KMFRI), Kisumu, Kenya; Department of Biology, Boston University, Boston, MA, United States","Orina P.S., Kegati Aquaculture Centre, Kenya Marine & Fisheries Research Institute (KMFRI), Kisii, Kenya; Chepkirui M., Kegati Aquaculture Centre, Kenya Marine & Fisheries Research Institute (KMFRI), Kisii, Kenya, Department of Agriculture, Natural Resource and Aquatic Sciences, Kisii University, Kisii, Kenya; Orina T., School of Biological Sciences, Zoology Department, Jomo Kenyatta University of Agriculture and Technology, Nairobi, Kenya; Akwany L., Conservation International, Arlington, VA, United States; Joseph R., Technical University of Mombasa, Mombasa, Kenya; Matuma M., County Government of Taita Taveta, Wundanyi, Kenya; Kyule D., National Aquaculture Research Development & Training Center, Kenya Marine & Fisheries Research Institute, Sagana, Kenya; Okechi J., Kisumu Research Centre, Kenya Marine and Fisheries Research Institute (KMFRI), Kisumu, Kenya, Department of Biology, Boston University, Boston, MA, United States; Munguti J., National Aquaculture Research Development & Training Center, Kenya Marine & Fisheries Research Institute, Sagana, Kenya","Lake Jipe, is a shared water resource between Kenya and Tanzania located at the East African Coast is under multiple pressures. The present study assessed the current state of Lake Jipe and its biodiversity dilemma. Random sampling was conducted at 14 sampling points set at equidistant parallel to each other. Sampling depths and location coordinates were measured using Solar Transducer and GPSMAPS® 65 s. In situ water quality parameters were measured using YSI Pro Plus multiparameter; water samples for nutrients analysis were collected and preserved in cooler boxes prior transportation to Kenya Marine and Fisheries Research Institute (KMFRI) laboratory for analysis according to ALPHA 2005. Socio-economic data in relation to status of Lake Jipe ecology were generated using Key Informants Interviews at identified beaches along Kenya and Tanzania. Present findings indicated that the lake has receded from the original 108.72 Km2 to 27.32 Km2 with annual temperatures, dissolved oxygen and conductivity of 28.58 ± 0.95, 5.19 ± 00 and 799.24 ± 69.41, respectively, for dry season. Wet season recorded 31.21 ± 0.31, 4.16 ± 0.01 and 882.44 ± 57.41 for temperature, dissolved oxygen and conductivity, respectively. Agricultural activities have significantly (90%) contributed to the lake levels decline and further affected the lakes' aquatic biodiversity. Among the most affected are the commercially important endemic fish species of the lake of which Oreochromis jipe has experienced the greatest decline. Overfishing, use of illegal unreported and unregulated fishing gears, intensified fishing along protected fish breeding areas as well as poor management and uncoordinated conservation efforts have significantly contributed to the decline of fish catches from 348 kg of O. jipe in 2016 to 90 kg daily catches in 2022. Consequently, the lake is in the verge of extinction if no action is taken. This calls for awareness on the significance of the L. Jipe ecosystems and its immediate and long-term benefits. Further, there is need to revive and promote alternative economic activities including sustainable aquaculture and agriculture to local communities. © 2024 John Wiley & Sons Australia, Ltd.",agriculture; biodiversity; conservation; endemic species; fishery,Kenya; Tanzania; biodiversity; catch statistics; endemic species; fishing gear; nature conservation; overfishing; water quality,"P.S. Orina; Kenya Marine & Fisheries Research Institute (KMFRI), Kegati Aquaculture Centre, Kisii, P. O. Box 3259-40200, Kenya; email: paulorina@gmail.com",,John Wiley and Sons Inc,,,,,,13205331,,,,English,Lakes Reserv.Sci. Policy. Manag. Sustain. Use,Article,Final,,Scopus,2-s2.0-85185499467 van Zanten B.; Brander L.M.; Castaneda J.-P.; Herrera D.; Kaczan D.; Brown B.M.; Smith I.A.; Jongman B.,"van Zanten, Boris (56126189700); Brander, Luke McKinnon (12766801200); Castaneda, Juan-Pablo (26435759700); Herrera, Diego (56579891500); Kaczan, David (36657328200); Brown, Benjamin M. (56420364800); Smith, Ian Andrew (57201451278); Jongman, Brenden (55324365800)",56126189700; 12766801200; 26435759700; 56579891500; 36657328200; 56420364800; 57201451278; 55324365800,Integrated spatial cost-benefit analysis of large-scale mangrove conservation and restoration in Indonesia,2025,Frontiers in Environmental Science,13,,1459034,,,,0,10.3389/fenvs.2025.1459034,https://www.scopus.com/inward/record.uri?eid=2-s2.0-105000371152&doi=10.3389%2ffenvs.2025.1459034&partnerID=40&md5=f72990e1c68f5606a7c576d090a0005e,"World Bank, Washington, DC, United States; Institute for Environmental Studies, Vrije Universiteit Amsterdam, Amsterdam, Netherlands; Institute for Earth System Sciences, Leibniz University Hannover, Hannover, Germany; Research Institute of Natural Sciences and Technology, Universidad Rafael Landivar, Guatemala City, Guatemala; School of Business, University of South Australia, Adelaide, SA, Australia; Research Institute for Environment and Livelihoods, Charles Darwin University, Darwin, NT, Australia; Boston University, Boston, MA, United States","van Zanten B., World Bank, Washington, DC, United States; Brander L.M., World Bank, Washington, DC, United States, Institute for Environmental Studies, Vrije Universiteit Amsterdam, Amsterdam, Netherlands, Institute for Earth System Sciences, Leibniz University Hannover, Hannover, Germany; Castaneda J.-P., Research Institute of Natural Sciences and Technology, Universidad Rafael Landivar, Guatemala City, Guatemala; Herrera D., World Bank, Washington, DC, United States; Kaczan D., World Bank, Washington, DC, United States, School of Business, University of South Australia, Adelaide, SA, Australia; Brown B.M., Research Institute for Environment and Livelihoods, Charles Darwin University, Darwin, NT, Australia; Smith I.A., World Bank, Washington, DC, United States, Boston University, Boston, MA, United States; Jongman B., World Bank, Washington, DC, United States","Economic development in Indonesia has resulted in reduced poverty but has also been accompanied by significant pressure on natural capital, including its mangrove forests. In recognition of the role of mangroves in providing coastal protection and the delivery of other ecosystem services, the Government of Indonesia has engaged in several policy actions, among others the use of nature based solutions and has set a target to restore or enhance the protection of 600,000 ha of mangroves by 2025. The objective of the analysis presented in this paper is to inform the design and development of a national-scale mangrove conservation and restoration policy for Indonesia through a spatially explicit cost-benefit analysis. The analytical framework involves the integration of maps, data and models to estimate the costs and benefits of mangrove restoration at a high spatial resolution. On the benefit side, we make use of meta-analytic value transfer methods to value changes in fisheries, raw materials, coastal protection, carbon sequestration and avoided emissions, and mangrove tourism. On the cost side, we assess the opportunity and implementation costs using country specific data. Through a spatial overlay of cost and benefit estimates, cost-benefit indicators are calculated per district for investing in additional mangrove restoration and conservation. Using a discount rate of 5.5% and a 30-year project lifetime, the benefit-cost ratios of mangrove conservation and restoration are found to be >1 in most districts indicating positive social returns on investment. We find that mangrove conservation generally has higher benefit-cost ratios than restoration due to both the higher cost of restoration implementation and the additional time that it takes for restored mangroves to deliver ecosystem services. The spatially explicit framework to estimate district-level costs and benefits reveals tradeoffs with agriculture and aquaculture and enables the evaluation of investment scenarios and the spatial prioritisation of investments in mangrove conservation and restoration across Indonesia. Strategic allocation of conservation and restoration investments across districts can potentially significantly increase the economic viability of this nature-based solution. Copyright © 2025 van Zanten, Brander, Castaneda, Herrera, Kaczan, Brown, Smith and Jongman.",conservation; cost-benefit analysis; mangroves; nature based solutions; restoration,,"L.M. Brander; World Bank, Washington, United States; email: brander@phygeo.uni-hannover.de",,Frontiers Media SA,,,,,,2296665X,,,,English,Front. Environ. Sci.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-105000371152 Junior A.P.B.; Valenti W.C.; Flickinger D.L.; Henry-Silva G.G.,"Junior, Ambrosio Paula Bessa (52163705500); Valenti, Wagner Cotroni (7006227689); Flickinger, Dallas Lee (57210602877); Henry-Silva, Gustavo Gonzaga (6506652395)",52163705500; 7006227689; 57210602877; 6506652395,Sustainability of pacific white shrimp culture strategies during regional outbreak of white spot syndrome virus; [Estratégias de sustentabilidade no cultivo do camarão-branco-do-pacífico durante um surto regional do vírus da síndrome da mancha branca],2024,Boletim do Instituto de Pesca,50,,e873,,,,0,10.20950/1678-2305/bip.2024.50.e873,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85205913070&doi=10.20950%2f1678-2305%2fbip.2024.50.e873&partnerID=40&md5=498ef1c525fe28877bb4dc5b080f3609,"Universidade Federal Rural do Semi-Árido, Laboratório de Limnologia e Qualidade de Água, RN, Mossoró, Brazil; Universidade Estadual Paulista, Centro de Aquicultura, SP, Jaboticabal, Brazil; Lincoln University Missouri, Department of Agriculture and Environmental Sciences, MO, Jefferson City, United States","Junior A.P.B., Universidade Federal Rural do Semi-Árido, Laboratório de Limnologia e Qualidade de Água, RN, Mossoró, Brazil; Valenti W.C., Universidade Estadual Paulista, Centro de Aquicultura, SP, Jaboticabal, Brazil; Flickinger D.L., Lincoln University Missouri, Department of Agriculture and Environmental Sciences, MO, Jefferson City, United States; Henry-Silva G.G., Universidade Federal Rural do Semi-Árido, Laboratório de Limnologia e Qualidade de Água, RN, Mossoró, Brazil","The present study evaluated economic, environmental, and social sustainability of three production strategies of Pacific white shrimp (Litopenaeus vannamei) during a regional outbreak of white spot syndrome virus. The strategies mainly differed by stocking densities (92, 14, 8 larvae·m-2; D92, D14, and D8, respectively), fertilizer inputs, and other general management. Each dimension of sustainability was evaluated using sets of indicators. The D14 and D8 strategies showed greater economic feasibility than D92 because of the reduced operational costs and investments to buy post-larvae and feed. All strategies showed moderate environmental sustainability, but they had weakened economic and social sustainability due to the virus. The D14 (60) and D8 (62) strategies received the highest overall sustainability index. The D92 was the most environmentally favorable management strategy and social trend. In general, shrimp mariculture with a high initial stocking density cannot guarantee the return of the invested capital. The lower density strategies were economically viable due to the high prices paid per kilogram of shrimp due to the higher individual average weight and reduced apparent feed conversion ratio (D14 = 1.44 and D8 = 0.22). However, economic feasibility of these two strategies coincided with low creation of employment opportunities and income, decreased social sustainability, and increased environmental impact. © 2024, Instytut Technologii Drewna. All rights reserved.",indicators of sustainability; ponds; shrimp aquaculture,,"G.G. Henry-Silva; Universidade Federal Rural do Semi-Árido, Laboratório de Limnologia e Qualidade de Água, Mossoró, RN, Brazil; email: gustavo@ufersa.edu.br",,Instytut Technologii Drewna,,,,,,00469939,,,,English,Bol. Insttituto Pesca,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85205913070 Huang Y.; Liu M.; Jiang K.; Zhong C.; Xu K.; Wang B.; Wang L.,"Huang, Yong (59204122100); Liu, Mei (59277843500); Jiang, Keyong (16024550400); Zhong, Chen (59732701800); Xu, Kefeng (55466321000); Wang, Baojie (55562259400); Wang, Lei (57070601000)",59204122100; 59277843500; 16024550400; 59732701800; 55466321000; 55562259400; 57070601000,"The dynamic features and microbial mechanism of nitrogen transformation in small greenhouse farming system of Pacific white shrimp, Litopenaeus vannamei",2025,Aquaculture,605,,742557,,,,0,10.1016/j.aquaculture.2025.742557,https://www.scopus.com/inward/record.uri?eid=2-s2.0-105002408347&doi=10.1016%2fj.aquaculture.2025.742557&partnerID=40&md5=2502b5070abf8dc04d66c6aaef2779a0,"Key Laboratory of Breeding Biotechnology and Sustainable Aquaculture (CAS), Institute of Oceanology, Chinese Academy of Sciences, Qingdao, China; Laboratory for Marine Biology and Biotechnology, Qingdao Marine Science and Technology Center, Qingdao, China; Shandong Province Key Laboratory for Disease Control in Mariculture, Municipal Engineering Research Center of Aquatic Biological Quality Evaluation and Application, Marine Science research Institute of Shandong Province, Qingdao, China; University of Chinese Academy of Sciences, Beijing, China","Huang Y., Key Laboratory of Breeding Biotechnology and Sustainable Aquaculture (CAS), Institute of Oceanology, Chinese Academy of Sciences, Qingdao, China, Laboratory for Marine Biology and Biotechnology, Qingdao Marine Science and Technology Center, Qingdao, China, University of Chinese Academy of Sciences, Beijing, China; Liu M., Shandong Province Key Laboratory for Disease Control in Mariculture, Municipal Engineering Research Center of Aquatic Biological Quality Evaluation and Application, Marine Science research Institute of Shandong Province, Qingdao, China; Jiang K., Key Laboratory of Breeding Biotechnology and Sustainable Aquaculture (CAS), Institute of Oceanology, Chinese Academy of Sciences, Qingdao, China, Laboratory for Marine Biology and Biotechnology, Qingdao Marine Science and Technology Center, Qingdao, China; Zhong C., Shandong Province Key Laboratory for Disease Control in Mariculture, Municipal Engineering Research Center of Aquatic Biological Quality Evaluation and Application, Marine Science research Institute of Shandong Province, Qingdao, China; Xu K., Shandong Province Key Laboratory for Disease Control in Mariculture, Municipal Engineering Research Center of Aquatic Biological Quality Evaluation and Application, Marine Science research Institute of Shandong Province, Qingdao, China; Wang B., Key Laboratory of Breeding Biotechnology and Sustainable Aquaculture (CAS), Institute of Oceanology, Chinese Academy of Sciences, Qingdao, China, Laboratory for Marine Biology and Biotechnology, Qingdao Marine Science and Technology Center, Qingdao, China; Wang L., Key Laboratory of Breeding Biotechnology and Sustainable Aquaculture (CAS), Institute of Oceanology, Chinese Academy of Sciences, Qingdao, China, Laboratory for Marine Biology and Biotechnology, Qingdao Marine Science and Technology Center, Qingdao, China, University of Chinese Academy of Sciences, Beijing, China","The proliferation of small greenhouse farms for Litopenaeus vannamei cultivation in China represents an emerging dominant paradigm in shrimp aquaculture. However, inorganic nitrogen accumulation in water during cultivation significantly impacts yield and economic benefits. In this study, water quality analysis, particle size analysis, quantitative Real time-PCR and metagenomics were employed to investigate the main nitrogen transformations, the characteristics of surface sediment (SS) and suspended particulate matter (SP), the attached microbial communities, and the response characteristics of the main functional genes in the small greenhouse. The results indicated that the changes in inorganic nitrogen concentration in the small greenhouse exhibited phased characteristics. The increase in the abundance of ammonia-oxidizing and nitrite-oxidizing bacteria reduced the ammonia and nitrite concentrations in water to less than 1 mg/L during the turbid-turned stage. During the maturity stage, the abundance of key denitrification functional genes (nirS and nirK) both increased to more than 1 × 108 copies/g, promoting the removal of nitrate from the water. SS and SP were mainly composed of silt and clay, providing abundant ecological niches for nitrifying and denitrifying bacteria. The metagenomic results indicated that Defluviimonas, Rhodohalobacter, Nitrosomonas and Nitrobacter were the main nitrifying and denitrifying functional microorganisms in SS and SP. These findings demonstrated that SS- and SP-mediated nitrification and denitrification processes served as primary mechanisms for inorganic nitrogen transformation and removal in small greenhouse farming systems. This study provided critical insights into microbial nitrogen transformation processes in small greenhouse shrimp aquaculture, establishing a theoretical framework for enhanced water quality management and aquaculture practices. © 2025",denitrification; nitrification; small greenhouse farming system; surface sediment; suspended particulate matter,China; abundance; bacterium; denitrification; farming system; greenhouse ecosystem; inorganic nitrogen; microbial activity; nitrification; shrimp culture; surface structure; suspended particulate matter; water quality,"B. Wang; Institute of Oceanology, Chinese Academy of Sciences, Qingdao, 7 Nanhai Road, 266071, China; email: wangbaojie@qdio.ac.cn",,Elsevier B.V.,,,,,,00448486,,AQCLA,,English,Aquaculture,Article,Final,,Scopus,2-s2.0-105002408347 Abbas H.; Zhao L.; Gong X.; Jiang M.; Faiz T.,"Abbas, Hasnain (57228053400); Zhao, Lindu (7404455064); Gong, Xi (57442473400); Jiang, Mengyin (57669094800); Faiz, Tahira (58551432700)",57228053400; 7404455064; 57442473400; 57669094800; 58551432700,Environmental and economic influences of postharvest losses across the fish-food products supply chain in the developing regions,2024,"Environment, Development and Sustainability",26,11,,28335,28366,31,7,10.1007/s10668-023-03814-9,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85168884917&doi=10.1007%2fs10668-023-03814-9&partnerID=40&md5=f8ee43e26b83e56ed2d79800087785d6,"School of Economics and Management, Southeast University, Nanjing, 210096, China","Abbas H., School of Economics and Management, Southeast University, Nanjing, 210096, China; Zhao L., School of Economics and Management, Southeast University, Nanjing, 210096, China; Gong X., School of Economics and Management, Southeast University, Nanjing, 210096, China; Jiang M., School of Economics and Management, Southeast University, Nanjing, 210096, China; Faiz T., School of Economics and Management, Southeast University, Nanjing, 210096, China","Postharvest and supply chain losses are the main global challenges. The security of future food demand requires certain availability of natural resources and useful application of limited means. This study is based on maximizing the productive use of baren fish farms to meet future food demand. In this work, the simulation optimisation model was used to determine the estimated findings. We developed the life cycle measurement technique to examine the percentage loss occurred during postharvest and supply chain process and the assessment of its economic, environmental and social influences. Results demonstrate the variate average change of postharvest loss and supply chain loss of a farmer, processors, trader, wholesalers and retailers are, respectively, 7.06%, 8.89%, 6.23%, 9.10% and 13.05% regarding sample fish-form as compared to same capacity healthy land fish-form with a productive supply chain operation. The total healthy mud of land and quality water consumed to produce this lost food accumulated 60 thousand hectares and 255 million cubic meters apart from other producing inputs. It is estimated cost $380 million annually 7.8 million tons of growth. The study reveals the significance of better prevention approaches of life cycle waste to reduce the environmental, economic and social impacts. Additionally, it helps to diminish the postharvest loss percentage to decrease the perishability of products throughout the supply chain of aquaculture field and the mechanisms that protect the products until these are sold out to consumers. In order to reduce postharvest losses, the study suggests that farmers be included as supplier actors and measured twice, first at the production stage and then at the supply chain stage. With the use of well-organized techniques, the farmer’s education is a key component in reducing postharvest losses of perishable goods and boosting aquaculture sectors. Therefore, sustainable economic growth requires from farmers to supplier and productive coordination in reducing environmental impacts. This could improve their learning, skills and practices towards sustainable growth achievement in perishable products for meaningful use of natural resources. © The Author(s), under exclusive licence to Springer Nature B.V. 2023.",cold supply chain; economic losses; environmental sustainability; perishable products; postharvest losses; reducing food losses,developing world; economic growth; economic impact; environmental economics; environmental impact; fish; food product; life cycle analysis; natural resource; supply chain management,"H. Abbas; School of Economics and Management, Southeast University, Nanjing, 210096, China; email: hasnainabbas354@yahoo.com",,Springer Science and Business Media B.V.,,,,,,1387585X,,EDSNB,,English,Environ. Dev. Sustainability,Article,Final,,Scopus,2-s2.0-85168884917 Brister E.; Thompson P.B.; Wolf S.M.; Bischof J.C.,"Brister, Evelyn (35279284000); Thompson, Paul B. (7403220130); Wolf, Susan M. (7402621642); Bischof, John C. (15730474500)",35279284000; 7403220130; 7402621642; 15730474500,Advanced cryopreservation as an emergent and convergent technological platform,2024,Technology in Society,79,,102754,,,,1,10.1016/j.techsoc.2024.102754,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85208098516&doi=10.1016%2fj.techsoc.2024.102754&partnerID=40&md5=1a68063df96cf157c408e814cad2da72,"Department of Philosophy, Rochester Institute of Technology, United States; Department of Philosophy, Michigan State University, United States; Law School, Medical School, Consortium on Law and Values in Health, Environment & the Life Sciences, University of Minnesota, United States; Department of Mechanical Engineering, Institute for Engineering in Medicine, University of Minnesota, United States","Brister E., Department of Philosophy, Rochester Institute of Technology, United States; Thompson P.B., Department of Philosophy, Michigan State University, United States; Wolf S.M., Law School, Medical School, Consortium on Law and Values in Health, Environment & the Life Sciences, University of Minnesota, United States; Bischof J.C., Department of Mechanical Engineering, Institute for Engineering in Medicine, University of Minnesota, United States","Advanced cryopreservation technologies have the potential to transform organ transplants, biomedical research, food storage, aquaculture, biodiversity repositories, ecological restoration, and numerous other applications. These surpass the capability of existing cryopreservation technologies to extend the life and viability of biological materials at various scales from cells to tissues, organs, and entire organisms. In this article, we demonstrate why innovations in advanced cryopreservation, which we analyze as emergent, convergent platform technologies, raise novel concerns for research ethics and coordination, governance, and equitable access to benefits. As emerging technologies, they may disrupt markets or destabilize social institutions, including the systems that govern the distribution of organs for transplant. As convergent technologies, their impact will be heightened through interaction with other technologies. The technologies that may intensify the social and ethical effects of advanced cryopreservation include information technologies that permit the administration of complex logistics of storage and transport, biotechnologies for the management of floral and faunal species and populations, and 3D printing technologies that may enable the development and distribution of customizable peripheral components of this platform technology. The speed of development among diverse applications of the core platform is likely to vary between sectors in ways that are responsive to public support as well as to ethical constraints, and advancements in any sector will affect the achievement of reliability for the core technology across sectors. We recommend that societal benefits and risks be assessed both in the specific contexts for which peripheral components are developed and for the core technology. © 2024 Elsevier Ltd",convergent technology; cryopreservation; emerging technology; engineering; ethics; platform technology,Macroinvertebrates; Biomedical research; Convergent technologies; Core technology; Cryo-preservation; Ecological restoration; Emerging technologies; Organ transplants; Peripheral components; Platform technology; Technological platform; biotechnology; cryopreservation; ethics; innovation; operations technology; Biodiversity,"E. Brister; Rochester, 92 Lomb Memorial Dr., 14623, United States; email: elbgsl@rit.edu",,Elsevier Ltd,,,,,,0160791X,,,,English,Technol. Soc.,Article,Final,,Scopus,2-s2.0-85208098516 Arifin T.; Yulius Y.; Ramdhan M.; Johan O.; Gunawan D.P.; Heriati A.; Mustikasari E.; Rahmania R.; Purbani D.; Dillenia I.; Agus S.B.; Asaf R.; Hatta M.; Marzuki I.; Akhwady R.; Sufyan A.; Fihrin H.; Septiningsih E.; Wahyono A.; Athirah A.,"Arifin, T. (57214666568); Yulius, Y. (57209398970); Ramdhan, M. (57191378115); Johan, O. (24481148600); Gunawan, D.P. (58349866400); Heriati, A. (57201781694); Mustikasari, E. (57224831543); Rahmania, R. (57156632300); Purbani, D. (57208152218); Dillenia, I. (57191959551); Agus, S.B. (56728270900); Asaf, R. (57212930341); Hatta, M. (59228653800); Marzuki, I. (57208910665); Akhwady, R. (57200986329); Sufyan, A. (57320956000); Fihrin, H. (57760186500); Septiningsih, E. (57478014600); Wahyono, A. (59182458100); Athirah, A. (57190943621)",57214666568; 57209398970; 57191378115; 24481148600; 58349866400; 57201781694; 57224831543; 57156632300; 57208152218; 57191959551; 56728270900; 57212930341; 59228653800; 57208910665; 57200986329; 57320956000; 57760186500; 57478014600; 59182458100; 57190943621,"Mariculture site selection based on water quality, cultivation and ecological condition",2025,Global Journal of Environmental Science and Management,11,1,,129,146,17,2,10.22034/gjesm.2025.01.08,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85212637596&doi=10.22034%2fgjesm.2025.01.08&partnerID=40&md5=22e82773cbd8e3cf21bacfcf4ebca967,"Research Center for Conservation of Marine and Inland Water Resources, National Research and Innovation Agency, Jl. M.H. Thamrin, Jakarta, Indonesia; Research Center for Geoinformatics, National Research and Innovation Agency, Jl. M.H. Thamrin, Jakarta, Indonesia; Research Center for Limnology and Water Resources, National Research and Innovation Agency, Jl. M.H. Thamrin, Jakarta, Indonesia; Faculty of Fisheries and Marine Sciences, IPB University, Bogor, Indonesia; Faculty of Marine and Fisheries Sciences of Hasanuddin University, Makassar, Indonesia; Organic Chemistry, Environmental Chemistry and Bioremediation Laboratory, Chemical Engineering Department, Fajar University, Jl. Professor Abdurrahman Basalamah, Panakkukang, South Sulawesi, Makassar, 90231, Indonesia; Faculty of Mathematics and Natural Science, Tadulako University, Palu, Indonesia","Arifin T., Research Center for Conservation of Marine and Inland Water Resources, National Research and Innovation Agency, Jl. M.H. Thamrin, Jakarta, Indonesia; Yulius Y., Research Center for Conservation of Marine and Inland Water Resources, National Research and Innovation Agency, Jl. M.H. Thamrin, Jakarta, Indonesia; Ramdhan M., Research Center for Geoinformatics, National Research and Innovation Agency, Jl. M.H. Thamrin, Jakarta, Indonesia; Johan O., Research Center for Conservation of Marine and Inland Water Resources, National Research and Innovation Agency, Jl. M.H. Thamrin, Jakarta, Indonesia; Gunawan D.P., Research Center for Limnology and Water Resources, National Research and Innovation Agency, Jl. M.H. Thamrin, Jakarta, Indonesia; Heriati A., Research Center for Conservation of Marine and Inland Water Resources, National Research and Innovation Agency, Jl. M.H. Thamrin, Jakarta, Indonesia; Mustikasari E., Research Center for Conservation of Marine and Inland Water Resources, National Research and Innovation Agency, Jl. M.H. Thamrin, Jakarta, Indonesia; Rahmania R., Research Center for Conservation of Marine and Inland Water Resources, National Research and Innovation Agency, Jl. M.H. Thamrin, Jakarta, Indonesia; Purbani D., Research Center for Conservation of Marine and Inland Water Resources, National Research and Innovation Agency, Jl. M.H. Thamrin, Jakarta, Indonesia; Dillenia I., Research Center for Conservation of Marine and Inland Water Resources, National Research and Innovation Agency, Jl. M.H. Thamrin, Jakarta, Indonesia; Agus S.B., Faculty of Fisheries and Marine Sciences, IPB University, Bogor, Indonesia; Asaf R., Research Center for Conservation of Marine and Inland Water Resources, National Research and Innovation Agency, Jl. M.H. Thamrin, Jakarta, Indonesia; Hatta M., Faculty of Marine and Fisheries Sciences of Hasanuddin University, Makassar, Indonesia; Marzuki I., Organic Chemistry, Environmental Chemistry and Bioremediation Laboratory, Chemical Engineering Department, Fajar University, Jl. Professor Abdurrahman Basalamah, Panakkukang, South Sulawesi, Makassar, 90231, Indonesia; Akhwady R., Research Center for Conservation of Marine and Inland Water Resources, National Research and Innovation Agency, Jl. M.H. Thamrin, Jakarta, Indonesia; Sufyan A., Research Center for Conservation of Marine and Inland Water Resources, National Research and Innovation Agency, Jl. M.H. Thamrin, Jakarta, Indonesia; Fihrin H., Faculty of Mathematics and Natural Science, Tadulako University, Palu, Indonesia; Septiningsih E., Research Center for Conservation of Marine and Inland Water Resources, National Research and Innovation Agency, Jl. M.H. Thamrin, Jakarta, Indonesia; Wahyono A., Research Center for Conservation of Marine and Inland Water Resources, National Research and Innovation Agency, Jl. M.H. Thamrin, Jakarta, Indonesia; Athirah A., Research Center for Conservation of Marine and Inland Water Resources, National Research and Innovation Agency, Jl. M.H. Thamrin, Jakarta, Indonesia","BACKGROUND AND OBJECTIVES: Choosing a location for mariculture is very important because it affects water quality, while problems that affect cultivation and the environment can be avoided by choosing the right location. The objective of this study is to develop a methodological strategy for integrating and analyzing spatial data, which will facilitate the identification of optimal locations for mariculture. In this context, the ecosystem approach to mariculture is analyzed with an emphasis on evaluating water quality conditions and determining primary productivity values. METHODS: Water quality parameter data was analyzed using principal component analysis, values, and distribution of primary productivity using the kriging interpolation method using geographic information system. Spatial analysis employing Geographic Information System applications is used to evaluate the appropriateness of locations for mariculture. FINDINGS: The distribution pattern of primary productivity is strongly influenced by the distribution of phytoplankton and the highest concentration values are located in coastal waters and small islands. The analysis identified three primary components that account for 79.64 percent of the results. The most influential factors include suspended particulate matters, nitrate, temperature, salinity, ammonia, current, and water transparency. According to the study results, the principal component values indicate that the most affected regions by pollutant pressure are agricultural lands that drain into rivers and watersheds, along with coastal residential neighborhoods. CONCLUSION: The status of water quality is the main limiting factor in determining the location of mariculture, therefore it is necessary to relocate existing mariculture, improve agricultural cultivation techniques, and/or regulate the use of pesticides that not carried out during the rainy season. These findings may assist the appropriate authorities in the selection and oversight of mariculture sites. The innovative aspect of this study lies in its focus on adaptive management of sustainable marine cultivation, designed to align with regional conditions and promote ecological health alongside the socio-economic prosperity of local communities. © 2025 The author(s).",geographic information system (gis); mariculture; primary productivity; prince william sound; water quality,cultivation; ecology; GIS; mariculture; primary production; principal component analysis; site selection; spatial data; water quality,"T. Arifin; Research Center for Conservation of Marine and Inland Water Resources, National Research and Innovation Agency, Jl. M.H. Thamrin, Jakarta, Indonesia; email: tasl003@brin.go.id",,GJESM Publication,,,,,,23833572,,,,English,Glob. J. Environ. Sci. Manag.,Article,Final,,Scopus,2-s2.0-85212637596 Partelow S.; Nagel B.; Gentry R.; Gephart J.; Rocha J.,"Partelow, Stefan (56415115600); Nagel, Ben (57296331300); Gentry, Rebecca (55574287000); Gephart, Jessica (55811795300); Rocha, Juan (56888343200)",56415115600; 57296331300; 55574287000; 55811795300; 56888343200,Archetypes of aquaculture development across 150 countries,2025,Aquaculture,595,,741484,,,,3,10.1016/j.aquaculture.2024.741484,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85202534995&doi=10.1016%2fj.aquaculture.2024.741484&partnerID=40&md5=0b132b0ab52f5a73f30a063fb1ce1280,"Leibniz Centre for Tropical Marine Research (ZMT), Bremen, Germany; Center for Life Ethics, University of Bonn, Germany; Jacobs University, Germany; Florida State University, United States; The Nature Conservancy, New Zealand; Department of Environmental Science, American University, Washington, DC, United States; Stockholm Resilience Center, Sweden","Partelow S., Leibniz Centre for Tropical Marine Research (ZMT), Bremen, Germany, Center for Life Ethics, University of Bonn, Germany; Nagel B., Leibniz Centre for Tropical Marine Research (ZMT), Bremen, Germany, Jacobs University, Germany; Gentry R., Florida State University, United States, The Nature Conservancy, New Zealand; Gephart J., Department of Environmental Science, American University, Washington, DC, United States; Rocha J., Stockholm Resilience Center, Sweden","In this study we compile and integrate data on 42 indicators to examine the social, economic, governance and environmental conditions shaping aquaculture development across 150 countries, including the top 100 aquaculture producing countries. We apply cluster analysis to identify social-ecological archetypes of aquaculture development across these indicators. We also calculate the percentage of global aquaculture production within the quartile ranges of 15 indicators of singular relevance for development. This shows how much aquaculture production is taking place in countries performing low or high on key indices. For example, we show that 85% of global aquaculture production is taking place in countries with the highest or high climate risk, 74% in countries with the lowest or low environmental performance scores, and 90% in countries with the highest or high food supply variability. Our cluster analysis identifies four distinct archetypes driven by the 42 country-level indicators, which includes: climate risk, inland water area, coastal population, seafood consumption, trade balance, governance indices and environmental performance. We characterize the four archetypes as: Archetype 1 - Emerging aquaculture producers, Archetype 2 - Limited aquatic food engagement, Archetype 3 - Developing economy aquaculture producers, Archetype 4 - Wealthy economy aquaculture producers. We discuss this complexity of factors driving each archetype with country specific examples, as well as the utility of integrated social-ecological analysis for both continued aquaculture research and development practice. © 2024 The Authors",aquaculture; fisheries; mariculture; social-ecological systems; sustainability,aquaculture production; cluster analysis; food supply; mariculture; resource development; sustainable development,"S. Partelow; Center for Life Ethics, University of Bonn, Bonn, Germany; email: stefan.partelow@uni-bonn.de",,Elsevier B.V.,,,,,,00448486,,AQCLA,,English,Aquaculture,Article,Final,All Open Access; Green Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85202534995 Buckwell A.; Hasan S.; Knight A.; Fleming C.; Harte J.; Smart J.C.R.,"Buckwell, Andrew (57217308936); Hasan, Syezlin (57202031408); Knight, Alana (59662390100); Fleming, Christopher (23034397900); Harte, Jeremy (59662247800); Smart, James C.R. (7201395619)",57217308936; 57202031408; 59662390100; 23034397900; 59662247800; 7201395619,The social licence of salmon aquaculture in Tasmania: Fulfilling the social bargain,2025,Marine Policy,176,,106653,,,,0,10.1016/j.marpol.2025.106653,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85219480545&doi=10.1016%2fj.marpol.2025.106653&partnerID=40&md5=3db2a276b9344a59e12a9fd8575c4a3a,"Griffith Business School, Griffith University, Nathan, QLD, Australia; Australian Rivers Institute, Griffith University, Nathan, QLD, Australia; Blue Economy Cooperative Research Centre, Launceston, TAS, Australia","Buckwell A., Griffith Business School, Griffith University, Nathan, QLD, Australia, Blue Economy Cooperative Research Centre, Launceston, TAS, Australia; Hasan S., Griffith Business School, Griffith University, Nathan, QLD, Australia, Australian Rivers Institute, Griffith University, Nathan, QLD, Australia, Blue Economy Cooperative Research Centre, Launceston, TAS, Australia; Knight A., Griffith Business School, Griffith University, Nathan, QLD, Australia, Blue Economy Cooperative Research Centre, Launceston, TAS, Australia; Fleming C., Griffith Business School, Griffith University, Nathan, QLD, Australia; Harte J., Australian Rivers Institute, Griffith University, Nathan, QLD, Australia, Blue Economy Cooperative Research Centre, Launceston, TAS, Australia; Smart J.C.R., Australian Rivers Institute, Griffith University, Nathan, QLD, Australia, Blue Economy Cooperative Research Centre, Launceston, TAS, Australia","Salmon aquaculture is one of a number of industries in Tasmania that can benefit from new technologies to reduce the local ecological and community amenity impacts of its coastal operations. This may assist the industry in retaining its social licence to operate (SLO), which is currently in question, so that it can continue generating benefits for local livelihoods. We used Q-methodology to gain empirical insight into aquaculture stakeholder perspectives on the role that SLO plays in maintaining the industry's legitimacy. Results revealed four factors, all of which saw genuine engagement with strategies to retain SLO as being fundamental to the industry's future. Whilst three factors prioritised the economic and employment benefits of the industry as playing an important role in this—as part of a social bargain with the community—all four factors believed that the continued legitimacy of the industry requires broader civil society consent. One factor considered the industry as being under pressure, but nevertheless felt a SLO could be re-established if the industry followed certain steps to secure it. Our research demonstrates that salmon aquaculture would do well to continue to actively seek SLO, achievement of which will maximise total net social benefit and point to pathways that begin to incorporate the nature-positive and people-positive agendas. It should also consider engagement with both communities of place and communities of practice as it explores opportunities in the blue economy and recognise that disclosure and transparency will assist in demonstrating procedural fairness. © 2025 The Authors",aquaculture; blue economy; q-methodology; social licence,Australia; Tasmania; aquaculture industry; fishery policy; livelihood; local participation; salmonid culture,"A. Buckwell; Griffith Business School, Griffith University, Nathan, Australia; email: a.buckwell@griffith.edu.au",,Elsevier Ltd,,,,,,0308597X,,,,English,Mar. Policy,Article,Final,All Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85219480545 Mansfield E.J.; Micheli F.; Fujita R.; Fulton E.A.; Gelcich S.; Battista W.; Bustamante R.H.; Cao L.; Daniels B.N.; Finkbeiner E.M.; Gaines S.; Peckham H.; Roche K.; Ruckelshaus M.; Salomon A.K.; Sumaila U.R.; White C.; Naylor R.,"Mansfield, Elizabeth J. (57215847616); Micheli, Fiorenza (7101777512); Fujita, Rod (7103049277); Fulton, Elizabeth A. (6701680888); Gelcich, Stefan (8563637100); Battista, Willow (57189587597); Bustamante, Rodrigo H. (7003448617); Cao, Ling (57198528782); Daniels, Benjamin N. (58617375500); Finkbeiner, Elena M. (37078985800); Gaines, Steven (35554794700); Peckham, Hoyt (38061892900); Roche, Kelly (59370654500); Ruckelshaus, Mary (6602133791); Salomon, Anne K. (7005421580); Sumaila, U. Rashid (6701840163); White, Crow (8204446100); Naylor, Rosamond (7102988281)",57215847616; 7101777512; 7103049277; 6701680888; 8563637100; 57189587597; 7003448617; 57198528782; 58617375500; 37078985800; 35554794700; 38061892900; 59370654500; 6602133791; 7005421580; 6701840163; 8204446100; 7102988281,"Anticipating trade-offs and promoting synergies between small-scale fisheries and aquaculture to improve social, economic, and ecological outcomes",2024,NPJ Ocean Sustainability,3,1,1,,,,8,10.1038/s44183-023-00035-5,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85200136506&doi=10.1038%2fs44183-023-00035-5&partnerID=40&md5=a7e1445025c5b5632415bc680060c4e3,"Oceans Department, Hopkins Marine Station, Stanford University, Pacific Grove, 93950, CA, United States; Coastal & amp; Marine Lab, Florida State University, St. Teresa, 32358, FL, United States; Stanford Center for Ocean Solutions, Stanford University, Pacific Grove, 93950, CA, United States; Environmental Defense Fund, Oakland, 94618, CA, United States; Commonwealth Scientific and Industrial Research Organisation, Hobart, 7001, TAS, Australia; Center for Marine Socioecology, University of Tasmania, Battery Point, 7004, TAS, Australia; Instituto Milenio en Socio-ecologia Costera & amp; Center of Applied Ecology and Sustainability, Pontificia Universidad Católica de Chile, Santiago, Chile; Commonwealth Scientific and Industrial Research Organisation, St Lucia, 4067, QLD, Australia; State Key Laboratory of Marine Environmental Science, College of Ocean and Earth Sciences, Xiamen University, Fujian, 316005, China; Center for Coastal Marine Sciences, California Polytechnic State University, San Luis Obispo, 93407, CA, United States; Center for Oceans, Conservation International, Honolulu, 96816, HI, United States; Coastal Science & amp; Policy Program, University of California, Santa Cruz, 95060, CA, United States; Bren School of Environmental Science and Management, University of California, Santa Barbara, 93117, CA, United States; Wildlife Conservation Society, Bronx, 10460, NY, United States; The Natural Capital Project, Stanford University, Stanford, 94305, CA, United States; Woods Institute for the Environment, Stanford University, Stanford, 94305, CA, United States; School of Resource & amp; Environmental Management, Simon Fraser University, Burnaby, V5A 1S6, BC, Canada; Institute for the Oceans and Fisheries and the School of Public Policy and Global Affairs, University of British Columbia, Vancouver, V6T 1Z4, BC, Canada; Department of Earth Systems Science, Stanford University, Stanford, 94305, CA, United States; Center on Food Security and the Environment, Stanford University, Stanford, 94305, CA, United States","Mansfield E.J., Oceans Department, Hopkins Marine Station, Stanford University, Pacific Grove, 93950, CA, United States, Coastal & amp; Marine Lab, Florida State University, St. Teresa, 32358, FL, United States; Micheli F., Oceans Department, Hopkins Marine Station, Stanford University, Pacific Grove, 93950, CA, United States, Stanford Center for Ocean Solutions, Stanford University, Pacific Grove, 93950, CA, United States; Fujita R., Environmental Defense Fund, Oakland, 94618, CA, United States; Fulton E.A., Commonwealth Scientific and Industrial Research Organisation, Hobart, 7001, TAS, Australia, Center for Marine Socioecology, University of Tasmania, Battery Point, 7004, TAS, Australia; Gelcich S., Instituto Milenio en Socio-ecologia Costera & amp; Center of Applied Ecology and Sustainability, Pontificia Universidad Católica de Chile, Santiago, Chile; Battista W., Environmental Defense Fund, Oakland, 94618, CA, United States; Bustamante R.H., Commonwealth Scientific and Industrial Research Organisation, St Lucia, 4067, QLD, Australia; Cao L., State Key Laboratory of Marine Environmental Science, College of Ocean and Earth Sciences, Xiamen University, Fujian, 316005, China; Daniels B.N., Center for Coastal Marine Sciences, California Polytechnic State University, San Luis Obispo, 93407, CA, United States; Finkbeiner E.M., Center for Oceans, Conservation International, Honolulu, 96816, HI, United States, Coastal Science & amp; Policy Program, University of California, Santa Cruz, 95060, CA, United States; Gaines S., Bren School of Environmental Science and Management, University of California, Santa Barbara, 93117, CA, United States; Peckham H., Wildlife Conservation Society, Bronx, 10460, NY, United States; Roche K., Environmental Defense Fund, Oakland, 94618, CA, United States; Ruckelshaus M., The Natural Capital Project, Stanford University, Stanford, 94305, CA, United States, Woods Institute for the Environment, Stanford University, Stanford, 94305, CA, United States; Salomon A.K., School of Resource & amp; Environmental Management, Simon Fraser University, Burnaby, V5A 1S6, BC, Canada; Sumaila U.R., Institute for the Oceans and Fisheries and the School of Public Policy and Global Affairs, University of British Columbia, Vancouver, V6T 1Z4, BC, Canada; White C., Center for Coastal Marine Sciences, California Polytechnic State University, San Luis Obispo, 93407, CA, United States; Naylor R., Department of Earth Systems Science, Stanford University, Stanford, 94305, CA, United States, Center on Food Security and the Environment, Stanford University, Stanford, 94305, CA, United States","Blue food systems are crucial for meeting global social and environmental goals. Both small-scale marine fisheries (SSFs) and aquaculture contribute to these goals, with SSFs supporting hundreds of millions of people and aquaculture currently expanding in the marine environment. Here we examine the interactions between SSFs and aquaculture, and the possible combined benefits and trade-offs of these interactions, along three pathways: (1) resource access and rights allocation; (2) markets and supply chains; and (3) exposure to and management of risks. Analysis of 46 diverse case studies showcase positive and negative interaction outcomes, often through competition for space or in the marketplace, which are context-dependent and determined by multiple factors, as further corroborated by qualitative modeling. Results of our mixed methods approach underscore the need to anticipate and manage interactions between SSFs and aquaculture deliberately to avoid negative socio-economic and environmental outcomes, promote synergies to enhance food production and other benefits, and ensure equitable benefit distribution. © The Author(s) 2024.",,,"E.J. Mansfield; Oceans Department, Hopkins Marine Station, Stanford University, Pacific Grove, 93950, United States; email: emansfield@fsu.edu; F. Micheli; Oceans Department, Hopkins Marine Station, Stanford University, Pacific Grove, 93950, United States; email: micheli@stanford.edu",,Springer Nature,,,,,,2731426X,,,,English,NPJ Ocean. sustain.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85200136506 Hoesterey S.; Hemprich C.-J.; Onnasch L.,"Hoesterey, Steffen (56366679700); Hemprich, Christoph-Johannes (58623886700); Onnasch, Linda (35111634600)",56366679700; 58623886700; 35111634600,What drives the acceptability of a sustainable food production technology? Modeling psychological factors,2023,Sustainable Production and Consumption,42,,,158,169,11,2,10.1016/j.spc.2023.09.020,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85172726092&doi=10.1016%2fj.spc.2023.09.020&partnerID=40&md5=47afbf7410377af09c4e56edd15c449b,"Humboldt-Universität zu Berlin, Berlin, Germany; Technische Universität Berlin, Berlin, Germany","Hoesterey S., Humboldt-Universität zu Berlin, Berlin, Germany; Hemprich C.-J., Technische Universität Berlin, Berlin, Germany; Onnasch L., Technische Universität Berlin, Berlin, Germany","Innovative and resource-efficient food production technologies are essential to meet the food security and ecological challenges of the future. Understanding the psychological factors that determine the acceptability of ecologically more sustainable systems is crucial for the development of theoretically and empirically derived measures to minimize the risk of the public's rejection of such food production methods. Therefore, a questionnaire study was conducted using the multitrophic interconnected food production system CUBES Circle as object of investigation. CUBES Circle is a research project investigating an innovative farming technique that combines hydro- and aquaculture with insect farming in a controlled environment. A structural model was proposed based on the Technology Acceptance Framework and evaluated using Structural Equation Modeling (SEM). Data collection was carried out in two waves: The first was used for scale development (N = 305) and the second for SEM (N = 485). Due to an unsatisfactory model fit of the initial model, it was adjusted based on theory- and data-driven considerations. The resulting model had a good model fit in both independent samples. The most important determinants of acceptance intentions were the perceived problem-solving efficacy of the technology (outcome efficacy), believed social pressure from relevant people (subjective norm), positive affect towards the technology and the trust in the stakeholders. This implies, for example, that stakeholders and policy makers aiming to increase acceptance are advised to focus on conveying the concrete way of how the technology is more sustainable instead of merely drawing attention to the problems associated with current food production methods. © 2023 Institution of Chemical Engineers",acceptance; circular agriculture; innovative food production system; public perception,Digital storage; Economic and social effects; Farms; Food supply; Risk assessment; Sustainable development; Acceptance; Circular agriculture; Food production; Food production systems; Food-production technologies; Innovative food production system; Production methods; Psychological factors; Public perception; Structural equation models; Conveying,"S. Hoesterey; Humboldt-Universität zu Berlin, Berlin, Unter den Linden 6, 10117, Germany; email: steffen.hoesterey@hu-berlin.de",,Elsevier B.V.,,,,,,23525509,,,,English,Sustain. Prod. Consum.,Article,Final,,Scopus,2-s2.0-85172726092 Encinas-García T.; Mendoza-Cano F.; De la Re-Vega E.; Martínez J.M.; Dávila-Ramos S.; Grijalva-Chon J.M.; Sánchez-Paz A.,"Encinas-García, Trinidad (56177840500); Mendoza-Cano, Fernando (36716648200); De la Re-Vega, Enrique (6506298636); Martínez, Joaquín Martínez (8681079700); Dávila-Ramos, Sonia (56730323300); Grijalva-Chon, José Manuel (6602797597); Sánchez-Paz, Arturo (8731941000)",56177840500; 36716648200; 6506298636; 8681079700; 56730323300; 6602797597; 8731941000,Dissecting the main factors affecting the viral abundance in a shrimp aquaculture ecosystem,2024,Regional Studies in Marine Science,78,,103796,,,,0,10.1016/j.rsma.2024.103796,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85203055767&doi=10.1016%2fj.rsma.2024.103796&partnerID=40&md5=dce377ada7a1286417fafe41adcf190f,"Departamento de Investigaciones Científicas y Tecnológicas de la Universidad de Sonora, Blvd. Rosales s/n. Centro, Sonora, Hermosillo, CP. 83110, Mexico; Centro de Investigaciones Biológicas del Noroeste (CIBNOR). Laboratorio Virología, Calle Hermosa, 101, Col. Los Ángeles, Sonora, Hermosillo, 83106, Mexico; Bigelow Laboratory for Ocean Sciences, 60 Bigelow Drive, East Boothbay, ME, United States; Centro de Investigación en Dinámica Celular, Instituto de Investigaciones en Ciencias Básicas y Aplicadas, Universidad Autónoma del Estado de Morelos, Morelos, Av. Universidad 1001. Col. Chamilpa, Morelos, Cuernavaca, CP. 62209, Mexico","Encinas-García T., Departamento de Investigaciones Científicas y Tecnológicas de la Universidad de Sonora, Blvd. Rosales s/n. Centro, Sonora, Hermosillo, CP. 83110, Mexico, Centro de Investigaciones Biológicas del Noroeste (CIBNOR). Laboratorio Virología, Calle Hermosa, 101, Col. Los Ángeles, Sonora, Hermosillo, 83106, Mexico; Mendoza-Cano F., Centro de Investigaciones Biológicas del Noroeste (CIBNOR). Laboratorio Virología, Calle Hermosa, 101, Col. Los Ángeles, Sonora, Hermosillo, 83106, Mexico; De la Re-Vega E., Departamento de Investigaciones Científicas y Tecnológicas de la Universidad de Sonora, Blvd. Rosales s/n. Centro, Sonora, Hermosillo, CP. 83110, Mexico; Martínez J.M., Bigelow Laboratory for Ocean Sciences, 60 Bigelow Drive, East Boothbay, ME, United States; Dávila-Ramos S., Centro de Investigación en Dinámica Celular, Instituto de Investigaciones en Ciencias Básicas y Aplicadas, Universidad Autónoma del Estado de Morelos, Morelos, Av. Universidad 1001. Col. Chamilpa, Morelos, Cuernavaca, CP. 62209, Mexico; Grijalva-Chon J.M., Departamento de Investigaciones Científicas y Tecnológicas de la Universidad de Sonora, Blvd. Rosales s/n. Centro, Sonora, Hermosillo, CP. 83110, Mexico; Sánchez-Paz A., Centro de Investigaciones Biológicas del Noroeste (CIBNOR). Laboratorio Virología, Calle Hermosa, 101, Col. Los Ángeles, Sonora, Hermosillo, 83106, Mexico","During the last decades, shrimp farming has developed into one of the fastest-growing economic activities in coastal areas of the world. However, the global sustainability of this activity has become limited due to several factors, including its adverse environmental impact, the need for proper regulations, and the frequent emergence of viral diseases. Several conditions in aquaculture, such as overfeeding and overstocking, can trigger the emergence of viral pathogens. That, coupled with still limited knowledge about the factors boosting the abundance and variety of viruses residing in aquaculture facilities, could lead to the emergence of potentially lethal viral pathogens. On the other hand, many viruses play beneficial roles in maintaining healthy, balanced ecosystems through lytic infection of bacteria and protozoans, which reduces the pressure on their hosts. Few studies have estimated the abundance of viral-like particles in aquaculture facilities. This study recognized some factors affecting the abundance of the viral community inhabiting a shrimp aquaculture facility in Bahía de Kino, Mexico, which may contribute to a better understanding of the dynamics, ecological roles, and epidemiology of viral communities in aquaculture ecosystems that can then aid for the future development of disease control strategies. © 2024 Elsevier B.V.",aquaculture; biotic and abiotic factors; marine environment; prokaryotic abundance; virus-like particle abundance; virus-to-prokaryote ratio,,"A. Sánchez-Paz; Centro de Investigaciones Biológicas del Noroeste S. C. Laboratorio de Virología, Hermosillo, Hermosa 101, Col. Los Ángeles, Sonora, CP. 83106, Mexico; email: asanchez04@cibnor.mx",,Elsevier B.V.,,,,,,23524855,,,,English,Reg. Stud. Mar. Sci.,Article,Final,,Scopus,2-s2.0-85203055767 Asaduzzaman M.; Nahiduzzaman M.; Chowdhury M.T.H.; Rahman M.M.; Mamun A.-A.; Hossain M.M.,"Asaduzzaman, Md (57162893400); Nahiduzzaman, Md (26323257400); Chowdhury, Muhammad Tanvir Hossain (59466870200); Rahman, Md Moshiur (59443894500); Mamun, Abdullah-Al (57197568567); Hossain, Mohammad Mokarrom (57211151926)",57162893400; 26323257400; 59466870200; 59443894500; 57197568567; 57211151926,Advancing low-trophic extractive mariculture (LTEM): Strategies for a thriving blue economy in Bangladesh,2025,Marine Policy,173,,106557,,,,0,10.1016/j.marpol.2024.106557,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85211639418&doi=10.1016%2fj.marpol.2024.106557&partnerID=40&md5=615d6035b86e54d2866d0c408af08151,"Department of Marine Bioresource Science, Faculty of Fisheries, Chattogram Veterinary and Animal Sciences University, Chattogram, Khulshi, 4225, Bangladesh; ECOFISH-II Activity, WorldFish, Bangladesh and South Asia Office, Gulshan-1, Dhaka, Bangladesh; Department of Fisheries, Dhaka, 1000, Bangladesh; Fish Conservation and Culture Laboratory, Department of Biological and Agricultural Engineering, University of California Davis, 17501 Byron Hwy, Byron, 94514, CA, United States; Department of Fisheries and Marine Science, Noakhali Science and Technology University, Noakhali, Bangladesh","Asaduzzaman M., Department of Marine Bioresource Science, Faculty of Fisheries, Chattogram Veterinary and Animal Sciences University, Chattogram, Khulshi, 4225, Bangladesh; Nahiduzzaman M., ECOFISH-II Activity, WorldFish, Bangladesh and South Asia Office, Gulshan-1, Dhaka, Bangladesh; Chowdhury M.T.H., Department of Fisheries, Dhaka, 1000, Bangladesh; Rahman M.M., Fish Conservation and Culture Laboratory, Department of Biological and Agricultural Engineering, University of California Davis, 17501 Byron Hwy, Byron, 94514, CA, United States; Mamun A.-A., Department of Fisheries and Marine Science, Noakhali Science and Technology University, Noakhali, Bangladesh; Hossain M.M., ECOFISH-II Activity, WorldFish, Bangladesh and South Asia Office, Gulshan-1, Dhaka, Bangladesh","Bangladesh, with its diverse coastal and marine ecosystems, holds immense potential to harness low-trophic extractive mariculture (LTEM) as a key component of its sustainable blue economy. Considering the present national interest, this study provides a comprehensive assessment of the current status of LTEM in Bangladesh, identifying its challenges and offers strategic interventions for future development. Using a mixed-method approach, the research integrates an extensive literature review, key informant interviews, field research experiences, and stakeholder workshops involving policymakers, industry leaders, academia, NGOs, and community representatives. Based on the synthesized information, key challenges were broadly classified into four categories, which were further sub-divided into several thematic issues, including eight for technical, five for environment, five for socio-economic, and two for regulatory and policy constraints, revealing systemic inefficiencies such as poor suitability mapping, technological limitation, weak value chains, poor coordination among stakeholders, and insufficient research investment. These issues contribute to knowledge gaps, coastal hydro-dynamics conditions, inconsistent practices, and hinder the development of effective regulatory frameworks, limiting market access, product quality, and export potential. In response, twelve thematic intervention areas were identified, which were further refined during plenary discussions in the workshops to form a detailed roadmap for the period 2025–2035. The roadmap outlines a series of sequential actions and identifies key actors for each of the twelve thematic areas, with an emphasis on addressing the barriers to LTEM development. By shifting from a project-focused approach to a systems-oriented strategy, the framework integrates stakeholder perspectives and lessons learned to strengthen Bangladesh's LTEM sector. © 2024 Elsevier Ltd",blue economy; extractive species; mariculture; marine ecosystem; non-fed mariculture,Bangladesh; aquaculture production; future prospect; integrated approach; mariculture; marine ecosystem; nongovernmental organization; participatory approach; policy approach; research work; resource development; strategic approach; sustainable development,"M. Asaduzzaman; Department of Marine Bioresource Science, Faculty of Fisheries, Chattogram Veterinary and Animal Sciences University, Khulshi, Chattogram, 4225, Bangladesh; email: a_zamanbau@yahoo.com",,Elsevier Ltd,,,,,,0308597X,,,,English,Mar. Policy,Article,Final,,Scopus,2-s2.0-85211639418 Das A.; Kumar S.; Kasala K.; Nedumaran S.; Paithankar P.; Kumar A.; Jain A.; Avinandan V.,"Das, Abhishek (57678834300); Kumar, Shalander (57724141900); Kasala, Kavitha (57855652200); Nedumaran, S. (55544722100); Paithankar, Pradnya (57216864927); Kumar, Abhay (59700833800); Jain, Ayushi (59701007800); Avinandan, Vijay (59701555200)",57678834300; 57724141900; 57855652200; 55544722100; 57216864927; 59700833800; 59701007800; 59701555200,Effects of climate change on food security and nutrition in India: A systematic review,2025,Current Research in Environmental Sustainability,9,,100286,,,,0,10.1016/j.crsust.2025.100286,https://www.scopus.com/inward/record.uri?eid=2-s2.0-105000529439&doi=10.1016%2fj.crsust.2025.100286&partnerID=40&md5=aeacb85da77ac6b5d218dabba383a90b,"International Crops Research Institute for the Semi-Arid Tropics, Hyderabad, India; World Food Programme (WFP) India Country Office, New Delhi, India","Das A., International Crops Research Institute for the Semi-Arid Tropics, Hyderabad, India; Kumar S., International Crops Research Institute for the Semi-Arid Tropics, Hyderabad, India; Kasala K., International Crops Research Institute for the Semi-Arid Tropics, Hyderabad, India; Nedumaran S., International Crops Research Institute for the Semi-Arid Tropics, Hyderabad, India; Paithankar P., World Food Programme (WFP) India Country Office, New Delhi, India; Kumar A., World Food Programme (WFP) India Country Office, New Delhi, India; Jain A., World Food Programme (WFP) India Country Office, New Delhi, India; Avinandan V., World Food Programme (WFP) India Country Office, New Delhi, India","Climate change poses a complex challenge to food and nutritional security, impacting human health, well-being, and sustainable development. India, facing heightened vulnerability in agriculture and a growing population surpassing 1.3 billion, requires a detailed examination of these effects. This examination will serve as a crucial resource for shaping policies, directing research efforts, and fostering public discourse. This systematic review thoroughly analyzes the impact of climate change on food and nutritional security in India. Examining 231 articles, the study delves into various dimensions, including availability, accessibility, utilization, and stability. The review utilized Web of Science, PubMed, and CABI review, employing 100 different keywords. Temperature variations, erratic rainfall, and extreme weather events disrupt crops, livestock, poultry, and aquaculture production (food availability), leading to food shortages, income loss, and elevated food prices (accessibility), especially affecting low-income groups. Indirectly, climate change affects livelihoods and incomes, exacerbating inequalities and leading to the displacement of marginalized communities (stability), thereby escalating food insecurity and malnutrition (utilization). However, few studies cover diverse aspects such as the influence of climate change on traditional crops, nutritional value, agricultural biodiversity, food distribution systems, indigenous food systems, and nutrition outcomes, particularly for vulnerable groups like women and children. Hence, there is a pressing need for a more holistic and integrated approach to tackle the impacts of climate change on food and nutrition security in India. © 2024",climate change; food security; india; nutrition; systematic review,,"S. Kumar; International Crops Research Institute for the Semi-Arid Tropics, Hyderabad, India; email: Shalander.Kumar@icrisat.org",,Elsevier B.V.,,,,,,26660490,,,,English,Curr. Res. Environ. Sustain.,Article,Final,,Scopus,2-s2.0-105000529439 Berman M.,"Berman, Martha (59681277000)",59681277000,Leveraging EO 14801 to grow the U.S. seaweed industry,2025,Marine Policy,177,,106683,,,,0,10.1016/j.marpol.2025.106683,https://www.scopus.com/inward/record.uri?eid=2-s2.0-86000738148&doi=10.1016%2fj.marpol.2025.106683&partnerID=40&md5=51c82ec335cdf7d3381e8f82290c31b8,"University of Wisconsin - Superior, United States","Berman M., University of Wisconsin - Superior, United States","Seaweed cultivation has the potential to improve marine ecosystems, aid in climate change mitigation, and increase healthy, low-input food products, as well as creating social and economic benefits for coastal communities. In the U.S., the seaweed industry is growing, but faces stagnation if the many barriers to expansion are not addressed. The challenges to growth include safeguarding marine ecosystems, increasing profitability, building out infrastructure, market creation, ensuring benefits to native and local communities, and funding for continued research in efficacy and safety. In 2022, the Biden Administration issued Executive Order 14801 for Advancing Biotechnology and Biomanufacturing Innovation for a Sustainable, Safe, and Secure American Bioeconomy. The directive includes goals and funding that align with the needs of a growing sustainable seaweed industry. This policy opportunity should be leveraged by the domestic seaweed industry and those groups trying to expand it to address challenges around infrastructure, research, tools creation, social license, market creation, and technology sharing. This paper shows the precise challenges facing the industry that can be addressed by specific aspects of the Executive Order. © 2025 Elsevier Ltd",aquaculture; seaweed cultivation; seaweed farming; seaweed regulations,United States; cultivation; fishery policy; infrastructure; marine ecosystem; market development; profitability; regulatory approach; seaweed culture,"M. Berman; Seattle, 2000 NW Canoe Pl, 98117, United States; email: mfunston@uwsuper.edu",,Elsevier Ltd,,,,,,0308597X,,,,English,Mar. Policy,Article,Final,,Scopus,2-s2.0-86000738148 Nielsen R.; Guillen J.; Llorente Garcia I.; Asche F.; Garlock T.; Kreiss C.M.; Novaković S.V.; Danatskos C.; Cozzolino M.; Pokki H.; Kankainen M.; Dennis J.; Jackson E.; Mytlewski A.; Kulikowski T.; Rakowski M.; Tveterås R.,"Nielsen, Rasmus (57205709508); Guillen, Jordi (26534150300); Llorente Garcia, Ignacio (59535301700); Asche, Frank (55904477400); Garlock, Taryn (56433462500); Kreiss, Cornelia M. (42961551600); Novaković, Svjetlana Višnić (59535301800); Danatskos, Christos (59535079600); Cozzolino, Maria (57193693758); Pokki, Heidi (57202450393); Kankainen, Markus (55521132200); Dennis, John (57216741661); Jackson, Emmet (57730083400); Mytlewski, Adam (57212090489); Kulikowski, Tomasz (57217682451); Rakowski, Marcin (57203060461); Tveterås, Ragnar (6602209169)",57205709508; 26534150300; 59535301700; 55904477400; 56433462500; 42961551600; 59535301800; 59535079600; 57193693758; 57202450393; 55521132200; 57216741661; 57730083400; 57212090489; 57217682451; 57203060461; 6602209169,An analysis of the European aquaculture industry using the aquaculture performance indicators,2025,Aquaculture Economics and Management,,,,,,,2,10.1080/13657305.2025.2453747,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85216488626&doi=10.1080%2f13657305.2025.2453747&partnerID=40&md5=ed1cd99bea709b8b237a10e09131c509,"Department of Food and Resource Economics, University of Copenhagen, Frederiksberg C, Denmark; European Commission, Joint Research Centre, JRC, Ispra, Italy; Departamento de Administración de Empresas, Universidad de Cantabria, Santander, Spain; School of Forest, Fisheries and Geomatics Sciences and the Food Systems Institute, University of Florida, Gainesville, FL, United States; Department of Safety, Economics and Planning, University of Stavanger, Stavanger, Norway; School of Fisheries, Aquaculture, and Aquatic Sciences, Auburn University, Auburn, AL, United States; Thuenen Institute of Fisheries Ecology, Bremerhaven, Germany; Ministry of Agriculture, Unit for Data Collection Programme in Fisheries, Zagreb, Croatia; Hellenic Agricultural Organization (ELGO DIMITRA)-Fisheries Research Institute, School of Forestry and Natural Environment, Aristotle University of Thessaloniki, Thessaloniki, Greece; NISEA, Fisheries and Aquaculture Economic Research, Salerno, Italy; Natural Resources Institute Finland (Luke), Helsinki, Finland; Ireland’s Seafood Development Agency, Economic and Strategic Services Unit, BIM, Dublin, Ireland; Department of Fisheries Economics, National Marine Fisheries Research Institute, Gdynia, Poland; School of Business and Law, University of Stavanger, Stavanger, Norway","Nielsen R., Department of Food and Resource Economics, University of Copenhagen, Frederiksberg C, Denmark; Guillen J., European Commission, Joint Research Centre, JRC, Ispra, Italy; Llorente Garcia I., Departamento de Administración de Empresas, Universidad de Cantabria, Santander, Spain; Asche F., School of Forest, Fisheries and Geomatics Sciences and the Food Systems Institute, University of Florida, Gainesville, FL, United States, Department of Safety, Economics and Planning, University of Stavanger, Stavanger, Norway; Garlock T., School of Fisheries, Aquaculture, and Aquatic Sciences, Auburn University, Auburn, AL, United States; Kreiss C.M., Thuenen Institute of Fisheries Ecology, Bremerhaven, Germany; Novaković S.V., Ministry of Agriculture, Unit for Data Collection Programme in Fisheries, Zagreb, Croatia; Danatskos C., Hellenic Agricultural Organization (ELGO DIMITRA)-Fisheries Research Institute, School of Forestry and Natural Environment, Aristotle University of Thessaloniki, Thessaloniki, Greece; Cozzolino M., NISEA, Fisheries and Aquaculture Economic Research, Salerno, Italy; Pokki H., Natural Resources Institute Finland (Luke), Helsinki, Finland; Kankainen M., Natural Resources Institute Finland (Luke), Helsinki, Finland; Dennis J., Ireland’s Seafood Development Agency, Economic and Strategic Services Unit, BIM, Dublin, Ireland; Jackson E., Ireland’s Seafood Development Agency, Economic and Strategic Services Unit, BIM, Dublin, Ireland; Mytlewski A., Department of Fisheries Economics, National Marine Fisheries Research Institute, Gdynia, Poland; Kulikowski T., Department of Fisheries Economics, National Marine Fisheries Research Institute, Gdynia, Poland; Rakowski M., Department of Fisheries Economics, National Marine Fisheries Research Institute, Gdynia, Poland; Tveterås R., School of Business and Law, University of Stavanger, Stavanger, Norway","The consumption of aquatic foods in Europe is high. This strong seafood demand is currently being met not only through domestic aquaculture but also through imports. In recent decades, aquaculture has gained significant importance as a domestic source of seafood, primarily due to the dwindling availability of wild fish stocks and the escalating demand for seafood. This study investigates the environmental, economic, and social sustainability of 14 European aquaculture industries in 12 countries representing about 69% of total European aquaculture production using the Aquaculture Performance Indicators (API). We find that the average scores in Europe are higher than global average scores in all dimensions. While this should be expected in the environmental dimension given that European countries are developed economies with comprehensive environmental and food regulation in place, it is somewhat surprising in the other dimensions as the sector have been growing slowly compared to the rest of the world. However, it is growing and this is a signal of viable companies. It is also important to note that there are significant differences between industry segments. As expected, shellfish has the best scores in the environmental dimension, but the most important result is that all the sectors investigated score high relative to the global averages. © 2025 Taylor & Francis Group, LLC.",apis; european aquaculture; sustainability,,"R. Nielsen; Department of Food and Resource Economics, Frederiksberg, Rolighedsvej 23, 1958, Denmark; email: rn@ifro.ku.dk",,Taylor and Francis Ltd.,,,,,,13657305,,AEMAF,,English,Aquac. Econ. Manage.,Article,Article in press,,Scopus,2-s2.0-85216488626 Aitken J.; Böhme T.; McAsh E.,"Aitken, James (36940352000); Böhme, Tillmann (35191524600); McAsh, Ewan (59459601300)",36940352000; 35191524600; 59459601300,Co-Creation of Societal Benefits Through Human-Centered Design and Management of Dynamic Capabilities in Oyster Farm Communities,2025,Strategic Change,34,1,,93,101,8,1,10.1002/jsc.2611,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85211188829&doi=10.1002%2fjsc.2611&partnerID=40&md5=a9597fff1d8546f02f67c61a4fc066ae,"Surrey Business School, University of Surrey, Guildford, United Kingdom; Faculty of Business and Law, University of Wollongong, Wollongong, NSW, Australia; CEO Oceanfarmr, Long Beach, NSW, Australia","Aitken J., Surrey Business School, University of Surrey, Guildford, United Kingdom; Böhme T., Faculty of Business and Law, University of Wollongong, Wollongong, NSW, Australia; McAsh E., CEO Oceanfarmr, Long Beach, NSW, Australia","This paper explores how business reconciles the perceived conflicting demands of social and profit logic to deliver value to shareholders and the wider community it serves. Through a human-centered design lens, the paper identifies co-creation as pivotal in the design of the business model that delivers social and economic value. Empirical data from an aquaculture SME case study was collected and analyzed to comprehend the role of social good in the development of the business model. The results demonstrate that societal improvements can be achieved when concurrently considered and designed into each stage of the business model development. The findings reveal that technology when deployed within the context of economic and societal improvements has the potential to support businesses in organizing services that deliver economic, societal, and environmental benefits. Replicating this approach requires organizations to develop a deep understanding of the social context that their customers operate within. © 2024 The Author(s). Strategic Change published by John Wiley & Sons Ltd.",business model innovation; dynamic capability view|; environmental sustainability; social issues in management,,"J. Aitken; Surrey Business School, University of Surrey, Guildford, United Kingdom; email: james.aitken@surrey.ac.uk",,John Wiley and Sons Inc,,,,,,10991697,,,,English,Strateg. Change,Article,Final,,Scopus,2-s2.0-85211188829 Rector M.E.; Filgueira R.; Grant J.,"Rector, Megan E. (55317246800); Filgueira, Ramon (16549712900); Grant, Jon (7403160578)",55317246800; 16549712900; 7403160578,Does eco-certification change public opinion of salmon aquaculture in Canada? A comparison of communities with and without salmon farms,2024,Aquaculture Economics and Management,28,1,,32,55,23,4,10.1080/13657305.2023.2196948,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85153041217&doi=10.1080%2f13657305.2023.2196948&partnerID=40&md5=ece4238ecce14373ab444a353d34ce3d,"Marine Affairs Program, Dalhousie University, Halifax, NS, Canada; Department of Oceanography, Dalhousie University, Halifax, NS, Canada","Rector M.E., Marine Affairs Program, Dalhousie University, Halifax, NS, Canada; Filgueira R., Marine Affairs Program, Dalhousie University, Halifax, NS, Canada; Grant J., Department of Oceanography, Dalhousie University, Halifax, NS, Canada","Aquaculture eco-certification is associated with some producer-level benefits including price premiums and market access; however, reputational benefits from eco-certification are unclear. A public survey was used to understand the effect of eco-certification on opinion of salmon farming in two Canadian provinces (British Columbia and Nova Scotia) and differences between communities where farms are located (communities of place) and communities geographically distant from farms (communities of interest). Eco-certification had an overall positive effect on opinion, especially amongst people with a negative opinion of salmon farming who value far-reaching social outcomes of farming. Communities of interest had a more negative opinion of salmon farming and eco-certified salmon farming and were more concerned about local environmental impacts than communities of place while communities of place valued economic outcomes more than communities of interest. The role of eco-certification in public acceptance of aquaculture is limited by a lack of trust in eco-certification and failure to address local issues including conflict amongst marine users. © 2023 Taylor & Francis Group, LLC.",aquaculture; eco-certification; governance; public opinion; salmon farming; social acceptance,British Columbia; Canada; Nova Scotia; accessibility; certification; comparative study; ecolabeling; environmental economics; environmental impact assessment; governance approach; local government; marine policy; salmonid fishery,"M.E. Rector; Marine Affairs Program, Life Sciences Centre, Dalhousie University, Halifax, 1459 Oxford Street, NS B3H 4R2, Canada; email: megan.rector@dal.ca",,Taylor and Francis Ltd.,,,,,,13657305,,AEMAF,,English,Aquac. Econ. Manage.,Article,Final,,Scopus,2-s2.0-85153041217 Van den Wyngaert S.; Cerbin S.; Garzoli L.; Grossart H.-P.; Gsell A.S.; Kraberg A.; Lepère C.; Neuhauser S.; Stupar M.; Tarallo A.; Cunliffe M.; Gachon C.; Gavrilović A.; Masigol H.; Rasconi S.; Selmeczy G.B.; Schmeller D.S.; Scholz B.; Timoneda N.; Trbojević I.; Wilk-Woźniak E.; Reñé A.,"Van den Wyngaert, Silke (35724752400); Cerbin, Slawek (6506394506); Garzoli, Laura (53663463100); Grossart, Hans-Peter (6701843345); Gsell, Alena S. (37052259200); Kraberg, Alexandra (7801323992); Lepère, Cécile (24329937900); Neuhauser, Sigrid (24484527400); Stupar, Miloš (25628956500); Tarallo, Andrea (56310253100); Cunliffe, Michael (14323214800); Gachon, Claire (12784607800); Gavrilović, Ana (22957828700); Masigol, Hossein (57188973472); Rasconi, Serena (26434900800); Selmeczy, Géza B. (55225971300); Schmeller, Dirk S. (55926964000); Scholz, Bettina (15021443500); Timoneda, Natàlia (56344129400); Trbojević, Ivana (57188704475); Wilk-Woźniak, Elżbieta (6602357189); Reñé, Albert (15923882200)",35724752400; 6506394506; 53663463100; 6701843345; 37052259200; 7801323992; 24329937900; 24484527400; 25628956500; 56310253100; 14323214800; 12784607800; 22957828700; 57188973472; 26434900800; 55225971300; 55926964000; 15021443500; 56344129400; 57188704475; 6602357189; 15923882200,"ParAquaSeq, a Database of Ecologically Annotated rRNA Sequences Covering Zoosporic Parasites Infecting Aquatic Primary Producers in Natural and Industrial Systems",2025,Molecular Ecology Resources,,,,,,,0,10.1111/1755-0998.14099,https://www.scopus.com/inward/record.uri?eid=2-s2.0-105000437146&doi=10.1111%2f1755-0998.14099&partnerID=40&md5=672a0fd1e3388f5a5f275d40b44f6ff6,"Department of Biology, University of Turku, Turku, Finland; Department of General Zoology, Faculty of Biology, Adam Mickiewicz University, Poznań, Poland; Water Research Institute (CNR-IRSA), National Research Council of Italy, Verbania, Italy; Department of Plankton and Microbial Ecology, Leibniz Institute of Freshwater Research and Inland Fisheries (IGB), Stechlin, Germany; Department of Biochemistry and Biology, Potsdam University, Potsdam, Germany; Department of Environmental Biology, Institute of Environmental Sciences (CML), University of Leiden, Leiden, Netherlands; Department of Aquatic Ecology, Institute of Ecology (NIOO-KNAW), Wageningen, Netherlands; Alfred Wegener Institute Helmholtz Centre for Polar and Marine Research, Bremerhaven, Germany; CNRS, Laboratoire Microorganismes: Génome et Environnement, Université Clermont Auvergne, Clermont-Ferrand, France; Institute of Microbiology, Universität Innsbruck, Innsbruck, Austria; Institute of Botany and Botanical Garden “Jevremovac”, Faculty of Biology, University of Belgrade, Belgrade, Serbia; National Research Council (CNR), Institute of Research on Terrestrial Ecosystems (IRET), Lecce, Italy; Marine Biological Association, The Laboratory, Plymouth, United Kingdom; School of Biological and Marine Sciences, University of Plymouth, Plymouth, United Kingdom; Muséum National d'Histoire Naturelle, UMR 7245 CNRS, CP 64, Paris, France; University of Zagreb Faculty of Agriculture, Zagreb, Croatia; Université Savoie Mont Blanc, INRAE, CARRTEL, Thonon les Bains, France; Research Group of Limnology, Center for Natural Science, University of Pannonia, Veszprém, Hungary; HUN-REN-PE Limnoecology Research Group, Veszprém, Hungary; Centre de Recherche sur la Biodiversité et l'Environnement (CRBE), Université de Toulouse, CNRS, IRD, Toulouse INP, Université Toulouse 3 – Paul Sabatier (UT3), Toulouse, France; BioPol ehf, Skagaströnd, Iceland; Department of Biologia Marina i Oceanografia, Institut de Ciències del Mar (ICM-CSIC), Catalonia, Barcelona, Spain; Institute of Nature Conservation, Polish Academy of Sciences, Kraków, Poland","Van den Wyngaert S., Department of Biology, University of Turku, Turku, Finland; Cerbin S., Department of General Zoology, Faculty of Biology, Adam Mickiewicz University, Poznań, Poland; Garzoli L., Water Research Institute (CNR-IRSA), National Research Council of Italy, Verbania, Italy; Grossart H.-P., Department of Plankton and Microbial Ecology, Leibniz Institute of Freshwater Research and Inland Fisheries (IGB), Stechlin, Germany, Department of Biochemistry and Biology, Potsdam University, Potsdam, Germany; Gsell A.S., Department of Environmental Biology, Institute of Environmental Sciences (CML), University of Leiden, Leiden, Netherlands, Department of Aquatic Ecology, Institute of Ecology (NIOO-KNAW), Wageningen, Netherlands; Kraberg A., Alfred Wegener Institute Helmholtz Centre for Polar and Marine Research, Bremerhaven, Germany; Lepère C., CNRS, Laboratoire Microorganismes: Génome et Environnement, Université Clermont Auvergne, Clermont-Ferrand, France; Neuhauser S., Institute of Microbiology, Universität Innsbruck, Innsbruck, Austria; Stupar M., Institute of Botany and Botanical Garden “Jevremovac”, Faculty of Biology, University of Belgrade, Belgrade, Serbia; Tarallo A., National Research Council (CNR), Institute of Research on Terrestrial Ecosystems (IRET), Lecce, Italy; Cunliffe M., Marine Biological Association, The Laboratory, Plymouth, United Kingdom, School of Biological and Marine Sciences, University of Plymouth, Plymouth, United Kingdom; Gachon C., Muséum National d'Histoire Naturelle, UMR 7245 CNRS, CP 64, Paris, France; Gavrilović A., University of Zagreb Faculty of Agriculture, Zagreb, Croatia; Masigol H., Department of Plankton and Microbial Ecology, Leibniz Institute of Freshwater Research and Inland Fisheries (IGB), Stechlin, Germany; Rasconi S., Université Savoie Mont Blanc, INRAE, CARRTEL, Thonon les Bains, France; Selmeczy G.B., Research Group of Limnology, Center for Natural Science, University of Pannonia, Veszprém, Hungary, HUN-REN-PE Limnoecology Research Group, Veszprém, Hungary; Schmeller D.S., Centre de Recherche sur la Biodiversité et l'Environnement (CRBE), Université de Toulouse, CNRS, IRD, Toulouse INP, Université Toulouse 3 – Paul Sabatier (UT3), Toulouse, France; Scholz B., BioPol ehf, Skagaströnd, Iceland; Timoneda N., Department of Biologia Marina i Oceanografia, Institut de Ciències del Mar (ICM-CSIC), Catalonia, Barcelona, Spain; Trbojević I., Institute of Botany and Botanical Garden “Jevremovac”, Faculty of Biology, University of Belgrade, Belgrade, Serbia; Wilk-Woźniak E., Institute of Nature Conservation, Polish Academy of Sciences, Kraków, Poland; Reñé A., Department of Biologia Marina i Oceanografia, Institut de Ciències del Mar (ICM-CSIC), Catalonia, Barcelona, Spain","Amplicon sequencing tools such as metabarcoding are commonly used for thorough characterisation of microbial diversity in natural samples. They mostly rely on the amplification of conserved universal markers, mainly ribosomal genes, allowing the taxonomic assignment of barcodes. However, linking taxonomic classification with functional traits is not straightforward and requires knowledge of each taxonomic group to confidently assign taxa to a given functional trait. Zoosporic parasites are highly diverse and yet understudied, with many undescribed species and host associations. However, they can have important impacts on host populations in natural ecosystems (e.g., controlling harmful algal blooms), as well as on industrial-scale algae production, e.g. aquaculture, causing their collapse or economic losses. Here, we present ParAquaSeq, a curated database of available molecular ribosomal sequences belonging to zoosporic parasites infecting aquatic vascular plants, macroalgae and photosynthetic microorganisms, i.e. microalgae and cyanobacteria. These sequences are aligned with ancillary data and other information currently available, including details on their hosts, occurrence, culture availability and associated bibliography. The database includes 1131 curated sequences from marine, freshwater and industrial or artificial environments, and belonging to 13 different taxonomic groups, including Chytridiomycota, Oomycota, Phytomyxea, and Syndiniophyceae. The curated database will allow a comprehensive analysis of zoosporic parasites in molecular datasets to answer questions related to their occurrence and distribution in natural communities. Especially through meta-analysis, the database serves as a valuable tool for developing effective mitigation and sustainable management strategies in the algae biomass industry, but it will also help to identify knowledge gaps for future research. © 2025 John Wiley & Sons Ltd.",aquatic plants; chytrids; fungal parasites; macroalgae; metabarcoding; macroalgae,,"A. Reñé; Department of Biologia Marina i Oceanografia, Institut de Ciències del Mar (ICM-CSIC), Barcelona, Catalonia, Spain; email: albertrene@icm.csic.es",,John Wiley and Sons Inc,,,,,,1755098X,,,,English,Mol. Ecol. Resour.,Article,Article in press,,Scopus,2-s2.0-105000437146 Nagel B.; Buhari N.; Partelow S.,"Nagel, Ben (57296331300); Buhari, Nurliah (55977938700); Partelow, Stefan (56415115600)",57296331300; 55977938700; 56415115600,Archetypes of community-based pond aquaculture in Indonesia: applying the social-ecological systems framework to examine sustainability tradeoffs,2024,Environmental Research Letters,19,4,044026,,,,6,10.1088/1748-9326/ad2e71,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85187954717&doi=10.1088%2f1748-9326%2fad2e71&partnerID=40&md5=0b095ae52e54857e522316d6c7da70ed,"Leibniz Centre for Tropical Marine Research (ZMT), Fahrenheitstraße 6, Bremen, 28359, Germany; Constructor University, Campus Ring 1, Bremen, 28759, Germany; University of Mataram, Mataram City, Indonesia; Center for Life Ethics, University of Bonn, Bonner Talweg 57, Bonn, 53113, Germany","Nagel B., Leibniz Centre for Tropical Marine Research (ZMT), Fahrenheitstraße 6, Bremen, 28359, Germany, Constructor University, Campus Ring 1, Bremen, 28759, Germany; Buhari N., University of Mataram, Mataram City, Indonesia; Partelow S., Leibniz Centre for Tropical Marine Research (ZMT), Fahrenheitstraße 6, Bremen, 28359, Germany, Center for Life Ethics, University of Bonn, Bonner Talweg 57, Bonn, 53113, Germany","We analyze archetypes of farmer groups conducting pond aquaculture across the province of Nusa Tenggara Barat, Indonesia using Ostrom’s social-ecological systems framework. Pond aquaculture farmers share coastal irrigation infrastructure as common property, among other resources, and are encouraged by the government to organize into groups with varying sets of evolved rules, norms, social practices and environmental conditions shaping what they produce, how and how much. Yet little is known about the diversity of these pond aquaculture communities, or what factors—both social and ecological—shape production trends and sustainability outcomes. We designed a standardized survey to collect data on 26 indicators from 85 diverse community-based fish farmer groups across the province. Data included indicators on ownership, rules, history, production trends, demographics, government involvement, livelihood dependence, environmental characteristics and risks. Clustering analysis was applied to identify five unique archetypes of pond aquaculture communities, each distinguished by a different set of development challenges and opportunities. Our findings highlight the need to move beyond a ‘one-size-fits-all’ policy approach. We suggest moving towards a locally adapted capacity building strategy that can recognize contextual needs so that policy programs can better target and differentiate between farmer groups that face similar challenges. We further discuss how empowering collective action among the farmers can reduce risks associated with producing blue food for local consumption and regional markets. © 2024 The Author(s). Published by IOP Publishing Ltd.",archetypes; cluster-based management; indonesia; aquaculture; smallholders; social-ecological systems,Indonesia; West Nusa Tenggara; Agriculture; Aquaculture; Commerce; Ecology; Lakes; Archetype; Cluster-based; Cluster-based management; Common property; Community-based; Indonesia; Pond aquacultures; Smallholder; Social-ecological systems; System framework; aquaculture; capacity building; collective action; irrigation system; pond culture; smallholder; sustainability; Sustainable development,"B. Nagel; Leibniz Centre for Tropical Marine Research (ZMT), Bremen, Fahrenheitstraße 6, 28359, Germany; email: ben.nagel@leibniz-zmt.de",,Institute of Physics,,,,,,17489326,,,,English,Environ.Res.Lett.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85187954717 Fu X.; Yang Y.; Zhang X.,"Fu, Xiaoshuang (57198669122); Yang, Yang (59420453500); Zhang, Xianqi (9248524100)",57198669122; 59420453500; 9248524100,Spatial-temporal variation of the ecosystem services value (ESV) in the Yellow River Delta wetland and its response to land use/land cover changes (lu/lc),2024,Journal of Freshwater Ecology,39,1,2419371,,,,1,10.1080/02705060.2024.2419371,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85209949844&doi=10.1080%2f02705060.2024.2419371&partnerID=40&md5=a1a58a481f57cc658f3f53d1cf259e92,"Department of Water Conservancy, Henan Vocational College of Water Conservancy and Environment, Zhengzhou, China; North China University of Water Resources and Electric Power, Zhengzhou, China","Fu X., Department of Water Conservancy, Henan Vocational College of Water Conservancy and Environment, Zhengzhou, China, North China University of Water Resources and Electric Power, Zhengzhou, China; Yang Y., Department of Water Conservancy, Henan Vocational College of Water Conservancy and Environment, Zhengzhou, China; Zhang X., North China University of Water Resources and Electric Power, Zhengzhou, China","The assessment of wetland ecosystem services value can provide theoretical basis for regional social and economic development, ecological environment protection and other planning and measures. Based on the factors of hydrology, meteorology, society, economy, resources, environment and culture, the value of wetland ecosystem services in the Yellow River Delta was evaluated by the revised equivalent factor method. The results showed that from 2005 to 2020, the area of tidal flat wetland decreased by 54.35%, and aquaculture increased by 206.91%. The total value of wetland ecosystem services increased from 28.03 billion CNY to 35.77 billion CNY, an increase of 27.63%, showing an N-shaped change of ""increase - decrease - increase"" on the whole. The ecosystem service value per unit area was more in coastal areas and less in inland areas. From 2005 to 2020, the ecosystem service sensitivity coefficient of the Yellow River Delta wetland was all less than 1. Under the premise of rational development and utilization, it is predicted that the value of ecological services will continue to increase in the future. © 2024 The Author(s). Published by Informa UK Limited, trading as Taylor & Francis Group.",ecosystem services; land use dynamic degree (ludd); land use land cover change; sensitivity coefficient (cs); the yellow river delta wetland,China; Shandong; Yellow River Delta; coastal wetland; coastal zone; ecosystem management; ecosystem service; land cover; land use change; sensitivity analysis; spatial variation; tidal flat,"X. Fu; Department of Water Conservancy, Henan Vocational College of Water Conservancy and Environment, Zhengzhou, China; email: 1099672847@qq.com",,Taylor and Francis Ltd.,,,,,,02705060,,JFRED,,English,J. Freshw. Ecol.,Article,Final,,Scopus,2-s2.0-85209949844 Engle C.R.; van Senten J.; Hegde S.; Kumar G.; Clark C.; Boldt N.; Fornshell G.; Hudson B.; Cassiano E.J.; DiMaggio M.A.,"Engle, Carole R. (7005192559); van Senten, Jonathan (57193847650); Hegde, Shraddha (57217381094); Kumar, Ganesh (56370736400); Clark, Charles (57226107602); Boldt, Noah (57298071200); Fornshell, Gary (6506316375); Hudson, Bobbi (57189745874); Cassiano, Eric J. (50460964900); DiMaggio, Matthew A. (16240880100)",7005192559; 57193847650; 57217381094; 56370736400; 57226107602; 57298071200; 6506316375; 57189745874; 50460964900; 16240880100,The National Regulatory Cost Burden on US aquaculture farms,2025,Journal of the World Aquaculture Society,56,2,e70005,,,,0,10.1111/jwas.70005,https://www.scopus.com/inward/record.uri?eid=2-s2.0-105000320139&doi=10.1111%2fjwas.70005&partnerID=40&md5=0f311a80e85fa004ac0bc3c1b3131249,"Engle-Stone Aquatic$ LLC, Strasburg, VA, United States; VA Seafood AREC, Virginia Tech University, Blacksburg, VA, United States; Texas A&M University, College Station, TX, United States; Mississippi State University, Mississippi State, MS, United States; ESC, Inc., Arlington, VA, United States; Aquaculture Results LLC, University of Idaho Extension, Moscow, ID, United States; Pacific Shellfish Institute, Olympia, WA, United States; Tropical Aquaculture Laboratory, University of Florida, Moscow, ID, United States","Engle C.R., Engle-Stone Aquatic$ LLC, Strasburg, VA, United States; van Senten J., VA Seafood AREC, Virginia Tech University, Blacksburg, VA, United States; Hegde S., Texas A&M University, College Station, TX, United States; Kumar G., Mississippi State University, Mississippi State, MS, United States; Clark C., VA Seafood AREC, Virginia Tech University, Blacksburg, VA, United States; Boldt N., ESC, Inc., Arlington, VA, United States; Fornshell G., Aquaculture Results LLC, University of Idaho Extension, Moscow, ID, United States; Hudson B., Pacific Shellfish Institute, Olympia, WA, United States; Cassiano E.J., Tropical Aquaculture Laboratory, University of Florida, Moscow, ID, United States; DiMaggio M.A., Tropical Aquaculture Laboratory, University of Florida, Moscow, ID, United States","Many government regulations have improved environmental and social quality of life in the United States, but others have resulted in negative consequences that exceed their benefits to society. This study estimated the total annual cost of regulatory compliance and lost revenue for US aquaculture. The total annual regulatory cost was $196 million (in 2023 USD), which accounted for 9%–30% of total annual costs, one of the top five costs of aquaculture production. Regulatory costs result in disproportionately greater per-unit costs of production on smaller-scale farms. Total annual lost revenue was $807 million (36% of total sales value), which resulted from lost sales and thwarted expansion opportunities from regulatory actions that either closed access to existing markets, forced reduced scales of production, or prevented attempts to expand production to meet existing demand for the farm's products. Accounting for multiplier effects, lost economic contributions were $1.4 billion annually, with >8000 jobs lost nationally from farms alone, not including associated supply chain partners. Well-designed regulations made use of best available science, participatory approaches to rule-making, sunset clauses for removal of outdated regulations, and market-based approaches. Pathways identified to improve regulatory efficiency included: (1) sunset clauses for each rule; (2) reward incentives (i.e., reduced testing frequency for farms with records of compliance) (3) standardized fish health testing requirements of sample size, farm-wide rather than lot testing, testing the most susceptible species/life stages; (4) non-lethal, multi-pathogen testing methods; (5) farm compensation for reverse externalities of avian predation; (6) appropriate risk management by experts to manage aquatic invasive species and pathogens; (7) training in aquaculture science, current farm practices, and appropriate, consistent, regulatory actions; (8) engagement with independent experts and producers throughout rule-making; (9) establishment of transparent appeals processes for farmers; (10) concurrent, not sequential review of permit requests by agencies; (11) long-term aquaculture literacy programs; and (12) an efficient, streamlined permitting and regulatory framework for mariculture. © 2025 The Author(s). Journal of the World Aquaculture Society published by Wiley Periodicals LLC on behalf of World Aquaculture Society.",aquaculture; aquaculture; regulations; regulatory costs; us aquaculture,United States; compliance; governance approach; mariculture; pathogenicity; regulatory framework; resource development,"C.R. Engle; Stone Aquatic$ LLC, Strasburg, 22657, United States; email: caroleengle2015@gmail.com",,John Wiley and Sons Inc,,,,,,08938849,,,,English,J. World Aquac. Soc.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-105000320139 Anh H.H.; Beaulieu A.; Da Hanh T.M.; Tru L.C.,"Anh, Hoang Ha (57189372220); Beaulieu, Antoine (57204298015); Da Hanh, Tran Minh (57212765081); Tru, Le Cong (6507222109)",57189372220; 57204298015; 57212765081; 6507222109,Economic effects of a controlled mangrove-to-pond coverage ratio policy on mangrove conservation and shrimp farming: A case study in vietnam using instrumental regression analysis,2024,"Trees, Forests and People",16,,100579,,,,3,10.1016/j.tfp.2024.100579,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85193220367&doi=10.1016%2fj.tfp.2024.100579&partnerID=40&md5=2a711d4c60c1cf7efaeb365e8f9aa541,"Faculty of Economics, Nong Lam University, Ho Chi Minh City, Viet Nam; Département de géographie, Université Laval, Québec, Canada","Anh H.H., Faculty of Economics, Nong Lam University, Ho Chi Minh City, Viet Nam; Beaulieu A., Département de géographie, Université Laval, Québec, Canada; Da Hanh T.M., Faculty of Economics, Nong Lam University, Ho Chi Minh City, Viet Nam; Tru L.C., Faculty of Economics, Nong Lam University, Ho Chi Minh City, Viet Nam","The mangrove-shrimp farming model in Vietnam's Mekong Delta region was devised to foster mangrove conservation while supporting the livelihoods of small-scale shrimp farmers by allocating them land for both mangrove protection and shrimp farming. However, this model faces challenges as farmers often clear mangrove areas to expand shrimp ponds, seeking greater profits. Based on data collected from structured interviews with shrimp farming households, an Instrumental Variable (IV) regression method is used in this study to examine the economic viability of mangrove-shrimp farming in the Tam Giang Protection Forest of Ca Mau province and predict the impacts of recommended fixed mangrove-to-pond coverage ratios (MPR) on shrimp yield and household income in two different scenarios. Findings reveal that almost half of the surveyed farmers do not meet the recommended MPR, prioritizing pond expansion over mangrove protection, suggesting prevalent noncompliance and ineffective regulatory enforcement. Additionally, the research highlighted the critical role of mangrove-shrimp farming in the livelihoods of these communities, with findings indicating that even minimal increases in pond area can enhance productivity. Conversely, stricter pond coverage regulations could potentially worsen the economic situation for numerous households. © 2024 The Author(s)",economic benefits; iv regression; mangroves; mangrove deforestation; vietnam,Mekong Delta; Viet Nam; conservation management; economic impact; environmental economics; environmental protection; household income; livelihood; mangrove; policy analysis; regression analysis; shrimp culture,"H.H. Anh; Faculty of Economics, Nong Lam University, Ho Chi Minh City, Viet Nam; email: hoanghaanh@hcmuaf.edu.vn",,Elsevier B.V.,,,,,,26667193,,,,English,Tree. For. People.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85193220367 Dubey S.K.; Padiyar A.; Chadag V.M.; Shenoy N.; Gaikwad A.B.; Ratha B.C.; Belton B.,"Dubey, Sourabh Kumar (58723097200); Padiyar, Arun (36574123300); Chadag, Vishnumurthy Mohan (7102973864); Shenoy, Neetha (58298431900); Gaikwad, Amar Bharat (59317660300); Ratha, Baishnaba Charan (58298178700); Belton, Ben (23093021000)",58723097200; 36574123300; 7102973864; 58298431900; 59317660300; 58298178700; 23093021000,"Scaling community-based aquaculture for enhanced nutrition and women’s empowerment: lessons from Odisha, India",2024,Frontiers in Sustainable Food Systems,8,,1412686,,,,1,10.3389/fsufs.2024.1412686,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85203347804&doi=10.3389%2ffsufs.2024.1412686&partnerID=40&md5=f182b85a03a6b8546f1c034c38aa0a7a,"WorldFish, Odisha, Bhubaneswar, India; WorldFish, Penang, Malaysia; International Food Policy Research Institute, Dhaka, Bangladesh","Dubey S.K., WorldFish, Odisha, Bhubaneswar, India; Padiyar A., WorldFish, Odisha, Bhubaneswar, India; Chadag V.M., WorldFish, Penang, Malaysia; Shenoy N., WorldFish, Odisha, Bhubaneswar, India; Gaikwad A.B., WorldFish, Odisha, Bhubaneswar, India; Ratha B.C., WorldFish, Odisha, Bhubaneswar, India; Belton B., International Food Policy Research Institute, Dhaka, Bangladesh","Introduction: Aquatic foods, particularly fish, are essential for addressing malnutrition, especially in vulnerable populations like children and women. In India, traditional aquaculture practices centered around carp species often overlooked the production of nutrient-rich small fish. To address this, nutrition-sensitive aquaculture approaches advocate for integrating species like mola carplet (Amblypharyngodon mola) rich in micronutrients, into existing systems. In Odisha, India, where poverty and food insecurity are prevalent, the government initiated a program to empower women through aquaculture, focusing on nutrition-sensitive carp-mola polyculture in community ponds through Women Self-Help Groups (WSHGs). Methods: This study evaluates the effectiveness of this government program in enhancing income, household nutrition, and women’s empowerment. Data from field surveys conducted across all 30 districts of Odisha were analyzed to assess participation, capacity building, adoption of better management practices (BMPs), productivity of carp-mola polyculture, household fish consumption, and profitability. Results and discussion: The study found widespread participation and adoption of BMPs among WSHGs, leading to increased productivity and income. Carp-mola polyculture systems showed higher productivity and consumption rates, contributing to improved nutrition among WSHGs and their communities. Despite challenges such as input costs and limited mola availability, WSHGs reported profitability from fish farming, with carp-mola polyculture systems yielding higher net income. Factors influencing productivity and profitability included water retention period, stocking density, feed application, and training. The program’s impact extended beyond economic benefits, encompassing environmental improvement, women’s empowerment, and enhanced nutrition outcomes. The study highlights the success of the government program in promoting sustainable aquaculture practices and improving nutrition outcomes in Odisha. Continued support, capacity building, and collaboration among stakeholders are essential for scaling up nutrition-sensitive aquaculture interventions and ensuring long-term sustainability. Strengthening dissemination processes, addressing challenges, and further research on small indigenous fish production techniques are crucial for maximizing the program’s impact on food security and rural development. Copyright © 2024 Dubey, Padiyar, Chadag, Shenoy, Gaikwad, Ratha and Belton.",carp-mola polyculture; community ponds; nutrition-sensitive aquaculture; odisha; women self-help groups,,"S.K. Dubey; WorldFish, Bhubaneswar, Odisha, India; email: s.dubey@cgiar.org",,Frontiers Media SA,,,,,,2571581X,,,,English,Front. Sustain. food Syst.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85203347804 Schrobback P.; Zhang A.; Maxwell C.; Tacconi F.; Ujiie K.; Yang S.-H.; Kim M.-K.; Ha T.M.; Wardyani L.; Feng N.; Saunders C.; Guenther M.; Kim H.-N.; Samala N.,"Schrobback, Peggy (36601311000); Zhang, Airong (7402772964); Maxwell, Christina (58967691700); Tacconi, Francesco (57411511300); Ujiie, Kiyokazu (36610908500); Yang, Shang-Ho (55602082700); Kim, Man-Keun (8661159500); Ha, Thanh Mai (57205264907); Wardyani, Lintang (59665574000); Feng, Ningning (57218489877); Saunders, Caroline (55391882200); Guenther, Meike (55390018200); Kim, Hwa-Nyeon (57211792868); Samala, Nagaraj (57203587247)",36601311000; 7402772964; 58967691700; 57411511300; 36610908500; 55602082700; 8661159500; 57205264907; 59665574000; 57218489877; 55391882200; 55390018200; 57211792868; 57203587247,Consumer preferences for seafood sustainability attributes: A comparative study of 12 markets,2025,Food Quality and Preference,130,,105538,,,,0,10.1016/j.foodqual.2025.105538,https://www.scopus.com/inward/record.uri?eid=2-s2.0-105002567020&doi=10.1016%2fj.foodqual.2025.105538&partnerID=40&md5=18507d508cad519817d739464a6b0dfa,"Commonwealth Scientific and Industrial Research Organisation (CSIRO), Agriculture and Food, 306 Carmody Road, St Lucia, 4067, QLD, Australia; Commonwealth Scientific and Industrial Research Organisation (CSIRO), Health and Biosecurity, 41 Boggo Road, Dutton Park, 4102, QLD, Australia; The University of Queensland (UQ), School of Psychology, St Lucia, 4072, QLD, Australia; University of Tsukuba, Faculty of Life and Environmental Sciences, 1-1-1 Tennodai Tsukuba-shi, Ibaraki, Japan; National Chung Hsing University, Graduate Institute of Bio-Industry Management, 145 Xingda Rd., South District, Taichung City, 40227, Taiwan; Utah State University, Department of Applied Economics, 4835 Old Main Hill, Logan, 84322, UT, United States; Swedish University of Agricultural Sciences, Department of Economics, Ulls väg 27, Uppsala, 7565, Sweden; Vietnam National University of Agriculture, Trau Quy - Gia Lam, Hanoi, Viet Nam; Kaleka, Jalan Padang Galak No. 17, Kesiman Petilan, East Denpasar, 80237, Indonesia; East China Normal University, Institute of Brain and Education Innovation, East China Normal University, 3663 Zhongshan Road N, Shanghai, 200062, China; Lincoln University, Agribusiness & Economics Research Unit, Lincoln University, PO Box 85084, Lincoln, 7647, New Zealand; Jeju National University, Department of Applied Economics, 102 Jejudaehak-ro, Jeju-si, Jeju-do, 63243, South Korea; Institute of Technology and Science, School of Innovation and Management, Ambedkar Nagar, Film Nagar, Telangana, Hyderabad, 500033, India","Schrobback P., Commonwealth Scientific and Industrial Research Organisation (CSIRO), Agriculture and Food, 306 Carmody Road, St Lucia, 4067, QLD, Australia; Zhang A., Commonwealth Scientific and Industrial Research Organisation (CSIRO), Health and Biosecurity, 41 Boggo Road, Dutton Park, 4102, QLD, Australia; Maxwell C., Commonwealth Scientific and Industrial Research Organisation (CSIRO), Health and Biosecurity, 41 Boggo Road, Dutton Park, 4102, QLD, Australia, The University of Queensland (UQ), School of Psychology, St Lucia, 4072, QLD, Australia; Tacconi F., Commonwealth Scientific and Industrial Research Organisation (CSIRO), Agriculture and Food, 306 Carmody Road, St Lucia, 4067, QLD, Australia; Ujiie K., University of Tsukuba, Faculty of Life and Environmental Sciences, 1-1-1 Tennodai Tsukuba-shi, Ibaraki, Japan; Yang S.-H., National Chung Hsing University, Graduate Institute of Bio-Industry Management, 145 Xingda Rd., South District, Taichung City, 40227, Taiwan; Kim M.-K., Utah State University, Department of Applied Economics, 4835 Old Main Hill, Logan, 84322, UT, United States; Ha T.M., Swedish University of Agricultural Sciences, Department of Economics, Ulls väg 27, Uppsala, 7565, Sweden, Vietnam National University of Agriculture, Trau Quy - Gia Lam, Hanoi, Viet Nam; Wardyani L., Kaleka, Jalan Padang Galak No. 17, Kesiman Petilan, East Denpasar, 80237, Indonesia; Feng N., East China Normal University, Institute of Brain and Education Innovation, East China Normal University, 3663 Zhongshan Road N, Shanghai, 200062, China; Saunders C., Lincoln University, Agribusiness & Economics Research Unit, Lincoln University, PO Box 85084, Lincoln, 7647, New Zealand; Guenther M., Lincoln University, Agribusiness & Economics Research Unit, Lincoln University, PO Box 85084, Lincoln, 7647, New Zealand; Kim H.-N., Jeju National University, Department of Applied Economics, 102 Jejudaehak-ro, Jeju-si, Jeju-do, 63243, South Korea; Samala N., Institute of Technology and Science, School of Innovation and Management, Ambedkar Nagar, Film Nagar, Telangana, Hyderabad, 500033, India","Seafood consumers are increasingly becoming aware of products with sustainability attributes, such as low greenhouse gas emissions, animal health/welfare, and work conditions in the fishery/aquaculture sector. However, it is unclear how consumers rank these attributes in their purchase decisions compared to conventional attributes such as price, product appearance, food safety, and taste. There is also limited information available about how consumers' preferences vary across countries. This study aimed to examine consumer preferences for key sustainable and conventional seafood attributes across 12 markets. The best-worst scaling method was applied to an online survey design (N = 12,222), which was conducted between November 2023 to February 2024 in Australia, China, Hong Kong, India, Indonesia, Japan, New Zealand, Singapore, South Korea, Taiwan, USA, and Vietnam. The results suggest that, for all markets, food safety and taste were ranked as the most important attributes, followed by sustainability attributes such as seafood with healthy fish populations, compliance with regulations, and limited pollution. Social/ethical seafood attributes such as work conditions, animal health/welfare, and community engagement ranked among the least important across all markets. A latent class analysis identified four consumer segments across the 12 markets in relation to preferences for seafood attributes: the ‘sustainability-interested’, ‘indecisive’, ‘origin-focused’, and ‘traditional’ consumers. The findings from this study can help seafood suppliers better understand the current market for sustainability seafood attributes as a foundation for targeted promotion of their seafood products to specific consumer groups and markets. © 2025",attribute; best-worst-scaling; consumer preference; eco-label; latent class; market; seafood; sustainability,,"P. Schrobback; Commonwealth Scientific and Industrial Research Organisation (CSIRO), Agriculture and Food, St Lucia, 306 Carmody Road, 4067, Australia; email: peggy.schrobback@csiro.au",,Elsevier Ltd,,,,,,09503293,,FQPRE,,English,Food Qual. Preference,Article,Final,,Scopus,2-s2.0-105002567020 Tuapetel F.; Rahman R.,"Tuapetel, Friesland (57196943613); Rahman, Rahman (57210440570)",57196943613; 57210440570,"Utilization of Fish Resources and Conservation Efforts in Ambon Bay, Indonesia",2025,Egyptian Journal of Aquatic Biology and Fisheries,29,1,,1425,1435,10,3,10.21608/ejabf.2025.410760,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85218788817&doi=10.21608%2fejabf.2025.410760&partnerID=40&md5=fee9823b3c173250f1b689a039c429a1,"Department of Utilization of Fisheries Resources, Faculty of Fisheries and Marine Science, Pattimura University, Jl. Mr. Chr. Soplanit, Ambon, 97233, Indonesia; Research Collaboration Center, Pattimura University-National Research and Innovation Agency, Indonesia; Department of Marine Science, Faculty of Fisheries and Marine Science, Pattimura University, Jl. Mr. Chr. Soplanit, Ambon, 97233, Indonesia","Tuapetel F., Department of Utilization of Fisheries Resources, Faculty of Fisheries and Marine Science, Pattimura University, Jl. Mr. Chr. Soplanit, Ambon, 97233, Indonesia, Research Collaboration Center, Pattimura University-National Research and Innovation Agency, Indonesia; Rahman R., Department of Marine Science, Faculty of Fisheries and Marine Science, Pattimura University, Jl. Mr. Chr. Soplanit, Ambon, 97233, Indonesia","Fish resources are critical for the livelihoods of local communities in Ambon Bay, which has historically served as a key area for small-scale bait fisheries, particularly small pelagic species. However, these resources have experienced a significant decline, with species now becoming increasingly scarce. This reduction is primarily attributed to anthropogenic impacts and overexploitation. Addressing this decline requires a scientific understanding of fish resource utilization and the development of community awareness regarding sustainable practices, though research in this area remains limited. This study employed a combination of ichthyofauna diversity surveys, participant observations, and forty-two interviews conducted in four locations across Ambon Bay. Respondents included fishermen, government officials, researchers, and academics. The involvement of these stakeholders provided insights into local knowledge, traditional practices, and the community’s role in fish resource management. Observations focused on fish reproductive maturity, habitat conditions, and fishing seasons, creating a comprehensive overview of resource utilization. The findings indicated a notable decline in the abundance, species variety, and size of fish resources in the bay. Community-based initiatives to shift from capture fisheries to aquaculture, proposals for the transplantation of Stolephorus indicus and Encrasicholina heteroloba, and the enforcement of regional regulations emerge as viable strategies for mitigation. This study underscored the importance of collaborative efforts among stakeholders to ensure the sustainable utilization of fish resources in Ambon Bay, aiming to secure ecological and socioeconomic benefits for future generations. © 2025, Egyptian Society for the Development of Fisheries and Human Health. All rights reserved.",ambon bay; degradation; fisheries resources; sustainability,,"F. Tuapetel; Department of Utilization of Fisheries Resources, Faculty of Fisheries and Marine Science, Pattimura University, Ambon, Jl. Mr. Chr. Soplanit, 97233, Indonesia; email: friesland.tuapetel@lecturer.unpatti.ac.id",,Egyptian Society for the Development of Fisheries and Human Health,,,,,,11106131,,,,English,Egypt. J. Aquat. Biol. Fish.,Article,Final,,Scopus,2-s2.0-85218788817 Furoida A.N.; Susilowati I.; Iskandar D.D.,"Furoida, Aini Nur (57967184600); Susilowati, Indah (6507735168); Iskandar, Deden Dinar (57196194463)",57967184600; 6507735168; 57196194463,Achieving Conservation Goals Through Sustainable Practices in Karimunjawa National Park,2025,International Journal of Sustainable Development and Planning,20,1,,369,377,8,0,10.18280/ijsdp.200133,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85216250500&doi=10.18280%2fijsdp.200133&partnerID=40&md5=50ce04f94d0eda5ba6a1ce3f9cb86772,"Doctoral of Economics Program, Faculty of Economic and Business, Universitas Diponegoro, Semarang, 50241, Indonesia; Department of Economic Program, Faculty of Economic and Business, Universitas Diponegoro, Semarang, 50241, Indonesia","Furoida A.N., Doctoral of Economics Program, Faculty of Economic and Business, Universitas Diponegoro, Semarang, 50241, Indonesia; Susilowati I., Department of Economic Program, Faculty of Economic and Business, Universitas Diponegoro, Semarang, 50241, Indonesia; Iskandar D.D., Department of Economic Program, Faculty of Economic and Business, Universitas Diponegoro, Semarang, 50241, Indonesia","Karimunjawa National Park is tasked by the government with implementing a zoning system and sustainability principles to enhance marine conservation efforts. This study aims to evaluate assistance for achieving sustainability in Karimunjawa National Park. This research employed snowball sampling and conducted semi-structured interviews with 130 participants: 65 fishermen, 35 tourist stakeholders, and 30 aquaculture practitioners. This study employed a mixed-method approach, incorporating both descriptive statistical analysis and qualitative descriptive analysis. The findings of this research indicate that the community recognizes the zoning system for sustainability; nonetheless, the economic dimension is more predominant than the social and ecological elements. The dilemma between economic development and ecological preservation is an obstacle for the implementation of economic growth programs in Karimunjawa National Park. ©2025 The authors.",blue growth; karimunjawa national park; marine conservation; sustainability,Central Java; Greater Sunda Islands; Java; Karimunjawa Islands; Karimunjawa National Park; Sunda Isles; aquaculture; conservation management; economic development; economic growth; government; marine environment; policy implementation; stakeholder; statistical analysis; zoning system,"A.N. Furoida; Doctoral of Economics Program, Faculty of Economic and Business, Universitas Diponegoro, Semarang, 50241, Indonesia; email: ainifuroida@gmail.com",,International Information and Engineering Technology Association,,,,,,17437601,,,,English,Int. J. Sustainable Dev. Plann.,Article,Final,,Scopus,2-s2.0-85216250500 Gaglio M.; Lanzoni M.; Cavicchi D.; Turolla E.; Vincenzi F.; Soana E.; Castaldelli G.,"Gaglio, M. (56507037400); Lanzoni, M. (53863855100); Cavicchi, D. (58543001700); Turolla, E. (6603824664); Vincenzi, F. (7005432533); Soana, E. (37038440500); Castaldelli, G. (6506146259)",56507037400; 53863855100; 58543001700; 6603824664; 7005432533; 37038440500; 6506146259,Ecosystem accounting applied to the restoration of a brackish coastal lagoon highlights the importance of individual ecosystem-level studies,2024,Ecosystem Services,70,,101676,,,,0,10.1016/j.ecoser.2024.101676,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85207710353&doi=10.1016%2fj.ecoser.2024.101676&partnerID=40&md5=d84618c787471a5d1cd758b8b534b5b6,"Department of Environmental and Prevention Sciences, University of Ferrara, via L. Borsari 42, Ferrara, 44121, Italy; Istituto Delta Ecologia Applicata, Via B. Bartok, 29/B, Ferrara, 44124, Italy","Gaglio M., Department of Environmental and Prevention Sciences, University of Ferrara, via L. Borsari 42, Ferrara, 44121, Italy; Lanzoni M., Department of Environmental and Prevention Sciences, University of Ferrara, via L. Borsari 42, Ferrara, 44121, Italy; Cavicchi D., Department of Environmental and Prevention Sciences, University of Ferrara, via L. Borsari 42, Ferrara, 44121, Italy; Turolla E., Istituto Delta Ecologia Applicata, Via B. Bartok, 29/B, Ferrara, 44124, Italy; Vincenzi F., Department of Environmental and Prevention Sciences, University of Ferrara, via L. Borsari 42, Ferrara, 44121, Italy; Soana E., Department of Environmental and Prevention Sciences, University of Ferrara, via L. Borsari 42, Ferrara, 44121, Italy; Castaldelli G., Department of Environmental and Prevention Sciences, University of Ferrara, via L. Borsari 42, Ferrara, 44121, Italy","Ecosystem accounting is increasingly used at national and regional levels to guide environmental management. Nonetheless, there is a lack of accurate data on individual ecosystems, which hampers the reliability of upscaling analyses critical to understanding human impacts on ecosystems. Delta areas are particularly challenging due to the complex and unique ecological characteristics created by human activities interacting with aquatic and terrestrial domains. This study aims to address this gap by compiling a comprehensive set of ecosystem accounts that cover extent, condition and services at the individual ecosystem level. In particular, the applicability of the System of Environmental-Economic Accounting – Ecosystem Accounting (SEEA-EA) framework will be evaluated in the context of a restoration project at the Sacca di Goro lagoon, a coastal brackish lagoon located in the Po delta (Northern Italy). The analysis shows that the SEEA-EA can effectively capture the impact of various factors, including environmental measures, socio-economic trends, climate change, and biological invasions, on an individual ecosystem. The environmental interventions resulted in a significant restoration of reed habitats and an improvement in the abiotic characteristics. However, other drivers acting at different scales had negative impacts on biotic indicators. The decline of the fishery in the Adriatic region, along with climate change and the recent invasion of blue crabs, has significantly impacted the fish community and clam farming, resulting in the loss of valuable provisioning services such as fishery and aquaculture. The case of the Sacca di Goro lagoon demonstrates that local measures can enhance ecological conditions and some regulating services but other larger-scale factors may have relevant and unexpected impacts. To scale up the analysis at a national or regional level, further research on individual ecosystem types is necessary, especially in the case of deltas and estuaries. © 2024 The Authors",aquaculture; ecological mangrove restoration; fishery; natural capital; po river delta; psa,,"M. Lanzoni; Department of Environmental and Prevention Sciences, University of Ferrara, Ferrara, via L. Borsari 42, 44121, Italy; email: mattia.lanzoni@unife.it",,Elsevier B.V.,,,,,,22120416,,,,English,Ecosyst. Serv.,Article,Final,All Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85207710353 Zhong J.; Wu X.; Wu S.; Wang Y.; Peng S.,"Zhong, Jingqiu (57198686215); Wu, Xuexue (58909502500); Wu, Shuai (58909442200); Wang, Yunqi (58704479200); Peng, Shuai (58909407600)",57198686215; 58909502500; 58909442200; 58704479200; 58909407600,Regional patterns and factors analysis of the sustainable development of benefits in China's national-level marine ranching: Based on shellfish and algae,2024,Journal of Cleaner Production,467,,142994,,,,2,10.1016/j.jclepro.2024.142994,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85197098020&doi=10.1016%2fj.jclepro.2024.142994&partnerID=40&md5=b4a12ee98c46e544180838d878da782e,"State Key Laboratory of Resources and Environmental Information System, Institute of Geographic Sciences and Natural Resources Research, CAS, Beijing, 100101, China; Key Research Base of Humanities and Social Sciences of Ministry of Education, Institute of Marine Sustainable Development, Liaoning Normal University, Dalian, 116029, China; University Collaborative Innovation Center of Marine Economy High-Quality Development of Liaoning Province, Dalian, 116029, China","Zhong J., State Key Laboratory of Resources and Environmental Information System, Institute of Geographic Sciences and Natural Resources Research, CAS, Beijing, 100101, China, Key Research Base of Humanities and Social Sciences of Ministry of Education, Institute of Marine Sustainable Development, Liaoning Normal University, Dalian, 116029, China, University Collaborative Innovation Center of Marine Economy High-Quality Development of Liaoning Province, Dalian, 116029, China; Wu X., Key Research Base of Humanities and Social Sciences of Ministry of Education, Institute of Marine Sustainable Development, Liaoning Normal University, Dalian, 116029, China, University Collaborative Innovation Center of Marine Economy High-Quality Development of Liaoning Province, Dalian, 116029, China; Wu S., Key Research Base of Humanities and Social Sciences of Ministry of Education, Institute of Marine Sustainable Development, Liaoning Normal University, Dalian, 116029, China, University Collaborative Innovation Center of Marine Economy High-Quality Development of Liaoning Province, Dalian, 116029, China; Wang Y., Key Research Base of Humanities and Social Sciences of Ministry of Education, Institute of Marine Sustainable Development, Liaoning Normal University, Dalian, 116029, China, University Collaborative Innovation Center of Marine Economy High-Quality Development of Liaoning Province, Dalian, 116029, China; Peng S., Key Research Base of Humanities and Social Sciences of Ministry of Education, Institute of Marine Sustainable Development, Liaoning Normal University, Dalian, 116029, China, University Collaborative Innovation Center of Marine Economy High-Quality Development of Liaoning Province, Dalian, 116029, China","National-level marine ranching plays an important role in enhancing the marine ecological environment, fostering social and economic development, and bolstering human well-being. Quantitatively analyzing the level of coordinated development of its “ecological-economic-social” benefits and the factors influencing them is of great theoretical significance and practical value for refining the new round of development planning and guiding its construction and management. Therefore, on the basis of establishing a theoretical framework for the interaction of “ecological-economic-social” benefits, shellfish and algae were selected as research objects. We calculated the levels of ecological, economic, and social benefits, explored the interrelationships among the three using the coupled coordination model, and analyzed the influencing factors by using multivariate linear regression and geographically weighted regression. The results showed that: (1) In 2015 and 2021, the ecological and economic benefits of national-level marine ranching for shellfish and algae were better than the social benefits, in which the ecological and social benefits were stable, while the economic benefits were more variable; (2) The degree of coordination of the coupling between the three benefits in each province was mostly low, with most experiencing severe disorder; (3) The level of openness to the outside world and the standard of living of fishermen contributed positively to the coordination of benefit coupling between shellfish and algae. Conversely, the level of science and technology, innovation capacity, and the level of social development had a slightly negative impact. In conclusion, shellfish and algal aquaculture in China's national-level marine ranching significantly contributes to the ecological, economic, and social systems. However, the merits and demerits of natural, social, and economic factors must be comprehensively considered to promote the sustainable development of marine ranching. © 2024 Elsevier Ltd",ecological mangrove restoration; national-level marine ranching; shellfish and algae; sustainability,Ecology; Economic and social effects; Sustainable development; Ecological benefits; Ecological economics; Ecological-economic-social benefit; Economic benefits; National level; National-level marine ranching; Regional factors; Regional pattern; Shellfish and alga; Social benefits; Algae,"J. Zhong; Key Research Base of Humanities and Social Sciences of Ministry of Education, Institute of Marine Sustainable Development, Liaoning Normal University, Dalian, 116029, China; email: zjq@lnnu.edu.cn",,Elsevier Ltd,,,,,,09596526,,JCROE,,English,J. Clean. Prod.,Article,Final,,Scopus,2-s2.0-85197098020 Imdad K.; Rihan M.; Sahana M.; Parween S.; Ahmed R.; Costache R.; Chaudhary A.; Tripathi R.,"Imdad, Kashif (57218418846); Rihan, Mohd (57217425146); Sahana, Mehebub (57192557159); Parween, Samsad (57223309504); Ahmed, Rayees (57224404012); Costache, Romulus (55888132500); Chaudhary, Archana (57811734500); Tripathi, Richa (57210212565)",57218418846; 57217425146; 57192557159; 57223309504; 57224404012; 55888132500; 57811734500; 57210212565,"Wetland health, water quality, and resident perceptions of declining ecosystem services: a case study of Mount Abu, Rajasthan, India",2023,Environmental Science and Pollution Research,30,55,,116617,116643,26,20,10.1007/s11356-022-21902-7,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85134479415&doi=10.1007%2fs11356-022-21902-7&partnerID=40&md5=49915b608486d63a22998b1a6da84901,"Department of Geography, Pandit Prithi Nath PG College (affiliated to Chhatrapati Shahu Ji Maharaj University), 96/12, Mahatma Gandhi Marg, Uttar Pradesh, Kanpur, 208001, India; Department of Geography, Faculty of Natural Sciences, Jamia Millia Islamia, New Delhi, 110025, India; Department of Geography, School of Environment, Education and Development, University of Manchester, Oxford Road, Manchester, M13 9PL, United Kingdom; Department of Geography, Aligarh Muslim University, Aligarh, India; Department of Geography and Disaster Management, University of Kashmir, Kashmir, India; Department of Civil Engineering, Transilvania University of Brasov, 5, Turnului Str, Brasov, 500152, Romania; Danube Delta National Institute for Research and Development, 165 Babadag Street, 820112, Tulcea, Romania; Department of Geography, Mahabali Mevalal Mahavidyalaya, UP, Tikaula Lakhimpur, India","Imdad K., Department of Geography, Pandit Prithi Nath PG College (affiliated to Chhatrapati Shahu Ji Maharaj University), 96/12, Mahatma Gandhi Marg, Uttar Pradesh, Kanpur, 208001, India; Rihan M., Department of Geography, Faculty of Natural Sciences, Jamia Millia Islamia, New Delhi, 110025, India; Sahana M., Department of Geography, School of Environment, Education and Development, University of Manchester, Oxford Road, Manchester, M13 9PL, United Kingdom; Parween S., Department of Geography, Aligarh Muslim University, Aligarh, India; Ahmed R., Department of Geography and Disaster Management, University of Kashmir, Kashmir, India; Costache R., Department of Civil Engineering, Transilvania University of Brasov, 5, Turnului Str, Brasov, 500152, Romania, Danube Delta National Institute for Research and Development, 165 Babadag Street, 820112, Tulcea, Romania; Chaudhary A., Department of Geography, Mahabali Mevalal Mahavidyalaya, UP, Tikaula Lakhimpur, India; Tripathi R., Department of Geography, Pandit Prithi Nath PG College (affiliated to Chhatrapati Shahu Ji Maharaj University), 96/12, Mahatma Gandhi Marg, Uttar Pradesh, Kanpur, 208001, India","Ecosystem services provided by wetlands are essential for communities living near wetlands, especially in an underdeveloped semi-arid landscape. The land use land cover changes and ecosystem degradation and water quality change over the past few decades have had immense effects on declining wetland ecosystem services. With the degradation, it is exerting superfluous effects on wetland communities including loss of livelihood, and decline in other wetland services like fishing, aquaculture, fuelwood, fodder, and many more. The present study attempts to assess the changing nature of wetland health, water quality, and declining ecosystem services of Mount Abu wetlands in Rajasthan, India. For assessing the change of wetland extent, we have used the remote sensing–based data for preparation of land use land cover change from 1992 to 2020. The water samples have been collected from the wetland, and different biophysical parameters of the water have been tested in the laboratory. A questionnaire-based household survey has been conducted to understand the perception of the wetland communities on the loss of ecosystem services over three decades. Further, a correlation and cluster assessment has been conducted to understand the degradation of wetland health in the selected wetlands. The study results indicated deteriorating conditions of wetland health and declining ecosystem services in the study area over the time periods. The land use land cover change analysis indicated a decrease in the spatial extent of the wetlands in the study area. Wetland communities are being affected due to the degradation of wetland health. The study recommended executing a wetland management plan for long-term conservation and livelihood management for the Mount Abu wetlands and communities. © 2022, The Author(s), under exclusive licence to Springer-Verlag GmbH Germany, part of Springer Nature.",banas river basin; ecosystem services; lulc; wetlands communities; wetlands communities,Conservation of Natural Resources; Ecosystem; Environmental Monitoring; India; Water Quality; Wetlands; ecosystem; environmental monitoring; environmental protection; India; procedures; water quality; wetland,"M. Sahana; Department of Geography, School of Environment, Education and Development, University of Manchester, Manchester, Oxford Road, M13 9PL, United Kingdom; email: mehebubsahana@gmail.com",,Springer,,,,,,09441344,,ESPLE,35854070,English,Environ. Sci. Pollut. Res.,Article,Final,,Scopus,2-s2.0-85134479415 Xu C.; Su G.; Zhao K.; Kong X.; Wang H.; Xu X.; Li Z.; Zhang M.; Xu J.,"Xu, Congjun (57226781962); Su, Guohuan (56514607400); Zhao, Kangshun (57203619846); Kong, Xianghong (57222388114); Wang, Hongxia (55189263500); Xu, Xiaoqi (57847557600); Li, Ziqi (57657721700); Zhang, Min (57219100162); Xu, Jun (57043691600)",57226781962; 56514607400; 57203619846; 57222388114; 55189263500; 57847557600; 57657721700; 57219100162; 57043691600,Societal benefits and environmental performance of Chinese aquaculture,2023,Journal of Cleaner Production,422,,138645,,,,12,10.1016/j.jclepro.2023.138645,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85170546305&doi=10.1016%2fj.jclepro.2023.138645&partnerID=40&md5=67a56ad6d079a36fbaf5827d33c02a4d,"Institute of Hydrobiology, Chinese Academy of Sciences, Wuhan, 430072, China; University of Chinese Academy of Sciences, Beijing, 100049, China; College of Fisheries and Life Science, Dalian Ocean University, Dalian, 116000, China; College of Fisheries, Huazhong Agricultural University, Hubei Provincial Engineering Laboratory for Pond Aquaculture, Freshwater Aquaculture Collaborative Innovation Center of Hubei Province, Wuhan, 430070, China; State Key Laboratory of Marine Resource Utilization in South China Sea, Hainan University, Haikou, 570228, China; Laboratory for Marine Fisheries Science and Food Production Processes, Qingdao National Laboratory for Marine Science and Technology, Qingdao, 266237, China","Xu C., Institute of Hydrobiology, Chinese Academy of Sciences, Wuhan, 430072, China, University of Chinese Academy of Sciences, Beijing, 100049, China; Su G., Institute of Hydrobiology, Chinese Academy of Sciences, Wuhan, 430072, China; Zhao K., Institute of Hydrobiology, Chinese Academy of Sciences, Wuhan, 430072, China, University of Chinese Academy of Sciences, Beijing, 100049, China; Kong X., Institute of Hydrobiology, Chinese Academy of Sciences, Wuhan, 430072, China; Wang H., Institute of Hydrobiology, Chinese Academy of Sciences, Wuhan, 430072, China; Xu X., Institute of Hydrobiology, Chinese Academy of Sciences, Wuhan, 430072, China, College of Fisheries and Life Science, Dalian Ocean University, Dalian, 116000, China; Li Z., Institute of Hydrobiology, Chinese Academy of Sciences, Wuhan, 430072, China, University of Chinese Academy of Sciences, Beijing, 100049, China; Zhang M., College of Fisheries, Huazhong Agricultural University, Hubei Provincial Engineering Laboratory for Pond Aquaculture, Freshwater Aquaculture Collaborative Innovation Center of Hubei Province, Wuhan, 430070, China; Xu J., Institute of Hydrobiology, Chinese Academy of Sciences, Wuhan, 430072, China, State Key Laboratory of Marine Resource Utilization in South China Sea, Hainan University, Haikou, 570228, China, Laboratory for Marine Fisheries Science and Food Production Processes, Qingdao National Laboratory for Marine Science and Technology, Qingdao, 266237, China","Aquaculture has emerged as an alternative food production system, but it comes with both benefits and costs that need to be balanced. To evaluate the sustainable status of Chinese aquaculture, we quantify the benefits and costs of aquaculture in each province in China. We obtained the data on aquaculture production from the China Fisheries Statistical Yearbooks (2021) and used nine indicators to represent aquaculture benefits (nutrient, economy, and employment) and aquaculture costs (freshwater, energy, and land use, greenhouse gas, nitrogen, and phosphorus emissions). We found that the nine indicators varied among the 30 provinces in this study. The Southwest and South regions showed the highest benefits (SBS = 30.65) and costs (EPS = 38.55) at the regional level in composite aquaculture (freshwater and mariculture) respectively. At the provincial level, Tibet and Hainan had the largest score for aquaculture benefits (SBS = 82.90) and costs (EPS = 61.37) in composite aquaculture, respectively. Tibet province performed the best in freshwater and composite aquaculture (6.09 and 4.86 respectively), while Jiangsu province performed the best in mariculture according to benefits-to-costs ratio (2.71). More sustainable species production and use cleaner energy (such as hydro energy and nuclear energy etc) and reduce the feed conversion ratio are the direction of more sustainable aquaculture. This study provides the first analysis of Chinese aquaculture sustainability by benefits and costs, and more accurate data and more indicators through weighting could be included in this framework to achieve greater aquaculture assessment in the future. © 2023 Elsevier Ltd",composite aquaculture; environmental sustainability; fresh water; mariculture; societal benefits,Aquaculture; Cost benefit analysis; Economic and social effects; Economics; Environmental management; Greenhouse gases; Land use; Sustainable development; Water; Benefits and costs; Composite aquaculture; Energy; Environmental performance; Food production systems; Fresh Water; Freshwater aquaculture; Greenhouse gas emissions; Mariculture; Societal benefits; Gas emissions,"G. Su; Wuhan, 430072, No. 7 Donghu South Road, Wuchang District, Hubei Province, China; email: guohuan.su@gmail.com; M. Zhang; Wuhan, 430070, No. 1 Shizishan Street, Hongshan District, Hubei Province, China; email: zhm7875@mail.hzau.edu.cn; J. Xu; Wuhan, 430072, No. 7 Donghu South Road, Wuchang District, Hubei Province, China; email: xujun@ihb.ac.cn",,Elsevier Ltd,,,,,,09596526,,JCROE,,English,J. Clean. Prod.,Article,Final,,Scopus,2-s2.0-85170546305 Li S.; Chen L.; Liu Y.,"Li, Shuqin (57860895700); Chen, Lin (57189362138); Liu, Yungang (35194183300)",57860895700; 57189362138; 35194183300,"Actors, themes, approaches, and imbalances in Blue Economy cooperation: A systematic review and future prospects",2025,Ocean and Coastal Management,267,,107698,,,,0,10.1016/j.ocecoaman.2025.107698,https://www.scopus.com/inward/record.uri?eid=2-s2.0-105003638259&doi=10.1016%2fj.ocecoaman.2025.107698&partnerID=40&md5=f67f0c2b8d898dfd745e45d8ad16ae09,"School of Geography, Center for Asian Geographical Studies, South China Normal University, Guangzhou, 510631, China; Beidou Research Institute, South China Normal University, Foshan, 528225, China","Li S., School of Geography, Center for Asian Geographical Studies, South China Normal University, Guangzhou, 510631, China; Chen L., School of Geography, Center for Asian Geographical Studies, South China Normal University, Guangzhou, 510631, China; Liu Y., School of Geography, Center for Asian Geographical Studies, South China Normal University, Guangzhou, 510631, China, Beidou Research Institute, South China Normal University, Foshan, 528225, China","This study employs a systematic review approach to examine the actors, themes, approaches, and imbalances in Blue Economy cooperation. By systematically tracing the evolution of the Blue Economy concept, this study identifies key actors involved in Blue Economy cooperation, including national government departments, regional economic organizations, industry institutions, research institutions, and local communities. It categorizes major cooperation themes, such as marine ecological protection, fisheries and aquaculture, offshore renewable energy, marine spatial planning, data sharing, and maritime security governance. Additionally, it summarizes cooperation approaches, including policy coordination, market mechanisms, technology sharing, and multi-level dialogue. The study further highlights three critical imbalances in Blue Economy cooperation: uneven distribution of power and resources, conflicts between short-term economic objectives and environmental protection, and the fragmentation of multilateral cooperation alongside weak local implementation capacity. Based on these findings, five policy recommendations are proposed: strengthening legal frameworks and accountability mechanisms, optimizing economic incentives, integrating multi-level governance systems, promoting technological cooperation and business innovation, and enhancing multi-stakeholder dialogue to achieve an equitable and sustainable Blue Economy. This study provides a systematic reference for advancing both theoretical exploration and practical implementation of Blue Economy cooperation. © 2025 Elsevier Ltd",blue economy; cooperation; marine economy; marine governance; sdg; systematic review,Commerce; Energy policy; Energy security; Sales; Blue economies; Cooperation; Future prospects; Government departments; Key Actors; Marine economy; Marine governance; National governments; Regional economic; Systematic Review; business; economic conditions; exploration; future prospect; governance approach; government; sustainability; Sustainable Development Goal; Fisheries,"Y. Liu; School of Geography, Center for Asian Geographical Studies, South China Normal University, Guangzhou, 510631, China; email: ygliu@scnu.edu.cn",,Elsevier Ltd,,,,,,09645691,,OCMAE,,English,Ocean Coast. Manage.,Article,Final,,Scopus,2-s2.0-105003638259 Pei R.; Zhang H.; Liu Z.; Yu C.; Zhang Y.; Mu Y.,"Pei, Runsheng (59760359400); Zhang, Hongzhi (57226466997); Liu, Zifei (58154003200); Yu, Cong (59422225800); Zhang, Yingxue (58248858700); Mu, Yongtong (16550436000)",59760359400; 57226466997; 58154003200; 59422225800; 58248858700; 16550436000,Evaluating the green development level of marine molluscan shellfish aquaculture industry and analyzing obstacle factors that hinder its improvement: The case of China,2025,Aquaculture,606,,742603,,,,0,10.1016/j.aquaculture.2025.742603,https://www.scopus.com/inward/record.uri?eid=2-s2.0-105003874065&doi=10.1016%2fj.aquaculture.2025.742603&partnerID=40&md5=8a826c6e5d4ca56f916d3d73aa4af86d,"Key Laboratory of Mariculture (Ministry of Education), Fisheries College, Ocean University of China, Qingdao, 266003, China; Qingdao Institute of Technology, Qingdao, 266300, China; Shandong Foreign Trade Vocational College, Qingdao, 266100, China; Chinese Academy of Fishery Sciences, Beijing, 100141, China","Pei R., Key Laboratory of Mariculture (Ministry of Education), Fisheries College, Ocean University of China, Qingdao, 266003, China, Qingdao Institute of Technology, Qingdao, 266300, China; Zhang H., Shandong Foreign Trade Vocational College, Qingdao, 266100, China; Liu Z., Chinese Academy of Fishery Sciences, Beijing, 100141, China; Yu C., Key Laboratory of Mariculture (Ministry of Education), Fisheries College, Ocean University of China, Qingdao, 266003, China; Zhang Y., Key Laboratory of Mariculture (Ministry of Education), Fisheries College, Ocean University of China, Qingdao, 266003, China; Mu Y., Key Laboratory of Mariculture (Ministry of Education), Fisheries College, Ocean University of China, Qingdao, 266003, China","As a Chinese term, green development (GD) is defined as a development that simultaneously fulfills the three criteria of environmental sustainability, social acceptability, and economic profitability. Based on this understanding, we construct a GD indicator system, and integrate the multi-indicator comprehensive evaluation model and factor analysis to evaluate the green development level (GDL) of marine molluscan shellfish aquaculture industry (MMSAI) in China and its nine provincial regions from 2001 to 2021. To identify the main factors constraining the improvement of the GDL of China's MMSAI, we calculate the obstacle degree (OD) of each indicator using the OD model. Results indicate that during the past 20 years, the GDL of China's MMSAI at the national level has generally shown a trend of initially downward and then upward fluctuation. In contrast, the GDL of MMSAI across different provincial regions is characterized by significant spatiotemporal variations, which can be roughly classified into four levels: high, medium-high, medium-low, and low. At the national level, industry-led employment is the most crucial obstacle factor negatively influencing GDL growth, followed by industrial growth potential, industrial support capacity, and the income-generating effect of aquaculturists. Obstacle factors and their degrees of influence vary across provincial regions, exhibiting both similarities and notable differences. To overcome those obstacles, we suggest that China should consolidate the environmental-social-economic bases and nourish its MMSAI's vitality, enhance rule- and organization-building to ensure good governance, promote technological advancements to empower development, and achieve the codevelopment of MMSAI with other economic activities and communities through integrated planning and management. © 2025 The Authors",china; gdl evaluation; indicator system; mmsai; obstacle analysis,China; aquaculture industry; development level; environmental impact assessment; environmental management; factor analysis; shellfish culture; socioeconomic impact; spatiotemporal analysis,"Y. Mu; Key Laboratory of Mariculture (Ministry of Education), Fisheries College, Ocean University of China, Qingdao, 266003, China; email: ytmu@ouc.edu.cn",,Elsevier B.V.,,,,,,00448486,,AQCLA,,English,Aquaculture,Article,Final,,Scopus,2-s2.0-105003874065 Bernzen A.; Sohns F.; Jia Y.; Braun B.,"Bernzen, Amelie (55115688200); Sohns, Franziska (57191887484); Jia, Yuanyuan (56157881200); Braun, Boris (7202012109)",55115688200; 57191887484; 56157881200; 7202012109,Crop diversification as a household livelihood strategy under environmental stress. Factors contributing to the adoption of crop diversification in shrimp cultivation and agricultural crop farming zones of coastal Bangladesh,2023,Land Use Policy,132,,106796,,,,15,10.1016/j.landusepol.2023.106796,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85166025260&doi=10.1016%2fj.landusepol.2023.106796&partnerID=40&md5=e76d0f884e9e8a08367fa6478190bd63,"Vechta Institute of Sustainability Transformation in Rural Areas (VISTRA) and Faculty II – Economic Geography, University of Vechta, Driverstr. 22, Vechta, 49377, Germany; School of Economics, Finance, and Law, Anglia Ruskin University, Cambridge, United Kingdom; Division of Geodetic Science, School of Earth Sciences, The Ohio State University, United States; Institute of Geography, University of Cologne, Cologne, Germany","Bernzen A., Vechta Institute of Sustainability Transformation in Rural Areas (VISTRA) and Faculty II – Economic Geography, University of Vechta, Driverstr. 22, Vechta, 49377, Germany; Sohns F., School of Economics, Finance, and Law, Anglia Ruskin University, Cambridge, United Kingdom; Jia Y., Division of Geodetic Science, School of Earth Sciences, The Ohio State University, United States; Braun B., Institute of Geography, University of Cologne, Cologne, Germany","Environmental stressors, potentially aggravated by climate change, pose significant challenges to households whose livelihoods rely primarily on crop production in agriculture or aquaculture, particularly in countries of the Global South. In this context, diversified farming systems, or crop diversification, have been discussed as one adaptation strategy of smallholder farming households to reduce their livelihood vulnerability and increase farm resilience. In coastal Bangladesh, livelihoods based on cultivation of shrimp, prawn, fish, paddy (rice) and other crops are likely to become more vulnerable with accelerated sea level rise, extreme flooding events, cyclone activity, river bank erosion and salinization. While crop diversification in Bangladesh is still low overall, it has been increasing. To understand the factors driving the uptake of diversified cropping in different farming production contexts and allow for policy measures addressing regionally specific needs, we explore the (relative) impact and significance of relevant factors contributing to the adoption of crop diversification practices for (i) shrimp cultivation and (ii) agricultural crop farming zones. We specifically include variables representing subjectively perceived risks to study their role in climate change adaptation. Our findings are based on a quantitative household survey (n = 1188) in nine purposefully selected unions across the Bangaleshi part of the Ganges-Brahmaputra-Meghna delta to capture the diversity of the region. Our results show that the prevalence of crop diversification measures is relatively high in the shrimp cultivation zone, but relatively low in the agricultural crop farming regions. In sum, the results show that even though direct economic factors seem to be (still) more important for diversification decisions, our study also suggests that perceived environmental threats and changes can have a favourable influence on crop diversification and should hence be included in studies investigating causes for land use changes. Yet, there are significant differences with regard to the influence of specific factors on the likelihood to diversify in the two respective zones. We conclude that greater uptakes of agriculture and aquaculture diversification could represent a promising and more sustainable approach for smallholders in coastal Bangladesh given appropriate supportive institutional conditions and measures that address specific needs of local communities. A “one-size-fits-all” approach to pushing crop diversification is unlikely to produce adequate and sustainable results. © 2023 Elsevier Ltd",agriculture; aquaculture; binary logistic regression; climate change; coastal bangladesh; crop diversification; risk perception; rural livelihoods,Bangladesh; adaptive management; agricultural diversification; climate change; coastal zone; crop production; cultivation; household survey; livelihood; regression analysis; risk perception; rural policy; shrimp fishery; smallholder,"A. Bernzen; Vechta Institute of Sustainability Transformation in Rural Areas (VISTRA) and Faculty II – Economic Geography, University of Vechta, Vechta, Driverstr. 22, 49377, Germany; email: amelie.bernzen@uni-vechta.de",,Elsevier Ltd,,,,,,02648377,,,,English,Land Use Policy,Article,Final,All Open Access; Bronze Open Access; Green Open Access,Scopus,2-s2.0-85166025260 Ferreira J.G.,"Ferreira, Joao G. (57201370988)",57201370988,Aquaculture carrying capacity estimates show that major African lakes and marine waters could sustainably produce 10–11 Mt of fish per year,2025,Nature Food,,,e19518,,,,0,10.1038/s43016-025-01114-1,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85219061486&doi=10.1038%2fs43016-025-01114-1&partnerID=40&md5=245c2faa6fcece5fa8e665223a7382ca,"Longline Environment, London, United Kingdom; DCEA, Faculdade de Ciências e Tecnologia, Universidade Nova de Lisboa (NOVA), Monte de Caparica, Portugal","Ferreira J.G., Longline Environment, London, United Kingdom, DCEA, Faculdade de Ciências e Tecnologia, Universidade Nova de Lisboa (NOVA), Monte de Caparica, Portugal","Aquaculture carrying capacity (CC) can be used to guide sustainable aquaculture development over the long term through the regenerative power of the environment. In this study, a model has been developed to estimate CC by combining marine spatial planning for physical CC, management criteria for production CC, eutrophication and pathogen risk for ecological CC, and social acceptance based on legislative and management criteria. The estimates of CC for major African freshwater lakes and the marine exclusive economic zones of Africa indicate that 10–11 Mt of fish could be produced annually while preserving ecosystem goods and services, potentially increasing fish consumption by the population of the African continent by 7 kg per capita per year (an increase of 70%). Supply-side forecasts and demand-side estimates can support policymakers in defining targets for aquaculture expansion that avoid ecological, economic and social tipping points. © The Author(s), under exclusive licence to Springer Nature Limited 2025.",,,"J.G. Ferreira; Longline Environment, London, United Kingdom; email: joao@hoomi.com",,Springer Nature,,,,,,26621355,,,,English,Nat. Food.,Article,Article in press,,Scopus,2-s2.0-85219061486 Mengo E.; Murali R.; Govindan M.; Hoehn D.,"Mengo, Elena (57364324400); Murali, Rashmi (57211872338); Govindan, Mini (57204803683); Hoehn, Danja (57449072600)",57364324400; 57211872338; 57204803683; 57449072600,Exploring fishers’ and fisherfolk’s knowledge and perspectives on water pollution in India: insights from Chilika Lake,2025,Frontiers in Sustainable Food Systems,9,,1525142,,,,0,10.3389/fsufs.2025.1525142,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85219088410&doi=10.3389%2ffsufs.2025.1525142&partnerID=40&md5=d305eb2d6544733392d468b708f1c1d0,"Centre for Environment, Fisheries and Aquaculture Science (CEFAS), Lowestoft, United Kingdom; The Energy and Resources Institute (TERI), New Delhi, India","Mengo E., Centre for Environment, Fisheries and Aquaculture Science (CEFAS), Lowestoft, United Kingdom; Murali R., The Energy and Resources Institute (TERI), New Delhi, India; Govindan M., The Energy and Resources Institute (TERI), New Delhi, India; Hoehn D., Centre for Environment, Fisheries and Aquaculture Science (CEFAS), Lowestoft, United Kingdom","Approximately 16 million fisherfolk in India depend on fisheries for their income, food, and nutritional security. However, aquatic ecosystems across India are heavily polluted, resulting in significant challenges for communities dependent on fisheries. While research on pollution and waste management in India has progressed, local coastal communities’ knowledge and perspectives are still overlooked in environmental decision-making. To address this gap, we focused on the Chilika Lake area, employing a mixed-method approach. We surveyed 161 fishers and conducted focus group discussions (FGDs) in local communities. Our findings indicate that, although fisheries serve as the primary source of livelihood, water pollution adversely affects the quantity and quality of fish, ultimately impacting the household income. Tourism and agriculture, including aquaculture are considered major contributors to aquatic pollution. While fishing-related litter does contribute to pollution in coastal areas, fishers infrequently encounter derelict gear compared to plastic bags and bottles. Solid waste disposal and management issues are widespread, largely due to inadequate waste collection and disposal facilities, resulting in the prevalence of informal waste management systems. The outcomes of the research highlight the need for targeted education and outreach initiatives in coastal areas to address waste mismanagement, promote active participation among local communities to initiatives such as beach clean ups, as well as encourage practices of recycling and reusing materials. Similarly, developing alternative livelihoods can reduce dependency on fisheries and contribute to sustainable development and biodiversity conservation. Copyright © 2025 Mengo, Murali, Govindan and Hoehn.",coastal pollution and management; fishers’ perspectives; local communities; sustainability; waste management & disposal; water pollution,,"E. Mengo; Centre for Environment, Fisheries and Aquaculture Science (CEFAS), Lowestoft, United Kingdom; email: elena.mengo@cefas.gov.uk",,Frontiers Media SA,,,,,,2571581X,,,,English,Front. Sustain. food Syst.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85219088410 Ranjan A.; Mandal K.K.; Mallick S.,"Ranjan, Avinash (57216616976); Mandal, Kajal Kumar (57216611645); Mallick, Sambit (35275937600)",57216616976; 57216611645; 35275937600,"The land use and land cover changes, 1994–2024: implications for livelihood options and employment opportunities in Dhanbad, India",2025,Spatial Information Research,33,1,3,,,,0,10.1007/s41324-025-00605-4,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85218215714&doi=10.1007%2fs41324-025-00605-4&partnerID=40&md5=9b44d6221e194be65e43fadbcfbe9f9c,"Department of Humanities and Social Sciences, Indian Institute of Technology Guwahati, Guwahati, 781039, India; Department of Coastal Disaster Management, Pondicherry University, Port Blair Campus, Port Blair, 744101, India","Ranjan A., Department of Humanities and Social Sciences, Indian Institute of Technology Guwahati, Guwahati, 781039, India; Mandal K.K., Department of Coastal Disaster Management, Pondicherry University, Port Blair Campus, Port Blair, 744101, India; Mallick S., Department of Humanities and Social Sciences, Indian Institute of Technology Guwahati, Guwahati, 781039, India","Focusing on the coal mining and potential alternative livelihoods in the context of global net-zero targets by using Remote Sensing (RS) and geospatial techniques, this article examines the Land Use and Land Cover (LULC) changes in Dhanbad district during 1994–2024. Deploying the Landsat-7, 8 and 9 MSS Datasets, supervised classification with a Maximum Likelihood Classifier (MLC) and validation through high-resolution imagery and field observations ensure an 85% accuracy rate. While agriculture land occupies 60% of the area and provides employment to 24% of the population, aquaculture development is supported by a 140% rise in water bodies mostly from repurposed mining sites. Agricultural areas and natural vegetation decrease by 12% and 28% respectively exhibiting resource demands. There is a 275% rise in settlement areas owing to coal mining-related urbanization and population rise. Even though coal mining areas occupy 3–4% of the district’s territory, it is a major reservoir of coal mines in India attracting a large number of migrant workers. Thus, there is an imperative to emphasize the necessity of diversifying the economy in view of the ongoing coal phaseout that would serve as the foundation of policy proposal in pursuit of Dhanbad’s economic growth, environmental sustainability and social wellbeing. © The Author(s), under exclusive licence to Korea Spatial Information Society 2025.",coal mine; image classification; livelihoods; lulc; mlc; remote sensing; supervised classification,Dhanbad; India; Jharkhand; Population statistics; Alternative livelihoods; Coal-mining; Employment opportunities; Images classification; Land use and land cover; Land use and land cover change; Livelihood; Maximum likelihood classifiers; Remote-sensing; Supervised classification; coal mining; employment; image classification; land cover; land use change; livelihood; remote sensing; resource development; supervised classification; urbanization; Coal mines,"A. Ranjan; Department of Humanities and Social Sciences, Indian Institute of Technology Guwahati, Guwahati, 781039, India; email: avinashranjanbhu@gmail.com",,Korean Spatial Information Society,,,,,,23663286,,,,English,Spat. Inf. Res.,Article,Final,,Scopus,2-s2.0-85218215714 Luna M.; Fernandez-Vazquez S.; Tereñes Castelao E.; Arias Fernández Á.,"Luna, Manuel (57202624205); Fernandez-Vazquez, Simon (57212084080); Tereñes Castelao, Emilio (58669731700); Arias Fernández, Álvaro (58669327300)",57202624205; 57212084080; 58669731700; 58669327300,A blockchain-based approach to the challenges of EU's environmental policy compliance in aquaculture: From traceability to fraud prevention,2024,Marine Policy,159,,105892,,,,9,10.1016/j.marpol.2023.105892,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85175156840&doi=10.1016%2fj.marpol.2023.105892&partnerID=40&md5=c1147e140ddb01faeaded42e8f00d333,"Business Management Department, University of Oviedo, Edificio Departamental Este, 1 Planta. Campus de Viesques s/n., Asturias, Gijón, 33204, Spain; CTIC Centro Tecnológico, Parque Científico Tecnológico de Gijón, Asturias, Spain","Luna M., Business Management Department, University of Oviedo, Edificio Departamental Este, 1 Planta. Campus de Viesques s/n., Asturias, Gijón, 33204, Spain; Fernandez-Vazquez S., Business Management Department, University of Oviedo, Edificio Departamental Este, 1 Planta. Campus de Viesques s/n., Asturias, Gijón, 33204, Spain; Tereñes Castelao E., CTIC Centro Tecnológico, Parque Científico Tecnológico de Gijón, Asturias, Spain; Arias Fernández Á., CTIC Centro Tecnológico, Parque Científico Tecnológico de Gijón, Asturias, Spain","In light of the current global scenario, regulatory requirements, and stakeholder expectations for the aquaculture supply chain are more demanding than ever. The latest EU strategies for aquaculture aim to ensure its economic, environmental, and social long-term sustainability through green, technological, and social transformations. This objective is as ambitious as it is complex, involving not only the enhancement of key sustainability aspects but also the assurance of transparency, trust, and security standards across the entire supply chain. In this context, the present paper proposes a novel blockchain framework, along with the strategic implementation of smart contracts, specifically designed to effectively address the prevalent environmental challenges within the aquaculture supply chain. © 2023 The Authors",aquaculture; blockchain; ecological mangrove restoration; environmental sustainability; smart contracts; traceability,aquaculture; compliance; environmental policy; European Union; regulatory framework; stakeholder; standard (regulation); supply chain management; sustainability,"S. Fernandez-Vazquez; Business Management Department, University of Oviedo, Edificio Departamental Este, Gijón, 1 Planta. Campus de Viesques s/n., Asturias, 33204, Spain; email: fernandezsimon@uniovi.es",,Elsevier Ltd,,,,,,0308597X,,,,English,Mar. Policy,Article,Final,All Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85175156840 Kumar G.; Hegde S.; van Senten J.; Engle C.; Boldt N.; Parker M.; Quagrainie K.; Posadas B.; Asche F.; Dey M.; Aarattuthodi S.; Roy L.A.; Grice R.; Fong Q.; Schwarz M.,"Kumar, Ganesh (56370736400); Hegde, Shraddha (57217381094); van Senten, Jonathan (57193847650); Engle, Carole (7005192559); Boldt, Noah (57298071200); Parker, Matthew (57216918598); Quagrainie, Kwamena (6602283352); Posadas, Benedict (8339998300); Asche, Frank (55904477400); Dey, Madan (8872616900); Aarattuthodi, Suja (57261787900); Roy, Luke A. (12244867100); Grice, Russell (59248931100); Fong, Quentin (15135742700); Schwarz, Michael (55696878100)",56370736400; 57217381094; 57193847650; 7005192559; 57298071200; 57216918598; 6602283352; 8339998300; 55904477400; 8872616900; 57261787900; 12244867100; 59248931100; 15135742700; 55696878100,Economic contribution of U.S. aquaculture farms,2024,Journal of the World Aquaculture Society,55,6,e13091,,,,6,10.1111/jwas.13091,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85200577729&doi=10.1111%2fjwas.13091&partnerID=40&md5=5f402bb6f73ac1dea3ce19e11edd0a04,"Delta Research and Extension Center, Wildlife Fisheries, and Aquaculture, Mississippi State University, Stoneville, MS, United States; Rangeland, Wildlife, and Fisheries Management, Texas A&M University, College Station, TX, United States; Virginia Seafood AREC, Virginia Tech, Hampton, VA, United States; Engle-Stone Aquatic$ LLC, Strasburg, VA, United States; University of Maryland Extension, Clinton, MD, United States; Agricultural Economics, Purdue University, West Lafayette, IN, United States; Coastal Research & Extension Center, Mississippi State University, Biloxi, MS, United States; Institute for Sustainable Food Systems, University of Florida, Gainesville, FL, United States; Department of Agriculture, Texas State University, San Marcos, TX, United States; Plant Genetics Research Unit, USDA Agricultural Research Service, Columbia, MO, United States; Alabama Fish Farming Center, Fisheries, Aquaculture & Aquatic Sciences, Auburn University, Auburn, United States; Fisheries, Aquaculture, and Aquatic Sciences, Auburn University System, Dauphin Island, AL, United States; Alaska Sea Grant Marine Advisory Program, Kodiak Seafood and Marine Science Center, University of Alaska Fairbanks, Kodiak, AK, United States","Kumar G., Delta Research and Extension Center, Wildlife Fisheries, and Aquaculture, Mississippi State University, Stoneville, MS, United States; Hegde S., Rangeland, Wildlife, and Fisheries Management, Texas A&M University, College Station, TX, United States; van Senten J., Virginia Seafood AREC, Virginia Tech, Hampton, VA, United States; Engle C., Engle-Stone Aquatic$ LLC, Strasburg, VA, United States; Boldt N., Virginia Seafood AREC, Virginia Tech, Hampton, VA, United States; Parker M., University of Maryland Extension, Clinton, MD, United States; Quagrainie K., Agricultural Economics, Purdue University, West Lafayette, IN, United States; Posadas B., Coastal Research & Extension Center, Mississippi State University, Biloxi, MS, United States; Asche F., Institute for Sustainable Food Systems, University of Florida, Gainesville, FL, United States; Dey M., Department of Agriculture, Texas State University, San Marcos, TX, United States; Aarattuthodi S., Plant Genetics Research Unit, USDA Agricultural Research Service, Columbia, MO, United States; Roy L.A., Alabama Fish Farming Center, Fisheries, Aquaculture & Aquatic Sciences, Auburn University, Auburn, United States; Grice R., Fisheries, Aquaculture, and Aquatic Sciences, Auburn University System, Dauphin Island, AL, United States; Fong Q., Alaska Sea Grant Marine Advisory Program, Kodiak Seafood and Marine Science Center, University of Alaska Fairbanks, Kodiak, AK, United States; Schwarz M., Virginia Seafood AREC, Virginia Tech, Hampton, VA, United States","Economics is the study of the allocation of scarce resources to meet human wants and needs and has a critical role to play in addressing challenges related to environmental sustainability, community resilience, and food security. In the context of aquaculture, the key to such a discussion is understanding the linkages of aquaculture farming businesses with other economic sectors and how policy decisions that affect aquaculture result in economic ripples throughout local, regional, and national economies. The only previous national estimates of the economic contributions of U.S. aquaculture are nearly 30 years old. The current study was based on comprehensive data from detailed farm-level surveys (that captured 77% of the total value of U.S. aquaculture) supplemented by information from publications on the remaining aquaculture sectors. The economic contributions measured in this study were limited to those at the farm level and do not include subsequent impacts that occur as farmed products move through processing, distribution, food service, and retail sectors in the U.S. economy. Results showed that U.S. aquaculture farms contributed $4 billion annually and supported more than 22,000 jobs each year. Labor income and value-added contributions were $1 billion and $3 billion, respectively. Analysis of the linkages of U.S. aquaculture production activities with other economic sectors showed that nearly all (96%) economic sectors were supported to some degree by U.S. aquaculture farms. Foodfish farms generated the greatest contributions, followed by mollusk farms. Freshwater aquaculture farms contributed twice that of the contributions of marine aquaculture because of the greater size of the freshwater aquaculture sector. Growth of both freshwater and marine sectors would increase overall contributions to the economy. Constraints to growth of aquaculture include regulatory barriers that have restricted existing sectors from meeting current demand for their products. The lack of an adequate regulatory framework for offshore marine aquaculture has constrained its growth and development, especially with respect to the rest of the world. Streamlined regulations implemented in a more timely and efficient manner could result in substantially greater economic contributions from existing U.S. aquaculture farms. The total economic impact of U.S. aquaculture production is likely three to four times greater than the farm-level impacts estimated in this study as a result of impacts that occur as aquaculture products move downstream through various marketing channels. Additional research is needed to measure the impacts of U.S. aquaculture products in the processing, distribution, food service, supermarket, and restaurant levels of the marketing chain to fully capture the total economic contributions from U.S. aquaculture. © 2024 The Author(s). Journal of the World Aquaculture Society published by Wiley Periodicals LLC on behalf of World Aquaculture Society.",crustaceans; economic contribution/impacts; foodfish; mollusks; us aquaculture,United States; aquaculture production; crustacean; fishery economics; marine resource; marketing; mollusc culture; regulatory framework; resource scarcity,"C. Engle; Stone Aquatic$ LLC, Strasburg, United States; email: caroleengle2015@gmail.com",,John Wiley and Sons Inc,,,,,,08938849,,,,English,J. World Aquac. Soc.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85200577729 Kosichek H.; Reimer J.; Filgueira R.,"Kosichek, Hannah (58985265200); Reimer, Julie (57220741905); Filgueira, Ramón (16549712900)",58985265200; 57220741905; 16549712900,Assessing the potential for seaweed aquaculture in Nova Scotia,2024,Aquaculture Reports,36,,102064,,,,4,10.1016/j.aqrep.2024.102064,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85190339266&doi=10.1016%2fj.aqrep.2024.102064&partnerID=40&md5=c98850914e97b41790d31ee80d8046ff,"Marine Planning and Conservation, Fisheries and Oceans Canada, 200 Kent St, Ottawa, K1A 0E6, ON, Canada; Marine Affairs Program, Dalhousie University, Life Sciences Centre, Room 807, 1355 Oxford Street, Halifax, B3H 4R2, NS, Canada","Kosichek H., Marine Planning and Conservation, Fisheries and Oceans Canada, 200 Kent St, Ottawa, K1A 0E6, ON, Canada; Reimer J., Marine Planning and Conservation, Fisheries and Oceans Canada, 200 Kent St, Ottawa, K1A 0E6, ON, Canada; Filgueira R., Marine Affairs Program, Dalhousie University, Life Sciences Centre, Room 807, 1355 Oxford Street, Halifax, B3H 4R2, NS, Canada","Growing interest in the seaweed aquaculture industry has focused on the environmental, economic and social benefits it can offer. Outside of Asia, it is a small but emerging industry with the potential to grow and contribute to food security, climate change mitigation and coastal economic development. However, limited understanding of this potential has led to slow and fragmented development of the industry, without a clear direction of how to move the industry forward. This research uses Nova Scotia, Canada as a case study to understand the potential for the seaweed aquaculture industry by analyzing the perceptions of stakeholder groups (industry, academia, NGO/community and government). A SWOT analysis was completed to understand drivers and barriers impacting the industry and was used to develop a Q-methodology survey for identifying important factors to consider in decision-making, management and planning of the industry. Results indicated that participants generally reflected one of two perspectives: the seaweed skeptic and the seaweed solutionist. Participant perceptions indicated areas where seaweed aquaculture can be a contributor in Nova Scotia, specifically in coastal community economic development and food sustainability. However, experiential knowledge gaps, uncertainties surrounding climate change impacts and lack of regulations appear to constrain individuals from fully supporting the industry. Further discussion is needed on the stewardship of and priorities for how this industry should be developed moving forward. These findings illustrate possible enabling conditions for the future of this industry in Canada. © 2024",nova scotia; q-methodology; seaweed aquaculture; sustainability; swot analysis,,"H. Kosichek; 2815 Colwood Drive, North Vancouver, V7R 2R2, Canada; email: hmkosichek@gmail.com",,Elsevier B.V.,,,,,,23525134,,,,English,Aquacult. Rep.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85190339266 Chen G.; Gu X.; Capinha C.; Lee S.Y.; Cui B.; Yang F.; Lin Y.; Jia M.; Wang M.; Wang W.,"Chen, Guogui (57215848110); Gu, Xuan (56012968600); Capinha, César (32867555000); Lee, Shing Yip (7601394910); Cui, Baoshan (57201605666); Yang, Fang (57194632300); Lin, Yufeng (58317004400); Jia, Mingming (35191764600); Wang, Mao (25123150000); Wang, Wenqing (55714109400)",57215848110; 56012968600; 32867555000; 7601394910; 57201605666; 57194632300; 58317004400; 35191764600; 25123150000; 55714109400,Large-scale changes in macrobenthic biodiversity driven by mangrove afforestation,2023,Journal of Applied Ecology,60,10,,2066,2078,12,9,10.1111/1365-2664.14462,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85164590898&doi=10.1111%2f1365-2664.14462&partnerID=40&md5=26a157fee9a746d58837820ccb64c632,"Key Laboratory of the Coastal and Wetland Ecosystems Ministry of Education, College of the Environment & Ecology, Xiamen University, Xiamen, China; State Key Laboratory of Water Environmental Simulation, School of Environment, Beijing Normal University, Beijing, China; Centro de Estudos Geográficos, Instituto de Geografia e Ordenamento do Território–IGOT, Universidade de Lisboa, Rua Branca Edmée Marques, Lisbon, Portugal; Laboratório Associado Terra, Lisbon, Portugal; Simon F.S. Li Marine Science Laboratory, School of Life Sciences, The Chinese University of Hong Kong, Hong Kong; Key Laboratory of Wetland Ecology and Environment, Northeast Institute of Geography and Agroecology, Chinese Academy of Sciences, Changchun, China","Chen G., Key Laboratory of the Coastal and Wetland Ecosystems Ministry of Education, College of the Environment & Ecology, Xiamen University, Xiamen, China, State Key Laboratory of Water Environmental Simulation, School of Environment, Beijing Normal University, Beijing, China; Gu X., Key Laboratory of the Coastal and Wetland Ecosystems Ministry of Education, College of the Environment & Ecology, Xiamen University, Xiamen, China; Capinha C., Centro de Estudos Geográficos, Instituto de Geografia e Ordenamento do Território–IGOT, Universidade de Lisboa, Rua Branca Edmée Marques, Lisbon, Portugal, Laboratório Associado Terra, Lisbon, Portugal; Lee S.Y., Simon F.S. Li Marine Science Laboratory, School of Life Sciences, The Chinese University of Hong Kong, Hong Kong; Cui B., State Key Laboratory of Water Environmental Simulation, School of Environment, Beijing Normal University, Beijing, China; Yang F., Key Laboratory of the Coastal and Wetland Ecosystems Ministry of Education, College of the Environment & Ecology, Xiamen University, Xiamen, China; Lin Y., Key Laboratory of the Coastal and Wetland Ecosystems Ministry of Education, College of the Environment & Ecology, Xiamen University, Xiamen, China; Jia M., Key Laboratory of Wetland Ecology and Environment, Northeast Institute of Geography and Agroecology, Chinese Academy of Sciences, Changchun, China; Wang M., Key Laboratory of the Coastal and Wetland Ecosystems Ministry of Education, College of the Environment & Ecology, Xiamen University, Xiamen, China; Wang W., Key Laboratory of the Coastal and Wetland Ecosystems Ministry of Education, College of the Environment & Ecology, Xiamen University, Xiamen, China","Large-scale anthropogenic mangroves have been constructed in coastal regions worldwide but our understanding of their ecological effects is limited. In particular, the question of whether and how anthropogenic mangroves influence biodiversity patterns remains elusive. Here, we investigated the influence of large-scale anthropogenic mangroves on biodiversity patterns of mangrove macrobenthos. Specifically, we measure and seek to explain differences in species richness, abundance, assemblage composition and distance-decay effect before and after the construction of anthropogenic mangroves. We surveyed assemblages of gastropod, bivalve and crab species over a wide latitudinal extent (24–28°N) in subtropical China. For each, we calculated species richness, abundance, assemblage composition and distance-decay relationship before and after the construction of anthropogenic mangroves. After the large-scale anthropogenic mangroves, we found species richness of gastropods, bivalves and crabs increased by 23.81%, 100% and 20%, respectively. The distance-decay effects of gastropods and bivalves decreased by 25% and 91.43%, while that of crabs remained virtually unchanged, which mediated by increased dispersal rate of macrobenthos. With mangrove plantation, compositional similarity of crab and bivalve assemblages increased by 28.57% and 38.46%, suggesting that large-scale monospecific planting exacerbate biotic homogenization. Altogether, these results indicate that large-scale anthropogenic habitats increase the diversity of mangrove macrobenthos and change taxonomic compositions by reducing distance-decay effects and increasing dispersal rate of macrobenthos. Synthesis and applications. We emphasize that afforestation of coastal wetlands can drive major changes in benthonic communities. Monitoring and assessing the ecological effects of the anthropogenic habitats for the presence of functional faunas will be important in determining the future coastal restoration and maintaining economic aquaculture. Quantifying those effects in terms of regional biodiversity composition will contribute to the management of coastal restoration to be based upon macroevidence rather than a one-sided local perspective. © 2023 The Authors. Journal of Applied Ecology © 2023 British Ecological Society.",afforestation; anthropogenic activities; biodiversity; distance-decay effect; habitat availability; mangroves; mangrove molluscs; mangrove restoration,China; afforestation; biodiversity; bivalve; crab; dispersal; habitat restoration; macrobenthos; mangrove; species richness,"W. Wang; College of the Environment & Ecology, Xiamen University, Xiamen, South Xiang'an Road, Fujian, CN-361102, China; email: mangroves@xmu.edu.cn",,John Wiley and Sons Inc,,,,,,00218901,,JAPEA,,English,J. Appl. Ecol.,Article,Final,All Open Access; Green Open Access,Scopus,2-s2.0-85164590898 Ren A.; Zhao X.; Liu Q.; Yu L.; Han F.; Jia F.; Hou H.; Liu Y.,"Ren, Anqi (57983310700); Zhao, Xintao (58980664400); Liu, Qi (59228454800); Yu, Lixingbo (58555100600); Han, Fengfan (58956284500); Jia, Fei (58956030400); Hou, Haochen (57193332061); Liu, Ying (55981092800)",57983310700; 58980664400; 59228454800; 58555100600; 58956284500; 58956030400; 57193332061; 55981092800,Green Supplier Assessment and Selection for Sea Cucumber (Apostichopus japonicus) Processing Enterprise: Case Study in China,2023,Sustainability (Switzerland),15,21,15368,,,,3,10.3390/su152115368,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85188681114&doi=10.3390%2fsu152115368&partnerID=40&md5=484a3c6aebb0e0171a3387f9364268c1,"Key Laboratory of Environment Controlled Aquaculture (Dalian Ocean University) Ministry of Education, 52 Heishijiao Street, Dalian, 116023, China; College of Marine Technology and Environment, Dalian Ocean University, 52 Heishijiao Street, Dalian, 116023, China; Dalian Bangchui Island Sea Cucumber Development Co., Ltd, 987 Wuyi Road, Dalian, 116100, China; College of Biosystems Engineering and Food Science, Zhejiang University, 866 Yuhangtang Road, Hangzhou, 310058, China","Ren A., Key Laboratory of Environment Controlled Aquaculture (Dalian Ocean University) Ministry of Education, 52 Heishijiao Street, Dalian, 116023, China, College of Marine Technology and Environment, Dalian Ocean University, 52 Heishijiao Street, Dalian, 116023, China; Zhao X., Dalian Bangchui Island Sea Cucumber Development Co., Ltd, 987 Wuyi Road, Dalian, 116100, China; Liu Q., Dalian Bangchui Island Sea Cucumber Development Co., Ltd, 987 Wuyi Road, Dalian, 116100, China; Yu L., Key Laboratory of Environment Controlled Aquaculture (Dalian Ocean University) Ministry of Education, 52 Heishijiao Street, Dalian, 116023, China, College of Marine Technology and Environment, Dalian Ocean University, 52 Heishijiao Street, Dalian, 116023, China; Han F., Key Laboratory of Environment Controlled Aquaculture (Dalian Ocean University) Ministry of Education, 52 Heishijiao Street, Dalian, 116023, China, College of Marine Technology and Environment, Dalian Ocean University, 52 Heishijiao Street, Dalian, 116023, China; Jia F., Key Laboratory of Environment Controlled Aquaculture (Dalian Ocean University) Ministry of Education, 52 Heishijiao Street, Dalian, 116023, China, College of Marine Technology and Environment, Dalian Ocean University, 52 Heishijiao Street, Dalian, 116023, China; Hou H., Key Laboratory of Environment Controlled Aquaculture (Dalian Ocean University) Ministry of Education, 52 Heishijiao Street, Dalian, 116023, China, College of Marine Technology and Environment, Dalian Ocean University, 52 Heishijiao Street, Dalian, 116023, China; Liu Y., Key Laboratory of Environment Controlled Aquaculture (Dalian Ocean University) Ministry of Education, 52 Heishijiao Street, Dalian, 116023, China, College of Marine Technology and Environment, Dalian Ocean University, 52 Heishijiao Street, Dalian, 116023, China, College of Biosystems Engineering and Food Science, Zhejiang University, 866 Yuhangtang Road, Hangzhou, 310058, China","Green supply chain management is a crucial way to balance economic benefits and environmental impacts. As an important economic aquatic product in China, sea cucumber (Apostichopus japonicus) is facing the dual challenges of economic benefits (profit) and environmental sustainability (material input and emission output). Currently, the sea cucumber industry in China lacks a green supplier screening system, resulting in a fragmented pattern of cooperation among enterprises. Core enterprises in the supply chain cannot assume social responsibility to help and guide upstream and downstream enterprises to jointly improve environmental performance. This study focuses on the selection and evaluation of green suppliers for sea cucumber processing enterprises. Firstly, a green supplier assessment indicator system for sea cucumber processing enterprises was established, and the indicator weights were determined by the analytic hierarchy process (AHP) method. Next taking a large sea cucumber processing enterprise in Dalian, China, as an example, the importance level of each index was evaluated by fuzzy comprehensive evaluation (FCE), and the score and ranking of existing suppliers were determined. The validity and practicality of the method were verified. The results show that Supplier 1 (S1) has the highest score, and the price of sea cucumber farming, the cleaner production level of sea cucumber farming, environmental awareness, and long-term cooperation willingness were the most important factors in the selection of green suppliers for sea cucumber processing enterprises, which provides useful clues on the best practice of making sustainable development decisions. With an in-depth understanding of the key factors, suppliers can formulate different prices according to the differences in sales channels to improve the economic deficiencies. Environmental pollution can also be reduced by using clean energy, establishing a recirculating aquaculture system, and using micro-ecological preparations. The conclusions of this study can provide technical support and decision-making suggestions for the application of green supply chain management in China’s aquaculture industry. © 2023 by the authors.",analytic hierarchy process; fuzzy comprehensive evaluation; green supplier assessment; green supplier assessment; indicator system; sea cucumber,China; Dalian; Liaoning; analytical hierarchy process; aquaculture industry; cleaner production; fuzzy mathematics; ranking; supply chain management; sustainable development,"H. Hou; Key Laboratory of Environment Controlled Aquaculture (Dalian Ocean University) Ministry of Education, Dalian, 52 Heishijiao Street, 116023, China; email: houhaochen@dlou.edu.cn",,Multidisciplinary Digital Publishing Institute (MDPI),,,,,,20711050,,,,English,Sustainability,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85188681114 MacDonald A.; Serpetti N.; Franco S.C.,"MacDonald, Alan (59064573000); Serpetti, Natalia (37104959800); Franco, Sofia C. (56708190000)",59064573000; 37104959800; 56708190000,Optimising seafood nutritional value and environmental sustainability in aquaculture through a novel integrated modelling tool applicable to IMTA and monoculture,2024,Aquaculture,590,,741046,,,,1,10.1016/j.aquaculture.2024.741046,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85192322007&doi=10.1016%2fj.aquaculture.2024.741046&partnerID=40&md5=20e97e8d2be870687c3e7ebabd4b137e,"Scottish Association for Marine Science, Scotland, Oban, PA37 1QA, United Kingdom; European Commission, Joint Research Centre, Ispra, Italy","MacDonald A., Scottish Association for Marine Science, Scotland, Oban, PA37 1QA, United Kingdom; Serpetti N., European Commission, Joint Research Centre, Ispra, Italy; Franco S.C., European Commission, Joint Research Centre, Ispra, Italy","Aquaculture policies that decrease the reliance on wild-caught fish and promote integrated multi-trophic aquaculture (IMTA) both aim to lessen the environmental footprint but often overlook economic-environmental trade-offs and neglect social, health, and broad-scale sustainability considerations. Here we present a new bio-physical model (FYNE) that bridges some of these gaps, by linking farm operational choices, such as feed choices and farm siting, with the nutritional value of the farm-gate seafood products and the resulting environmental eutrophication footprint at the farm level. The FYNE model operates both in conditions of monoculture or of IMTA production, and estimates feed composition effects on growth and omega-3 fatty acid content of Atlantic salmon (Salmo salar) and blue mussel (Mytilus edulis), and nitrogen and carbon concentrations, the latter being a measure of the environmental eutrophication footprint of the farm. The model here developed integrates for the first time (i) an ecosystem model of an IMTA and (ii) a fatty acid dynamics model, with new models for salmon feed digestibility and mussel ingestion. The outputs span (i) production analysis for simulation of biomass; (ii) farm mass-balance analysis on deposition analysis and environmental eutrophication footprint; and (iii) product nutritional quality, in terms of fatty acid content. An application of the model to an IMTA farm in Scotland (UK) demonstrates how fatty acid and environmental changes can be modelled in tandem and could be used to support the industry to optimize the nutritional value of cultured species and manage aquatic environmental eutrophication footprint at farm level, informing feed and siting decisions. The model effectively predicts changes in omega-3 fatty acids, particularly DHA and EPA, in response to variations in feed composition. Notably, our results confirm that salmon waste has limited influence on mussel growth due to the spatial separation within the IMTA system, which emphasizes the need for strategic siting to enhance system productivity through effective waste recycling. Additionally, results show that while increasing fishmeal in diets enhances environmental outcomes, it reduces levels of critical fatty acids like DHA and EPA, underscoring the need for balanced feed formulations. The method developed in this study described a novel integrated model (FYNE) that extend previous modelling work by incorporating the influence of farmed species feed composition on fatty acid dynamics as well as the farming environmental factors. © 2024 The Authors",carrying capacity; environmental sustainability; fatty acids; feed; fyne; imta; mathematical modelling; mussels; nutrients; salmon,Scotland; United Kingdom; aquaculture; aquaculture system; carrying capacity; environmental impact; fatty acid; growth; integrated approach; monoculture; numerical model; nutrient dynamics; nutritional status; nutritive value; optimization; salmonid culture; seafood; sustainability,"A. MacDonald; Scottish Association for Marine Science, Oban, Scotland, PA37 1QA, United Kingdom; email: alan.macdonald@sams.ac.uk",,Elsevier B.V.,,,,,,00448486,,AQCLA,,English,Aquaculture,Article,Final,All Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85192322007 Alsaleh M.,"Alsaleh, Mohd (57188836361)",57188836361,The criticality role of industrial disaster to blue farming sustainability: insights from the aquaculture sector,2024,"Environment, Development and Sustainability",,,,,,,1,10.1007/s10668-024-05669-0,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85208985638&doi=10.1007%2fs10668-024-05669-0&partnerID=40&md5=9956e2a0c0d71859bc36cbcdb0b061b1,"School of Economics and Management, Shanghai Ocean University, Shanghai, China","Alsaleh M., School of Economics and Management, Shanghai Ocean University, Shanghai, China","Communities involved in aquaculture confront many difficulties even in the absence of catastrophes, which makes them more susceptible to other threats. Through preventative disaster risk management, this study seeks to improve community readiness and knowledge of possible dangers while offering an efficient disaster response during situations. For this to be effective, it is necessary to have a comprehensive grasp of the technical, social, and economic aspects of the aquaculture industry as well as the livelihood circumstances of small-scale fishermen, fish growers, and their communities. Fish farm owners, the environment, and the farmed fish are all at risk from mishaps in aquaculture and fish farming in the 27 EU member states. The aquaculture business has challenges related to sustainability and green development, as shown by occurrences that resulted in deaths, serious injuries to crew, and health problems both during and after operations. Thus, the main objective of this study is to assess how the growth of aquaculture in the EU13 developing nations and EU14 developed countries has affected environmental health risks between 1990 and 2023. To address possible endogeneity difficulties, the main results were derived from four important methodologies: RLS, 2SLS, and OLS. The findings suggest that the aquaculture sector and the use of fossil fuels contribute more to the rise in environmental health hazards in the emerging EU13 countries than in the more developed EU14 countries. On the other hand, the particular data show that, in contrast to EU13, concerns about environmental dangers are more strongly associated with economic development in aquaculture in EU14. Furthermore, compared to the developing EU13 countries, institutional quality has a somewhat stronger impact on lowering environmental health hazards in the developed EU14 countries, according to the analysis of the three estimators. Governments should prioritize improving the aquaculture sector’s efficiency and sustainable development, according to this report. This is especially important in EU13, where there is currently insufficient institutional quality, safety regulations, and environmental safeguards. Enhancing the aquaculture sector’s economic worth in the established EU14 nations is crucial, but it should be done in tandem with strict safety and security standards. © The Author(s), under exclusive licence to Springer Nature B.V. 2024.",frequency of fatalities; growth of aquaculture; health risks; safety regulations,,"M. Alsaleh; School of Economics and Management, Shanghai Ocean University, Shanghai, China; email: moe_saleh222@hotmail.com",,Springer Science and Business Media B.V.,,,,,,1387585X,,EDSNB,,English,Environ. Dev. Sustainability,Article,Article in press,,Scopus,2-s2.0-85208985638 Lei G.; Chen L.; Wang W.; Li W.; Huang Y.; Yang X.; Tan K.; Kwan K.Y.,"Lei, Guanggu (59556472600); Chen, Linmei (59557889900); Wang, Wei (59557691600); Li, Wenhui (59557691700); Huang, Ying (59556472700); Yang, Xin (57680096900); Tan, Karsoon (57205198122); Kwan, Kit Yue (57211492098)",59556472600; 59557889900; 59557691600; 59557691700; 59556472700; 57680096900; 57205198122; 57211492098,"The impact of anthropogenic activities on intertidal macrobenthic biodiversity: A case study in northern Beibu Gulf, China",2025,Ocean and Coastal Management,262,,107585,,,,0,10.1016/j.ocecoaman.2025.107585,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85217823000&doi=10.1016%2fj.ocecoaman.2025.107585&partnerID=40&md5=33b1d8ab990b3f90e9a88126d5631040,"Guangxi Key Laboratory of Beibu Gulf Marine Biodiversity Conservation, College of Marine Sciences, Beibu Gulf University, Guangxi, Qinzhou, China; Fisheries College, Jimei University, Fujian, Xiamen, China; Guangxi Hepu Dugong National Nature Reserve Management Center, Guangxi, Beihai, China","Lei G., Guangxi Key Laboratory of Beibu Gulf Marine Biodiversity Conservation, College of Marine Sciences, Beibu Gulf University, Guangxi, Qinzhou, China; Chen L., Guangxi Hepu Dugong National Nature Reserve Management Center, Guangxi, Beihai, China; Wang W., Guangxi Key Laboratory of Beibu Gulf Marine Biodiversity Conservation, College of Marine Sciences, Beibu Gulf University, Guangxi, Qinzhou, China; Li W., Guangxi Hepu Dugong National Nature Reserve Management Center, Guangxi, Beihai, China; Huang Y., Guangxi Hepu Dugong National Nature Reserve Management Center, Guangxi, Beihai, China; Yang X., Guangxi Key Laboratory of Beibu Gulf Marine Biodiversity Conservation, College of Marine Sciences, Beibu Gulf University, Guangxi, Qinzhou, China; Tan K., Guangxi Key Laboratory of Beibu Gulf Marine Biodiversity Conservation, College of Marine Sciences, Beibu Gulf University, Guangxi, Qinzhou, China; Kwan K.Y., Guangxi Key Laboratory of Beibu Gulf Marine Biodiversity Conservation, College of Marine Sciences, Beibu Gulf University, Guangxi, Qinzhou, China, Fisheries College, Jimei University, Fujian, Xiamen, China","Macrobenthos are crucial for maintaining the ecological balance of aquatic ecosystems. Given the high macrobenthic biodiversity of Beibu Gulf and its rapid economic development, this study evaluates the current state of the macrobenthic community and the impact of anthropogenic activities. The present study identified 82 macrobenthic species from the intertidal zones of northern Beibu Gulf, China, primarily mollusks (43.9%) and annelids (31.7%). The density and biomass of intertidal macrobenthos ranged from 113.45 ± 86.59 to 582.40 ± 179.07 ind./m2 and 76.39 ± 111.46 to 786.12 ± 609.17 g/m2, respectively. The Shannon-Weiner-Index, Margalef richness index, and Pielou evenness index ranged from 1.01 to 1.99, 1.38 to 2.52, and 0.80 to 1.38, respectively, suggested moderate anthropogenic influence. The dominant species were Pillucina vietnamica (Zorina, 1978), Cryptonetna producta (Kuroda & T. Habe, 1951), Praxillella cf. Affinis (M. Sars in G.O. Sars, 1872), Mictyris brevidactylus (Stimpson, 1858), and Cerithidea cingulata (Gmelin, 1791). One-way ANOSIM and MDS plots revealed that the intertidal macrobenthos formed three clusters: macrobenthos in the river mouth formed a single cluster, macrobenthos in areas with intensive human activity (factories, aquaculture, rural villages) formed another cluster, and macrobenthos in regions with less anthropogenic impact (near to urban city with sufficient sewage management system and nuclear power plant) formed a third cluster. Correlation analyses revealed that macrobenthos density, biomass, and biodiversity were mainly negatively associated with chlorophyll-a, total organic content, and sulfide levels. These findings provide valuable information on the current status of macrobenthic biodiversity in the northern Beibu Gulf, China. This information can serve as a guide for coastal planning and environmental management in the northern Beibu Gulf, China. © 2025 Elsevier Ltd",aquaculture; beibu gulf; intertidal zones; macrobenthos; urbanization,China; Gulf of Tonkin; Pacific Ocean; South China Sea; Abiotic; Anthropogenic; Aquaculture; Aquatic ecosystems; 'current; Anthropogenic activity; Beibu gulfs; Case-studies; Ecological balance; Economic development; Intertidal zones; Macrobenthic community; Macrobenthos; Urbanization; anthropogenic effect; aquaculture; biodiversity; human activity; identification key; intertidal environment; macrobenthos; urbanization; Macroinvertebrates,"K. Tan; Guangxi Key Laboratory of Beibu Gulf Marine Biodiversity Conservation, College of Marine Sciences, Beibu Gulf University, Qinzhou, Guangxi, China; email: tankarsoon@bbgu.edu.cn; K.Y. Kwan; Guangxi Key Laboratory of Beibu Gulf Marine Biodiversity Conservation, College of Marine Sciences, Beibu Gulf University, Qinzhou, Guangxi, China; email: kityuekwan@jmu.edu.cn",,Elsevier Ltd,,,,,,09645691,,OCMAE,,English,Ocean Coast. Manage.,Article,Final,,Scopus,2-s2.0-85217823000 Rogers J.A.; Pluckhahn T.J.; Jackson K.; Gilmore K.,"Rogers, Jaime A. (57556031500); Pluckhahn, Thomas J. (6507350446); Jackson, Kendal (57202924798); Gilmore, Kathleen (59695381500)",57556031500; 6507350446; 57202924798; 59695381500,"Multidimensional Experiences of Oystering: Investigating Selectivity and Management in Contemporary and Precolonial Oyster Assemblages From Tampa Bay, Florida, USA",2025,Journal of Ethnobiology,,,,,,,0,10.1177/02780771251325381,https://www.scopus.com/inward/record.uri?eid=2-s2.0-105000115833&doi=10.1177%2f02780771251325381&partnerID=40&md5=347a46c8e1ec413f6226495f8e0d5e49,"Department of Anthropology, University of South Florida, Tampa, FL, United States; School of Geosciences, University of South Florida, Tampa, FL, United States; School of Information, University of South Florida, Tampa, FL, United States","Rogers J.A., Department of Anthropology, University of South Florida, Tampa, FL, United States; Pluckhahn T.J., Department of Anthropology, University of South Florida, Tampa, FL, United States; Jackson K., School of Geosciences, University of South Florida, Tampa, FL, United States; Gilmore K., School of Information, University of South Florida, Tampa, FL, United States","Oysters are ecologically and culturally significant to communities worldwide. Their presence in precolonial shell middens attests to their longstanding importance to coastal societies, a relationship that is exemplified along Florida's Central Gulf Coast. However, archaeological investigations into oyster harvesting in the region have been mainly economic-centered. Our study enlists the concept of oyster merroir—the connection between the characteristics of oysters and the environmental and social contexts in which they are raised—to explore how the management and consumption of oysters are multidimensional and capable of reinforcing connections to specific places and times. To accomplish this, we compare the morphology and taphonomy of oyster shells from three assemblages: contemporary farmed, contemporary wild reefs, and precolonial middens to assess selective preferences. We contextualize our data with previously conducted interviews with those in the Florida oyster industry and through firsthand experience of these practices from volunteer days at local oyster farms and with oyster managers. We found more morphological and taphonomic variation between wild reefs than between archaeological sites, highlighting consistency in harvesting practices over centuries. Still, farmed oysters had the most morphological consistency, reflecting the goal of producing an idealized shell shape. Our data suggests that Indigenous Floridians were consistent but flexible in their oyster harvesting—targeting nearshore intertidal reefs and culling oyster clusters to maintain reef substrate. We conclude by outlining how each assemblage reinforces connections to time and space in their own way. © The Author(s) 2025.",archaeology; mariculture; oyster management; oyster merroir; selective preferences,,"J.A. Rogers; Department of Anthropology, University of South Florida, Tampa, 4202 E Fowler Ave, 33620-9951, United States; email: jaimerogers@usf.edu",,SAGE Publications Ltd,,,,,,02780771,,,,English,J. Ethnobiology,Article,Article in press,,Scopus,2-s2.0-105000115833 Huang X.; Huang K.; Chen S.; Yin X.; Pérez-Lorenzo M.; Teira E.; Fernández E.; Wang X.,"Huang, Xiaoyun (56767255000); Huang, Keyi (58505965500); Chen, Sihan (59489993600); Yin, Xinglan (59488724000); Pérez-Lorenzo, María (35976906300); Teira, Eva (55928804300); Fernández, Emilio (56659959400); Wang, Xiaolei (57015703600)",56767255000; 58505965500; 59489993600; 59488724000; 35976906300; 55928804300; 56659959400; 57015703600,A Diverse Vibrio Community in Ría de Vigo (Northwestern Spain),2024,Biology,13,12,986,,,,0,10.3390/biology13120986,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85213264182&doi=10.3390%2fbiology13120986&partnerID=40&md5=0cd40db69a8407ff3253263d000e6138,"College of Marine Life Sciences, Frontiers Science Center for Deep Ocean Multispheres and Earth System, Ocean University of China, Qingdao, 266003, China; Institute of Evolution & Marine Biodiversity, Ocean University of China, Qingdao, 266100, China; Centro de Investigación Mariña da Universidade de Vigo, Departamento de Ecoloxía e Bioloxía Animal, Facultade de Ciencias do Mar, Universidade de Vigo, Galicia, Vigo, 36310, Spain","Huang X., College of Marine Life Sciences, Frontiers Science Center for Deep Ocean Multispheres and Earth System, Ocean University of China, Qingdao, 266003, China, Institute of Evolution & Marine Biodiversity, Ocean University of China, Qingdao, 266100, China; Huang K., College of Marine Life Sciences, Frontiers Science Center for Deep Ocean Multispheres and Earth System, Ocean University of China, Qingdao, 266003, China, Institute of Evolution & Marine Biodiversity, Ocean University of China, Qingdao, 266100, China; Chen S., College of Marine Life Sciences, Frontiers Science Center for Deep Ocean Multispheres and Earth System, Ocean University of China, Qingdao, 266003, China, Institute of Evolution & Marine Biodiversity, Ocean University of China, Qingdao, 266100, China; Yin X., College of Marine Life Sciences, Frontiers Science Center for Deep Ocean Multispheres and Earth System, Ocean University of China, Qingdao, 266003, China, Institute of Evolution & Marine Biodiversity, Ocean University of China, Qingdao, 266100, China; Pérez-Lorenzo M., Centro de Investigación Mariña da Universidade de Vigo, Departamento de Ecoloxía e Bioloxía Animal, Facultade de Ciencias do Mar, Universidade de Vigo, Galicia, Vigo, 36310, Spain; Teira E., Centro de Investigación Mariña da Universidade de Vigo, Departamento de Ecoloxía e Bioloxía Animal, Facultade de Ciencias do Mar, Universidade de Vigo, Galicia, Vigo, 36310, Spain; Fernández E., Centro de Investigación Mariña da Universidade de Vigo, Departamento de Ecoloxía e Bioloxía Animal, Facultade de Ciencias do Mar, Universidade de Vigo, Galicia, Vigo, 36310, Spain; Wang X., College of Marine Life Sciences, Frontiers Science Center for Deep Ocean Multispheres and Earth System, Ocean University of China, Qingdao, 266003, China, Institute of Evolution & Marine Biodiversity, Ocean University of China, Qingdao, 266100, China","The genus Vibrio is genetically and ecologically diverse, resulting in severe economic losses in aquacultural macroalgae and animals. Studies on vibrios will contribute to the conservation of aquatic aquaculture in Ría de Vigo (Spain), which is famous for its shellfish farming activity. However, limited research focused on the diversity and distribution of Vibrio spp. in Ría de Vigo has been reported. Here, a slight increase in the abundance of Vibrio spp. was recorded from inshore to the open sea by quantitative PCR (qPCR). Vibrios were more abundant in the free-living (FL) than in the particle-associated (PA) fraction, showing that FL might be their preferential lifestyle. Photobacterium piscicola, Vibrio japonicus and Vibrio harveyi, which are serious pathogens for fish and invertebrates in mariculture, were found to be the dominant species across all samples by high-throughput sequencing and analyses and were mainly affected by stochastic processes. More colony-forming units and species of vibrios were recorded at 16 °C (18 species) than at 28 °C (6 species), and five isolates (5.05% of the total isolates) showed low 16S rRNA gene similarity (<98.65%) to the known strains. The results indicate that culture conditions closer to the in situ temperature may help to isolate more Vibrio species. Our findings may contribute to local aquatic aquaculture research, providing background information and novel insights for management and pathogen prevention in aquaculture, and more studies should focus on Ría de Vigo to acquire novel or pathogenic microbes in the future. © 2024 by the authors.",aquaculture; aquatic ecosystems; diversity; ría de vigo; vibrio community,,"X. Wang; College of Marine Life Sciences, Frontiers Science Center for Deep Ocean Multispheres and Earth System, Ocean University of China, Qingdao, 266003, China; email: wangxiaolei@ouc.edu.cn; E. Fernández; Centro de Investigación Mariña da Universidade de Vigo, Departamento de Ecoloxía e Bioloxía Animal, Facultade de Ciencias do Mar, Universidade de Vigo, Vigo, Galicia, 36310, Spain; email: esuarez@uvigo.gal",,Multidisciplinary Digital Publishing Institute (MDPI),,,,,,20797737,,,,English,Biology,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85213264182 Geng B.; Wu D.; Zhang C.; Xie W.; Mahmood M.A.; Ali Q.,"Geng, Biao (57447912500); Wu, Daoning (57447783700); Zhang, Chengshu (58805391400); Xie, Wenbao (58804231200); Mahmood, Muhammad Aamir (58804924400); Ali, Qamar (57193531616)",57447912500; 57447783700; 58805391400; 58804231200; 58804924400; 57193531616,How Can the Blue Economy Contribute to Inclusive Growth and Ecosystem Resources in Asia? A Comparative Analysis,2024,Sustainability (Switzerland),16,1,429,,,,8,10.3390/su16010429,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85181871515&doi=10.3390%2fsu16010429&partnerID=40&md5=9cbdeaad84eea654069636d2cbed5d43,"Economical and Management College, West Anhui University, Lu’an, 237012, China; School of Information Technology & Engineering, Guangzhou College of Commerce, Guangzhou, 511363, China; Department of Management Sciences, Virtual University of Pakistan, Faisalabad Campus, Faisalabad, 38000, Pakistan; Department of Economics, Virtual University of Pakistan, Faisalabad, 38000, Pakistan","Geng B., Economical and Management College, West Anhui University, Lu’an, 237012, China; Wu D., School of Information Technology & Engineering, Guangzhou College of Commerce, Guangzhou, 511363, China; Zhang C., Economical and Management College, West Anhui University, Lu’an, 237012, China; Xie W., Economical and Management College, West Anhui University, Lu’an, 237012, China; Mahmood M.A., Department of Management Sciences, Virtual University of Pakistan, Faisalabad Campus, Faisalabad, 38000, Pakistan; Ali Q., Department of Economics, Virtual University of Pakistan, Faisalabad, 38000, Pakistan","This study investigated the impact of economic, environmental, and social indicators on inclusive growth in 19 member countries of the Asian Cooperation Dialogue from 1995 to 2021. This research employed the Driscoll–Kraay standard error regression technique. The findings reveal that the impact of independent variables on inclusive growth differs significantly among three distinct income categories: lower-middle-income countries (LMYCs), upper-middle-income countries (UMYCs), and high-income countries (HYCs). One of the primary contributions of this research is the provision of empirical evidence concerning the role played by fishery and aquaculture production in fostering inclusive growth in the Asian context. This research also highlights the trade-offs between economic development and environmental sustainability in terms of trade openness; agriculture, forestry, and fishing; the ecological footprint; and renewable energy utilization. Enhancing inclusive growth in Asia requires improving fishery and aquaculture management, diversifying economic activities, reducing the ecological footprint, and increasing renewable energy utilization. This paper suggests some future work directions for extending the analysis to other regions and indicators. The paper also suggests some policy implications for fostering inclusive growth in Asia through regional cooperation, capacity building, technology transfer, and green financing. © 2024 by the authors.",asia; fishery and aquaculture production; inclusive growth; renewable energy; socioeconomic; sustainability,Asia; alternative energy; aquaculture production; comparative study; ecological footprint; economic activity; economic development; error analysis; growth rate; socioeconomic indicator; sustainability; terms of trade; trade openness,"D. Wu; School of Information Technology & Engineering, Guangzhou College of Commerce, Guangzhou, 511363, China; email: wudaoning14@mails.ucas.ac.cn",,Multidisciplinary Digital Publishing Institute (MDPI),,,,,,20711050,,,,English,Sustainability,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85181871515 Nagel B.; Anggraini E.; Buhari N.; Gray S.; Partelow S.; Schlüter A.,"Nagel, Ben (57296331300); Anggraini, Eva (55937973400); Buhari, Nurliah (55977938700); Gray, Steven (35310150500); Partelow, Stefan (56415115600); Schlüter, Achim (56240507200)",57296331300; 55937973400; 55977938700; 35310150500; 56415115600; 56240507200,Mental models of aquaculture governance in Indonesia,2024,Sustainability Science,19,6,,1825,1845,20,1,10.1007/s11625-024-01545-y,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85201395715&doi=10.1007%2fs11625-024-01545-y&partnerID=40&md5=fa5b9282be67aaad2e1259eeda837cd5,"Leibniz Centre for Tropical Marine Research (ZMT), Fahrenheitstraße 6, Bremen, 28359, Germany; Constructor University, Campus Ring 1, Bremen, 28759, Germany; Bogor Agricultural Institute, Bogor, Indonesia; University of Mataram, Mataram City, Indonesia; Michigan State University, East Lansing, 48823, MI, United States; Center for Life Ethics, University of Bonn, Bonner Talweg 57, Bonn, 53113, Germany","Nagel B., Leibniz Centre for Tropical Marine Research (ZMT), Fahrenheitstraße 6, Bremen, 28359, Germany, Constructor University, Campus Ring 1, Bremen, 28759, Germany; Anggraini E., Bogor Agricultural Institute, Bogor, Indonesia; Buhari N., University of Mataram, Mataram City, Indonesia; Gray S., Michigan State University, East Lansing, 48823, MI, United States; Partelow S., Leibniz Centre for Tropical Marine Research (ZMT), Fahrenheitstraße 6, Bremen, 28359, Germany, Center for Life Ethics, University of Bonn, Bonner Talweg 57, Bonn, 53113, Germany; Schlüter A., Leibniz Centre for Tropical Marine Research (ZMT), Fahrenheitstraße 6, Bremen, 28359, Germany, Constructor University, Campus Ring 1, Bremen, 28759, Germany","Aquaculture stakeholders have mental models, which are the internal cognitive representations of how they understand and prioritize the different features of their aquaculture systems. Individuals and stakeholder groups are likely to have different mental models, with implications for making cooperative governance work and guiding the rapidly emerging sector’s sustainable development. We apply a participatory approach called fuzzy cognitive mapping to capture and compare the mental models of community-based coastal pond aquaculture stakeholders in Indonesia, including farmers, government managers, and researchers who need to work together to govern a rapidly expanding aquaculture sector which faces critical sustainability challenges. To conceptually structure our comparison, we use Elinor Ostrom’s social–ecological systems framework. Our results highlight important differences between stakeholder group mental models which represent potential conflicts of interest and barriers for collaborative governance. Fish farmer models emphasize resource system challenges relating to production instability and risk, while government managers emphasize increasing production intensity to meet sectoral growth targets. Researchers, in contrast, tend to focus on pond waste treatment and water quality management. Governance attributes were consistently perceived as less frequent and less influential compared to other social–ecological dimensions, reflecting perceptions of weak governance in the sector. We identify a critical need for programs aimed at strengthening community-level institutional arrangements for governing shared aquaculture resources, increasing technical knowledge capacity, and managing financial risk. By merging all stakeholder models into a single “community” model, we identify key consensus action situations across the three groups as potential focal points for aquaculture development which may serve as a starting point for actors to work together to identify context-appropriate institutional solutions to these sustainability challenges. © The Author(s) 2024.",aquaculture; fuzzy cognitive map; indonesia; mental models; social-ecological systems,,"B. Nagel; Leibniz Centre for Tropical Marine Research (ZMT), Bremen, Fahrenheitstraße 6, 28359, Germany; email: ben.nagel@leibniz-zmt.de",,Springer,,,,,,18624065,,,,English,Sustainability Sci.,Article,Final,All Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85201395715 De K.; Dwivedi A.K.,"De, Kritish (57211006038); Dwivedi, Arvind Kumar (55322369800)",57211006038; 55322369800,Bridging gaps in the Indian freshwater biodiversity conservation through science-based and policy-backed recommendations,2024,Ecohydrology and Hydrobiology,24,1,,169,177,8,12,10.1016/j.ecohyd.2023.06.013,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85168820166&doi=10.1016%2fj.ecohyd.2023.06.013&partnerID=40&md5=e49d38858917176b88939ec754bd8366,"Department of Life Sciences, Sri Sathya Sai University for Human Excellence, Navanihal, Okali Post, Kamalapur, Karnataka, Kalaburagi, 585313, India; Faculty of Life Sciences, Mandsaur University, Madhya Pradesh, Mandsaur, 458001, India","De K., Department of Life Sciences, Sri Sathya Sai University for Human Excellence, Navanihal, Okali Post, Kamalapur, Karnataka, Kalaburagi, 585313, India; Dwivedi A.K., Faculty of Life Sciences, Mandsaur University, Madhya Pradesh, Mandsaur, 458001, India",India's freshwater biological resources are threatened by multiple stressors and ongoing conservation efforts are insufficient to tackle these challenges. We therefore propose 14 recommendations to halt India's freshwater biodiversity loss. i) Set up a separate ministry on biodiversity to develop and monitor policies. ii) Collection of comprehensive ecological data and sharing with the global scientific community for better assessment. iii) Assessment of data reliability and relevance towards conservation and sustainable management. iv) Integrating terrestrial-freshwater ecosystem management to effectively conserve freshwater biota. v) Implementation of environmental flow regulations for maintaining hydrological connectivity. vi) Augmentation of Protected Areas to protect freshwater biota. vii) Implementation of regulatory frameworks for trade in exotic species to reduce invasiveness. viii) Avoiding fish seed ranching programs in rivers to evade contamination of natural stocks and disease outbreaks from aquaculture. ix) Increasing collaboration between neighboring states and countries on shared freshwater ecosystem for global and regional sustainability. x) Inclusion of compulsory curriculum on biodiversity at different educational stages for developing responsibility towards protecting biodiversity. xi) Building trust among all stakeholders for better management plans through their active participation. xii) Providing alternative livelihood options to improve the socio-economic status of local people to reduce their direct dependency on freshwater ecosystems. xiii) Promotion of citizen science approach on remuneration basis in conserving freshwater biodiversity. xiv) Enabling better use of digital technologies for freshwater biodiversity monitoring. Inclusion of these timely science-based and policy-backed aquatic ecosystems protection guidelines will therefore help to achieve freshwater biodiversity conservation goals successfully in India. © 2023 European Regional Centre for Ecohydrology of the Polish Academy of Sciences,aquatic ecosystems; biological resources; production efficiency; socioeconomic; threats,India; biodiversity; freshwater ecosystem; guideline; policy approach; science and technology; socioeconomic impact,"A.K. Dwivedi; Faculty of Life Sciences, Mandsaur University, Mandsaur, Madhya Pradesh, 458001, India; email: arvindbio@rediffmail.com",,Elsevier B.V.,,,,,,16423593,,EHCYA,,English,Ecohydrol. Hydrobiol.,Article,Final,,Scopus,2-s2.0-85168820166 Turner S.; Garber P.,"Turner, Sarah (7402275425); Garber, Peter (57390066400)",7402275425; 57390066400,"Ripples of Change: Introduced Fish, Ethnic Minority Farmers, and Lively Commodity Chains in Upland Vietnam",2024,Human Ecology,52,4,,797,811,14,1,10.1007/s10745-024-00536-y,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85205552048&doi=10.1007%2fs10745-024-00536-y&partnerID=40&md5=7c25ad5910593ff282c2d549f4b7ed40,"Department of Geography, McGill University, Montreal, H3A 0B9, QC, Canada","Turner S., Department of Geography, McGill University, Montreal, H3A 0B9, QC, Canada; Garber P., Department of Geography, McGill University, Montreal, H3A 0B9, QC, Canada","In the uplands of northern Vietnam, many Hmong and Mien (Yao/Dao) ethnic minority farmers are adapting to economic reforms and market integration by diversifying their livelihoods. For those with the necessary resources, this has included the cultivation of trout and sturgeon, both introduced species. This move into fish farming, propelled by state policies and growing demand from lowland consumers, signifies an intriguing shift from farmers’ previous small-scale trade of non-timber forest products and upland livestock. In this paper we explore the complex commodity chains of these ‘lively commodities’ and assess their integration into local economies, drawing on extensive ethnographic fieldwork. We evaluate the socio-economic, cultural, and environmental impacts of fish farming on ethnic minority communities, noting the continuous learning, community networks and collaboration, and innovative problem-solving required for farmers to succeed. We then proceed along these commodity chains, highlighting other dynamic relationships and challenges. While we question the potential for new market dependencies to economically entrap farmers, our findings reveal that fish farming often serves as supplemental income, allowing the continuation of long-standing agricultural practices alongside new market engagements. We highlight the adaptability of Hmong and Mien households, critiquing the notion of complete and inescapable market dependency when farmers diversify into new livelihood options. Our paper thus contributes to broader discussions on livelihood change, market integration, and socioeconomic transformations in rural ethnic minority regions of Vietnam. © The Author(s), under exclusive licence to Springer Science+Business Media, LLC, part of Springer Nature 2024.",fish farming; hmong; livelihoods; lively commodities; mien; vietnam; yao,Viet Nam; agricultural worker; commodity market; ethnic minority; finfish; fish; introduced species; livelihood; upland region,"S. Turner; Department of Geography, McGill University, Montreal, H3A 0B9, Canada; email: sarah.turner@mcgill.ca",,Springer,,,,,,03007839,,,,English,Hum. Ecol.,Article,Final,,Scopus,2-s2.0-85205552048 Cheung W.W.L.; Pauly D.; Sumaila U.R.,"Cheung, William W. L. (57484627900); Pauly, Daniel (7007030396); Sumaila, U. Rashid (6701840163)",57484627900; 7007030396; 6701840163,Hope or Despair Revisited: Assessing Progress and New Challenges in Global Fisheries,2025,Fish and Fisheries,26,2,,257,269,12,1,10.1111/faf.12877,https://www.scopus.com/inward/record.uri?eid=2-s2.0-86000435465&doi=10.1111%2ffaf.12877&partnerID=40&md5=e120c6276ca35e21c0d80ad3526d7c6a,"Global Fisheries Cluster, Institute for the Oceans and Fisheries, The University of British Columbia, Vancouver, BC, Canada","Cheung W.W.L., Global Fisheries Cluster, Institute for the Oceans and Fisheries, The University of British Columbia, Vancouver, BC, Canada; Pauly D., Global Fisheries Cluster, Institute for the Oceans and Fisheries, The University of British Columbia, Vancouver, BC, Canada; Sumaila U.R., Global Fisheries Cluster, Institute for the Oceans and Fisheries, The University of British Columbia, Vancouver, BC, Canada","Marine fisheries are crucial to the economy, livelihood, food security and culture of coastal nations and communities, significantly contributing to the United Nations Sustainable Development Goals. A decade ago, T. J. Pitcher and W. W. L. Cheung highlighted the dichotomy in the perception of fisheries' status, concluding that long-term sustainability and benefits to people were threatened by overexploitation, climate change, pollution, habitat change and other human stressors. They advocated for a fundamental shift towards ecosystem-based management, better enforcement of existing regulations and more inclusive and equitable management practices. In this paper, we provide an updated review of the status of global fisheries, reflecting on policy actions, key assessments and research findings over the past decade. While there is a growing recognition of the need for sustainable fisheries management and ocean protection, the overall status of fisheries has not improved. Despite progress in international and national policies addressing direct and indirect drivers such as climate change and harmful practices, these trends have not been reversed. Many challenges identified by Pitcher and Cheung and others persist. Additionally, new and emerging issues such as deep-sea mining, plastic pollution, unhealthy aquaculture development, increasing social inequity and the rapidly increasing push for the acceleration of the blue economy exacerbate the complexity of achieving fisheries and other ocean management goals. Debating whether there is more hope or despair in global fisheries has become irrelevant. Pathways to ‘bend the curve’ for fisheries are clear, and effective actions are now urgently needed to achieve desirable and sustainable fisheries. © 2024 The Author(s). Fish and Fisheries published by John Wiley & Sons Ltd.",biodiversity loss; climate change; ecosystem services; global fisheries sustainability; overexploitation,aquaculture; biodiversity; climate change; ecosystem management; fishery; food security; habitat management; sustainability; United Nations,"W.W.L. Cheung; Global Fisheries Cluster, Institute for the Oceans and Fisheries, The University of British Columbia, Vancouver, Canada; email: w.cheung@oceans.ubc.ca",,John Wiley and Sons Inc,,,,,,14672960,,FFIIA,,English,Fish Fish.,Article,Final,All Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-86000435465 Qiu C.; Yang J.; Li Y.; Zhou Y.; Xu W.; Wang C.; Wright A.; Naylor L.; Liu H.,"Qiu, Chunqi (57220867151); Yang, Jialing (57223126790); Li, Yufeng (37012754300); Zhou, Yong (57221751981); Xu, Wei (59621213500); Wang, Cheng (59089975800); Wright, Alan (7403738208); Naylor, Larissa (7005500020); Liu, Hongyu (35107754800)",57220867151; 57223126790; 37012754300; 57221751981; 59621213500; 59089975800; 7403738208; 7005500020; 35107754800,Research on Grus japonensis habitat requirements for developing restoration plans,2024,Ocean and Coastal Management,249,,106983,,,,2,10.1016/j.ocecoaman.2023.106983,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85181009272&doi=10.1016%2fj.ocecoaman.2023.106983&partnerID=40&md5=306d81ab5ebe981be7189b9f093067b9,"School of Marine Science and Engineering, Nanjing Normal University, 1 Wenyuan Road, Jiangsu, Nanjing, 210023, China; School of Economics and Management, Anhui Agricultural University, No. 130 Changjiang West Road, Anhui, Hefei, 230031, China; Indian River Research and Education Center, Soil and Water Sciences Department, University of Florida-IFAS, 2199 South Rock Road, Fort Pierce, 34945, FL, United States; School of Geographical & Earth Sciences, University of Glasgow, Glasgow, G12 8QQ, United Kingdom","Qiu C., School of Marine Science and Engineering, Nanjing Normal University, 1 Wenyuan Road, Jiangsu, Nanjing, 210023, China; Yang J., School of Marine Science and Engineering, Nanjing Normal University, 1 Wenyuan Road, Jiangsu, Nanjing, 210023, China; Li Y., School of Marine Science and Engineering, Nanjing Normal University, 1 Wenyuan Road, Jiangsu, Nanjing, 210023, China; Zhou Y., School of Marine Science and Engineering, Nanjing Normal University, 1 Wenyuan Road, Jiangsu, Nanjing, 210023, China; Xu W., School of Marine Science and Engineering, Nanjing Normal University, 1 Wenyuan Road, Jiangsu, Nanjing, 210023, China; Wang C., School of Economics and Management, Anhui Agricultural University, No. 130 Changjiang West Road, Anhui, Hefei, 230031, China; Wright A., Indian River Research and Education Center, Soil and Water Sciences Department, University of Florida-IFAS, 2199 South Rock Road, Fort Pierce, 34945, FL, United States; Naylor L., School of Geographical & Earth Sciences, University of Glasgow, Glasgow, G12 8QQ, United Kingdom; Liu H., School of Marine Science and Engineering, Nanjing Normal University, 1 Wenyuan Road, Jiangsu, Nanjing, 210023, China","As an endemic species in Asia, Grus japonensis reproduction and survival rely on natural wetland resources. In the Yancheng coastal wetlands, the wintering habitat of Grus japonensis had been destroyed due to rapid social and economic development. At the same time, its population also declined leading to land use changes. Therefore, it was urgent to conduct scientific restoration and management of the winter habitat. Based on the structural habitat demand for Grus japonensis, traffic light warning analysis and landscape structure index system were used to guide habitat restoration. The main conclusions were as follows: the population of Grus japonensis in Yancheng coastal wetlands reached its highest recorded number of 952 in 2000. The population showed a tendency to concentrate in the core area (CA) of the Yancheng National Nature Reserve (YNNR). The locations of restoration areas under yellow, green and peak historical state were determined by the traffic light warning analysis. Landscape indicator thresholds were set based on the landscape conditions of the habitat in 2000. After restoration, the habitat should contain at least two landscape types: Phragmites australis (P. australis), Suaeda salsa (S. salsa) and ponds, with a minimum patch area of 5.22–19.11 km2 and 5–17 patches. Habitat should be located at least 500 m from roads and farmland and 1000 m from residential areas. From the perspective of improving landscape diversity, “P. australis-pond habitat”, “P. australis-S. salsa habitat”, “Continuous P. australis habitat” and “Continuous S. salsa habitat” were constructed by landscape patterns. Finally, according to the land use situation around the habitat, the “Friendly” land use layout of “Salt marsh wetland-Low intensity ecological aquaculture pond-Farmland-Construction land” from sea to land was developed. This mode provides a reference for the habitat restoration of coastal wetlands. © 2023 Elsevier Ltd",early warning analysis; grus japonensis; habitat restoration; yancheng coastal wetlands,China; Jiangsu; Yancheng; Cell proliferation; Economics; Ecosystems; Farms; Lakes; Land use; Wetlands; Coastal wetlands; Early warning analysis; Endemic species; Gri japonensis; Habitat restoration; Natural wetland; Phragmites australis; Suaeda salsa; Traffic light; Yancheng coastal wetland; coastal wetland; early warning system; economic development; endemic species; habitat restoration; land use change; Restoration,"Y. Li; School of Marine Science and Engineering, Nanjing Normal University, 1 Wenyuan Road, Jiangsu, 210023, China; email: pandalee_0826@163.com; H. Liu; School of Marine Science and Engineering, Nanjing Normal University, 1 Wenyuan Road, Jiangsu, 210023, China; email: liuhongyu@njnu.edu.cn",,Elsevier Ltd,,,,,,09645691,,OCMAE,,English,Ocean Coast. Manage.,Article,Final,,Scopus,2-s2.0-85181009272 Morton J.M.; Shew E.; Hetrick W.; Carl A.,"Morton, John M. (36824291000); Shew, Erin (57199263743); Hetrick, Willow (57222217316); Carl, Allison (59678194600)",36824291000; 57199263743; 57222217316; 59678194600,Vulnerability of Alaska Native Tribes in the Chugach Region to Selected Climate and Nonclimate Stressors,2024,USDA Forest Service - General Technical Report PNW-GTR,2024,,,,,,0,10.2737/PNW-GTR-1021,https://www.scopus.com/inward/record.uri?eid=2-s2.0-86000519943&doi=10.2737%2fPNW-GTR-1021&partnerID=40&md5=579e6605eb08c8f5a43b26831dc6b3a1,"Anthropocene Rewilding, P.O. Box 105, Soldotna, 99669, AK, United States; Chugach Regional Resources Commission, P.O. Box 111686, Anchorage, 99511, AK, United States","Morton J.M., Anthropocene Rewilding, P.O. Box 105, Soldotna, 99669, AK, United States; Shew E., Chugach Regional Resources Commission, P.O. Box 111686, Anchorage, 99511, AK, United States; Hetrick W., Chugach Regional Resources Commission, P.O. Box 111686, Anchorage, 99511, AK, United States; Carl A., Chugach Regional Resources Commission, P.O. Box 111686, Anchorage, 99511, AK, United States","We assess the vulnerability of seven Alaska Native tribes in the Chugach region, which includes Prince William Sound (tribes in Chenega, Cordova, Qutekcak [Seward], Tatitlek, and Valdez) and the adjoining Kenai Peninsula (Nanwalek and Port Graham), to key climate and nonclimate stressors. This report supplements the interagency Climate Change Vulnerability Assessment for the Chugach National Forest and the Kenai Peninsula that was published in 2017. Over the next 50 years, all communities are generally expected to experi-ence higher temperatures, with decreasing snowpack along the coast where these villages are located. However, at a finer scale, neither climate change nor natural resource distribution are uniform among communities. Tribal community members remain dependent on wild resources, harvesting 97 kg per person annually for subsistence purposes. This harvest is composed of 42 percent salmon, 26 percent nonsalmon fish, 10 percent marine mammals, 12 percent land mammals, 5 percent marine invertebrates, 4 percent vegetation, and 1 percent birds and eggs, and represents more than 140 species. In addition to contributing to food security, wild resources provide economic opportunities in communities, where they are often limited through commercial hunting and fishing operations, the generation of tourism, and the sale of arts and crafts. Wild resources are also an important cultural and spiritual component of Alaska Native communities, with access to these foods contributing to physical and mental well-being. We selected pink salmon (Oncorhynchus gorbuscha), eulachon (Thaleichthys pacificus), harbor (common) seal (Phoca vitulina), Sitka black-tailed deer (Odocoileus hemionus sitken-sis), Pacific razor clam (Siliqua patula), blueberry (Vaccinium spp.), and black oystercatcher (Haematopus bachmani) for assessment to represent each of the seven resource categories of subsistence harvest, respectively. Although only harbor seal and Pacific razor clam populations are decreasing currently in the assessment area, all but Sitka black-tailed deer will likely decrease in the foreseeable future. Rather than trying to directly address vulnerabil-ities, many of which are either unmanageable (e.g., ocean currents) or unpredictable (e.g., oil spills), we suggest the importance of focusing on resilience in traditional resources by developing both community-grown foods through agriculture, agroforestry, mariculture, or kelp farming, as well as enhancing local natural resources through habitat management and monitoring. We identify several considerations for building resilience through more collaborative resource management, building on the skills and knowledge of Alaska Native hunters who have studied, observed, and stewarded these lands and waters since time immemorial. © 2024, USDA Forest Service. All rights reserved.",alaska native; chugach; climate change; kenai peninsula; prince william sound; subsistence; sugpiat,Alaska; Chugach National Forest; Kenai Peninsula; Prince William Sound; United States; climate change; deer; environmental factor; environmental stress; habitat management; hunting; natural resource; pinniped; snowpack; subsistence; vulnerability,,,USDA Forest Service,,,,,,08874840,,,,English,USDA For. Serv. Gen. Tech. Rep. PNW GTR,Article,Final,All Open Access; Bronze Open Access,Scopus,2-s2.0-86000519943 Budrudzaman M.; Bärnighausen K.; Selim S.; Irfanullah H.M.,"Budrudzaman, Mohammad (58019732700); Bärnighausen, Kate (57203007862); Selim, Samiya (57205549382); Irfanullah, Haseeb Md (8579284400)",58019732700; 57203007862; 57205549382; 8579284400,"Water, water, everywhere, nor any drop to drink: qualitatively unraveling the nuances of non-economic loss and damage in Bangladesh",2025,Local Environment,,,,,,,0,10.1080/13549839.2025.2496158,https://www.scopus.com/inward/record.uri?eid=2-s2.0-105003484661&doi=10.1080%2f13549839.2025.2496158&partnerID=40&md5=1b9a55b6c7c45655def355b45794ea89,"Research Department, SAJIDA Foundation, Dhaka, Bangladesh; Heidelberg Institute of Global Health, Heidelberg University Hospital, Heidelberg, Germany; Center for Sustainable Development, University of Liberal Arts Bangladesh, Dhaka, Bangladesh","Budrudzaman M., Research Department, SAJIDA Foundation, Dhaka, Bangladesh; Bärnighausen K., Heidelberg Institute of Global Health, Heidelberg University Hospital, Heidelberg, Germany; Selim S., Center for Sustainable Development, University of Liberal Arts Bangladesh, Dhaka, Bangladesh; Irfanullah H.M., Center for Sustainable Development, University of Liberal Arts Bangladesh, Dhaka, Bangladesh","The research qualitatively explores water salinity's pathways to non-economic losses, their interconnections and contribution to economic losses. We conducted six focus group discussions with 60 participants from 5 coastal villages in Satkhira, Bangladesh. We organise our findings around three types of direct and five types of indirect losses. Of these eight losses, five are interconnected through cascading impacts and five contribute to economic losses. The direct losses include loss of water quality and its symbolic meaning, loss of physical health and loss of religious culture. Indirect losses include mental health challenges (e.g. arising from physical health issues), social connection and values (e.g. decreased cooperation due to loss of water provision, and problems in intercommunity marriages), education (due to physical health issues), territorial value and mobility (as a way of living degrades due to a combination of other losses) and local knowledge (with loss of traditional fish farming). We highlight losses of social connection and values, water quality, health and mobility exacerbate economic losses. We conclude complex circumstances force individuals to compromise health, social relations and personal hygiene, leading to value trade-offs. The losses pose transgenerational challenges including the loss of cultural practices that may diminish community identity, weaken social cohesion and reduce adaptive capacity in the future. We advocate for community-centric interventions such as restoring degraded water sources and establishing new ones. For sustainability, active community participation in planning, monitoring and management should be supported by national and international stakeholders. Integrating loss and damage considerations into policies is imperative. © 2025 Informa UK Limited, trading as Taylor & Francis Group.",non-economic loss and damage; sea-level rise; slow-onset; water salinity,,"M. Budrudzaman; Research Department, SAJIDA Foundation, OTOBI Center, Dhaka, 1st, 4th & 5th Floor, Plot 12, Block CWS(C), Gulshan South AvenueGulshan 1, 1212, Bangladesh; email: budrudzaman@sajida.org",,Routledge,,,,,,13549839,,,,English,Local Environ.,Article,Article in press,,Scopus,2-s2.0-105003484661 Froehlich H.E.; Montgomery J.C.; Williams D.R.; O'Hara C.; Kuempel C.D.; Halpern B.S.,"Froehlich, Halley E. (55818148100); Montgomery, Jamie C. (57224769572); Williams, David R. (57210249590); O'Hara, Casey (57194116367); Kuempel, Caitlin D. (57190735946); Halpern, Benjamin S. (7103099423)",55818148100; 57224769572; 57210249590; 57194116367; 57190735946; 7103099423,Biological life-history and farming scenarios of marine aquaculture to help reduce wild marine fishing pressure,2023,Fish and Fisheries,24,6,,1034,1047,13,7,10.1111/faf.12783,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85168360067&doi=10.1111%2ffaf.12783&partnerID=40&md5=aa10546affef3a87f49eebf52233cc1d,"Department of Ecology, Evolution, and Marine Biology, University of California, Santa Barbara, CA, United States; Environmental Studies, University of California, Santa Barbara, CA, United States; Bren School of Environmental Science and Management, University of California, Santa Barbara, CA, United States; Sustainability Research Institute, School of Earth and Environment, University of Leeds, Leeds, United Kingdom; National Center for Ecological Analysis and Synthesis, University of California, Santa Barbara, CA, United States; Australian Rivers Institute, School of Environment and Science, Griffith University, Nathan, QLD, Australia; Coastal and Marine Research Centre, Griffith University, Nathan, QLD, Australia","Froehlich H.E., Department of Ecology, Evolution, and Marine Biology, University of California, Santa Barbara, CA, United States, Environmental Studies, University of California, Santa Barbara, CA, United States; Montgomery J.C., Bren School of Environmental Science and Management, University of California, Santa Barbara, CA, United States; Williams D.R., Sustainability Research Institute, School of Earth and Environment, University of Leeds, Leeds, United Kingdom; O'Hara C., Bren School of Environmental Science and Management, University of California, Santa Barbara, CA, United States, National Center for Ecological Analysis and Synthesis, University of California, Santa Barbara, CA, United States; Kuempel C.D., Australian Rivers Institute, School of Environment and Science, Griffith University, Nathan, QLD, Australia, Coastal and Marine Research Centre, Griffith University, Nathan, QLD, Australia; Halpern B.S., Bren School of Environmental Science and Management, University of California, Santa Barbara, CA, United States, National Center for Ecological Analysis and Synthesis, University of California, Santa Barbara, CA, United States","Aquaculture (freshwater and marine) has largely supplemented fisheries, but in theory could help reduce fishing pressure on wild stocks. Although not the sole factors, some potential benefits depend on aquaculture pressures on fished species, including collection of wild ‘seed’ material—earlier to later life stages—for rearing in captivity and the capacity of aquaculture to increase. Here we first classify 203 marine (saltwater and brackish) animal species as being produced by either open-cycle capture-based aquaculture (CBA) or closed-cycle domesticated aquaculture (DA)—based on their likely reliance on wild seed—and assess the extent to which these forms of aquaculture could support seafood production and greater wild biomass. Using a data-limited modelling approach, we find evidence that current aquaculture practices are not necessarily helping reduce fishing to sustainable levels for their wild counterparts—consistent with emerging scientific research. However, if some wild capture species (87 equivalent spp.) were instead produced through CBA, almost a million extra tonnes could theoretically be left in the wild, without reducing seafood production. Alternatively, if reliance on wild seed inputs is further reduced by shifting to DA production, then a little less than doubling of aquaculture of the overexploited species in our study could help fill the ‘production gap’ to support fishing at maximum sustainable levels. While other ecological (e.g. escapes), social and economic considerations (e.g. market substitution) are important, we focused on a critical biological linkage between wild fisheries and aquaculture that provides another aspect on how to improve management alignment of the sectors. © 2023 The Authors. Fish and Fisheries published by John Wiley & Sons Ltd.",ecosystem services; food security; integrated management; msy; sustainability,aquaculture system; fishing effort; food security; seafood; sustainability; sustainable development,"H.E. Froehlich; Department of Ecology, Evolution, and Marine Biology, University of California, Santa Barbara, 93106, United States; email: hefroehlich@ucsb.edu",,John Wiley and Sons Inc,,,,,,14672960,,FFIIA,,English,Fish Fish.,Article,Final,All Open Access; Green Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85168360067 Abramic A.; Garcia Mendoza A.; Cordero-Penin V.; Magalhães M.; Fernández-Palacios Y.; Andrade C.; Calado H.; Kaushik S.; Carreira G.; Nogueira N.; Shinoda D.; Haroun R.,"Abramic, Andrej (55246038900); Garcia Mendoza, Alejandro (57223411347); Cordero-Penin, Victor (57226127957); Magalhães, Maria (24341585200); Fernández-Palacios, Yaiza (55957264500); Andrade, Carlos (14035132200); Calado, Helena (24823792100); Kaushik, Sachi (55421391200); Carreira, Gilberto (26655334100); Nogueira, Natacha (11439064200); Shinoda, Deborah (57204938716); Haroun, Ricardo (6603827643)",55246038900; 57223411347; 57226127957; 24341585200; 55957264500; 14035132200; 24823792100; 55421391200; 26655334100; 11439064200; 57204938716; 6603827643,"Site selection within the maritime spatial planning: Insights from use-cases on aquaculture, offshore wind energy and aggregates extraction",2024,Ocean and Coastal Management,251,,107051,,,,2,10.1016/j.ocecoaman.2024.107051,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85187232056&doi=10.1016%2fj.ocecoaman.2024.107051&partnerID=40&md5=dc2448c1abcc61435894431f8e93e1de,"Biodiversity & Conservation Research Group, ECOAQUA, Univ. Las Palmas de Gran Canaria, Scientific & Technological Marine Park, Crta. Taliarte s/n, Telde, 35214, Spain; Regional Secretariat for the Sea and Fisheries, Regional Directorate for Sea Affairs, Rua Consul Dabney, Apartado 9, Açores, Horta, 9900-041, Portugal; MARE – Marine and Environmental Sciences Centre / ARNET - Aquatic Research Network, Agência Regional para o Desenvolvimento da Investigação Tecnologia e Inovação (ARDITI), Ed. Madeira Tecnopolo, Madeira, Funchal, 9020 - 105, Portugal; School of Sciences and Technology (FCT) University of Azores, Mare Research Center, Rua da Mãe de Deus, Ponta Delgada, 9500, Portugal; Regional Directorate of the Sea (DRM), Regional Secretariat for the Sea and Fisheries, Autonomous Region of Madeira, Funchal, Portugal; Faculty of Sciences and Technology, University of the Azores, Mãe de Deus St., Ponta Delgada, Portugal; Gaspar Frutuoso Foundation, Ponta Delgada, Portugal","Abramic A., Biodiversity & Conservation Research Group, ECOAQUA, Univ. Las Palmas de Gran Canaria, Scientific & Technological Marine Park, Crta. Taliarte s/n, Telde, 35214, Spain; Garcia Mendoza A., Biodiversity & Conservation Research Group, ECOAQUA, Univ. Las Palmas de Gran Canaria, Scientific & Technological Marine Park, Crta. Taliarte s/n, Telde, 35214, Spain; Cordero-Penin V., Biodiversity & Conservation Research Group, ECOAQUA, Univ. Las Palmas de Gran Canaria, Scientific & Technological Marine Park, Crta. Taliarte s/n, Telde, 35214, Spain; Magalhães M., Regional Secretariat for the Sea and Fisheries, Regional Directorate for Sea Affairs, Rua Consul Dabney, Apartado 9, Açores, Horta, 9900-041, Portugal; Fernández-Palacios Y., Biodiversity & Conservation Research Group, ECOAQUA, Univ. Las Palmas de Gran Canaria, Scientific & Technological Marine Park, Crta. Taliarte s/n, Telde, 35214, Spain; Andrade C., MARE – Marine and Environmental Sciences Centre / ARNET - Aquatic Research Network, Agência Regional para o Desenvolvimento da Investigação Tecnologia e Inovação (ARDITI), Ed. Madeira Tecnopolo, Madeira, Funchal, 9020 - 105, Portugal; Calado H., School of Sciences and Technology (FCT) University of Azores, Mare Research Center, Rua da Mãe de Deus, Ponta Delgada, 9500, Portugal; Kaushik S., Biodiversity & Conservation Research Group, ECOAQUA, Univ. Las Palmas de Gran Canaria, Scientific & Technological Marine Park, Crta. Taliarte s/n, Telde, 35214, Spain; Carreira G., Regional Secretariat for the Sea and Fisheries, Regional Directorate for Sea Affairs, Rua Consul Dabney, Apartado 9, Açores, Horta, 9900-041, Portugal, MARE – Marine and Environmental Sciences Centre / ARNET - Aquatic Research Network, Agência Regional para o Desenvolvimento da Investigação Tecnologia e Inovação (ARDITI), Ed. Madeira Tecnopolo, Madeira, Funchal, 9020 - 105, Portugal; Nogueira N., Regional Directorate of the Sea (DRM), Regional Secretariat for the Sea and Fisheries, Autonomous Region of Madeira, Funchal, Portugal; Shinoda D., Faculty of Sciences and Technology, University of the Azores, Mãe de Deus St., Ponta Delgada, Portugal, Gaspar Frutuoso Foundation, Ponta Delgada, Portugal; Haroun R., Biodiversity & Conservation Research Group, ECOAQUA, Univ. Las Palmas de Gran Canaria, Scientific & Technological Marine Park, Crta. Taliarte s/n, Telde, 35214, Spain","Maritime Spatial Planning (MSP) has received increasing attention from policy-makers around the world as an ecosystem-based approach to the waters under the jurisdiction of coastal states, with the aim of enhancing socio-economic development while promoting environmental protection and conservation. However, this planning process requires abundant and diverse types of data and information that are not easily operationalised in a spatially efficient manner for MSP. Aiming to overcome this barrier, the present study proposes a suitability zoning methodology based on an ad hoc developed decision support system (i.e. INDIMAR) capable of integrating the required spatial data collected and structured around a proposed suitability framework organised around five key components: environmental sensitivity, marine conservation, natural oceanographic potential, land-sea interactions, and operational maritime uses and activities. This suitability zoning framework and decision support system was tested for individual maritime activities in different Atlantic outermost regions, configuring different use cases: aquaculture in the Canary Islands, offshore wind farms in the Madeira archipelago and aggregate extraction in the Azores. The proposed methodology has resulted in a flexible model that identifies the most suitable sites for the sustainable development of maritime activities, taking into account the natural potential and compatibility with nature conservation, while mitigating potential environmental impacts and minimising conflicts with other coastal and maritime activities. However, it's important to note that the results of this study are strongly influenced by the availability and quality of data, identifying the main gaps in each region that are recommended to be filled in view of the formal processes of MSP. In essence, this study underlines the broad applicability of the proposed methodology and framework, which can be adapted and implemented in other regions after due consideration of several aspects such as: data availability, contextual differences, legal and governance frameworks, institutional capacity and spatial interactions. By taking these aspects into account, the resulting decision support system has the potential to provide valuable insights, thereby increasing the effectiveness of MSP efforts. © 2024 The Author(s)",aquaculture; ecosystem services; maritime spatial planning; offshore wind energy; suitability zoning framework,Azores; Canary Islands; Madeira; Portugal; Spain; Aggregates; Aquaculture; Artificial intelligence; Conservation; Economic and social effects; Economics; Ecosystems; Environmental impact; Environmental protection; Extraction; Offshore oil well production; Offshore wind farms; Site selection; Sustainable development; Zoning; Aggregate extractions; Ecosystem-based approach; Energy extraction; Maritime activities; Maritime spatial planning; Off-shore wind energy; Policy makers; Socio-economic development; Spatial planning; Suitability zoning framework; aggregate; aquaculture; coastal zone management; conservation planning; decision support system; environmental protection; marine policy; nature conservation; planning process; site selection; spatial planning; wind power; Decision support systems,"A. Abramic; ECOAQUA, Univ. Las Palmas de Gran Canaria, Scientific & Technological Marine Park, Telde, Crta. Taliarte s/n, 35214, Spain; email: abramic@vik-ing.eu",,Elsevier Ltd,,,,,,09645691,,OCMAE,,English,Ocean Coast. Manage.,Article,Final,All Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85187232056 Wang Z.; Zhang M.; Cui Z.; Wei Y.; Bai Y.; Qu K.,"Wang, Zhanying (58133903100); Zhang, Meng (57924972600); Cui, Zhengguo (54395195200); Wei, Yuqiu (57197825422); Bai, Ying (55908777000); Qu, Keming (7003377920)",58133903100; 57924972600; 54395195200; 57197825422; 55908777000; 7003377920,"Coastal ecological security assessment in Laizhou Bay, China: from the perspective of demographic-social-economic-natural complex ecosystem",2024,Environmental Science and Pollution Research,31,27,,39232,39247,15,1,10.1007/s11356-024-33703-1,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85194758203&doi=10.1007%2fs11356-024-33703-1&partnerID=40&md5=24a444861540b24ba36d1d9e9faa48c5,"College of Fisheries and Life Science, Shanghai Ocean University, Shanghai, 201306, China; State Key Laboratory of Mariculture Biobreeding and Sustainable Goods, Yellow Sea Fisheries Research Institute, Chinese Academy of Fishery Sciences, Laboratory for Marine Fisheries Science and Food Production Processes, Laoshan Laboratory, Shandong, Qingdao, 266071, China; Fushan Road Sub District Office, Licang District, Shandong, Qingdao, 266121, China","Wang Z., College of Fisheries and Life Science, Shanghai Ocean University, Shanghai, 201306, China, State Key Laboratory of Mariculture Biobreeding and Sustainable Goods, Yellow Sea Fisheries Research Institute, Chinese Academy of Fishery Sciences, Laboratory for Marine Fisheries Science and Food Production Processes, Laoshan Laboratory, Shandong, Qingdao, 266071, China; Zhang M., State Key Laboratory of Mariculture Biobreeding and Sustainable Goods, Yellow Sea Fisheries Research Institute, Chinese Academy of Fishery Sciences, Laboratory for Marine Fisheries Science and Food Production Processes, Laoshan Laboratory, Shandong, Qingdao, 266071, China, Fushan Road Sub District Office, Licang District, Shandong, Qingdao, 266121, China; Cui Z., State Key Laboratory of Mariculture Biobreeding and Sustainable Goods, Yellow Sea Fisheries Research Institute, Chinese Academy of Fishery Sciences, Laboratory for Marine Fisheries Science and Food Production Processes, Laoshan Laboratory, Shandong, Qingdao, 266071, China; Wei Y., State Key Laboratory of Mariculture Biobreeding and Sustainable Goods, Yellow Sea Fisheries Research Institute, Chinese Academy of Fishery Sciences, Laboratory for Marine Fisheries Science and Food Production Processes, Laoshan Laboratory, Shandong, Qingdao, 266071, China; Bai Y., State Key Laboratory of Mariculture Biobreeding and Sustainable Goods, Yellow Sea Fisheries Research Institute, Chinese Academy of Fishery Sciences, Laboratory for Marine Fisheries Science and Food Production Processes, Laoshan Laboratory, Shandong, Qingdao, 266071, China; Qu K., State Key Laboratory of Mariculture Biobreeding and Sustainable Goods, Yellow Sea Fisheries Research Institute, Chinese Academy of Fishery Sciences, Laboratory for Marine Fisheries Science and Food Production Processes, Laoshan Laboratory, Shandong, Qingdao, 266071, China","Assessment of ecological security is essential for understanding the status of bay ecosystem and developing appropriate management strategy. Based on the driving force-pressure-state-impact-response (DPSIR) model, the demographic, economic, social, and ecological data of Laizhou Bay and its three neighboring counties were selected for the period from 2015 to 2021. An ecological security evaluation index system of Laizhou Bay containing 26 indicators was established, and the weights of each indicator were determined by the methods of AHP and EWM, and a comprehensive evaluation of the ecological security of Laizhou Bay was carried out by ESI. Correlations between indicators were analyzed by the Spearman’s rank coefficient of correlation. The results showed that there were significant correlations between marine conditions and indicators such as population size in the surrounding area, mariculture area, industrial and domestic wastewater discharge, and treatment rate. Overall, from 2015 to 2021, the ecological security of Laizhou Bay showed a favorable trend, from a relatively unsafe level to a generally safe level, and then to a relatively safe level. Through the comprehensive evaluation of the ecological security of Laizhou Bay, we can recognize the utilization of marine resources and ecological carrying capacity, guide the rational development and utilization of marine resources, and promote the sustainable development of the marine economy. © The Author(s), under exclusive licence to Springer-Verlag GmbH Germany, part of Springer Nature 2024.",analytic hierarchy process; dpsir; ecological mangrove restoration; entropy weight method (ewm); laizhou bay,Bays; China; Conservation of Natural Resources; Ecology; Ecosystem; Environmental Monitoring; China; Laizhou Bay; Shandong; Ecosystems; Hierarchical systems; Industrial economics; Marine biology; Population statistics; Wastewater treatment; Analytic hierarchy process; Comprehensive evaluation; Driving force-pressure-state-impact-response; Driving forces; Ecological security; Entropy weight method; Impact response; Laizhou Bay; Marine resources; analytical hierarchy process; coastal zone; demography; ecosystem management; environmental assessment; marine resource; maximum entropy analysis; resource economy; security; socioeconomic conditions; sustainable development; bay; China; ecology; ecosystem; environmental monitoring; environmental protection; procedures; Analytic hierarchy process,"Z. Cui; State Key Laboratory of Mariculture Biobreeding and Sustainable Goods, Yellow Sea Fisheries Research Institute, Chinese Academy of Fishery Sciences, Laboratory for Marine Fisheries Science and Food Production Processes, Laoshan Laboratory, Qingdao, Shandong, 266071, China; email: huanjs@ysfri.ac.cn",,Springer,,,,,,09441344,,ESPLE,38814554,English,Environ. Sci. Pollut. Res.,Article,Final,,Scopus,2-s2.0-85194758203 Harrison L.O.J.; Engelhard G.H.; Thurstan R.H.; Sturrock A.M.,"Harrison, Luke O. J. (58298688100); Engelhard, Georg H. (56366598000); Thurstan, Ruth H. (36609326500); Sturrock, Anna M. (55316721700)",58298688100; 56366598000; 36609326500; 55316721700,Widening mismatch between UK seafood production and consumer demand: a 120-year perspective,2023,Reviews in Fish Biology and Fisheries,33,4,,1387,1408,21,9,10.1007/s11160-023-09776-5,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85160847194&doi=10.1007%2fs11160-023-09776-5&partnerID=40&md5=0e9f2d963c19babdf484f03281ddcc27,"School of Life Sciences, University of Essex, Wivenhoe Park, Colchester, CO4 3SQ, United Kingdom; Centre for Environment, Fisheries and Aquaculture Science (Cefas), Pakefield Road, Lowestoft, NR33 0HT, United Kingdom; School of Environmental Sciences, University of East Anglia, Norwich, NR4 7TJ, United Kingdom; Centre for Ecology and Conservation, University of Exeter, Penryn Campus, Cornwall, TR10 9FE, United Kingdom","Harrison L.O.J., School of Life Sciences, University of Essex, Wivenhoe Park, Colchester, CO4 3SQ, United Kingdom; Engelhard G.H., Centre for Environment, Fisheries and Aquaculture Science (Cefas), Pakefield Road, Lowestoft, NR33 0HT, United Kingdom, School of Environmental Sciences, University of East Anglia, Norwich, NR4 7TJ, United Kingdom; Thurstan R.H., Centre for Ecology and Conservation, University of Exeter, Penryn Campus, Cornwall, TR10 9FE, United Kingdom; Sturrock A.M., School of Life Sciences, University of Essex, Wivenhoe Park, Colchester, CO4 3SQ, United Kingdom","Developed countries are increasingly dependent on international trade to meet seafood requirements, which has important social, environmental, and economic implications. After becoming an independent coastal state following Brexit, the UK faces increased trade barriers and changes in seafood availability and cost. We compiled a long-term (120-year) dataset of UK seafood production (landings and aquaculture), imports, and exports, and assessed the influence of policy change and consumer preference on domestic production and consumption. In the early twentieth century, distant-water fisheries met an increasing demand for large, flaky fish such as cod and haddock that are more abundant in northerly waters. Accordingly, from 1900 to 1975, the UK fleet supplied almost 90% of these fish. However, policy changes in the mid-1970s such as the widespread establishment of Exclusive Economic Zones and the UK joining the European Union resulted in large declines in distant-water fisheries and a growing mismatch between seafood production versus consumption in the UK. While in 1975, UK landings and aquaculture accounted for 89% of seafood consumed by the British public, by 2019 this was only 40%. The combination of policy changes and staunch consumer preferences for non-local species has resulted in today’s situation, where the vast majority of seafood consumed in the UK is imported, and most seafood produced domestically is exported. There are also health considerations. The UK public currently consumes 31% less seafood than is recommended by government guidelines, and even if local species were more popular, total domestic production would still be 73% below recommended levels. In the face of climate change, global overfishing and potentially restrictive trade barriers, promoting locally sourced seafood and non-seafood alternatives would be prudent to help meet national food security demands, and health and environmental targets. © 2023, The Author(s).",aquaculture; food security; historical ecology; international food standards; policy change; uk fisheries,United Kingdom; consumption behavior; demand analysis; food consumption; food production; food security; policy analysis; seafood,"L.O.J. Harrison; School of Life Sciences, University of Essex, Colchester, Wivenhoe Park, CO4 3SQ, United Kingdom; email: luke.harrison002@gmail.com",,Springer Science and Business Media Deutschland GmbH,,,,,,09603166,,,,English,Rev. Fish Biol. Fish.,Article,Final,All Open Access; Green Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85160847194 Massa F.; Hamza H.; Fezzardi D.; Fourdain L.; Cavallo M.; Caruso F.; Theodorou J.A.,"Massa, Fabio (23489583900); Hamza, Houssam (59728735000); Fezzardi, Davide (57044780100); Fourdain, Linda (57234983200); Cavallo, Marianna (57147197800); Caruso, Fabrizio (57221835843); Theodorou, John A. (6603499253)",23489583900; 59728735000; 57044780100; 57234983200; 57147197800; 57221835843; 6603499253,Enhancing social acceptability of aquaculture: Stakeholder engagement in guidelines development for the Mediterranean and Black Sea,2025,Marine Policy,178,,106697,,,,0,10.1016/j.marpol.2025.106697,https://www.scopus.com/inward/record.uri?eid=2-s2.0-105002136036&doi=10.1016%2fj.marpol.2025.106697&partnerID=40&md5=2cb332f04ef6f5ca2fda2124a408d656,"Senior Expert on Aquaculture, Rome, Italy; General Fisheries Commission for the Mediterranean (GFCM), Via Vittoria Colonna 1, Rome, 00193, Italy; University of Brest, Ifremer, CNRS, UMR 6308, AMURE, IUEM, Plouzané, France; Vetagro SpA, Via Ignazio Porro, 2, Reggio Emilia, 42124, Italy; University of Patras, Department of Fisheries and Aquaculture, Messolonghi, GR30200, Greece","Massa F., Senior Expert on Aquaculture, Rome, Italy; Hamza H., General Fisheries Commission for the Mediterranean (GFCM), Via Vittoria Colonna 1, Rome, 00193, Italy; Fezzardi D., Senior Expert on Aquaculture, Rome, Italy; Fourdain L., General Fisheries Commission for the Mediterranean (GFCM), Via Vittoria Colonna 1, Rome, 00193, Italy; Cavallo M., University of Brest, Ifremer, CNRS, UMR 6308, AMURE, IUEM, Plouzané, France; Caruso F., Vetagro SpA, Via Ignazio Porro, 2, Reggio Emilia, 42124, Italy; Theodorou J.A., University of Patras, Department of Fisheries and Aquaculture, Messolonghi, GR30200, Greece","Aquaculture plays a crucial role in enhancing food security and economic stability in the Mediterranean and Black Sea. This study emphasises the importance of social acceptability and multi-stakeholder engagement in developing guidelines to foster sustainable aquaculture, address governance issues, and environmental, social, and economic factors critical to the industry's long-term success. A comprehensive methodology was employed to assess aquaculture's social acceptability, utilising a survey questionnaire, stakeholder workshops, and literature reviews to break down the concept of social acceptability into identifiable factors. Findings indicate that effective governance and enhanced coordination among authorities are crucial for improving aquaculture's social acceptability. This study highlights the need for participatory decision-making processes that actively engage local stakeholders, emphasising the importance of transparent and effective communication regarding the quality and safety of aquaculture products, with the aim of increasing public awareness and trust. Furthermore, integrating aquaculture with other coastal activities and promoting economic benefits can improve aquaculture's social acceptability. Addressing environmental concerns and adopting better management practices are essential for mitigating negative perceptions associated with aquaculture development. Finally, this study highlights the essential role of social acceptance in aquaculture development, emphasising the need to prioritise transparency, inclusivity, and public engagement in governance to support policies that promote sustainable aquaculture practices. These findings inform the development of guidelines aimed at enhancing public perceptions and attitudes toward sustainable aquaculture practices. These guidelines provide practical actions, identify key stakeholders, and promote sustainable aquaculture that aligns with societal expectations and local priorities while offering elements to improve governance arrangements. © 2025",aquaculture; aquaculture; mediterranean; participatory approach; social acceptance; sustainability,Black Sea; Mediterranean Sea; aquaculture; decision making; economic development; food security; participatory approach; stakeholder; sustainable development,"D. Fezzardi; Senior Expert on Aquaculture, Rome, Italy; email: davide.fezzardi@outlook.com",,Elsevier Ltd,,,,,,0308597X,,,,English,Mar. Policy,Article,Final,,Scopus,2-s2.0-105002136036 Maury O.; Tittensor D.P.; Eddy T.D.; Allison E.H.; Bahri T.; Barrier N.; Campling L.; Cheung W.W.L.; Frieler K.; Fulton E.A.; Guillotreau P.; Heneghan R.F.; Lam V.W.Y.; Leclère D.; Lengaigne M.; Lotze-Campen H.; Novaglio C.; Ortega-Cisneros K.; Rault J.; Schewe J.; Shin Y.-J.; Sloterdijk H.; Squires D.; Sumaila U.R.; Tidd A.N.; van Ruijven B.; Blanchard J.,"Maury, O. (57189703676); Tittensor, D.P. (18038937500); Eddy, T.D. (36625376900); Allison, E.H. (7006279993); Bahri, T. (23487916800); Barrier, N. (6602567528); Campling, L. (12790621300); Cheung, W.W.L. (57484627900); Frieler, K. (25639753800); Fulton, E.A. (6701680888); Guillotreau, P. (6506076399); Heneghan, R.F. (57192891545); Lam, V.W.Y. (24833227500); Leclère, D. (55541733200); Lengaigne, M. (6602271599); Lotze-Campen, H. (14321817400); Novaglio, C. (57191156634); Ortega-Cisneros, K. (55951773500); Rault, J. (57193058758); Schewe, J. (23487007900); Shin, Y.-J. (7402816212); Sloterdijk, H. (56465907300); Squires, D. (57204743570); Sumaila, U.R. (6701840163); Tidd, A.N. (15840771100); van Ruijven, B. (16025936300); Blanchard, J. (55432900800)",57189703676; 18038937500; 36625376900; 7006279993; 23487916800; 6602567528; 12790621300; 57484627900; 25639753800; 6701680888; 6506076399; 57192891545; 24833227500; 55541733200; 6602271599; 14321817400; 57191156634; 55951773500; 57193058758; 23487007900; 7402816212; 56465907300; 57204743570; 6701840163; 15840771100; 16025936300; 55432900800,The Ocean System Pathways (OSPs): A New Scenario and Simulation Framework to Investigate the Future of the World Fisheries,2025,Earth's Future,13,3,e2024EF004851,,,,0,10.1029/2024EF004851,https://www.scopus.com/inward/record.uri?eid=2-s2.0-105000897989&doi=10.1029%2f2024EF004851&partnerID=40&md5=f227c6f840f76299080f41b420033c67,"MARBEC, University Montpellier, IRD, CNRS, Ifremer, INRAE, Sète, France; Department of Biology, Dalhousie University, Halifax, NS, Canada; Centre for Fisheries Ecosystems Research, Fisheries & Marine Institute, Memorial University, St. John's, NL, Canada; WorldFish, Bayan Lepas, Penang, Malaysia; Lancaster Environment Center, Lancaster University, Lancaster, United Kingdom; Food and Agriculture Organization, Rome, Italy; School of Business and Management, Queen Mary University of London, London, United Kingdom; Institute for the Oceans and Fisheries, The University of British Columbia, Vancouver, BC, Canada; Potsdam Institute for Climate Impact Research (PIK), Member of the Leibniz Association, Potsdam, Germany; CSIRO Environment, Hobart, TAS, Australia; Centre for Marine Socioecology, University of Tasmania, Hobart, TAS, Australia; School of Science, Technology and Engineering, University of the Sunshine Coast, Petrie, QLD, Australia; Australian Rivers Institute, School of Environment and Science, Griffith University, Nathan, QLD, Australia; International Institute for Applied System Analysis (IIASA), Laxenburg, Austria; Humboldt-Universität zu Berlin, Berlin, Germany; Institute for Marine and Antarctic Studies, University of Tasmania, Hobart, TAS, Australia; Department of Biological Sciences, University of Cape Town, Cape Town, South Africa; IFREMER, Centre de Bretagne, Plouzané, France; Christian-Albrechts-University Kiel, Center for Ocean and Society, Kiel, Germany; University of California San Diego, San Diego, CA, United States; The School of Public Policy and Global Affairs, University of British Columbia, Vancouver, BC, Canada","Maury O., MARBEC, University Montpellier, IRD, CNRS, Ifremer, INRAE, Sète, France; Tittensor D.P., Department of Biology, Dalhousie University, Halifax, NS, Canada; Eddy T.D., Centre for Fisheries Ecosystems Research, Fisheries & Marine Institute, Memorial University, St. John's, NL, Canada; Allison E.H., WorldFish, Bayan Lepas, Penang, Malaysia, Lancaster Environment Center, Lancaster University, Lancaster, United Kingdom; Bahri T., Food and Agriculture Organization, Rome, Italy; Barrier N., MARBEC, University Montpellier, IRD, CNRS, Ifremer, INRAE, Sète, France; Campling L., School of Business and Management, Queen Mary University of London, London, United Kingdom; Cheung W.W.L., Institute for the Oceans and Fisheries, The University of British Columbia, Vancouver, BC, Canada; Frieler K., Potsdam Institute for Climate Impact Research (PIK), Member of the Leibniz Association, Potsdam, Germany; Fulton E.A., CSIRO Environment, Hobart, TAS, Australia, Centre for Marine Socioecology, University of Tasmania, Hobart, TAS, Australia; Guillotreau P., MARBEC, University Montpellier, IRD, CNRS, Ifremer, INRAE, Sète, France; Heneghan R.F., School of Science, Technology and Engineering, University of the Sunshine Coast, Petrie, QLD, Australia, Australian Rivers Institute, School of Environment and Science, Griffith University, Nathan, QLD, Australia; Lam V.W.Y., Institute for the Oceans and Fisheries, The University of British Columbia, Vancouver, BC, Canada; Leclère D., International Institute for Applied System Analysis (IIASA), Laxenburg, Austria; Lengaigne M., MARBEC, University Montpellier, IRD, CNRS, Ifremer, INRAE, Sète, France; Lotze-Campen H., Potsdam Institute for Climate Impact Research (PIK), Member of the Leibniz Association, Potsdam, Germany, Humboldt-Universität zu Berlin, Berlin, Germany; Novaglio C., Food and Agriculture Organization, Rome, Italy, Institute for Marine and Antarctic Studies, University of Tasmania, Hobart, TAS, Australia; Ortega-Cisneros K., Department of Biological Sciences, University of Cape Town, Cape Town, South Africa; Rault J., IFREMER, Centre de Bretagne, Plouzané, France; Schewe J., Potsdam Institute for Climate Impact Research (PIK), Member of the Leibniz Association, Potsdam, Germany; Shin Y.-J., MARBEC, University Montpellier, IRD, CNRS, Ifremer, INRAE, Sète, France; Sloterdijk H., Christian-Albrechts-University Kiel, Center for Ocean and Society, Kiel, Germany; Squires D., University of California San Diego, San Diego, CA, United States; Sumaila U.R., Institute for the Oceans and Fisheries, The University of British Columbia, Vancouver, BC, Canada, The School of Public Policy and Global Affairs, University of British Columbia, Vancouver, BC, Canada; Tidd A.N., MARBEC, University Montpellier, IRD, CNRS, Ifremer, INRAE, Sète, France; van Ruijven B., International Institute for Applied System Analysis (IIASA), Laxenburg, Austria; Blanchard J., Institute for Marine and Antarctic Studies, University of Tasmania, Hobart, TAS, Australia","The Fisheries and Marine Ecosystems Model Intercomparison Project (FishMIP) has dedicated a decade to unraveling the future impacts of climate change on marine animal biomass. FishMIP is now preparing a new simulation protocol to assess the combined effects of both climate and socio-economic changes on marine fisheries and ecosystems. This protocol will be based on the Ocean System Pathways (OSPs), a new set of socio-economic scenarios derived from the Shared Socioeconomic Pathways (SSPs) widely used by the Intergovernmental Panel on Climate Change (IPCC). The OSPs extend the SSPs to the economic, governance, management and socio-cultural contexts of large pelagic, small pelagic, benthic-demersal and emerging fisheries, as well as mariculture. Comprising qualitative storylines, quantitative model driver pathways and a “plug-in-model” framework, the OSPs will enable a heterogeneous suite of ecosystem models to simulate fisheries dynamics in a standardised way. This paper introduces this OSP framework and the simulation protocol that FishMIP will implement to explore future ocean social-ecological systems holistically, with a focus on critical issues such as climate justice, global food security, equitable fisheries, aquaculture development, fisheries management, and biodiversity conservation. Ultimately, the OSP framework is tailored to contribute to the synthesis work of the IPCC. It also aims to inform ongoing policy processes within the United Nations Food and Agriculture Organization (FAO). Finally, it seeks to support the synthesis work of the Intergovernmental Science-Policy Platform on Biodiversity and Ecosystem Services (IPBES), with a particular focus on studying pathways relevant for the United Nations Convention on Biological Diversity. © 2025 The Author(s).",climate change; fishmip; marine ecosystem; marine fisheries; scenarios; ssp,aquaculture system; biodiversity; climate change; climate effect; fishery management; global perspective; Intergovernmental Panel on Climate Change; marine environment; United Nations,"O. Maury; MARBEC, University Montpellier, IRD, CNRS, Ifremer, INRAE, Sète, France; email: Olivier.maury@ird.fr",,John Wiley and Sons Inc,,,,,,23284277,,,,English,Earth's Futur.,Article,Final,All Open Access; Gold Open Access; Green Open Access,Scopus,2-s2.0-105000897989 Sapriani; Kusumaningtyas R.O.; Elfaki K.E.,"Sapriani (57977181800); Kusumaningtyas, Reza Octavia (58126284100); Elfaki, Khalid Eltayeb (57203807123)",57977181800; 58126284100; 57203807123,Strengthening Blue Economy Policy to Achieve Sustainable Fisheries,2024,Journal of Sustainable Development and Regulatory Issues,2,1,104331,1,19,18,6,10.1016/j.resourpol.2023.104331,https://www.scopus.com/inward/record.uri?eid=2-s2.0-105003023269&doi=10.1016%2fj.resourpol.2023.104331&partnerID=40&md5=8f6c28fa43e371d1b2a6df1f06d0d486,"Faculty of Law, Universitas Borneo Tarakan, Kalimantan Utara, Indonesia; Faculty of Law, Universitas Negeri Semarang, Semarang, Indonesia; University of Gezira, Wad Medani, Sudan","Sapriani, Faculty of Law, Universitas Borneo Tarakan, Kalimantan Utara, Indonesia; Kusumaningtyas R.O., Faculty of Law, Universitas Negeri Semarang, Semarang, Indonesia; Elfaki K.E., University of Gezira, Wad Medani, Sudan","Particularly in developing nations, the aquaculture and fisheries sector is vital to the nutrition and food security of the global population. Nevertheless, notwithstanding their substantial social and economic potential, fishery resources are susceptible to overexploitation and hurting the environment. This research assesses the significance of bolstering blue economy policies to enhance sustainable maritime policies. This study employs the methodology of normative legal research. The research findings, the deterioration of ecological equilibrium, as evidenced by the diminishing carrying capacity of the sea, can be attributed to conservation efforts that lack a stronger emphasis on sustainable management. Maintaining the fundamental tenets of equitable and sustainable fisheries management in nations endowed with oceans is paramount. State and government policies toward society and distributive equity are inextricably linked in managing fisheries resources; local governments may be entrusted with autonomous design and assistance responsibilities for these policies. As a result, a revised vision for constructing a sustainable, equitable, and ambitious blue economy is proposed. Promoting resource-based economic development in the marine and fisheries industrial sector while preserving coastal environments and marine resources through the blue economy concept is possible. This vision is founded upon the following five governance principles: inclusive and equitable processes, climate stability, sustainable consumption and production, circular processes, and the promotion of healthy ecosystems. © 2024, Lembaga Contrarius Indonesia. All rights reserved.",blue economy; marine fisheries; sovereign,,"Sapriani; Faculty of Law, Universitas Borneo Tarakan, Kalimantan Utara, Indonesia; email: zahrahyar@gmail.com",,Lembaga Contrarius Indonesia,,,,,,29878071,,,,English,J. Sustainable Dev. Regul. Issue,Article,Final,,Scopus,2-s2.0-105003023269 Yuan P.; Wang X.; Zhou Y.; Qi Z.; Liu K.; Fang Y.; Ning Y.,"Yuan, Peiqing (58296526300); Wang, Xianwei (55736987700); Zhou, Yanwu (36633559200); Qi, Zhixin (35307702300); Liu, Kai (56472102300); Fang, Yongjun (58296526200); Ning, Yazhou (58181467900)",58296526300; 55736987700; 36633559200; 35307702300; 56472102300; 58296526200; 58181467900,Evolutionary pattern and influencing factors of the aquaculture development in the Guangdong-Hong Kong-Macao Greater Bay area during 1986–2020,2024,Ecological Indicators,161,,111952,,,,4,10.1016/j.ecolind.2024.111952,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85189692581&doi=10.1016%2fj.ecolind.2024.111952&partnerID=40&md5=8175336103fb024c0aa02cbec11426f2,"School of Geography and Planning, Sun Yat-sen University, Guangzhou, 510275, China; Guangdong Provincial Engineering Research Center for Public Security and Disasters, Guangzhou, 510275, China; Marine Environmental Engineering Center, South China Sea Institute of Oceanology, Chinese Academy of Sciences, Guangzhou, 510301, China","Yuan P., School of Geography and Planning, Sun Yat-sen University, Guangzhou, 510275, China, Guangdong Provincial Engineering Research Center for Public Security and Disasters, Guangzhou, 510275, China; Wang X., School of Geography and Planning, Sun Yat-sen University, Guangzhou, 510275, China, Guangdong Provincial Engineering Research Center for Public Security and Disasters, Guangzhou, 510275, China; Zhou Y., Marine Environmental Engineering Center, South China Sea Institute of Oceanology, Chinese Academy of Sciences, Guangzhou, 510301, China; Qi Z., School of Geography and Planning, Sun Yat-sen University, Guangzhou, 510275, China; Liu K., School of Geography and Planning, Sun Yat-sen University, Guangzhou, 510275, China, Guangdong Provincial Engineering Research Center for Public Security and Disasters, Guangzhou, 510275, China; Fang Y., School of Geography and Planning, Sun Yat-sen University, Guangzhou, 510275, China, Guangdong Provincial Engineering Research Center for Public Security and Disasters, Guangzhou, 510275, China; Ning Y., School of Geography and Planning, Sun Yat-sen University, Guangzhou, 510275, China, Guangdong Provincial Engineering Research Center for Public Security and Disasters, Guangzhou, 510275, China","The rapid expansion of aquaculture ponds at the end of the last century raised concerns about their environmental and ecological impacts in the Guangdong-Hong Kong-Macao Greater Bay Area (GBA). This study aims to comprehensively investigate the spatiotemporal evolutionary characteristics and explore the influencing factors of aquaculture development in the GBA. An automated approach was established to extract the aquaculture pond areas on the Google Earth Engine (GEE) platform using Landsat images and showed high accuracy. The aquaculture development in the GBA underwent three phases of rapid expansion (1986–1996), constant transformation (1996–2010), and drastic contraction (2010–2020), and was closely related to the important aquaculture policies in China and Guangdong Province. The local aquaculture ponds showed three evolutionary patterns of continuous shrinkage, earlier shrinkage, and later shrinkage, which were mainly influenced by the economic development level and urbanization in each city. Rapid urbanization created great demands for aquaculture products and intense land use competition, which drove the conversion of aquaculture ponds into impervious land and migration from the central GBA towards the surrounding coast and upstream areas. Government policies promoted the initial rapid increase and regulated the aquaculture ponds to develop towards a more environment-friendly and intensive mode, which led to a steady increase of aquaculture products despite the drastic decrease in aquaculture pond areas in the past decade. These evolutionary features are of significance for policymakers and farmers to maintain the sustainable development of aquaculture in the GBA and Guangdong Province. © 2024 The Author(s)",aquaculture; guangdong–hong kong–macao greater bay area; influencing factors; remote sensing; spatio-temporal changes,China; Guangdong; Hong Kong; Macau; Aquaculture; Economic and social effects; Economics; Expansion; Lakes; Land use; Shrinkage; Sustainable development; Aquaculture ponds; Bay areas; Ecological impacts; Guangdong Province; Guangdong–hong kong–macao great bay area; Hong-kong; Influencing factor; Rapid expansion; Remote-sensing; Spatio-temporal variation; development level; economic development; land use; Landsat; resource development; sustainable development; Remote sensing,"X. Wang; School of Geography and Planning, Sun Yat-sen University, Guangzhou, 510275, China; email: wangxw8@mail.sysu.edu.cn",,Elsevier B.V.,,,,,,1470160X,,,,English,Ecol. Indic.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85189692581 Farkan M.; Leilani A.; Suharti R.; Triyanto,"Farkan, Mochammad (57193567167); Leilani, Ani (57218893041); Suharti, Ratna (58193996900); Triyanto (57203061820)",57193567167; 57218893041; 58193996900; 57203061820,Analysis of Sustainability and Land Suitability Requirements of Areas for Sustainable Vannamei Shrimp Farming in Ponds,2024,Egyptian Journal of Aquatic Biology and Fisheries,28,6,,2465,2482,17,0,10.21608/ejabf.2024.402198,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85215367495&doi=10.21608%2fejabf.2024.402198&partnerID=40&md5=c0747c890f1561ae6ec62dc93ac06c5d,"Department of Aquaculture, Jakarta Technical University of Fisheries, Ministry of Marine Affairs and Fisheries, Republic of Indonesia, Jl. Raya Pasar Minggu, Jakarta, 12520, Indonesia; Research Centre for Limnology and Water Resources of the National Research and Innovation Agency (BRIN), Jl Raya Bogor Jakarta km 46, Bogor, Jawa Barat, Cibinong, 16911, Indonesia","Farkan M., Department of Aquaculture, Jakarta Technical University of Fisheries, Ministry of Marine Affairs and Fisheries, Republic of Indonesia, Jl. Raya Pasar Minggu, Jakarta, 12520, Indonesia; Leilani A., Department of Aquaculture, Jakarta Technical University of Fisheries, Ministry of Marine Affairs and Fisheries, Republic of Indonesia, Jl. Raya Pasar Minggu, Jakarta, 12520, Indonesia; Suharti R., Department of Aquaculture, Jakarta Technical University of Fisheries, Ministry of Marine Affairs and Fisheries, Republic of Indonesia, Jl. Raya Pasar Minggu, Jakarta, 12520, Indonesia; Triyanto, Research Centre for Limnology and Water Resources of the National Research and Innovation Agency (BRIN), Jl Raya Bogor Jakarta km 46, Bogor, Jawa Barat, Cibinong, 16911, Indonesia","Sustainable fisheries management and the use of aquatic resources, by implementing an ecosystem approach in a sustainable manner, can improve the economy and food security. The Pacific white shrimp, known as the vanname shrimp (Penaeus vannamei), is one of the leading fisheries export commodities. The production in ponds fluctuates greatly, and there are even ponds that have closed due to losses. Therefore, this study aimed to analyze the sustainability, land suitability requirements and economic of an area for sustainable vannamei shrimp farming. The research locations are in six districts in Indonesia and six of the vannamei shrimp farming industries, namely Rhee Sumbawa, ANK Probolinggo, NIM Situbondo, TKM Pacitan, UTSerang, and MT Pesisi Selatan. Research time: September 2023-June 2024. Data analysis used Rapfish-MDS (Rapid Appraisal for Fisheries-Multidimensional Scaling), Microsoft Excel, and comparative analysis with the standard. The analysis of sustainability status is divided into five dimensions, namely ecological, economic, social, technological, and institutional. Key factors to increase productivity and sustainability are reservoir management, cultivation areas, human resource capacity development, technology, and institutions. The attributes that leverage the improvement of sustainability are water quality, pollution levels, soil quality, the area of mangrove forests, production levels, access to capital, cooperation with shrimp farmers, technology suitability, and business management. The results showed land suitability analysis shows six locations suitable for intensive vannamei shrimp cultivation. The average index value is 69.33, which means that the six locations have a moderately sustainable status. The highest index of sustainability was found in UTAUP. Economic analysis of UTAUP farms showed a profit of U$ 56,932 per hectare over four cycles. This location can be used as a pilot shrimp farming management system in ponds. The management of shrimp farming on land that is suitable by applying sustainable elements would increase economic benefits and food security continuously. © 2024, Egyptian Society for the Development of Fisheries and Human Health. All rights reserved.",aquaculture; environmental sustainability; fisheries; rapfish; shrimp pond,,"M. Farkan; Department of Aquaculture, Jakarta Technical University of Fisheries, Ministry of Marine Affairs and Fisheries, Republic of Indonesia, Jakarta, Jl. Raya Pasar Minggu, 12520, Indonesia; email: mochfarchan2@gmail.com",,Egyptian Society for the Development of Fisheries and Human Health,,,,,,11106131,,,,English,Egypt. J. Aquat. Biol. Fish.,Article,Final,,Scopus,2-s2.0-85215367495 Purnomo A.H.; Aidi M.N.; Wahyono A.; Soeprobowati T.R.; Hartati S.T.; Tirtadanu; Chodrijah U.; Prasetyo S.; Prihatiningsih; Jumari; Yusuf M.,"Purnomo, Agus H. (57000324000); Aidi, Muhammad N. (55243253200); Wahyono, Ari (59182458100); Soeprobowati, Tri R. (55339731500); Hartati, Sri T. (57448526100); Tirtadanu (57204244562); Chodrijah, Umi (56372803000); Prasetyo, Syarif (57224904768); Prihatiningsih (57216919929); Jumari (57195472319); Yusuf, Muhammad (58556401900)",57000324000; 55243253200; 59182458100; 55339731500; 57448526100; 57204244562; 56372803000; 57224904768; 57216919929; 57195472319; 58556401900,Mismanagement Issues in Sustaining Capture Fisheries in Lake Batur,2024,International Journal of Design and Nature and Ecodynamics,19,4,,1129,1138,9,2,10.18280/ijdne.190404,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85202648098&doi=10.18280%2fijdne.190404&partnerID=40&md5=b25a05cec210651ce3ac113f161c007d,"Research Center for Society and Culture, National Research and Innovation Agency, BRIN, Jakarta Pusat, 10340, Indonesia; Department of Statistics, IPB University, Bogor, 16680, Indonesia; School of Post Graduate Studies, Diponegoro University, Semarang, 50275, Indonesia; Research Center for Conservation of Marine and Inland Water Resources, National Research and Innovation Agency, BRIN, Bogor, 16680, Indonesia; Research Center for Fishery, National Research and Innovation Agency, BRIN, Bogor, Indonesia; Research Center for Limnology and Water Resources, National Research and Innovation Agency, BRIN, Bogor, Indonesia; Department of Biology, Faculty of Science and Mathematics, Diponegoro University, Semarang, 50275, Indonesia; Fisheries Agribusiness Study Program, Cokroaminoto University, Makassar, 90245, Indonesia","Purnomo A.H., Research Center for Society and Culture, National Research and Innovation Agency, BRIN, Jakarta Pusat, 10340, Indonesia; Aidi M.N., Department of Statistics, IPB University, Bogor, 16680, Indonesia; Wahyono A., Research Center for Society and Culture, National Research and Innovation Agency, BRIN, Jakarta Pusat, 10340, Indonesia; Soeprobowati T.R., School of Post Graduate Studies, Diponegoro University, Semarang, 50275, Indonesia; Hartati S.T., Research Center for Conservation of Marine and Inland Water Resources, National Research and Innovation Agency, BRIN, Bogor, 16680, Indonesia; Tirtadanu, Research Center for Fishery, National Research and Innovation Agency, BRIN, Bogor, Indonesia; Chodrijah U., Research Center for Fishery, National Research and Innovation Agency, BRIN, Bogor, Indonesia; Prasetyo S., Research Center for Limnology and Water Resources, National Research and Innovation Agency, BRIN, Bogor, Indonesia; Prihatiningsih, Research Center for Fishery, National Research and Innovation Agency, BRIN, Bogor, Indonesia; Jumari, Department of Biology, Faculty of Science and Mathematics, Diponegoro University, Semarang, 50275, Indonesia; Yusuf M., Fisheries Agribusiness Study Program, Cokroaminoto University, Makassar, 90245, Indonesia","Lake Batur holds significant aquatic value and has been prioritized nationally for developing Indonesia's aquaculture operations and economic growth. This initiative has transformed traditional fisheries into industrial aquaculture, significantly impacting both the ecological and socioeconomic status of the lake area. The catch per trip and income of fishermen in 2022 decreased by 7% and 11% compared to the previous five years, respectively. Through diverse research methods including surveys, field observations, and in-depth interviews, we identified several key findings that highlight the necessity for implementing appropriate regulations to improve Lake Batur's management practices. These findings include: (i) declining performance of current fisheries, (ii) concerns about the long-term sustainability of aquaculture, and (iii) inadequate management approaches. Therefore, policies should prioritize preserving sustainable fisheries industries to support local socioeconomic well-being while safeguarding the lake's ecological integrity. Recommendations include setting limits on catch rates and revising spatial zoning to maximize resource utilization. Additionally, supporting policies should enable some fishermen to transition away from fishing activities, thus easing pressure on the lake's natural resources. The findings of this research provide broader implications, emphasizing the crucial importance of thoroughly considering all technical and social impacts of any policy to achieve an effective balance between economic growth and ecological sustainability. ©2024 The authors.",capture fisheries; lake batur; management; policy; sustainability,,"Tirtadanu; Research Center for Fishery, National Research and Innovation Agency, BRIN, Bogor, Indonesia; email: tirtadanu91@gmail.com",,International Information and Engineering Technology Association,,,,,,17557437,,,,English,Int. J. Des. Nat. ecodyn.,Article,Final,All Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85202648098 Wang L.; Chen J.,"Wang, Lingjun (57215614309); Chen, Jian (57206475090)",57215614309; 57206475090,"Economic and Social Benefits of Aquavoltaics: A Case Study from Jiangsu, China",2024,Sustainability (Switzerland),16,20,9060,,,,0,10.3390/su16209060,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85207334430&doi=10.3390%2fsu16209060&partnerID=40&md5=2cd7e2be0d3e862c9f3d595d7f591c50,"School of Economics and Management, Nanjing Institute of Technology, Nanjing, 211167, China; College of Economics and Management, Nanjing Forestry University, Nanjing, 210037, China","Wang L., School of Economics and Management, Nanjing Institute of Technology, Nanjing, 211167, China; Chen J., College of Economics and Management, Nanjing Forestry University, Nanjing, 210037, China","Aquavoltaics is an innovative and beneficial solution that makes dual use of water area for photovoltaic (PV) power generation and aquaculture. Currently, China has made remarkable developments in aquavoltaics. This paper first analyzes the current development status of aquavoltaics in China, then takes the TW “fishery–PV integration” base project in Nanjing, Jiangsu Province, as a case study to analyze its economic and social benefits, and finally puts forward countermeasure suggestions for the development of aquavoltaics in China. It is found that Jiangsu Province is one of the clustering areas for the development of aquavoltaics in China, and the development of aquavoltaics in this province has a high level of specialization. The payback period (PP) of the TW “fishery–PV integration” base project is 10.44 years, the net present value (NPV) is USD 18.5334 million (the discount rate is 5%), and the internal rate of return (IRR) is 8.06%. The social benefits of this project are mainly reflected in the promotion of energy conservation and emission reduction, the alleviation of energy shortages, the optimization of land use, and the development of culture, tourism, science, and education. The development of aquavoltaics should be promoted by strengthening scientific research, paying attention to the impact of PV panel erection on the ecological environment of the waters, emphasizing the fishery farming part of the aquavoltaic project, and improving the commercial operation mode of the aquavoltaic project. © 2024 by the authors.",aquavoltaics; case study; economic benefits; social benefits,China; Jiangsu; discount rate; economic growth; emission control; energy conservation; fishery management; optimization; power generation; social capital,"J. Chen; College of Economics and Management, Nanjing Forestry University, Nanjing, 210037, China; email: cj1125@njfu.edu.cn",,Multidisciplinary Digital Publishing Institute (MDPI),,,,,,20711050,,,,English,Sustainability,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85207334430 March A.; Woolley M.; Failler P.,"March, Antaya (57222724627); Woolley, Megan (58990716800); Failler, Pierre (14631752400)",57222724627; 58990716800; 14631752400,Integration of climate change mitigation and adaptation in Blue Economy planning in Africa,2024,Mitigation and Adaptation Strategies for Global Change,29,5,38,,,,3,10.1007/s11027-024-10133-5,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85190666609&doi=10.1007%2fs11027-024-10133-5&partnerID=40&md5=7477c1fd83e58d80e73151a5bb83ce20,"Centre for Blue Governance, University of Portsmouth, Portsmouth, United Kingdom","March A., Centre for Blue Governance, University of Portsmouth, Portsmouth, United Kingdom; Woolley M., Centre for Blue Governance, University of Portsmouth, Portsmouth, United Kingdom; Failler P., Centre for Blue Governance, University of Portsmouth, Portsmouth, United Kingdom","There are strong interdependencies between the Blue Economy (BE) and the effects of climate change. This paper examines how the coastal and island African countries with strategies and action plans related to the BE have integrated climate change mitigation and adaptation in their national BE approach. It explores the methods they have adopted for climate change mitigation and adaptation, based on their BE strategies and nationally determined contributions (NDC) submissions. The paper also looks at the connections and synergies between these climate change actions and the BE plans of these countries. The key areas explored are (1) activities to reduce GHG emissions specifically using blue energy and reduction in maritime transport emissions and (2) activities with primary carbon sequestration benefits, as well as resilience co-benefits such as protection of marine and coastal environments, rehabilitation and restoration of marine and coastal ecosystems, and seaweed aquaculture. Across Africa, climate change is integrated into the BE strategies or action plans to varying degrees. Of the twelve countries with official BE strategies or action plans in place, only three recognise the severity of climate change and have practical activities for mitigation and adaptation prioritised in their BE action plans. Overall, the primary drivers for growth in the BE are more focused on meeting economic and social demands rather than on ecological and environmental needs. The strategies assessed are not synergised and still largely exist in silos, as are the BE strategies or action plans and the NDCs. Where climate change is integrated, the BE strategies and action plans are far more focused on climate change adaptation and resilience responses compared to mitigation responses. Improved understanding of the climate change responses themselves and of their synergistic effects with the BE is needed in order for them to be integrated in a meaningful and impactful way. Given the increasing drive to develop BE strategies and plans across Africa, largely driven by regional bodies, this work highlights the need for potential BE strategies to harness the synergies between adaptation, mitigation, growth, and development and explore the potential of initiating positively reinforcing cycles of benefits. © The Author(s), under exclusive licence to Springer Nature B.V. 2024.",africa’s blue economy; blue economy; climate change; climate change; mitigation and adaptation,Africa; action plan; adaptive management; climate change; environmental economics; environmental planning; mitigation; seaweed culture,"A. March; Centre for Blue Governance, University of Portsmouth, Portsmouth, United Kingdom; email: antaya.march@port.ac.uk",,Springer Science and Business Media B.V.,,,,,,13812386,,MASCF,,English,Mitigation Adapt. Strateg. Global Change,Article,Final,,Scopus,2-s2.0-85190666609 Landuci F.S.; Bez M.F.; Ritter P.D.; Costa S.; Silvestri F.; Zanette G.B.; Castelar B.; Santos Costa P.M.,"Landuci, Felipe Schwahofer (57074110900); Bez, Marina Fernandes (57262531900); Ritter, Paula Dugarte (57262532000); Costa, Sandro (57262886800); Silvestri, Fausto (47562040700); Zanette, Guilherme Burigo (35089094600); Castelar, Beatriz (33167547900); Santos Costa, Paulo Márcio (58140526400)",57074110900; 57262531900; 57262532000; 57262886800; 47562040700; 35089094600; 33167547900; 58140526400,Mariculture in a densely urbanized portion of the Brazilian coast: Current diagnosis and directions for sustainable development,2021,Ocean and Coastal Management,213,,105889,,,,8,10.1016/j.ocecoaman.2021.105889,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85115139485&doi=10.1016%2fj.ocecoaman.2021.105889&partnerID=40&md5=ce8352b69743c3b5da50ab2dc26cc4d1,"Fundação Instituto de Pesca Do Estado Do Rio de Janeiro, FIPERJ – Diretoria de Pesquisa e Produção, Praça Fonseca Ramos, S/n, Niterói, 24030-020, RJ, Brazil; Instituto de Estudos Do Mar Almirante Paulo Moreira, Departamento de Biotecnologia Marinha, Programa de Pós Graduação Em Biotecnologia Marinha, 253, Rua Kioto, Arraial Do Cabo, 28930000, RJ, Brazil; Università Degli Studi di Torino, Department of Veterinary Sciences, Lgo Paolo Braccini,nº 2, Grugliasco, 10095, TO, Italy","Landuci F.S., Fundação Instituto de Pesca Do Estado Do Rio de Janeiro, FIPERJ – Diretoria de Pesquisa e Produção, Praça Fonseca Ramos, S/n, Niterói, 24030-020, RJ, Brazil; Bez M.F., Fundação Instituto de Pesca Do Estado Do Rio de Janeiro, FIPERJ – Diretoria de Pesquisa e Produção, Praça Fonseca Ramos, S/n, Niterói, 24030-020, RJ, Brazil; Ritter P.D., Fundação Instituto de Pesca Do Estado Do Rio de Janeiro, FIPERJ – Diretoria de Pesquisa e Produção, Praça Fonseca Ramos, S/n, Niterói, 24030-020, RJ, Brazil; Costa S., Fundação Instituto de Pesca Do Estado Do Rio de Janeiro, FIPERJ – Diretoria de Pesquisa e Produção, Praça Fonseca Ramos, S/n, Niterói, 24030-020, RJ, Brazil; Silvestri F., Fundação Instituto de Pesca Do Estado Do Rio de Janeiro, FIPERJ – Diretoria de Pesquisa e Produção, Praça Fonseca Ramos, S/n, Niterói, 24030-020, RJ, Brazil; Zanette G.B., Fundação Instituto de Pesca Do Estado Do Rio de Janeiro, FIPERJ – Diretoria de Pesquisa e Produção, Praça Fonseca Ramos, S/n, Niterói, 24030-020, RJ, Brazil, Instituto de Estudos Do Mar Almirante Paulo Moreira, Departamento de Biotecnologia Marinha, Programa de Pós Graduação Em Biotecnologia Marinha, 253, Rua Kioto, Arraial Do Cabo, 28930000, RJ, Brazil; Castelar B., Università Degli Studi di Torino, Department of Veterinary Sciences, Lgo Paolo Braccini,nº 2, Grugliasco, 10095, TO, Italy; Santos Costa P.M., Fundação Instituto de Pesca Do Estado Do Rio de Janeiro, FIPERJ – Diretoria de Pesquisa e Produção, Praça Fonseca Ramos, S/n, Niterói, 24030-020, RJ, Brazil","Rio de Janeiro State (RJ) is a densely urbanized area in southern Brazil of great economic importance. It has developed and consolidated mariculture in the last three decades as a successful commercial activity of high local and regional relevance. We present here an overview of the mariculture sector in RJ, examine its trends and changes, provide insights, and discuss the implementation of local public policies aimed at its sustainable development. We surveyed 20 mariculture farmers through a closed questionnaire and semi-structured interviews. Using articulations and analyses of measures of central tendencies, Person's correlation, comprehension, interpretation, ordering, classification, as well as primary and secondary comparisons of qualitative data, it was possible to register and describe mariculture production in RJ. We also indicate measures that are needed to achieve sustainable development goals (SDGs), especially those directly related to mariculture. Our results indicated a shift in socioeconomic profiles reflecting transition to a system with greater control of production methods and diversification of cultivated species. Scallop farming continues to be the main activity in terms of production totals and number of farmers, although emerging activities such as marine fish farming and seaweed farming have been observed in recent years. The lack of any organized structure uniting representatives of the organized sectors of the production chain, dependable provisions of seed, the absence of formal sanitary and environmental monitoring programs, the slow pace of defining and legalizing aquaculture area leasing, the difficulty in obtaining financial credit for production, the need for improvements in technical assistance services, the scarcity of investmnent in Research & Development, and the lack of producer training were identified as the main obstacles to regional development. A strategic plan based on national policies for marine resources is suggested to strengthen mariculture production in RJ and achieve the SDGs of the United Nations 2030 Agenda for Sustainable Development. © 2021 Elsevier Ltd",mariculture; public policies; regional development; socioeconomic; strategic planning,Brazil; Rio de Janeiro [Brazil]; Economic and social effects; Economics; Environmental protection; Marine biology; Public policy; Seed; Strategic planning; Surveys; Sustainable development; 'current; Brazilian coast; Central tendencies; Economic importance; Qualitative data; Regional development; Semi structured interviews; Socio-economics; Southern Brazil; Urbanized area; commercial activity; cultivation; detection method; environmental monitoring; financial system; mariculture; policy implementation; regional development; seaweed culture; socioeconomic conditions; Sustainable Development Goal; United Nations; Regional planning,"F.S. Landuci; Fisheries Institute of Rio de Janeiro, FIPERJ, Niterói, Praça Fonseca Ramos, s/n, Centro, 24030-020, Brazil; email: felipe.landuci@fiperj.rj.gov.br",,Elsevier Ltd,,,,,,09645691,,OCMAE,,English,Ocean Coast. Manage.,Article,Final,,Scopus,2-s2.0-85115139485 Alam G.M.M.; Sarker M.N.I.; Kamal M.A.S.; Khatun M.N.; Bhandari H.,"Alam, G. M. Monirul (21742954200); Sarker, Md Nazirul Islam (57216352193); Kamal, Md Abdus Samad (7202025866); Khatun, Most Nilufa (57203577950); Bhandari, Humnath (57512715700)",21742954200; 57216352193; 7202025866; 57203577950; 57512715700,Impact of COVID-19 on Smallholder Aquaculture Farmers and Their Response Strategies: Empirical Evidence from Bangladesh,2023,Sustainability (Switzerland),15,3,2638,,,,7,10.3390/su15032638,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85148046447&doi=10.3390%2fsu15032638&partnerID=40&md5=ee66e07e61ce87a3e81fb4b27ed18513,"Faculty of Agricultural Economics and Rural Development, Bangabandhu Sheikh Mujibur Rahman Agricultural University (BSMRAU), Gazipur, 1706, Bangladesh; School of Commerce, University of Southern Queensland, Toowoomba, 4350, QLD, Australia; School of Social Sciences, Universiti Sains Malaysia, USM, Pinang, 11800, Malaysia; Division of Mechanical Science and Technology, Graduate School of Science and Technology, Gunma University, Kiryu, 376-8515, Japan; International Rice Research Institute (IRRI), Dhaka, 1213, Bangladesh","Alam G.M.M., Faculty of Agricultural Economics and Rural Development, Bangabandhu Sheikh Mujibur Rahman Agricultural University (BSMRAU), Gazipur, 1706, Bangladesh, School of Commerce, University of Southern Queensland, Toowoomba, 4350, QLD, Australia; Sarker M.N.I., School of Social Sciences, Universiti Sains Malaysia, USM, Pinang, 11800, Malaysia; Kamal M.A.S., Division of Mechanical Science and Technology, Graduate School of Science and Technology, Gunma University, Kiryu, 376-8515, Japan; Khatun M.N., Faculty of Agricultural Economics and Rural Development, Bangabandhu Sheikh Mujibur Rahman Agricultural University (BSMRAU), Gazipur, 1706, Bangladesh; Bhandari H., International Rice Research Institute (IRRI), Dhaka, 1213, Bangladesh","Bangladesh’s aquaculture sector has contributed progressively to the nation’s economy over the years, but the COVID-19 pandemic has impeded fish farmers’ access to markets, reduced their production and sales capacity, resulted in lower income, and increased food security vulnerability. This study assesses how COVID-19 affects smallholder fish farmers and their response strategies by employing data collected from 250 fish farmers and traders from intensive fish-growing areas of Bangladesh. The results reveal that most farmers experienced difficulty obtaining inputs, and the price of those inputs skyrocketed during the COVID-19 period, resulting in several months of decreased production and operations. As a result of COVID-19, farm gate prices for silver carp, ruhu, common carp, grass carp, and tilapia fish dropped by 25%, 23%, 23%, 22%, 23%, and 40%, respectively. On the other hand, fish feed prices were found to increase significantly. Reduced income from fish farming and other sources has triggered a significant drop in capital for farming operations and production capacity improvement, leading to food insecurity. The most common coping strategies include reduced buying from the market (vegetables, fruits, meat, milk, etc.), relying on less expensive or less preferred food, purchasing food on credit, and selling assets. Notably, due to COVID-19, a new mode of marketing has evolved as an adaptation strategy in the fish marketing system, such as the use of the mobile phone (18%) and Facebook/internet to sell fish directly to the customer (16%). The sector requires short-term financial assistance to assist fish actors with production and marketing challenges. © 2023 by the authors.",agri-food system; agribusiness; fisher community; food system; food value chain; sustainability,Bangladesh; agroindustry; aquaculture industry; cichlid; COVID-19; cyprinid; empirical analysis; fishing community; response analysis; smallholder; supply chain management; sustainability,"M.N.I. Sarker; School of Social Sciences, Universiti Sains Malaysia, USM, Pinang, 11800, Malaysia; email: sarker.usm@yahoo.com",,MDPI,,,,,,20711050,,,,English,Sustainability,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85148046447 El Serafy G.; Mészáros L.; Fernández V.; Capet A.; She J.; Sotillo M.G.; Melet A.; Legrand S.; Mourre B.; Campuzano F.; Federico I.; Guarnieri A.; Rubio A.; Dabrowski T.; Umgiesser G.; Staneva J.; Ursella L.; Pairaud I.; Bruschi A.; Frigstad H.; Baetens K.; Creach V.; Charria G.; Alvarez Fanjul E.,"El Serafy, Ghada (6602950267); Mészáros, Lőrinc (57211159875); Fernández, Vicente (35952114200); Capet, Arthur (35589487300); She, Jun (15843911800); Sotillo, Marcos Garcia (8944787600); Melet, Angelique (36344032300); Legrand, Sebastien (13612431300); Mourre, Baptiste (8554700800); Campuzano, Francisco (35271277300); Federico, Ivan (35726845000); Guarnieri, Antonio (26422047600); Rubio, Anna (57074849100); Dabrowski, Tomasz (6602143315); Umgiesser, Georg (55916982900); Staneva, Joanna (6602678456); Ursella, Laura (6602905772); Pairaud, Ivane (8869977400); Bruschi, Antonello (35368042300); Frigstad, Helen (59739603100); Baetens, Katrijn (57163274600); Creach, Veronique (56630138900); Charria, Guillaume (23026565300); Alvarez Fanjul, Enrique (6507601369)",6602950267; 57211159875; 35952114200; 35589487300; 15843911800; 8944787600; 36344032300; 13612431300; 8554700800; 35271277300; 35726845000; 26422047600; 57074849100; 6602143315; 55916982900; 6602678456; 6602905772; 8869977400; 35368042300; 59739603100; 57163274600; 56630138900; 23026565300; 6507601369,EuroGOOS roadmap for operational coastal downstream services,2023,Frontiers in Marine Science,10,,1177615,,,,1,10.3389/fmars.2023.1177615,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85165892603&doi=10.3389%2ffmars.2023.1177615&partnerID=40&md5=91898395ef7fb1144123f5a75744e678,"Unit of Marine and Coastal Systems, Delft, Deltares, Netherlands; Applied Mathematics, Delft University of Technology, Delft, Netherlands; European Global Ocean Observing System (EuroGOOS), Brussels, Belgium; Operational Directorate Natural Environment (OD Nature), Royal Belgian Institute of Natural Sciences (RBINS), Brussels, Belgium; Department of Weather Research, Danish Meteorological Institute, Copenhagen, Denmark; Nologin Oceanic Weather systems, Nologin Consulting S.L., Zaragoza, Spain; Mercator Ocean International (MOi), Toulouse, France; Balearic Islands Coastal Observing and Forecasting System, SOCIB, Palma, Spain; +ATLANTIC Colab, Peniche, Portugal; Ocean Predictions and Applications, Centro Euro-Mediterraneo sui Cambiamenti Climatici (CMCC), Lecce, Italy; Istituto Nazionale di Geofisica e Vulcanologia, Sezione di Bologna, Bologna, Italy; Marine Research, Basque Research and Technology Alliance (BRTA), AZTI, Pasaia, Spain; Marine Institute, Ocean Science and Information Services, Galway, Ireland; Institute of Marine Science, National Research Council (ISMAR-CNR), Venice, Italy; Hydrodynamics and Data Assimilation, Institute for Coastal Systems, Helmholz Centre Hereon, Geesthacht, Germany; Oceanography Section, National Institute of Oceanography and Applied Geophysics (OGS), Trieste, Italy; Laboratoire d’Océanographie Physique et Spatiale (LOPS), Univ Brest, CNRS, IRD, French Research Institute for Exploitation of the Sea (Ifremer), Plouzané, France; National Centre for Coastal Zone Protection and Characterization, Marine Climatology and for Operational Oceanography, Italian National Institute for Environmental Protection and Research (ISPRA), Rome, Italy; Oceanography and Biogeochemistry, Norwegian Institute for Water Research (NIVA), Grimstad, Norway; Centre for Environment, Fisheries and Aquaculture Science (CEFAS), Lowestoft, United Kingdom","El Serafy G., Unit of Marine and Coastal Systems, Delft, Deltares, Netherlands, Applied Mathematics, Delft University of Technology, Delft, Netherlands; Mészáros L., Unit of Marine and Coastal Systems, Delft, Deltares, Netherlands, Applied Mathematics, Delft University of Technology, Delft, Netherlands; Fernández V., European Global Ocean Observing System (EuroGOOS), Brussels, Belgium; Capet A., Operational Directorate Natural Environment (OD Nature), Royal Belgian Institute of Natural Sciences (RBINS), Brussels, Belgium; She J., Department of Weather Research, Danish Meteorological Institute, Copenhagen, Denmark; Sotillo M.G., Nologin Oceanic Weather systems, Nologin Consulting S.L., Zaragoza, Spain; Melet A., Mercator Ocean International (MOi), Toulouse, France; Legrand S., Operational Directorate Natural Environment (OD Nature), Royal Belgian Institute of Natural Sciences (RBINS), Brussels, Belgium; Mourre B., Balearic Islands Coastal Observing and Forecasting System, SOCIB, Palma, Spain; Campuzano F., +ATLANTIC Colab, Peniche, Portugal; Federico I., Ocean Predictions and Applications, Centro Euro-Mediterraneo sui Cambiamenti Climatici (CMCC), Lecce, Italy; Guarnieri A., Istituto Nazionale di Geofisica e Vulcanologia, Sezione di Bologna, Bologna, Italy; Rubio A., Marine Research, Basque Research and Technology Alliance (BRTA), AZTI, Pasaia, Spain; Dabrowski T., Marine Institute, Ocean Science and Information Services, Galway, Ireland; Umgiesser G., Institute of Marine Science, National Research Council (ISMAR-CNR), Venice, Italy; Staneva J., Hydrodynamics and Data Assimilation, Institute for Coastal Systems, Helmholz Centre Hereon, Geesthacht, Germany; Ursella L., Oceanography Section, National Institute of Oceanography and Applied Geophysics (OGS), Trieste, Italy; Pairaud I., Laboratoire d’Océanographie Physique et Spatiale (LOPS), Univ Brest, CNRS, IRD, French Research Institute for Exploitation of the Sea (Ifremer), Plouzané, France; Bruschi A., National Centre for Coastal Zone Protection and Characterization, Marine Climatology and for Operational Oceanography, Italian National Institute for Environmental Protection and Research (ISPRA), Rome, Italy; Frigstad H., Oceanography and Biogeochemistry, Norwegian Institute for Water Research (NIVA), Grimstad, Norway; Baetens K., Operational Directorate Natural Environment (OD Nature), Royal Belgian Institute of Natural Sciences (RBINS), Brussels, Belgium; Creach V., Centre for Environment, Fisheries and Aquaculture Science (CEFAS), Lowestoft, United Kingdom; Charria G., Laboratoire d’Océanographie Physique et Spatiale (LOPS), Univ Brest, CNRS, IRD, French Research Institute for Exploitation of the Sea (Ifremer), Plouzané, France; Alvarez Fanjul E., Mercator Ocean International (MOi), Toulouse, France","The EuroGOOS Coastal working group examines the entire coastal value chain from coastal observations to services for coastal users. The main objective of the working group is to review the status quo, identify gaps and future steps needed to secure and improve the sustainability of the European coastal service provision. Within this framework, our white paper defines a EuroGOOS roadmap for sustained “community coastal downstream service” provision, provided by a broad EuroGOOS community with focus on the national and local scale services. After defining the coastal services in this context, we describe the main components of coastal service provision and explore community benefits and requirements through sectoral examples (aquaculture, coastal tourism, renewable energy, port, cross-sectoral) together with the main challenges and barriers to user uptake. Technology integration challenges are outlined with respect to multiparameter observations, multi-platform observations, the land-coast-ocean continuum, and multidisciplinary data integration. Finally, the technological, financial, and institutional sustainability of coastal observing and coastal service provision are discussed. The paper gives special attention to the delineation of upstream and downstream services, public-private partnerships and the important role of Copernicus in better covering the coastal zone. Therefore, our white paper is a policy and practice review providing a comprehensive overview, in-depth discussion and actionable recommendations (according to key short-term or medium-term priorities) on the envisaged elements of a roadmap for sustained coastal service provision. EuroGOOS, as an entity that unites European national operational oceanography centres, research institutes and scientists across various domains within the broader field of operational oceanography, offers to be the engine and intermediary for the knowledge transfer and communication of experiences, best practices and information, not only amongst its members, but also amongst the different (research) infrastructures, institutes and agencies that have interests in coastal oceanography in Europe. Copyright © 2023 El Serafy, Mészáros, Fernández, Capet, She, Sotillo, Melet, Legrand, Mourre, Campuzano, Federico, Guarnieri, Rubio, Dabrowski, Umgiesser, Staneva, Ursella, Pairaud, Bruschi, Frigstad, Baetens, Creach, Charria and Alvarez Fanjul.",coastal services; copernicus; eurogoos; operational oceanography; roadmap,,"G. El Serafy; Unit of Marine and Coastal Systems, Deltares, Delft, Netherlands; email: Ghada.ElSerafy@deltares.nl",,Frontiers Media SA,,,,,,22967745,,,,English,Front. Mar. Sci.,Article,Final,All Open Access; Gold Open Access; Green Open Access,Scopus,2-s2.0-85165892603 Loia F.; Capobianco N.; Vona R.,"Loia, Francesca (56888726900); Capobianco, Nunzia (57224588422); Vona, Roberto (56921953800)",56888726900; 57224588422; 56921953800,Towards a resilient perspective for the future of offshore platforms. Insights from a data driven approach,2022,"Transforming Government: People, Process and Policy",16,2,,218,230,12,5,10.1108/TG-04-2021-0067,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85112243635&doi=10.1108%2fTG-04-2021-0067&partnerID=40&md5=a624de384b2e7b4438c1264fe717bd69,"Department of Economics, Management, and Institutions, University of Naples Federico II, Naples, Italy","Loia F., Department of Economics, Management, and Institutions, University of Naples Federico II, Naples, Italy; Capobianco N., Department of Economics, Management, and Institutions, University of Naples Federico II, Naples, Italy; Vona R., Department of Economics, Management, and Institutions, University of Naples Federico II, Naples, Italy","Purpose: This study aims to investigate the collective perception regarding the future of offshore platforms and frame the main categories of meanings associated by the community with the investigated phenomenon. Design/methodology/approach: A data driven approach has been conducted. The collection of the peoples’ opinions has been realized on two specific social network communities as follows: Twitter and Instagram. The text mining processes carried out a sentiment and a cluster analysis. Findings: The sentiment analysis of the most frequent words has been shown. The following four main homogeneous categories of words are emerged in relation to the decommissioning of offshore platforms: technological areas, green governance (GG), circular economy and socio-economic sphere. Research limitations/implications: The alternative use of the offshore platforms, including tourism initiatives, aquaculture, alternative energy generation, hydrogen storage and environmental research, could improve the resilience of communities by offering the development of new jobs and the growth of local and innovative green businesses. Practical implications: The adoption of a circular model and GG initiatives aims to limit the input of resources and energy, minimize waste and losses, adopt a sustainable approach and realize new social and territorial value. Originality/value: The analysis underlines the importance to adopt a systems perspective, which takes into account the social, economic and environmental system as a whole, the different phenomena that occur and the variety of categories of stakeholders, from users to local governments that participate in the territorial development. © 2021, Emerald Publishing Limited.",circular economy; data driven approach; decommissioning; green governance; offshore platform; resilience,,"F. Loia; Department of Economics, Management, and Institutions, University of Naples Federico II, Naples, Italy; email: francesca.loia@unina.it",,Emerald Group Holdings Ltd.,,,,,,17506166,,,,English,Trans. Gov. People Process Policy,Article,Final,,Scopus,2-s2.0-85112243635 Paramita A.O.; Partelow S.; Schlüter A.; Buhari N.,"Paramita, Adiska Octa (58030056400); Partelow, Stefan (56415115600); Schlüter, Achim (56240507200); Buhari, Nurliah (55977938700)",58030056400; 56415115600; 56240507200; 55977938700,Can the Indonesian Collective Action Norm of Gotong-Royong Be Strengthened with Economic Incentives? Comparing the Implementation of an Aquaculture Irrigation Policy Program,2023,International Journal of the Commons,17,1,,462,480,18,4,10.5334/ijc.1273,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85182481097&doi=10.5334%2fijc.1273&partnerID=40&md5=4d51cef51e165c19cdbbd9f6b28d38ba,"Leibniz Center for Tropical Marine Research (ZMT), Bremen, Germany; Constructor University, Bremen, Germany; Center for Life Ethics, University of Bonn, Bonn, Germany; Universitas Mataram, Fakultas Pertanian, Lombok, Indonesia","Paramita A.O., Leibniz Center for Tropical Marine Research (ZMT), Bremen, Germany, Constructor University, Bremen, Germany; Partelow S., Center for Life Ethics, University of Bonn, Bonn, Germany; Schlüter A., Leibniz Center for Tropical Marine Research (ZMT), Bremen, Germany, Constructor University, Bremen, Germany; Buhari N., Universitas Mataram, Fakultas Pertanian, Lombok, Indonesia","The Indonesian multi-level governmental program (PITAP) is a participatory pond irrigation management policy established by the Ministry of Marine Affairs and Fisheries. It aims to catalyze the rehabilitation of irrigation canals to improve water access for small-scale aquaculture farmers. In PITAP, traditional aquaculture farmers are incentivized with government funding to create community-based co-management groups (POKLINA), to maintain the self-governance of their irrigation canals. The logic of PITAP is to encourage POKLINA farmers to rehabilitate their irrigation canals through subsidized labor payments that are coupled with strengthening the strong cultural norm of mutual assistance (i.e., collective action) within Indonesian society called Gotong-Royong. PITAP aims to revitalize Gotong-Royong through subsidized labor compensation with the hope that when the subsidy program is over, Gotong-Royong will be revitalized without external support. In this study, we compare and analyze four villages on Lombok, Indonesia, that participated in PITAP program in 2020 and 2021. The study is supported with empirical data using various qualitative data collection methods, including interviews, participant observations, and the collection of policy documents. We further use the Social-Ecological System Framework (SESF) as a diagnostic tool to structure the data collection process and analysis. Findings indicate that different variables hinder and enable collective action in the four villages, leading to different PITAP program outcomes. The likely reason for this, suggested by our findings, is that each village has different social and ecological conditions that influence intrinsic motivation for collective action. PITAP program either crowds out intrinsic motivation under some conditions or crowds it in under others. This suggests the need to consider contextual adaptations in policy design and implementation to improve outcomes better. © 2023 The Author(s).",aquaculture; co-management; collective action; common pool resource; environmental sustainability; gotong-royong; government; indonesia; irrigation; social-ecological systems; southeast asia,,"A.O. Paramita; Leibniz ZMT, Bremen, Germany; email: adiska.paramita@leibniz-zmt.de",,"Igitur, Utrecht Publishing and Archiving Services",,,,,,18750281,,,,English,Int. J. Common,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85182481097 Tigchelaar M.; Leape J.; Micheli F.; Allison E.H.; Basurto X.; Bennett A.; Bush S.R.; Cao L.; Cheung W.W.L.; Crona B.; DeClerck F.; Fanzo J.; Gelcich S.; Gephart J.A.; Golden C.D.; Halpern B.S.; Hicks C.C.; Jonell M.; Kishore A.; Koehn J.Z.; Little D.C.; Naylor R.L.; Phillips M.J.; Selig E.R.; Short R.E.; Sumaila U.R.; Thilsted S.H.; Troell M.; Wabnitz C.C.C.,"Tigchelaar, Michelle (55284682500); Leape, Jim (35621774100); Micheli, Fiorenza (7101777512); Allison, Edward H. (7006279993); Basurto, Xavier (8508409300); Bennett, Abigail (55993025200); Bush, Simon R. (20336852300); Cao, Ling (57198528782); Cheung, William W.L. (57484627900); Crona, Beatrice (57203064581); DeClerck, Fabrice (15135701200); Fanzo, Jessica (6506547869); Gelcich, Stefan (8563637100); Gephart, Jessica A. (55811795300); Golden, Christopher D. (57201518103); Halpern, Benjamin S. (7103099423); Hicks, Christina C. (34871928000); Jonell, Malin (55857925300); Kishore, Avinash (55963819000); Koehn, J. Zachary (55613414800); Little, David C. (7202966368); Naylor, Rosamond L. (7102988281); Phillips, Michael J. (7402770404); Selig, Elizabeth R. (16507642200); Short, Rebecca E. (57191618380); Sumaila, U. Rashid (6701840163); Thilsted, Shakuntala H. (6603405476); Troell, Max (6701524165); Wabnitz, Colette C.C. (6506527945)",55284682500; 35621774100; 7101777512; 7006279993; 8508409300; 55993025200; 20336852300; 57198528782; 57484627900; 57203064581; 15135701200; 6506547869; 8563637100; 55811795300; 57201518103; 7103099423; 34871928000; 55857925300; 55963819000; 55613414800; 7202966368; 7102988281; 7402770404; 16507642200; 57191618380; 6701840163; 6603405476; 6701524165; 6506527945,The vital roles of blue foods in the global food system,2022,Global Food Security,33,,100637,,,,93,10.1016/j.gfs.2022.100637,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85128367843&doi=10.1016%2fj.gfs.2022.100637&partnerID=40&md5=b407ec630b5f5cfaa336094491966945,"Center for Ocean Solutions, Stanford University, United States; Hopkins Marine Station, Stanford University, United States; WorldFish, One CGIAR, Malaysia; Nicholas School of the Environment, Duke University, United States; Dept. of Fisheries and Wildlife, Michigan State University, United States; Environmental Policy Group, Wageningen University, Netherlands; School of Oceanography, Shanghai Jiao Tong University, China; Institute for the Oceans and Fisheries, University of British Columbia, Canada; Stockholm Resilience Centre, Stockholm University, Sweden; Global Economic Dynamics and the Biosphere, Royal Swedish Academy of Science, Sweden; EAT, Norway; Alliance of Bioversity International and CIAT, One CGIAR, France; Berman Institute of Bioethics, Johns Hopkins University, United States; Instituto Milenio en Socio-ecologia Costera & Center of Applied Ecology and Sustainability, Pontificia Universidad Catolica de Chile, Chile; Dept. of Environmental Science, American University, United States; Department of Nutrition, Harvard T.H. Chan School of Public Health, United States; National Center for Ecological Analysis and Synthesis, University of California, Santa Barbara, United States; Bren School of Environmental Science and Management, University of California, Santa Barbara, United States; Lancaster Environment Centre, Lancaster University, United Kingdom; Beijer Institute of Ecological Economics, Royal Swedish Academy of Science, Sweden; International Food Policy Research Institute, One CGIAR, India; Institute of Aquaculture, University of Stirling, United Kingdom; Department of Earth System Science & Center on Food Security and the Environment, Stanford University, United States; FutureFish, United Kingdom; School of Public Policy and Global Affairs, University of British Columbia, Canada","Tigchelaar M., Center for Ocean Solutions, Stanford University, United States; Leape J., Center for Ocean Solutions, Stanford University, United States; Micheli F., Center for Ocean Solutions, Stanford University, United States, Hopkins Marine Station, Stanford University, United States; Allison E.H., WorldFish, One CGIAR, Malaysia; Basurto X., Nicholas School of the Environment, Duke University, United States; Bennett A., Dept. of Fisheries and Wildlife, Michigan State University, United States; Bush S.R., Environmental Policy Group, Wageningen University, Netherlands; Cao L., School of Oceanography, Shanghai Jiao Tong University, China; Cheung W.W.L., Institute for the Oceans and Fisheries, University of British Columbia, Canada; Crona B., Stockholm Resilience Centre, Stockholm University, Sweden, Global Economic Dynamics and the Biosphere, Royal Swedish Academy of Science, Sweden; DeClerck F., EAT, Norway, Alliance of Bioversity International and CIAT, One CGIAR, France; Fanzo J., Berman Institute of Bioethics, Johns Hopkins University, United States; Gelcich S., Instituto Milenio en Socio-ecologia Costera & Center of Applied Ecology and Sustainability, Pontificia Universidad Catolica de Chile, Chile; Gephart J.A., Dept. of Environmental Science, American University, United States; Golden C.D., Department of Nutrition, Harvard T.H. Chan School of Public Health, United States; Halpern B.S., National Center for Ecological Analysis and Synthesis, University of California, Santa Barbara, United States, Bren School of Environmental Science and Management, University of California, Santa Barbara, United States; Hicks C.C., Lancaster Environment Centre, Lancaster University, United Kingdom; Jonell M., Stockholm Resilience Centre, Stockholm University, Sweden, Global Economic Dynamics and the Biosphere, Royal Swedish Academy of Science, Sweden, Beijer Institute of Ecological Economics, Royal Swedish Academy of Science, Sweden; Kishore A., International Food Policy Research Institute, One CGIAR, India; Koehn J.Z., Center for Ocean Solutions, Stanford University, United States; Little D.C., Institute of Aquaculture, University of Stirling, United Kingdom; Naylor R.L., Department of Earth System Science & Center on Food Security and the Environment, Stanford University, United States; Phillips M.J., WorldFish, One CGIAR, Malaysia, FutureFish, United Kingdom; Selig E.R., Center for Ocean Solutions, Stanford University, United States; Short R.E., Stockholm Resilience Centre, Stockholm University, Sweden; Sumaila U.R., Institute for the Oceans and Fisheries, University of British Columbia, Canada, School of Public Policy and Global Affairs, University of British Columbia, Canada; Thilsted S.H., WorldFish, One CGIAR, Malaysia; Troell M., Stockholm Resilience Centre, Stockholm University, Sweden, Global Economic Dynamics and the Biosphere, Royal Swedish Academy of Science, Sweden, Beijer Institute of Ecological Economics, Royal Swedish Academy of Science, Sweden; Wabnitz C.C.C., Center for Ocean Solutions, Stanford University, United States, Institute for the Oceans and Fisheries, University of British Columbia, Canada","Blue foods play a central role in food and nutrition security for billions of people and are a cornerstone of the livelihoods, economies, and cultures of many coastal and riparian communities. Blue foods are extraordinarily diverse, are often rich in essential micronutrients and fatty acids, and can often be produced in ways that are more environmentally sustainable than terrestrial animal-source foods. Capture fisheries constitute the largest wild-food resource for human extraction that would be challenging to replace. Yet, despite their unique value, blue foods have often been left out of food system analyses, policies, and investments. Here, we focus on three imperatives for realizing the potential of blue foods: (1) Bring blue foods into the heart of food system decision-making; (2) Protect and develop the potential of blue foods to help end malnutrition; and (3) Support the central role of small-scale actors in fisheries and aquaculture. Recognition of the importance of blue foods for food and nutrition security constitutes a critical justification to preserve the integrity and diversity of aquatic species and ecosystems. © 2022 The Authors",aquatic foods; blue foods; environmental sustainability; food system governance; nutrition; small-scale actors,,"M. Tigchelaar; Stanford, 473 Via Ortega, 94305, United States; email: mtigch@stanford.edu",,Elsevier B.V.,,,,,,22119124,,,,English,Global Food Secur.,Article,Final,All Open Access; Green Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85128367843 Assis M.T.Q.M.; Tümpel M.; Lucas M.R.; Rainho M.J.M.,"Assis, Michel T. Q. M. (57887065700); Tümpel, Markus (57226312385); Lucas, Maria Raquel (25226469000); Rainho, Maria José M. (55848145600)",57887065700; 57226312385; 25226469000; 55848145600,The Influence of Informality in a Local Agri-food Supply Chain in Brazil; [L'influence de l'informalité dans une chaîne d'approvisionnement agroalimentaire locale au Brésil]; [Der Einfluss von Informalität in einer regionalen Agrar- und Lebensmittelwarenkette in Brasilien],2023,EuroChoices,22,1,,37,43,6,0,10.1111/1746-692X.12385,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85151418916&doi=10.1111%2f1746-692X.12385&partnerID=40&md5=e5b309c060b35804021dc2673dcafbf2,"Superintendence of Agriculture in the State of Santa Catarina, Ministry of Agriculture, Livestock and Food Supply, Florianópolis, Brazil; and Institute for Research and Advanced Training (IIFA) - Centre for Advanced Studies and Training in Management and Economics (CEFAGE), Universidade de Évora, Évora, Portugal; Chemnitz University of Technology: Chemnitz, Sachsen, Germany; Centre for Advanced Studies in Management and Economics (CEFAGE-UÉ) and Department of Management, School of Social Sciences, Universidade de Évora, Évora, Portugal; Centre for Transdisciplinary Development Studies (CETRAD), Department of Economics, Sociology and Management, School of Human and Social Sciences, Universidade de Trás-os-Montes e Alto Douro, Vila Real, Portugal","Assis M.T.Q.M., Superintendence of Agriculture in the State of Santa Catarina, Ministry of Agriculture, Livestock and Food Supply, Florianópolis, Brazil; and Institute for Research and Advanced Training (IIFA) - Centre for Advanced Studies and Training in Management and Economics (CEFAGE), Universidade de Évora, Évora, Portugal; Tümpel M., Chemnitz University of Technology: Chemnitz, Sachsen, Germany; Lucas M.R., Centre for Advanced Studies in Management and Economics (CEFAGE-UÉ) and Department of Management, School of Social Sciences, Universidade de Évora, Évora, Portugal; Rainho M.J.M., Centre for Transdisciplinary Development Studies (CETRAD), Department of Economics, Sociology and Management, School of Human and Social Sciences, Universidade de Trás-os-Montes e Alto Douro, Vila Real, Portugal","During qualitative research on trust, conducted in a mariculture chain in southern Brazil, the theme of informality emerged spontaneously in most interviews. Although it is difficult to measure, some data and estimates point out that informality is still quite present worldwide, but especially in emerging and developing countries, and this situation was confirmed in the studied supply chain. In analysing the narratives, we noticed that this is a chronic issue which bothers the producers that are properly formalised mainly because of unfair competition, and hinders the organisation of the chain. Some factors foster the persistence of informality, such as family labour and temporary jobs, the low educational level of entrepreneurs, lack of adequate supervision and cultural aspects of producers and their families. We could corroborate the perspectives of modernisation (informality is still persistent), neo-liberal (informal entrepreneurs reject the bureaucracy of an over-regulated market) and post-structuralist (informality is a way of life related to identity, social position and/or resistance against the formal structure) theories. Our research has shown us that the situation found is contributing to a reduction in the number of formal producers and impairing the development of that local supply chain, as well as its sustainability. © 2023 The Authors. EuroChoices published by John Wiley & Sons Ltd on behalf of Agricultural Economics Society and European Association of Agricultural Economists.",,Brazil; agriculture; food supply; informal sector; supply chain management; sustainability,"M.T.Q.M. Assis; Superintendence of Agriculture in the State of Santa Catarina, Ministry of Agriculture, Livestock and Food Supply, Florianópolis, Brazil; and Institute for Research and Advanced Training (IIFA) - Centre for Advanced Studies and Training in Management and Economics (CEFAGE), Universidade de Évora, Évora, Portugal; email: micheltqmassis77@gmail.com",,John Wiley and Sons Inc,,,,,,14780917,,,,English,EuroChoices,Article,Final,All Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85151418916 Penca J.; Said A.; Cavallé M.; Pita C.; Libralato S.,"Penca, Jerneja (35332856900); Said, Alicia (57190489013); Cavallé, Marta (57208025275); Pita, Cristina (36832195100); Libralato, Simone (12142364900)",35332856900; 57190489013; 57208025275; 36832195100; 12142364900,Sustainable small-scale fisheries markets in the Mediterranean: weaknesses and opportunities,2021,Maritime Studies,20,2,,141,155,14,25,10.1007/s40152-021-00222-5,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85105460427&doi=10.1007%2fs40152-021-00222-5&partnerID=40&md5=bfaf0ef739fd18dcab56a4d0743d7913,"Euro-Mediterranean University (EMUNI), Piran, Slovenia; Department of Fisheries and Aquaculture of Malta, Luqa, Malta; Low-Impact Fishers of Europe – LIFE, Barcelona, Spain; International Institute for Environment and Development (IIED), London, United Kingdom; CESAM - Centre for Environmental and Marine Studies, Department of Environment and Planning, University of Aveiro, Aveiro, Portugal; National Institute of Oceanography and Applied Geophysics – OGS, Borgo Grotta Gigante, Italy","Penca J., Euro-Mediterranean University (EMUNI), Piran, Slovenia; Said A., Department of Fisheries and Aquaculture of Malta, Luqa, Malta; Cavallé M., Low-Impact Fishers of Europe – LIFE, Barcelona, Spain; Pita C., International Institute for Environment and Development (IIED), London, United Kingdom, CESAM - Centre for Environmental and Marine Studies, Department of Environment and Planning, University of Aveiro, Aveiro, Portugal; Libralato S., National Institute of Oceanography and Applied Geophysics – OGS, Borgo Grotta Gigante, Italy","Improved access to markets by small-scale fisheries (SSF), as called by Sustainable Development Goal 14b and other global and Mediterranean policy documents, is impeded by the existing organisation of value chains and market structures, which are typically antagonistic to the nature of SSF. This article analyses the markets in the Mediterranean to map the drivers and feedback loops that keep fisheries in an unsustainable trajectory and reviews the key innovations in support of a socially, economically and environmentally sustainable small-scale fishing sector. We show how the current market is dominated by lack of product traceability and underappreciation of the inherent value of SSF products (e.g. local production, freshness, season dependence, quantitatively and culinary varied nature). In addition, due to a lack of organisation and the capacity to act, small-scale fishers are poised to have little to no influence over the price. In what we conceptualise as a response to the negative effects of existing market structures, we identify and classify initiatives that add value to SSF products, but not exclusively. These are the shortening of the value chain, innovation in the distribution channel, diversification in the type of product offered, promotion and education regarding SSF products, label and brand development and the empowerment of SSF communities through improved leadership, ownership, cooperation and coordination. We provide examples of these activities and propose the key types of intervention at various levels of governance to accelerate and capitalise on them in order to accomplish policy goals and achieve a better status of both the oceans and the fishers. © 2021, The Author(s).",fisheries value chains; innovation and transformation; seafood markets; sustainability; sustainability,Martes; aquaculture industry; conceptual framework; empowerment; fishery policy; innovation; leadership; market system; sustainability; Sustainable Development Goal,"S. Libralato; National Institute of Oceanography and Applied Geophysics – OGS, Borgo Grotta Gigante, Italy; email: slibralato@inogs.it",,Springer Science and Business Media Deutschland GmbH,,,,,,18727859,,,,English,Marit. Stud.,Article,Final,All Open Access; Green Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85105460427 Fang X.; Li X.; Zhang Y.; Zhao Y.; Qian J.; Hao C.; Zhou J.; Wu Y.,"Fang, Xin (57204562629); Li, Xiaoyan (57210214859); Zhang, Yifei (55739992400); Zhao, Yuan (57215609055); Qian, Jian (55654899800); Hao, Chunling (57204564317); Zhou, Jiaqi (57223122006); Wu, Yifan (57221098011)",57204562629; 57210214859; 55739992400; 57215609055; 55654899800; 57204564317; 57223122006; 57221098011,Random forest-based understanding and predicting of the impacts of anthropogenic nutrient inputs on the water quality of a tropical lagoon,2021,Environmental Research Letters,16,5,055003,,,,25,10.1088/1748-9326/abf395,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85104909948&doi=10.1088%2f1748-9326%2fabf395&partnerID=40&md5=703ac422cf21a6e8393025c6c5f7bb10,"Second Institute of Oceanography, Ministry of Natural Resources, No. 36 BaochubeiLu Rd., Hangzhou, Zhejiang, 310012, China; School of Geography and Ocean Science, Nanjing University, No. 163 Xianlin Rd., Nanjing, Jiangsu, 210093, China; Ecological Environment Department of Hainan Province, No. 9 Meixian Rd., Haikou, Hainan, 570203, China","Fang X., Second Institute of Oceanography, Ministry of Natural Resources, No. 36 BaochubeiLu Rd., Hangzhou, Zhejiang, 310012, China, School of Geography and Ocean Science, Nanjing University, No. 163 Xianlin Rd., Nanjing, Jiangsu, 210093, China; Li X., Second Institute of Oceanography, Ministry of Natural Resources, No. 36 BaochubeiLu Rd., Hangzhou, Zhejiang, 310012, China; Zhang Y., Second Institute of Oceanography, Ministry of Natural Resources, No. 36 BaochubeiLu Rd., Hangzhou, Zhejiang, 310012, China; Zhao Y., Ecological Environment Department of Hainan Province, No. 9 Meixian Rd., Haikou, Hainan, 570203, China; Qian J., Second Institute of Oceanography, Ministry of Natural Resources, No. 36 BaochubeiLu Rd., Hangzhou, Zhejiang, 310012, China; Hao C., Second Institute of Oceanography, Ministry of Natural Resources, No. 36 BaochubeiLu Rd., Hangzhou, Zhejiang, 310012, China; Zhou J., Second Institute of Oceanography, Ministry of Natural Resources, No. 36 BaochubeiLu Rd., Hangzhou, Zhejiang, 310012, China; Wu Y., Second Institute of Oceanography, Ministry of Natural Resources, No. 36 BaochubeiLu Rd., Hangzhou, Zhejiang, 310012, China","Seawater quality degradation is caused by diverse, non-linearly interacting factors, knowledge of which is essential for understanding and predicting water quality trends. Currently, most water-quality research has been based on certain assumptions to employ linear approaches for solving simplified problems, such as numerical simulations or cumulative impact assessments. To improve the accuracy and ease of prediction, the random forest method has been increasingly employed as a good alternative to traditional prediction methods. In the present study, the random forest method was adopted to construct a model of the water quality response of Xincun Lagoon to anthropogenic nutrient inputs based on a limited amount of sample data, aiming to (a) identify the critical sources of nutrient inputs that affect the meeting of water quality objectives so as to minimize the socioeconomic impact on secondary stakeholders; and (b) predict the impact of a reduction of anthropogenic nutrient inputs on water quality improvement. It can be seen from the results that the intensity of stressors generated by different human activities presents an obvious non-linear superposition pattern, and the random forest method is one of the feasible solutions to this phenomenon; in addition, the impact on the lagoon ecosystem is not directly related to the intensity of the pressure source, for example, coastal aquaculture is more important than shallow sea cage aquaculture. Therefore, the method established in this paper can be used to identify the key pressure sources during the restoration of the lagoon environment, so as to achieve the unity of economy and effectiveness. © 2021 The Author(s). Published by IOP Publishing Ltd.",anthropogenic activities; inorganic nitrogen; management; random forest; spatial distribution; water quality,Aquaculture; Decision trees; Economic and social effects; Economics; Lakes; Nutrients; Random forests; Tropics; Water quality; Coastal aquaculture; Cumulative impact assessment; Lagoon environments; Random forest methods; Socio-economic impacts; Water quality improvements; Water quality response; Water quality trends; anthropogenic effect; aquaculture; cage culture; feasibility study; lagoon; random walk method; restoration ecology; socioeconomic impact; water quality; Forecasting,"X. Fang; Second Institute of Oceanography, Ministry of Natural Resources, Hangzhou, Zhejiang, No. 36 BaochubeiLu Rd., 310012, China; email: fangx@sio.org.cn",,IOP Publishing Ltd,,,,,,17489318,,,,English,Environ.Res.Lett.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85104909948 Kumaran M.; Vasagam K.P.K.; Kailasam M.; Subburaj R.; Anand P.R.; Ravisankar T.; Sendhilkumar R.; Santhanakumar J.; Vijayan K.K.,"Kumaran, M. (57207612975); Vasagam, K.P. Kumaraguru (8985297200); Kailasam, M. (6603863761); Subburaj, R. (6507657662); Anand, P.R. (57282447700); Ravisankar, T. (6507370305); Sendhilkumar, R. (57224482139); Santhanakumar, J. (8669530600); Vijayan, K.K. (55410010300)",57207612975; 8985297200; 6603863761; 6507657662; 57282447700; 6507370305; 57224482139; 8669530600; 55410010300,Three-tier cage aquaculture of Asian Seabass (Lates calcarifer) fish in the coastal brackishwaters - A techno-economic appraisal,2021,Aquaculture,543,,737025,,,,12,10.1016/j.aquaculture.2021.737025,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85107637317&doi=10.1016%2fj.aquaculture.2021.737025&partnerID=40&md5=af0aaa3b7db16eb52f0c18d215f1b2ae,"ICAR-Central Institute of Brackishwater Aquaculture, 75, Santhome High Road, Chennai, 600 028, India; Marine Biotechnology Division, National Institute of Ocean Technology, Chennai, 600 100, India","Kumaran M., ICAR-Central Institute of Brackishwater Aquaculture, 75, Santhome High Road, Chennai, 600 028, India; Vasagam K.P.K., ICAR-Central Institute of Brackishwater Aquaculture, 75, Santhome High Road, Chennai, 600 028, India; Kailasam M., ICAR-Central Institute of Brackishwater Aquaculture, 75, Santhome High Road, Chennai, 600 028, India; Subburaj R., ICAR-Central Institute of Brackishwater Aquaculture, 75, Santhome High Road, Chennai, 600 028, India; Anand P.R., ICAR-Central Institute of Brackishwater Aquaculture, 75, Santhome High Road, Chennai, 600 028, India; Ravisankar T., ICAR-Central Institute of Brackishwater Aquaculture, 75, Santhome High Road, Chennai, 600 028, India; Sendhilkumar R., Marine Biotechnology Division, National Institute of Ocean Technology, Chennai, 600 100, India; Santhanakumar J., Marine Biotechnology Division, National Institute of Ocean Technology, Chennai, 600 100, India; Vijayan K.K., ICAR-Central Institute of Brackishwater Aquaculture, 75, Santhome High Road, Chennai, 600 028, India","Coastal brackishwater resources are highly fertile, rich in biodiversity and provide livelihood to traditional fisher families. However, due to natural disturbances and manmade interruptions, its fishery resources are depleted, hence, the livelihoods of dependent fishers are threatened. Aquaculture of fishes in customized cages and pens is a proficient approach for the efficient utilization of this productive natural resource. In this context, a three-tier cage farming system of Asian Seabass fish (Lates calcarifer) comprised of a nursery, pre-grow out and grow-out phases was developed and validated for its techno-economic viability with the participation of fisher folk. The technical indicators viz., fish survival, feed conversion, growth rate, productivity, economic parameters viz., Benefit Cost Ratio, Pay-back period and Internal Rate of Return and the livelihood security pointers have substantially shown that the system is technically feasible, economically viable, socially acceptable and hence, sustainable. Planned interventions in the form of appropriate policy guidelines to undertake community involved cage aquaculture in the coastal brackishwaters, a scheme for periodical flushing of bar mouths to ensure connectivity with the sea, institutional credit and insurance support are outlined to up-scale the adoption of cage farming technology in the brackishwaters across the coastal states of India. It is a win-win approach for the efficient utilization of coastal brackishwaters for augmenting fish production and enhancing the livelihood security of coastal fishers. © 2021 Elsevier B.V.",coastal brackishwaters; coastal fishers; fish production; livelihood security; techno-economics; three-tier cage aquaculture,India; Lates calcarifer; Martes; Pisces; biodiversity; bioindicator; brackish water; cage culture; livelihood; perciform; policy making; technical efficiency,"M. Kumaran; ICAR-Central Institute of Brackishwater Aquaculture, Chennai, 75, Santhome High Road, 600 028, India; email: mariappankumaran@gmail.com",,Elsevier B.V.,,,,,,00448486,,AQCLA,,English,Aquaculture,Article,Final,,Scopus,2-s2.0-85107637317 Voyer M.; Allison E.H.; Farmery A.; Fabinyi M.; Steenbergen D.J.; van Putten I.; Song A.M.; Ogier E.; Benzaken D.; Andrew N.,"Voyer, Michelle (49962707900); Allison, Edward H. (7006279993); Farmery, Anna (55875706700); Fabinyi, Michael (30467447000); Steenbergen, Dirk J. (55843148200); van Putten, Ingrid (35319396900); Song, Andrew M. (36242236100); Ogier, Emily (55901011100); Benzaken, Dominique (57224521249); Andrew, Neil (7005866211)",49962707900; 7006279993; 55875706700; 30467447000; 55843148200; 35319396900; 36242236100; 55901011100; 57224521249; 7005866211,The role of voluntary commitments in realizing the promise of the Blue Economy,2021,Global Environmental Change,71,,102372,,,,17,10.1016/j.gloenvcha.2021.102372,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85115975303&doi=10.1016%2fj.gloenvcha.2021.102372&partnerID=40&md5=28bff84b3071960be628e0e987b1ed33,"Australian National Centre for Ocean Resources and Security (ANCORS), University of Wollongong, Australia; Nippon Foundation Ocean Nexus Center, United States; WorldFish, Malaysia; Faculty of Arts and Social Sciences, University of Technology Sydney, Ultimo, Australia; CSIRO, Oceans & Atmosphere, Hobart, Australia; Centre for Marine Socio-ecology, Hobart, Australia; Institute for Marine and Antarctic Studies, University of Tasmania, Hobart, Australia","Voyer M., Australian National Centre for Ocean Resources and Security (ANCORS), University of Wollongong, Australia, Nippon Foundation Ocean Nexus Center, United States; Allison E.H., Nippon Foundation Ocean Nexus Center, United States, WorldFish, Malaysia; Farmery A., Australian National Centre for Ocean Resources and Security (ANCORS), University of Wollongong, Australia, Centre for Marine Socio-ecology, Hobart, Australia; Fabinyi M., Nippon Foundation Ocean Nexus Center, United States, WorldFish, Malaysia; Steenbergen D.J., Australian National Centre for Ocean Resources and Security (ANCORS), University of Wollongong, Australia; van Putten I., CSIRO, Oceans & Atmosphere, Hobart, Australia, Centre for Marine Socio-ecology, Hobart, Australia; Song A.M., Faculty of Arts and Social Sciences, University of Technology Sydney, Ultimo, Australia; Ogier E., Centre for Marine Socio-ecology, Hobart, Australia, Institute for Marine and Antarctic Studies, University of Tasmania, Hobart, Australia; Benzaken D., Australian National Centre for Ocean Resources and Security (ANCORS), University of Wollongong, Australia; Andrew N., Australian National Centre for Ocean Resources and Security (ANCORS), University of Wollongong, Australia","Voluntary (or non-binding) commitments offer an action-oriented mechanism for addressing interconnected, complex and pressing issues. Though not designed to replace negotiated or binding outcomes, voluntary commitments can offer a critical tool in currently ungoverned or under-governed systems. The Blue Economy is an example of a rapidly evolving agenda where formal governance arrangements are at best nascent, in part due to the trans-border nature of issues and prominent involvement of multiple types of actors. As such voluntary commitments provide an important mechanism through which to monitor the evolution of the concept and identify gaps or shortfalls in its implementation. Our analysis of global voluntary commitments on the Blue Economy made to recent high-profile ocean futures meetings, found a trend towards capacity development, research, and investment in emerging and larger scale sectors such as offshore aquaculture and renewable energy. A concurrent focus was on securitizing, regulating or diverting effort from historically significant fisheries sectors. European organizations are playing a dominant role in Blue Economy commitments, with a notable absence of commitments from major Blue Economy powers such as China and India. We identify a number of gaps and shortfalls, particularly in relation to active consideration of social equity in the Blue Economy. We identify a range of recommendations on how these deficiencies may be addressed through a greater focus on a broader suite of objectives and a more inclusive approach to ocean meetings. © 2021 Elsevier Ltd",blue economy; ocean governance; small island developing states; sustainability; voluntary commitments,China; India; Varanidae; economic analysis; environmental issue; governance approach; implementation process; investment; offshore application,"M. Voyer; Australian National Centre for Ocean Resources and Security (ANCORS), University of Wollongong, Building 233, Innovation Campus, 2522, Australia; email: mvoyer@uow.edu.au",,Elsevier Ltd,,,,,,09593780,,GECHE,,English,Global Environ. Change,Article,Final,,Scopus,2-s2.0-85115975303 Albasri H.; Sammut J.,"Albasri, Hatim (36766883900); Sammut, Jesmond (6603405984)",36766883900; 6603405984,"A comparative study of sustainability profiles between small-scale mariculture, capture fisheries and tourism communities within the Anambas Archipelago Small Island MPA, Indonesia",2022,Aquaculture,551,,737906,,,,11,10.1016/j.aquaculture.2022.737906,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85122616179&doi=10.1016%2fj.aquaculture.2022.737906&partnerID=40&md5=49f54f8d69a286466a4465e5665f5b61,"Center for Fisheries Research-Ministry of Marine Affairs and Fisheries, Jalan Ragunan #20, Pasar Minggu, Jakarta, 12540, Indonesia; Centre for Ecosystem Science, School of Biological Earth and Environmental Sciences, The University of New South Wales, Sydney, 2052, Australia","Albasri H., Center for Fisheries Research-Ministry of Marine Affairs and Fisheries, Jalan Ragunan #20, Pasar Minggu, Jakarta, 12540, Indonesia; Sammut J., Centre for Ecosystem Science, School of Biological Earth and Environmental Sciences, The University of New South Wales, Sydney, 2052, Australia","Mariculture is viewed by some as an unsustainable economic activity in marine protected areas (MPAs). Surprisingly, no study has confirmed or rejected the veracity of the view. In Indonesia's multi-purpose MPAs, mariculture is considered as part of the local communities' livelihood and resilience strategy. This study aimed to determine whether small-scale fish farming, along with small-scale fisheries and eco-tourism, contributes to the livelihood sustainability of communities in Indonesia's small island MPAs, and if the practice is compatible with the overall MPA objectives. The study was conducted in the Anambas Archipelago MPA and interviewed 66 respondents from three household groups (small-scale fish farmers, fishers, and eco-tourism operators) from 15 villages. A closed- and open-ended questionnaire was developed to determine the sustainability profile of each livelihood group. The questionnaire consisted of 75 questions representing the sustainability indicators (SIs) of the five capital assets described in the Sustainable Livelihoods Framework (SLF). The SIs were measured using a Likert-scale and a Likert-type scale with multiple scales. The data were standardised using linear transformation and aggregated to calculate the SIs composite values. The study found that the livelihood sustainability of the small-scale fish farmer group is comparable to small-scale fisher and tourism operator groups. Interestingly, the fish farmer group outperformed the other two groups in relation to human capital assets by developing a strong social network. Small-scale fish farmer, fisher and eco-tourism operator groups have a composite sustainability index value of 0.55, 0.61, and 0.50, respectively, categorised as intermediate sustainability. This study concluded that the sustainability profile of each livelihood group could be improved for the specific underperforming capital assets by increasing support from the government and MPA authority. © 2022 Elsevier B.V.",capital assets; livelihood; small island developing states; small island developing states; sustainability,Indonesia; comparative study; economic activity; fishery management; human capital; livelihood; mariculture; mark-recapture method; protected area; sustainability; tourism development,"H. Albasri; Center for Fisheries Research-Ministry of Marine Affairs and Fisheries, Jakarta, Jalan Ragunan #20, Pasar Minggu, 12540, Indonesia; email: hatim.albasri@kkp.go.id",,Elsevier B.V.,,,,,,00448486,,AQCLA,,English,Aquaculture,Article,Final,,Scopus,2-s2.0-85122616179 Campbell L.M.; Fairbanks L.; Murray G.; Stoll J.S.; D'Anna L.; Bingham J.,"Campbell, Lisa M. (35298771200); Fairbanks, Luke (55946674300); Murray, Grant (23110755200); Stoll, Joshua S. (36633263200); D'Anna, Linda (14830185900); Bingham, Julia (57221490045)",35298771200; 55946674300; 23110755200; 36633263200; 14830185900; 57221490045,From Blue Economy to Blue Communities: reorienting aquaculture expansion for community wellbeing,2021,Marine Policy,124,,104361,,,,65,10.1016/j.marpol.2020.104361,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85098937668&doi=10.1016%2fj.marpol.2020.104361&partnerID=40&md5=5ac07908ae4135646007c9021164506f,"Duke University Marine Laboratory, Nicholas School of the Environment, Duke University, Beaufort, NC, United States; Division of Coastal Sciences, School of Ocean Science and Engineering, The University of Southern Mississippi, Ocean Springs, MS, United States; School of Marine Sciences, University of Maine, Orono, ME, United States; Coastal Studies Institute, East Carolina University, Wanchese, NC, United States","Campbell L.M., Duke University Marine Laboratory, Nicholas School of the Environment, Duke University, Beaufort, NC, United States; Fairbanks L., Division of Coastal Sciences, School of Ocean Science and Engineering, The University of Southern Mississippi, Ocean Springs, MS, United States; Murray G., Duke University Marine Laboratory, Nicholas School of the Environment, Duke University, Beaufort, NC, United States; Stoll J.S., School of Marine Sciences, University of Maine, Orono, ME, United States; D'Anna L., Coastal Studies Institute, East Carolina University, Wanchese, NC, United States; Bingham J., Duke University Marine Laboratory, Nicholas School of the Environment, Duke University, Beaufort, NC, United States","Efforts to expand the marine aquaculture industry often draw on a discourse of opportunity that highlights untapped potential for economic growth. This discourse also underlies the more general concept of Blue Economy in which oceans are a frontier for economic development. Marine aquaculture is seen as an important part of Blue Economy, but the current discourse overlooks evidence that straightforward trickle-down effects—from aggregate economic growth at the national level to holistic benefits at the community level—rarely exist for marine aquaculture. Using the case of marine aquaculture in the United States, we argue that a shift in focus to community wellbeing is necessary to realize the potential benefits of marine aquaculture expansion. More generally, we suggest that marine aquaculture illustrates the need to reorient Blue Economy to Blue Communities, a concept that draws on the multidimensional concept of wellbeing to foreground social, cultural, and environmental factors alongside economic growth. With attention to just and equitable governance embedded in place and context, marine aquaculture can grow in ways that enhance wellbeing in Blue Communities while supporting broader economic development. © 2020 Elsevier Ltd",blue communities; blue economy; community development; equity; justice; livelihoods; marine aquaculture; wellbeing,United States; aquaculture; community development; economic development; economic growth; equity; livelihood; marine environment; social justice,"L.M. Campbell; Duke University Marine Laboratory, Nicholas School of the Environment, Duke University, Beaufort, United States; email: lcampbe@duke.edu",,Elsevier Ltd,,,,,,0308597X,,,,English,Mar. Policy,Article,Final,All Open Access; Bronze Open Access,Scopus,2-s2.0-85098937668 Krumpel A.; Rice A.; Frasier K.E.; Reese F.; Trickey J.S.; Simonis A.E.; Ryan J.P.; Wiggins S.M.; Denzinger A.; Schnitzler H.-U.; Baumann-Pickering S.,"Krumpel, Anna (57216153302); Rice, Ally (56808817500); Frasier, Kaitlin E. (17345622500); Reese, Fairlie (57501621400); Trickey, Jennifer S. (36509287900); Simonis, Anne E. (55098493300); Ryan, John P. (7404484751); Wiggins, Sean M. (7005205857); Denzinger, Annette (6506130069); Schnitzler, Hans-Ulrich (7003615620); Baumann-Pickering, Simone (29367496800)",57216153302; 56808817500; 17345622500; 57501621400; 36509287900; 55098493300; 7404484751; 7005205857; 6506130069; 7003615620; 29367496800,Long-Term Patterns of Noise From Underwater Explosions and Their Relation to Fisheries in Southern California,2021,Frontiers in Marine Science,8,,796849,,,,2,10.3389/fmars.2021.796849,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85122321344&doi=10.3389%2ffmars.2021.796849&partnerID=40&md5=46c6491107ae7af3b93c27982f1072ab,"Scripps Institution of Oceanography, University of California, San Diego, La Jolla, CA, United States; Department of Animal Physiology, University of Tübingen, Tübingen, Germany; Monterey Bay Aquarium Research Institute, Moss Landing, CA, United States","Krumpel A., Scripps Institution of Oceanography, University of California, San Diego, La Jolla, CA, United States, Department of Animal Physiology, University of Tübingen, Tübingen, Germany; Rice A., Scripps Institution of Oceanography, University of California, San Diego, La Jolla, CA, United States; Frasier K.E., Scripps Institution of Oceanography, University of California, San Diego, La Jolla, CA, United States; Reese F., Scripps Institution of Oceanography, University of California, San Diego, La Jolla, CA, United States; Trickey J.S., Scripps Institution of Oceanography, University of California, San Diego, La Jolla, CA, United States; Simonis A.E., Scripps Institution of Oceanography, University of California, San Diego, La Jolla, CA, United States; Ryan J.P., Monterey Bay Aquarium Research Institute, Moss Landing, CA, United States; Wiggins S.M., Scripps Institution of Oceanography, University of California, San Diego, La Jolla, CA, United States; Denzinger A., Department of Animal Physiology, University of Tübingen, Tübingen, Germany; Schnitzler H.-U., Department of Animal Physiology, University of Tübingen, Tübingen, Germany; Baumann-Pickering S., Scripps Institution of Oceanography, University of California, San Diego, La Jolla, CA, United States","Acoustic deterrents can reduce marine mammal interactions with fisheries and aquacultures, but they contribute to an increasing level of underwater noise. In Southern California, commercially produced explosive deterrents, commonly known as “seal bombs,” are used to protect fishing gear and catch from pinniped predation, which can cause extensive economic losses for the fishing community. Passive acoustic monitoring data collected between 2005 and 2016 at multiple sites within the Southern California Bight and near Monterey Bay revealed high numbers of these small-charge underwater explosions, long-term, spatio-temporal patterns in their occurrence, and their relation to different commercial purse-seine fishing sectors. The vast majority of explosions occurred at nighttime and at many nearshore sites high explosion counts were detected, up to 2,800/day. Received sound exposure levels of up to 189 dB re 1 μPa2-s indicate the potential for negative effects on marine life, especially in combination with the persistence of recurring explosions during periods of peak occurrence. Due to the highly significant correlation and similar spatio-temporal patterns of market squid landings and explosion occurrence at many sites, we conclude that the majority of the recorded explosions come from seal bombs being used by the California market squid purse-seine fishery. Additionally, seal bomb use declined over the years of the study, potentially due to a combination of reduced availability of market squid driven by warm water events in California and regulation enforcement. This study is the first to provide results on the distribution and origin of underwater explosions off Southern California, but there is a substantial need for further research on seal bomb use in more recent years and their effects on marine life, as well as for establishing environmental regulations on their use as a deterrent. Copyright © 2021 Krumpel, Rice, Frasier, Reese, Trickey, Simonis, Ryan, Wiggins, Denzinger, Schnitzler and Baumann-Pickering.",acoustic deterrence; market squid; purse-seine fisheries; seal bombs; southern california (united states); underwater explosions,,"A. Krumpel; Scripps Institution of Oceanography, University of California, San Diego, La Jolla, United States; email: a.krumpel@posteo.de",,Frontiers Media S.A.,,,,,,22967745,,,,English,Front. Mar. Sci.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85122321344 White S.B.; Scheld A.M.,"White, Shelby B. (57212276661); Scheld, Andrew M. (56566691000)",57212276661; 56566691000,"Characterizing Changes in Participation and Diversification in Small-Scale Fisheries of Virginia, USA",2022,Coastal Management,50,1,,3,28,25,5,10.1080/08920753.2022.2006874,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85121097825&doi=10.1080%2f08920753.2022.2006874&partnerID=40&md5=1ae5fc112cb40eaa4f3b0fd86fc297dd,"Virginia Institute of Marine Science, William & Mary, Gloucester Point, VA, United States","White S.B., Virginia Institute of Marine Science, William & Mary, Gloucester Point, VA, United States; Scheld A.M., Virginia Institute of Marine Science, William & Mary, Gloucester Point, VA, United States","Small-scale coastal fisheries are a key feature of Virginia’s cultural heritage, account for a significant portion of the state’s annual landings, and employ thousands of individuals. Despite the value of these fisheries, the number of commercial licenses sold has declined more than 15% since 1994. Using state license and permitting data, this research investigates participation and diversification in wild fisheries and marine-related economic industries through structural change and multiple correspondence (MCA) analyses. Results indicate evidence of instability in participation and diversification since the mid-1990s. The percentage of fishermen with diverse fishing portfolios accounts for less than half of those licensed and has not varied widely. Diversification into marine-related industries, however, has increased, likely due to aquaculture expansion. While some changes can be characterized as long-term trends, others indicate that participation and diversification may change considerably over shorter periods of time. MCA indicates evidence of similarity, in terms of license and permit holdings, between participants of several wild fisheries, including fishermen with a blue crab and finfish license or permit. Participation characteristics of individuals in marine-related business has changed since 1994 with more overlap between commercial fishing and seafood sales and processing in later years. Understanding participation and diversification patterns can aid managers in assessing impacts to individuals and fishing communities during adverse events and allow for consideration of social identity in management decisions. Furthermore, understanding and contextualizing resource dependency of commercial fishers, as well as the connectivity across species and sectors, may support the long-term goals of ecosystem-based management. © 2021 Taylor & Francis Group, LLC.",coastal virginia; diversification; multiple correspondence analysis; small-scale fisheries; structural change,United States; Virginia; Coastal fisheries; Coastal virginia; Cultural heritages; Diversification; Key feature; Multiple correspondence analysis; Small scale; Small-scale fisheries; Structural change; Virginia; cultural heritage; fishery economics; fishery management; participatory approach; resource development; small scale industry; structural change; Fisheries,"S.B. White; Virginia Institute of Marine Science, William & Mary, Gloucester Point, United States; email: sbwhite@vims.edu",,Taylor and Francis Ltd.,,,,,,08920753,,CMANE,,English,Coast. Manage.,Article,Final,,Scopus,2-s2.0-85121097825 Kuempel C.D.; Froehlich H.E.; Halpern B.S.,"Kuempel, Caitlin D. (57190735946); Froehlich, Halley E. (55818148100); Halpern, Benjamin S. (7103099423)",57190735946; 55818148100; 7103099423,An informed thought experiment exploring the potential for a paradigm shift in aquatic food production,2021,Ocean and Coastal Management,206,,105574,,,,7,10.1016/j.ocecoaman.2021.105574,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85102476623&doi=10.1016%2fj.ocecoaman.2021.105574&partnerID=40&md5=d18080e65ee93c170a2443f5754cd83a,"National Center for Ecological Analysis and Synthesis, University of California, Santa Barbara, 735 State Street, Suite 300, Santa Barbara, 93101, CA, United States; School of Biological Sciences, University of Queensland, St. Lucia, 4072, QLD, Australia; Australian Research Council Centre of Excellence for Coral Reef Studies, University of Queensland, St. Lucia, 4072, QLD, Australia; Centre for Biodiversity and Conservation Science, University of Queensland, St Lucia, 4072, QLD, Australia; Environmental Studies, University of California, Santa Barbara, Santa Barbara, 93106, CA, United States; Ecology, Evolution, and Marine Biology, University of California, Santa Barbara, Santa Barbara, 93106, CA, United States; Bren School of Environmental Science and Management, University of California, Santa Barbara, Santa Barbara, 93106, CA, United States","Kuempel C.D., National Center for Ecological Analysis and Synthesis, University of California, Santa Barbara, 735 State Street, Suite 300, Santa Barbara, 93101, CA, United States, School of Biological Sciences, University of Queensland, St. Lucia, 4072, QLD, Australia, Australian Research Council Centre of Excellence for Coral Reef Studies, University of Queensland, St. Lucia, 4072, QLD, Australia, Centre for Biodiversity and Conservation Science, University of Queensland, St Lucia, 4072, QLD, Australia; Froehlich H.E., National Center for Ecological Analysis and Synthesis, University of California, Santa Barbara, 735 State Street, Suite 300, Santa Barbara, 93101, CA, United States, Environmental Studies, University of California, Santa Barbara, Santa Barbara, 93106, CA, United States, Ecology, Evolution, and Marine Biology, University of California, Santa Barbara, Santa Barbara, 93106, CA, United States; Halpern B.S., National Center for Ecological Analysis and Synthesis, University of California, Santa Barbara, 735 State Street, Suite 300, Santa Barbara, 93101, CA, United States, Bren School of Environmental Science and Management, University of California, Santa Barbara, Santa Barbara, 93106, CA, United States","The Neolithic Revolution began approximately 10,000 years ago and is characterized by the ultimate, nearly complete transition from hunting and gathering to agricultural food production on land. The Neolithic Revolution is thought to have been catalyzed by a combination of local population pressure, cultural diffusion, property rights and climate change. We undertake a thought experiment that examines trends in these key hypothesized catalysts of the Neolithic Revolution and patterns of today to explore whether society could be on a path towards another paradigm shift in food production: away from hunting of wild fish towards a transition to mostly fish farming. We find similar environmental and cultural pressures have driven the rapid rise of aquaculture, during a period that has now been coined the Blue Revolution, providing impetus for such a transition in coming decades to centuries (as opposed to millennia). However, we also highlight the interacting and often mutually reinforcing impacts of 1) technological and scientific advancements, 2) environmental awareness and collective action and 3) globalization and trade influencing the trajectory and momentum of the Blue Revolution from patterns and processes of the Neolithic Revolution. We present two qualitative narratives that broadly fall within two future trajectories of seafood production: 1) a ubiquitous aquaculture transition and 2) commercial aquaculture and fisheries coexistence. Each narrative contains two sub-narratives based on differing management and regulatory strategies for aquaculture and fisheries. This scenarios approach aims to encourage logical, forward thinking, and innovative solutions to complex systems’ dynamics. Scenario-based thought experiments are useful to explore large scale questions, increase the accessibility to a wider readership, and ideally catalyze discussion around proactive governance mechanisms. We argue the future is not fixed and society now has greater foresight and capacity to choose the workable balance between fisheries and aquaculture that supports economic, environmental, cultural and social objectives through combined planning, policies, and management. © 2021 Elsevier Ltd",aquaculture; blue revolution; ecosystem services; neolithic revolution; seafood,Agriculture; Climate change; Fish; Fisheries; International trade; Agricultural foods; Aquatic food; Blue revolution; Ecosystem based fisheries managements; Food production; Local populations; Neolithic revolution; Paradigm shifts; Population pressure; Thought experiments; aquaculture production; collective action; fishery management; food production; historical time (human history); Neolithic; paradigm shift; property rights; seafood; Meats,"C.D. Kuempel; School of Biological Sciences, University of Queensland, St. Lucia, 4072, Australia; email: c.kuempel@uq.edu.au",,Elsevier Ltd,,,,,,09645691,,OCMAE,,English,Ocean Coast. Manage.,Article,Final,All Open Access; Green Open Access,Scopus,2-s2.0-85102476623 Shamsuddin M.; Hossain M.B.; Rahman M.; Tazim M.F.; Ali M.R.; Kawla M.S.; Begum T.; Albeshr M.F.; Arai T.,"Shamsuddin, Md (7003614266); Hossain, Mohammad Belal (54987254000); Rahman, Moshiur (57226618970); Tazim, Md. Farhan (57786855100); Ali, Md. Romjan (57212011564); Kawla, Mst Salamun (57445512000); Begum, Tajmahal (58124527200); Albeshr, Mohammed Fahad (57202952715); Arai, Takaomi (35509985400)",7003614266; 54987254000; 57226618970; 57786855100; 57212011564; 57445512000; 58124527200; 57202952715; 35509985400,Impact of COVID-19 Pandemic on Fisheries Sector and Actions Taken to Cope with the Situation: A Case Study from a Top Fish-Producing Country,2023,Sustainability (Switzerland),15,4,3605,,,,3,10.3390/su15043605,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85149219063&doi=10.3390%2fsu15043605&partnerID=40&md5=7ae5032094329d127f1c3571ee5c454f,"Department of Fisheries (DoF), Ministry of Fisheries and Livestock, Dhaka, 1205, Bangladesh; Marine Biology and Aquaculture, College of Science and Engineering, James Cook University, Townsville, 4811, QLD, Australia; Department of Fisheries and Marine Science, Noakhali Science and Technology University, Noakhali, 3814, Bangladesh; School of Engineering and Built Environment, Griffith University, Nathan Campus, Nathan, 4111, QLD, Australia; Independent Researcher, 7/11 Albert St, Cranbrook, Townsville, 4814, QLD, Australia; Department of Zoology, College of Science, King Saud University, P.O. Box 2455, Riyadh, 11451, Saudi Arabia; Environmental and Life Sciences Programme, Faculty of Science, Universiti Brunei Darussalam, Jalan Tungku Link, Gadong, 1410 BE, Brunei Darussalam","Shamsuddin M., Department of Fisheries (DoF), Ministry of Fisheries and Livestock, Dhaka, 1205, Bangladesh, Marine Biology and Aquaculture, College of Science and Engineering, James Cook University, Townsville, 4811, QLD, Australia; Hossain M.B., Department of Fisheries and Marine Science, Noakhali Science and Technology University, Noakhali, 3814, Bangladesh, School of Engineering and Built Environment, Griffith University, Nathan Campus, Nathan, 4111, QLD, Australia; Rahman M., Department of Fisheries (DoF), Ministry of Fisheries and Livestock, Dhaka, 1205, Bangladesh; Tazim M.F., Department of Fisheries (DoF), Ministry of Fisheries and Livestock, Dhaka, 1205, Bangladesh; Ali M.R., Department of Fisheries (DoF), Ministry of Fisheries and Livestock, Dhaka, 1205, Bangladesh; Kawla M.S., Independent Researcher, 7/11 Albert St, Cranbrook, Townsville, 4814, QLD, Australia; Begum T., Department of Fisheries (DoF), Ministry of Fisheries and Livestock, Dhaka, 1205, Bangladesh; Albeshr M.F., Department of Zoology, College of Science, King Saud University, P.O. Box 2455, Riyadh, 11451, Saudi Arabia; Arai T., Environmental and Life Sciences Programme, Faculty of Science, Universiti Brunei Darussalam, Jalan Tungku Link, Gadong, 1410 BE, Brunei Darussalam","Bangladesh, one of the top fish producers in the world, has rapidly been expanding its annual fish production. However, the COVID-19 pandemic and related preventative measures have had a substantial impact on the nation’s fishing sector. In this study, a survey was performed in the Brahmanbaria subdistrict of Bangladesh to assess the impact of COVID-19 and the subsequent efforts made by the Department of Fisheries (DoF), Bangladesh, to mitigate the negative impact on the culture and capture fisheries. The socioeconomic profile of fishery stakeholders for the years 2019, 2020, and 2021 was used to assess the impact of the COVID-19 pandemic situation on fish farming, fish hatcheries, fish nurseries, the fish feed industry, and the dry fish industry. Data analysis showed that the COVID-19 pandemic had a negative impact on the income of fishery stakeholders and their livelihoods. The income of fish farmers decreased by 47.49% in 2020 as compared to the base year of 2019 but increased by 129.34% in 2021, showing the effects of COVID-19 and mitigation efforts. Transport and movement restrictions adversely affected the culture fisheries while favouring capture fisheries with an increased annual catch. To counter or reduce most of those issues, the DoF, Bangladesh, took necessary steps, such as constructing a virtual control room and engaging the fishermen in some unique activities. Fishermen and other stakeholders benefitted because of farm visits, online training, improved interdepartmental coordination, monitoring of fish-selling marketing channels, activation of the FIAC (Farmer’s Information and Advice Centre), and women’s engagement through the provision of subsidies and loans. The DoF constructed fish sanctuaries and implemented law enforcement in 2020 and 2021 to safeguard the habitat for small indigenous species (SIS). These actions might have improved the stakeholders’ income and the post-pandemic scenario by increasing fish productivity. However, further study is recommended on the effective mitigation measures for drawing a clear conclusion. © 2023 by the authors.",biodiversity; covid-19; fish farmer; fish production; fishermen; impacts,Bangladesh; Brahmanbaria; Chittagong [Bangladesh]; biodiversity; COVID-19; fish biology; fishery management; fishing community; socioeconomic conditions,"M. Rahman; Department of Fisheries (DoF), Ministry of Fisheries and Livestock, Dhaka, 1205, Bangladesh; email: rahmanmm15m@gmail.com; M.B. Hossain; Department of Fisheries and Marine Science, Noakhali Science and Technology University, Noakhali, 3814, Bangladesh; email: belal.hossain@nstu.edu.bd",,MDPI,,,,,,20711050,,,,English,Sustainability,Article,Final,All Open Access; Gold Open Access; Green Open Access,Scopus,2-s2.0-85149219063 Tu C.; Ma H.; Li Y.; Fu C.; You Z.-J.; Newton A.; Luo Y.,"Tu, Chen (57202854814); Ma, Haiqing (57640529800); Li, Yuan (57214962769); Fu, Chuancheng (57189391601); You, Zai-Jin (7102207902); Newton, Alice (7201391894); Luo, Yongming (55523486900)",57202854814; 57640529800; 57214962769; 57189391601; 7102207902; 7201391894; 55523486900,"Transdisciplinary, Co-Designed and Adaptive Management for the Sustainable Development of Rongcheng, a Coastal City in China in the Context of Human Activities and Climate Change",2022,Frontiers in Environmental Science,10,,670397,,,,10,10.3389/fenvs.2022.670397,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85128873905&doi=10.3389%2ffenvs.2022.670397&partnerID=40&md5=0ab85564854276fa01f341af616470c8,"CAS Key Laboratory of Coastal Environmental Processes and Ecological Remediation, Yantai Institute of Coastal Zone Research, Chinese Academy of Sciences, Yantai, China; Centre for Ports and Maritime Navigation Safety, Dalian Maritime University, Dalian, China; Institute of Ports and Coastal Disaster Mitigation, Ludong University, Yantai, China; CIMA-Centre for Marine and Environmental Research, Gambelas Campus, University of Algarve, Faro, Portugal; CAS Key Laboratory of Soil Environment and Pollution Remediation, Institute of Soil Science, Chinese Academy of Sciences, Nanjing, China","Tu C., CAS Key Laboratory of Coastal Environmental Processes and Ecological Remediation, Yantai Institute of Coastal Zone Research, Chinese Academy of Sciences, Yantai, China; Ma H., CAS Key Laboratory of Coastal Environmental Processes and Ecological Remediation, Yantai Institute of Coastal Zone Research, Chinese Academy of Sciences, Yantai, China; Li Y., CAS Key Laboratory of Coastal Environmental Processes and Ecological Remediation, Yantai Institute of Coastal Zone Research, Chinese Academy of Sciences, Yantai, China; Fu C., CAS Key Laboratory of Coastal Environmental Processes and Ecological Remediation, Yantai Institute of Coastal Zone Research, Chinese Academy of Sciences, Yantai, China; You Z.-J., Centre for Ports and Maritime Navigation Safety, Dalian Maritime University, Dalian, China, Institute of Ports and Coastal Disaster Mitigation, Ludong University, Yantai, China; Newton A., CIMA-Centre for Marine and Environmental Research, Gambelas Campus, University of Algarve, Faro, Portugal; Luo Y., CAS Key Laboratory of Coastal Environmental Processes and Ecological Remediation, Yantai Institute of Coastal Zone Research, Chinese Academy of Sciences, Yantai, China, CAS Key Laboratory of Soil Environment and Pollution Remediation, Institute of Soil Science, Chinese Academy of Sciences, Nanjing, China","Half the population of China live in coastal zones where 70% of large cities are also located. Intensive human activities pose significant environmental and ecological hazards to these cities that are already vulnerable to natural hazards and climate change. The sustainable development of coastal cities is thus both a national and international issue. Rongcheng is a typical coastal city in east China. It is a national marine ranch demonstration area that is subjected to multi-stressors from human activities and climate change. The dominant economic sectors include aquaculture and fisheries, agriculture, shipping and tourism. A multitude of resulting pressures come mainly from intensified human activities, such as intensive aquaculture, overfishing, industrial pollutants, agricultural runoff, land reclamation and port expansion. In addition, Rongcheng is also facing exogenic pressures from extreme climate events such as intensified storms, storm surges, droughts and sea ice. A growing awareness of these problems brought together a trans-disciplinary group from local government, research institutions, local practitioners and coastal representatives to jointly explore and co-design adaptive coastal management options. In this transdisciplinary study, a social-ecological analysis based on a combination of the Systems Approach Framework and the Drivers-Pressures-States-Impacts-Responses framework was used to analyze and formulate an adaptive management plan for the sustainability of Rongcheng. More than 40 stakeholders including government, companies, civil society and institutions participated in the study through questionnaires and on-site meetings. A statistical analysis of the results identified urgent issues impeding the sustainable development of Rongcheng. The issues identified were poorly regulated aquaculture, loss of shoreline, and the decline of seagrass and cultural heritage. The study identified management options and measures, some of which were adopted by the local government in a co-designed management plan. The measures included upgrading of aquaculture industry, habitat conservation and restoration, and the development of cultural tourism. Another outcome was the increased knowledge exchange between stakeholders to inform management, policy, and decision making, as well as raised awareness of vulnerability to natural hazards and climate change. The success of this case study provides a reference for the adaptive management of other coastal cities and their sustainable development in a changing climate. Copyright © 2022 Tu, Ma, Li, Fu, You, Newton and Luo.",climate change; coastal city; dpsir; human activity; social-ecological systems; sustainability; transdisciplinary adaptive management,,"Y. Luo; CAS Key Laboratory of Coastal Environmental Processes and Ecological Remediation, Yantai Institute of Coastal Zone Research, Chinese Academy of Sciences, Yantai, China; email: ymluo@issas.ac.cn",,Frontiers Media S.A.,,,,,,2296665X,,,,English,Front. Environ. Sci.,Article,Final,All Open Access; Gold Open Access; Green Open Access,Scopus,2-s2.0-85128873905 Ingle K.N.; Polikovsky M.; Fenta M.C.; Ingle A.S.; Golberg A.,"Ingle, Kapilkumar Nivrutti (36198415400); Polikovsky, Mark (57188810521); Fenta, Mulugeta Chanie (57216707296); Ingle, Akash Sopan (57405162900); Golberg, Alexander (26657925100)",36198415400; 57188810521; 57216707296; 57405162900; 26657925100,Integration of multitrophic aquaculture approach with marine energy projects for management and restoration of coastal ecosystems of India,2022,Ecological Engineering,176,,106525,,,,7,10.1016/j.ecoleng.2021.106525,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85122544476&doi=10.1016%2fj.ecoleng.2021.106525&partnerID=40&md5=230d76867f2c546dfdf277693586317b,"Department of Ecology, University of Szeged, Hungary; Doctoral School of Environmental Sciences, University of Szeged, Hungary; Porter School of Environmental and Earth Sciences, Tel Aviv University, Israel; Doctoral School of Geosciences, Department of Mineralogy, Geochemistry and Petrology, University of Szeged, Hungary; Department of Civil Engineering, Vishwakarma Institute of Information Technology, Pune, India; Department of Civil Engineering, Zeal College of Engineering and Research, Pune, India","Ingle K.N., Department of Ecology, University of Szeged, Hungary, Doctoral School of Environmental Sciences, University of Szeged, Hungary; Polikovsky M., Porter School of Environmental and Earth Sciences, Tel Aviv University, Israel; Fenta M.C., Doctoral School of Geosciences, Department of Mineralogy, Geochemistry and Petrology, University of Szeged, Hungary; Ingle A.S., Department of Civil Engineering, Vishwakarma Institute of Information Technology, Pune, India, Department of Civil Engineering, Zeal College of Engineering and Research, Pune, India; Golberg A., Porter School of Environmental and Earth Sciences, Tel Aviv University, Israel","Coastal areas of India have a big potential for establishing renewable energy projects, which are generally regarded as green energy sources. However, such projects' construction work may cause a negative environmental impact on the surrounding waters. Aquaculture projects based on seaweed and fisheries, commonly referred to as integrated multitrophic aquaculture (IMTA), can help to mitigate these impacts. Although the purpose of any IMTA is to recirculate the waste products from cultivated species and not to mitigate the environmental impacts of energy projects, IMTA may serve as a complementary activity to compensate for the environmental impacts of marine energy projects. In return, marine energy projects can provide a few facilities to IMTA projects in their areas. IMTA projects are already practised in some parts of the world; however, rare examples are available with marine energy projects. This study aims to put an idea of potential IMTA projects in the areas of the proposed first offshore wind farm in India. This study also recommends the possible utilisation of the potential tidal energy plant in the estuary as a nursery for a few species in IMTA on the western coast of India. In addition, the current study discussed some major challenges, such as seasonal variations, ecological risks, selection of IMTA components, legal, economic and regulatory and social acceptance. Overcoming these challenges can promote further development of IMTA projects in Indian coastal waters. © 2021 Elsevier B.V.",ecological mangrove restoration; imta; indian seawater; offshore wind energy; sustainability,India; Aquaculture; Ecosystems; Energy policy; Environmental impact; Offshore oil well production; Offshore wind farms; Tidal power; Coastal ecosystems; Ecological engineering; Energy programs; Indian seawater; Integrated multitrophic aquaculture; Marine energy; Offshore windfarm; Offshores; Sustainable mariculture; Wind farm; alternative energy; aquaculture; environmental impact; seaweed; wind farm; Marine biology,"K.N. Ingle; Department of Ecology, University of Szeged, Szeged, Középfasor 52, H-6726, Hungary; email: k.n.ingle@gmail.com",,Elsevier B.V.,,,,,,09258574,,ECENE,,English,Ecol. Eng.,Article,Final,,Scopus,2-s2.0-85122544476 Liu G.; Xu Y.; Ge W.; Yang X.; Su X.; Shen B.; Ran Q.,"Liu, Guangliang (57465554100); Xu, Yang (57454785000); Ge, Wenfeng (57788984400); Yang, Xiaodong (57214946421); Su, Xufeng (57223084307); Shen, Bing (57789844500); Ran, Qiying (57205663190)",57465554100; 57454785000; 57788984400; 57214946421; 57223084307; 57789844500; 57205663190,How can marine fishery enable low carbon development in China? Based on system dynamics simulation analysis,2023,Ocean and Coastal Management,231,,106382,,,,31,10.1016/j.ocecoaman.2022.106382,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85139597815&doi=10.1016%2fj.ocecoaman.2022.106382&partnerID=40&md5=edbb6069cddbdbaf674a2984a306dcfd,"School of Economics and Management, Xinjiang University, Urumqi, 830047, China; Center for Innovation Management Research of Xinjiang, Xinjiang University, Urumqi, 830047, China; Shanghai Business School, Shanghai, 200235, China; School of Economics and Management, Tarim University, Alar, 843300, China","Liu G., School of Economics and Management, Xinjiang University, Urumqi, 830047, China; Xu Y., School of Economics and Management, Xinjiang University, Urumqi, 830047, China; Ge W., School of Economics and Management, Xinjiang University, Urumqi, 830047, China; Yang X., School of Economics and Management, Xinjiang University, Urumqi, 830047, China; Su X., School of Economics and Management, Xinjiang University, Urumqi, 830047, China, School of Economics and Management, Tarim University, Alar, 843300, China; Shen B., School of Economics and Management, Xinjiang University, Urumqi, 830047, China; Ran Q., Center for Innovation Management Research of Xinjiang, Xinjiang University, Urumqi, 830047, China, Shanghai Business School, Shanghai, 200235, China","As an ingredient of the marine economy, the marine fishery has the dual attributes of carbon source and carbon sink. Marine fisheries are vital to the sustainable development of the marine economy and pivotal to the dual carbon goals. To explore the new mode of low carbon development of marine fishery, this paper utilizes system dynamics to establish the simulation model of low carbon development complex system of Chinese marine fishery for 2010 to 2019. Then, the carbon emission process of Chinese marine fishery is characterized from the perspectives of mariculture, marine fishing, marine processing industry, and marine shellfish carbon sink. This paper also performs policy simulation applying the system dynamics model to forecast and analyze marine fishery carbon emission development trends in adjusting GDP growth rate, fishery industry structure, and marine employment ratio. The simulation results indicate that the socio-economic system can influence marine fishery system development, which is an essential factor driving marine fishery carbon emissions. The number of marine fishery employment is associated with the scale of marine fishery development, which is the primary positive driving factor of carbon emissions from the marine fishery. Under the premise of excluding the heterogeneity of aquatic products, the energy consumption of the marine fishing industry is significantly higher than that of the mariculture industry in producing a unit of marine products, i.e., adjusting the structure of the marine industry can cause an inhibitory effect on the carbon emission of the marine fishery. Our findings contribute to policy implications for policymakers to reasonably restructure the marine fishery industry and the ratio of marine capture to mariculture to facilitate the low-carbon development of marine fishery. © 2022 Elsevier Ltd",carbon emissions; economic development; marine fisheries; system dynamics,China; Economic and social effects; Energy utilization; Fisheries; Industrial economics; Marine industry; Natural resources; Public policy; System theory; Carbon emissions; Carbon sink; Chinese Marines; Dynamic simulation analysis; Economic development; Fishery industry; Low-carbon development; Marine Fishery; System Dynamics; System dynamics simulation; carbon emission; economic development; ecosystem dynamics; fishery; simulation; Marine biology,"Q. Ran; Center for Innovation Management Research of Xinjiang, Xinjiang University, Urumqi, 830047, China; email: ranqyxjedu@126.com; X. Yang; School of Economics and Management, Xinjiang University, Urumqi, 830047, China; email: yxdlovezt@126.com",,Elsevier Ltd,,,,,,09645691,,OCMAE,,English,Ocean Coast. Manage.,Article,Final,All Open Access; Bronze Open Access,Scopus,2-s2.0-85139597815 Michaelis A.K.; Webster D.W.; Shaffer L.J.,"Michaelis, Adriane K. (54914206500); Webster, Donald W. (55904237000); Shaffer, L. Jen (36497693100)",54914206500; 55904237000; 36497693100,The practice of everyday oystering: aquaculture as resistance,2021,Journal of Political Ecology,28,1,,309,335,26,1,10.2458/JPE.2845,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85110584989&doi=10.2458%2fJPE.2845&partnerID=40&md5=daff8d3fe495f8679a79c5c9a1c49e8e,"University of Maryland, United States","Michaelis A.K., University of Maryland, United States; Webster D.W., University of Maryland, United States; Shaffer L.J., University of Maryland, United States","As members of complex social-ecological systems (SES), fishermen navigate and respond to system changes to maintain their livelihoods. These changes often involve dynamic power relationships. In Maryland (United States), commercial fishermen or watermen demonstrate a history of responding to SES changes, including power relationships in which they often feel restricted. We describe how watermen have historically employed tactics, as conceived by de Certeau (1984), to resist and succeed within a constraining system. We consider involvement in oyster aquaculture as a recent tactic, and compare data from interviews with watermen and non-watermen involved in aquaculture to understand power relationships and adaptations within this SES. Interviews suggest that, while both watermen and non-watermen aquaculturists perceive similar power relations within the system, only watermen begin work in oyster aquaculture as a tactic in response to these relations (P<0.001). Results illustrate diverse perceptions of power as well as ongoing changes within the SES. More broadly, we introduce the idea of SES adaptations as tactics of resistance and emphasize the need for a more integrative understanding of SES and power. © 2021, Journal of Political Ecology. All Rights Reserved.",aquaculture; fisheries; power,Maryland; United States; Ostreidae; adaptive management; comparative study; fishery; oyster culture; power relations,"A.K. Michaelis; University of Maryland, United States; email: adriane.michaelis@ecstech.com.",,University of Arizona Libraries,,,,,,10730451,,,,English,J. Polit. Ecol.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85110584989 Montgomery J.; Scarborough C.; Shumchenia E.; Verstaen J.; Napoli N.; Halpern B.,"Montgomery, Jamie (57224769572); Scarborough, Courtney (50462272000); Shumchenia, Emily (35330648300); Verstaen, Juliette (57224777704); Napoli, Nick (57225709991); Halpern, Benjamin (7103099423)",57224769572; 50462272000; 35330648300; 57224777704; 57225709991; 7103099423,Ocean health in the Northeast United States from 2005 to 2017,2021,People and Nature,3,4,,827,842,15,5,10.1002/pan3.10223,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85108262538&doi=10.1002%2fpan3.10223&partnerID=40&md5=d345d8d25370e8b417cdb352cbe615fa,"National Center for Ecological Analysis and Synthesis, University of California, Santa Barbara, CA, United States; Northeast Regional Ocean Council, Providence, RI, United States; Bren School of Environmental Science and Management, University of California, Santa Barbara, CA, United States","Montgomery J., National Center for Ecological Analysis and Synthesis, University of California, Santa Barbara, CA, United States; Scarborough C., National Center for Ecological Analysis and Synthesis, University of California, Santa Barbara, CA, United States; Shumchenia E., Northeast Regional Ocean Council, Providence, RI, United States; Verstaen J., National Center for Ecological Analysis and Synthesis, University of California, Santa Barbara, CA, United States; Napoli N., Northeast Regional Ocean Council, Providence, RI, United States; Halpern B., National Center for Ecological Analysis and Synthesis, University of California, Santa Barbara, CA, United States, Bren School of Environmental Science and Management, University of California, Santa Barbara, CA, United States","People in the Northeast United States have a long history of benefitting from the ocean in many ways, exemplified by the region's important cod and lobster fisheries, coastal tourism and recent expansion of offshore energy. Over the past few decades, the region has become one of the fastest warming spots on the planet, has seen significant growth in coastal populations, and expansion of new sectors into the marine environment, resulting in ecosystem shifts and changes to the supply and distribution of these benefits. With these changes comes a need for measuring ocean health to understand how engagement with the ocean may be affected, and how regional management may need to adapt. To address this need, we tailored the Ocean Health Index framework to the U.S. Northeast region, scoring eight distinct goals for ocean health on a scale of 0 to 100 for 11 sub-regions over 13 years (2005–2017). All goal scores were averaged resulting in an Ocean Health Index score of 83 for the Northeast in 2017. This score fluctuated by 1 point in either direction (82–84) in the previous 12 years. The lowest scoring goals in 2017 also exhibited the highest volatility since 2005, Food Provision (64) and Resource Access Opportunities (71). The region's highest goal scores came from Livelihoods & Economies (99) and Biodiversity (90) and remained stable during the study period. Clean Waters scores had a steady, significant downward trend since 2005, while Resource Access Opportunities and Aquaculture show the largest improvements. This synthesis of over 50 datasets to create annual aggregate scores provides the public, government and non-government agencies with an easily digestible summary of how the region is faring in regards to ocean health. Perhaps even more importantly, this synthesis allows for the tracking of trends over time and the ability to quickly identify and prioritize low-scoring components of ocean health that could benefit from dedicated resources for improvement. As managers plan for the future in a changing Northeast marine region, the ability to track annual changes in ocean health and its respective components is key to making decisions that benefit the entire social-ecological system. A free Plain Language Summary can be found within the Supporting Information of this article. © 2021 The Authors. People and Nature published by John Wiley & Sons Ltd on behalf of British Ecological Society",aquaculture; fisheries; gulf of maine; marine conservation; ocean health; ocean planning,,"J. Montgomery; National Center for Ecological Analysis and Synthesis, University of California, Santa Barbara, United States; email: montgomery@nceas.ucsb.edu",,John Wiley and Sons Inc,,,,,,25758314,,,,English,People. Nat.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85108262538 Farmery A.K.; Alexander K.; Anderson K.; Blanchard J.L.; Carter C.G.; Evans K.; Fischer M.; Fleming A.; Frusher S.; Fulton E.A.; Haas B.; MacLeod C.K.; Murray L.; Nash K.L.; Pecl G.T.; Rousseau Y.; Trebilco R.; van Putten I.E.; Mauli S.; Dutra L.; Greeno D.; Kaltavara J.; Watson R.; Nowak B.,"Farmery, A.K. (55875706700); Alexander, K. (54891661500); Anderson, K. (36607357400); Blanchard, J.L. (55432900800); Carter, C.G. (7403317383); Evans, K. (57213236079); Fischer, M. (56662660200); Fleming, A. (56108561200); Frusher, S. (6602861497); Fulton, E.A. (6701680888); Haas, B. (57205388314); MacLeod, C.K. (7102386339); Murray, L. (26530637000); Nash, K.L. (38862474300); Pecl, G.T. (6602413277); Rousseau, Y. (57209394695); Trebilco, R. (23983538100); van Putten, I.E. (35319396900); Mauli, S. (57192369560); Dutra, L. (53663326500); Greeno, D. (57223031230); Kaltavara, J. (55635501300); Watson, R. (7403653519); Nowak, B. (7102813995)",55875706700; 54891661500; 36607357400; 55432900800; 7403317383; 57213236079; 56662660200; 56108561200; 6602861497; 6701680888; 57205388314; 7102386339; 26530637000; 38862474300; 6602413277; 57209394695; 23983538100; 35319396900; 57192369560; 53663326500; 57223031230; 55635501300; 7403653519; 7102813995,Food for all: designing sustainable and secure future seafood systems,2022,Reviews in Fish Biology and Fisheries,32,1,,101,121,20,57,10.1007/s11160-021-09663-x,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85107357412&doi=10.1007%2fs11160-021-09663-x&partnerID=40&md5=bc4b98f51d6ae70c1a03bcb7e25e37ab,"Australian National Centre for Ocean Resource and Security, University of Wollongong, Wollongong, NSW, Australia; Centre for Marine Socioecology, University of Tasmania, Hobart, TAS, Australia; Institute for Marine and Antarctic Studies, University of Tasmania, Hobart, TAS, Australia; Institute for Marine and Antarctic Studies, University of Tasmania, Newnham, TAS, Australia; CSIRO Oceans and Atmosphere, Hobart, TAS, Australia; CSIRO Land and Water, Hobart, TAS, Australia; CSIRO Oceans and Atmosphere, St Lucia, QLD, Australia; College of Health, Massey University, Massey, New Zealand; College of Arts, Law and Education, University of Tasmania, Hobart, TAS, Australia","Farmery A.K., Australian National Centre for Ocean Resource and Security, University of Wollongong, Wollongong, NSW, Australia, Centre for Marine Socioecology, University of Tasmania, Hobart, TAS, Australia; Alexander K., Centre for Marine Socioecology, University of Tasmania, Hobart, TAS, Australia, Institute for Marine and Antarctic Studies, University of Tasmania, Hobart, TAS, Australia; Anderson K., Institute for Marine and Antarctic Studies, University of Tasmania, Newnham, TAS, Australia; Blanchard J.L., Centre for Marine Socioecology, University of Tasmania, Hobart, TAS, Australia, Institute for Marine and Antarctic Studies, University of Tasmania, Hobart, TAS, Australia; Carter C.G., Centre for Marine Socioecology, University of Tasmania, Hobart, TAS, Australia, Institute for Marine and Antarctic Studies, University of Tasmania, Hobart, TAS, Australia; Evans K., Centre for Marine Socioecology, University of Tasmania, Hobart, TAS, Australia, CSIRO Oceans and Atmosphere, Hobart, TAS, Australia; Fischer M., CSIRO Oceans and Atmosphere, St Lucia, QLD, Australia; Fleming A., Centre for Marine Socioecology, University of Tasmania, Hobart, TAS, Australia, CSIRO Land and Water, Hobart, TAS, Australia; Frusher S., Centre for Marine Socioecology, University of Tasmania, Hobart, TAS, Australia, Institute for Marine and Antarctic Studies, University of Tasmania, Hobart, TAS, Australia; Fulton E.A., Centre for Marine Socioecology, University of Tasmania, Hobart, TAS, Australia, CSIRO Oceans and Atmosphere, Hobart, TAS, Australia; Haas B., Centre for Marine Socioecology, University of Tasmania, Hobart, TAS, Australia, Institute for Marine and Antarctic Studies, University of Tasmania, Hobart, TAS, Australia; MacLeod C.K., Centre for Marine Socioecology, University of Tasmania, Hobart, TAS, Australia, Institute for Marine and Antarctic Studies, University of Tasmania, Hobart, TAS, Australia; Murray L., College of Health, Massey University, Massey, New Zealand; Nash K.L., Centre for Marine Socioecology, University of Tasmania, Hobart, TAS, Australia, Institute for Marine and Antarctic Studies, University of Tasmania, Hobart, TAS, Australia; Pecl G.T., Centre for Marine Socioecology, University of Tasmania, Hobart, TAS, Australia, Institute for Marine and Antarctic Studies, University of Tasmania, Hobart, TAS, Australia; Rousseau Y., Institute for Marine and Antarctic Studies, University of Tasmania, Hobart, TAS, Australia; Trebilco R., Centre for Marine Socioecology, University of Tasmania, Hobart, TAS, Australia, CSIRO Oceans and Atmosphere, Hobart, TAS, Australia; van Putten I.E., Centre for Marine Socioecology, University of Tasmania, Hobart, TAS, Australia, CSIRO Oceans and Atmosphere, Hobart, TAS, Australia; Mauli S., Australian National Centre for Ocean Resource and Security, University of Wollongong, Wollongong, NSW, Australia; Dutra L., Centre for Marine Socioecology, University of Tasmania, Hobart, TAS, Australia, CSIRO Oceans and Atmosphere, St Lucia, QLD, Australia; Greeno D., College of Arts, Law and Education, University of Tasmania, Hobart, TAS, Australia; Kaltavara J., Australian National Centre for Ocean Resource and Security, University of Wollongong, Wollongong, NSW, Australia; Watson R., Centre for Marine Socioecology, University of Tasmania, Hobart, TAS, Australia, Institute for Marine and Antarctic Studies, University of Tasmania, Hobart, TAS, Australia; Nowak B., Centre for Marine Socioecology, University of Tasmania, Hobart, TAS, Australia, Institute for Marine and Antarctic Studies, University of Tasmania, Newnham, TAS, Australia","Food from the sea can make a larger contribution to healthy and sustainable diets, and to addressing hunger and malnutrition, through improvements in production, distribution and equitable access to wild harvest and mariculture resources and products. The supply and consumption of seafood is influenced by a range of ‘drivers’ including ecosystem change and ocean regulation, the influence of corporations and evolving consumer demand, as well as the growing focus on the importance of seafood for meeting nutritional needs. These drivers need to be examined in a holistic way to develop an informed understanding of the needs, potential impacts and solutions that align seafood production and consumption with relevant 2030 Sustainable Development Goals (SDGs). This paper uses an evidence-based narrative approach to examine how the anticipated global trends for seafood might be experienced by people in different social, geographical and economic situations over the next ten years. Key drivers influencing seafood within the global food system are identified and used to construct a future scenario based on our current trajectory (Business-as-usual 2030). Descriptive pathways and actions are then presented for a more sustainable future scenario that strives towards achieving the SDGs as far as technically possible (More sustainable 2030). Prioritising actions that not only sustainably produce more seafood, but consider aspects of access and utilisation, particularly for people affected by food insecurity and malnutrition, is an essential part of designing sustainable and secure future seafood systems. Graphic abstract: [Figure not available: see fulltext.] © 2021, The Author(s), under exclusive licence to Springer Nature Switzerland AG.",blue food; equity; food and nutrition security; food system; mariculture; wild capture,consumption behavior; equity; fishery management; fishery production; future prospect; mariculture; seafood; sustainable development; Sustainable Development Goal,"A.K. Farmery; Australian National Centre for Ocean Resource and Security, University of Wollongong, Wollongong, Australia; email: afarmery@uow.edu.au",,Springer Science and Business Media Deutschland GmbH,,,,,,09603166,,,,English,Rev. Fish Biol. Fish.,Article,Final,All Open Access; Green Open Access,Scopus,2-s2.0-85107357412 Kriegl M.; Kluger L.C.; Gorris P.; Kochalski S.,"Kriegl, Michael (57216874737); Kluger, Lotta Clara (56862169000); Gorris, Philipp (55307991000); Kochalski, Sophia (57201280195)",57216874737; 56862169000; 55307991000; 57201280195,Coastal livelihood resilience to abrupt environmental change: the role of social capital in a Peruvian bay,2022,Regional Environmental Change,22,3,103,,,,9,10.1007/s10113-022-01959-3,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85135492437&doi=10.1007%2fs10113-022-01959-3&partnerID=40&md5=fb9a515082d56115b5fbf5abeb8adc45,"Leibniz Centre for Tropical Marine Research (ZMT), Fahrenheitstraße 6, Bremen, 28359, Germany; Center for Ocean and Society, Christian-Albrechts-University Kiel, Neufeldtstraße 10, Kiel, 24118, Germany; Department of Agricultural Economics, Christian-Albrechts-University Kiel, Olshausenstraße 40, Kiel, 24118, Germany; Institute of Environmental Systems Research (IUSF) & Institute for Geography (IfG), University of Osnabrueck, Barbarastraße 12, Osnabrück, 49076, Germany; Stockholm Resilience Centre, Stockholm University, SE-106 91, Stockholm, Sweden; CRETUS, Department of Applied Economics, University of Santiago de Compostela, Santiago de Compostela, 15782, Spain","Kriegl M., Leibniz Centre for Tropical Marine Research (ZMT), Fahrenheitstraße 6, Bremen, 28359, Germany, Center for Ocean and Society, Christian-Albrechts-University Kiel, Neufeldtstraße 10, Kiel, 24118, Germany; Kluger L.C., Leibniz Centre for Tropical Marine Research (ZMT), Fahrenheitstraße 6, Bremen, 28359, Germany, Center for Ocean and Society, Christian-Albrechts-University Kiel, Neufeldtstraße 10, Kiel, 24118, Germany, Department of Agricultural Economics, Christian-Albrechts-University Kiel, Olshausenstraße 40, Kiel, 24118, Germany; Gorris P., Institute of Environmental Systems Research (IUSF) & Institute for Geography (IfG), University of Osnabrueck, Barbarastraße 12, Osnabrück, 49076, Germany, Stockholm Resilience Centre, Stockholm University, SE-106 91, Stockholm, Sweden; Kochalski S., CRETUS, Department of Applied Economics, University of Santiago de Compostela, Santiago de Compostela, 15782, Spain","Abrupt environmental change, such as sudden shifts in temperature or salinity, can severely alter the functioning of marine ecosystems and cause dramatic impacts on the associated social systems. Resource users, who rely on ecosystem services provided by the ocean, are particularly vulnerable to such drastic events. Functioning social relationships (social capital) have recently been suggested as a key driver for recovery after disaster. Here, we study how small-scale fishers who conduct sea-ranching of the Peruvian bay scallop Argopecten purpuratus in Northern Peru dealt with the literal wipe-out of their target resources caused by the Coastal El Niño (CEN) of 2017 that heavily impacted the entire region. Adopting an ego-network approach complemented by qualitative information from expert interviews, we investigated how resource users drew on their social networks to cope with the disaster. Results suggested a significant positive correlation between more desirable post-disaster trajectories and the number of helpful social links of scallop farmer associations. Disentangling the temporal aspect of this pattern, we found that social capital established before the disaster was driving this correlation. Importantly, both economic and non-economic links were contributing to the observed patterns. This study emphasizes the importance of social capital for dealing with the effects of disasters following natural events. Having extensive social networks increases the capacity to mobilize resources and information when needed and is associated with more efficient recovery after abrupt environmental change. Mechanisms to foster and enhance social capital are key for preventive management actions aiming to build resilience within vulnerable communities facing accelerating global change. © 2022, The Author(s).",adaptive capacity; disaster resilience; el niño southern oscillation (enso); mariculture; small-scale aquaculture; social network analysis,,"M. Kriegl; Leibniz Centre for Tropical Marine Research (ZMT), Bremen, Fahrenheitstraße 6, 28359, Germany; email: michael.kriegl@outlook.com; L.C. Kluger; Leibniz Centre for Tropical Marine Research (ZMT), Bremen, Fahrenheitstraße 6, 28359, Germany; email: lottakluger@posteo.de",,Springer Science and Business Media Deutschland GmbH,,,,,,14363798,,,,English,Reg. Environ. Change,Article,Final,All Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85135492437 Wu Z.; Liu T.; Xia M.; Zeng T.,"Wu, Zhilong (25930224800); Liu, Taohong (57237733200); Xia, Minfeng (57237733300); Zeng, Tian (57236619900)",25930224800; 57237733200; 57237733300; 57236619900,Sustainable livelihood security in the Poyang Lake Ecological Economic Zone: Identifying spatial-temporal pattern and constraints,2021,Applied Geography,135,,102553,,,,16,10.1016/j.apgeog.2021.102553,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85113806601&doi=10.1016%2fj.apgeog.2021.102553&partnerID=40&md5=95ce469307476d9a9022ed0ba1fbfcc4,"Institute of Ecological Civilization, Jiangxi University of Finance and Economics, Nanchang, 330013, China; Institute of Land Resources Survey and Planning, Department of Natural Resources of Jiangxi Province, Nanchang, 330002, China; Center of Ecological Civilization and Modern China, Jiangxi University of Finance and Economics, Nanchang, 330013, China; School of Marxism, Jiangxi University of Applied Science, China","Wu Z., Institute of Ecological Civilization, Jiangxi University of Finance and Economics, Nanchang, 330013, China; Liu T., Institute of Ecological Civilization, Jiangxi University of Finance and Economics, Nanchang, 330013, China; Xia M., Institute of Land Resources Survey and Planning, Department of Natural Resources of Jiangxi Province, Nanchang, 330002, China; Zeng T., Center of Ecological Civilization and Modern China, Jiangxi University of Finance and Economics, Nanchang, 330013, China, School of Marxism, Jiangxi University of Applied Science, China","We address rural sustainable livelihood security (SLS) in the Poyang Lake Ecological Economic Zone. This is a barely-examined yet important issue under the background of Rural Revitalization Strategy and Fishing Ban Project of China. This study aims to explore the evolution process of rural SLS from 2010 to 2018 through multiple econometrical and geographical methods, and identify its spatial-temporal pattern and constraints. The results show that: since 2009, rural livelihood security has been on a continuous decline, due to multiple socio-ecological reasons. The hot spots of SLS concentrated in Nanchang and Jingdezhen have evolved into two polar cores, waning and waxing with time. Dominating factors, including proportion of fish farming area, rural per capita electricity consumption, urbanization rate, and farmers' per capita disposable income, possess the highest power determinant value in shaping the spatial pattern of rural SLS. The constraints limiting rural SLS have transformed from backward economic efficiency to social inequality and ecological pressure. Therefore, future policy should emphasize on ecological protection and social construction, especially the organic fertilizer popularization and fisherman's livelihoods transition. Meanwhile, there is still a need to reinforce rural power infrastructure and improve social services for agricultural mechanization. © 2021 Elsevier Ltd",constraints; influential factors; poyang lake ecological economic zone; spatio-temporal changes; sustainability,China; Jiangxi; Poyang Lake Nature Reserve; ecological economics; livelihood; rural policy; security; spatiotemporal analysis; sustainability,"M. Xia; Nanchang, No. 66, Tuanjie Road; email: xiaminfeng2004@126.com",,Elsevier Ltd,,,,,,01436228,,,,English,Appl. Geogr.,Article,Final,,Scopus,2-s2.0-85113806601 Long S.; Jones P.J.S.; Randriana Z.; Hadj-Hammou J.,"Long, Stephen (57206631332); Jones, Peter J.S. (55474784800); Randriana, Zoavina (57194054904); Hadj-Hammou, Jeneen (57197842422)",57206631332; 55474784800; 57194054904; 57197842422,Governance analysis of a community managed small-scale crab fishery in Madagascar: novel use of an empirical framework,2021,Marine Policy,127,,102974,,,,17,10.1016/j.marpol.2017.11.022,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85035222651&doi=10.1016%2fj.marpol.2017.11.022&partnerID=40&md5=fb2b7970647b44b5433b41e8948e6a32,"Institute of Zoology, Zoological Society of London, United Kingdom; Department of Geography, University College London, United Kingdom; VetClinic, Antananarivo, Madagascar; School of Geography and the Environment, University of Oxford, United Kingdom; Lancaster Environment Centre, Lancaster University, United Kingdom","Long S., Institute of Zoology, Zoological Society of London, United Kingdom, Department of Geography, University College London, United Kingdom; Jones P.J.S., Department of Geography, University College London, United Kingdom; Randriana Z., VetClinic, Antananarivo, Madagascar; Hadj-Hammou J., School of Geography and the Environment, University of Oxford, United Kingdom, Lancaster Environment Centre, Lancaster University, United Kingdom","The Marine Protected Area Governance (MPAG) framework was developed to offer a structured, empirical approach for analysing governance and has been applied to marine prottabected areas (MPAs) around the world. This study sees the novel application of the MPAG framework to a small-scale mangrove crab fishery in northwest Madagascar. The country typifies developing country environmental governance challenges, due to its poverty, political instability and lack of state capacity, with bottom-up approaches often identified as a potential solution. In this context, small-scale fisheries (SSF) play a vital role in food security and poverty alleviation but are vulnerable to over-exploitation. The case study examines community-based management, including the role of three nascent fishing association managing portions of the fishery, within a mangrove ecosystem. Despite issues with underrepresentation of fishers in local resource management organizations that have partial responsibility for the mangrove habitats, some management measures and incentives have been applied, including the replantation of mangroves and fishery-wide gear restrictions. However, the analysis highlights market forces and migration are drivers with negative synergistic effects that cannot be controlled by bottom-up management. Incentives identified as needed or in need or strengthening require the support of external actors, the state, industry and or NGO(s). Thus, governance approaches should seek integration and move away from polarised solutions (top-down vs- bottom-up). As shown by other MPAG case studies, effective governance is dependent on achieving ‘resilience through diversity’, in terms of the diversity of both the actors and the incentives they are able to collectively employ. © 2017 The Authors",governance; locally managed marine area; madagascar; mangrove; scylla serrata; small-scale fisheries,Madagascar; Martes; Rhizophoraceae; Scylla serrata; community resource management; crab fishery; empirical analysis; fishery management; governance approach; mangrove; mariculture; protected area; small scale industry,"S. Long; Institute of Zoology, Zoological Society of London, United Kingdom; email: stephen.long.16@ucl.ac.uk",,Elsevier Ltd,,,,,,0308597X,,,,English,Mar. Policy,Article,Final,All Open Access; Green Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85035222651 Pham T.T.; Vu T.P.; Hoang T.L.; Dao T.L.C.; Nguyen D.T.; Pham D.C.; Dao L.H.T.; Nguyen V.T.; Hoang N.V.H.,"Pham, Thu Thuy (25928836400); Vu, Tan Phuong (54785195500); Hoang, Tuan Long (57222326456); Dao, Thi Linh Chi (57222319515); Nguyen, Dinh Tien (57195975295); Pham, Duc Chien (57437998900); Dao, Le Huyen Trang (57437566800); Nguyen, Van Truong (57202916451); Hoang, Nguyen Viet Hoa (57437711800)",25928836400; 54785195500; 57222326456; 57222319515; 57195975295; 57437998900; 57437566800; 57202916451; 57437711800,The Effectiveness of Financial Incentives for Addressing Mangrove Loss in Northern Vietnam,2022,Frontiers in Forests and Global Change,4,,709073,,,,12,10.3389/ffgc.2021.709073,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85123917781&doi=10.3389%2fffgc.2021.709073&partnerID=40&md5=54a02d9f7b05879e0aaa8b84805bba45,"Center for International Forestry Research (CIFOR), Bogor, Indonesia; Vietnamese Academy of Forest Science, Ha Noi, Viet Nam; VNU-University of Economics and Business, Vietnam National University, Hanoi, Viet Nam","Pham T.T., Center for International Forestry Research (CIFOR), Bogor, Indonesia; Vu T.P., Vietnamese Academy of Forest Science, Ha Noi, Viet Nam; Hoang T.L., Center for International Forestry Research (CIFOR), Bogor, Indonesia; Dao T.L.C., Center for International Forestry Research (CIFOR), Bogor, Indonesia; Nguyen D.T., VNU-University of Economics and Business, Vietnam National University, Hanoi, Viet Nam; Pham D.C., Vietnamese Academy of Forest Science, Ha Noi, Viet Nam; Dao L.H.T., Vietnamese Academy of Forest Science, Ha Noi, Viet Nam; Nguyen V.T., Vietnamese Academy of Forest Science, Ha Noi, Viet Nam; Hoang N.V.H., Vietnamese Academy of Forest Science, Ha Noi, Viet Nam","This paper analyzes the effectiveness of existing financial incentives for mangrove conservation in Vietnam. Current conservation programs and projects have created financial incentives for mangrove protection, but the effectiveness of these incentives in addressing mangrove loss in northern Vietnam has been mixed. While financial incentives have contributed to a larger area of planted mangroves, their effectiveness is hampered by contradictory national policies, which encourage mangrove conservation on the one hand, and aquaculture expansion in mangrove areas on the other, thus making it difficult to address mangrove deforestation and degradation effectively. Mangrove conservation in Vietnam is challenged further by inequitable distribution of power and benefits, difficulties accessing information, weak law enforcement, lack of compliance, low payments for protecting mangroves, lack of full recognition of local rights, discontinued funding after policies and projects end, and lack of participation by local people in policy and project design and implementation. Conservation policies and projects should aim to protect existing mangrove forests, restore degraded mangroves and plant new ones to enhance mangrove area, quality and biodiversity. Sustainable mangrove conservation not only requires effective and sustainable financial incentives, but other enabling conditions such as addressing the conflict between mangrove conservation and aquaculture expansion, and grounding mangrove conservation projects by building on local knowledge and leadership. As these drivers are often motivated by national development goals and other sectoral development needs with ministries competing for budgets and influence, holistic land-use planning needs to be coupled with effective coordination and clarification of responsibilities between government agencies, and coordinated and consistent policies concerning these natural resources. Addressing these underlying governance issues is far more important for mangrove conservation and restoration than merely offering financial incentives as various national and international projects have attempted. Copyright © 2022 Pham, Vu, Hoang, Dao, Nguyen, Pham, Dao, Nguyen and Hoang.",deforestation; financial; incentive; mangrove; vietnam,,"T.T. Pham; Center for International Forestry Research (CIFOR), Bogor, Indonesia; email: t.pham@cgiar.org; T.L. Hoang; Center for International Forestry Research (CIFOR), Bogor, Indonesia; email: bberviet@gmail.com; T.L.C. Dao; Center for International Forestry Research (CIFOR), Bogor, Indonesia; email: chi.daolinh161194@gmail.com; T.P. Vu; Vietnamese Academy of Forest Science, Ha Noi, Viet Nam; email: phuong.vt@vafs.gov.vn; D.C. Pham; Vietnamese Academy of Forest Science, Ha Noi, Viet Nam; email: p.d.chien@vafs.gov.vn; L.H.T. Dao; Vietnamese Academy of Forest Science, Ha Noi, Viet Nam; email: huyentrang0804@gmail.com; V.T. Nguyen; Vietnamese Academy of Forest Science, Ha Noi, Viet Nam; email: truong.nv@vafs.gov.vn; N.V.H. Hoang; Vietnamese Academy of Forest Science, Ha Noi, Viet Nam; email: hoa.hnv@vafs.gov.vn; D.T. Nguyen; VNU-University of Economics and Business, Vietnam National University, Hanoi, Viet Nam; email: ndtien.up@gmail.com",,Frontiers Media S.A.,,,,,,2624893X,,,,English,Front. For. Glob. Change,Article,Final,All Open Access; Gold Open Access; Green Open Access,Scopus,2-s2.0-85123917781 Shusheng X.; Jingqian X.; Mianrun C.,"Shusheng, Xu (58078961700); Jingqian, Xie (58077955600); Mianrun, Chen (26536986000)",58078961700; 58077955600; 26536986000,Integrated management improves emerging coastal industries and ecological restoration with the participation of social capital,2023,Frontiers in Marine Science,9,,1015262,,,,2,10.3389/fmars.2022.1015262,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85146845326&doi=10.3389%2ffmars.2022.1015262&partnerID=40&md5=dfb0dc8991275924509741c9a2b0a2b2,"South China Sea Institute of Planning and Environmental Research, State Oceanic Administration, Southern Marine Science and Engineering Guangdong Laboratory (Zhuhai), Guangzhou, China; South China Sea Marine Survey and Technology Center, State Oceanic Administration, Guangzhou, China","Shusheng X., South China Sea Institute of Planning and Environmental Research, State Oceanic Administration, Southern Marine Science and Engineering Guangdong Laboratory (Zhuhai), Guangzhou, China; Jingqian X., South China Sea Marine Survey and Technology Center, State Oceanic Administration, Guangzhou, China; Mianrun C., South China Sea Institute of Planning and Environmental Research, State Oceanic Administration, Southern Marine Science and Engineering Guangdong Laboratory (Zhuhai), Guangzhou, China","In this study, we aimed to provide policy advice that supports continuous ecological restoration and coastal economic development. Our analysis indicated that insufficient funds and space are the main problems in mangrove restoration projects in China and Southeast Asian countries. The average cost of mangrove restoration projects in China has been RMB 999,000/ha, leaving a mangrove restoration funding gap of RMB 1,500,000,000/year. Another common problem of emerging industries is insufficient space, another is a lack of subsidies. Learning from the positive experiences of inland areas and Southeast Asian countries, we propose a plan for integrated management that improves emerging marine industries and ecological restoration with the participation of social capital. We also designed a time road map to achieve the plan based on a target area. A SWOT (Strengths, Weaknesses, Opportunities, and Threats) analysis showed that the plan is a win-win model plan, which may generally meet the needs of the local government, such as ecological restoration, pollution control, industrial upgrades, and income improvement. Finally, we suggest that governments should strengthen cross-department coordination, improve current sea area use policies, and strengthen associated publicity attempts. Copyright © 2023 Shusheng, Jingqian and Mianrun.",ecotourism; emerging coastal industries; industrialized mariculture; integrated management; ecological mangrove restoration; participatory approach; space resource utilization efficiency,,"C. Mianrun; South China Sea Institute of Planning and Environmental Research, State Oceanic Administration, Southern Marine Science and Engineering Guangdong Laboratory (Zhuhai), Guangzhou, China; email: cmrandy@foxmail.com",,Frontiers Media S.A.,,,,,,22967745,,,,English,Front. Mar. Sci.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85146845326 Damonte G.H.; Kluger L.C.; Gonzales I.E.,"Damonte, Gerardo H. (57170087100); Kluger, Lotta C. (56862169000); Gonzales, Isabel E. (57219773082)",57170087100; 56862169000; 57219773082,Intertwined realities — hybrid institutions in the Peruvian fisheries and aquaculture sectors,2023,Maritime Studies,22,2,20,,,,9,10.1007/s40152-023-00309-1,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85158922831&doi=10.1007%2fs40152-023-00309-1&partnerID=40&md5=6b3772873efa2998bd14d9a80c97376f,"Pontifical Catholic University of Peru, Department of Social Sciences, Lima, Peru; Center for Ocean and Society, Kiel University, Neufeldtstraße 10, Kiel, 24118, Germany; Department of Agricultural Economics, Kiel University, Olshausenstraße 40, Leibniz, Kiel, 24118, Germany; Grupo de Análisis para el Desarrollo, Lima, Peru","Damonte G.H., Pontifical Catholic University of Peru, Department of Social Sciences, Lima, Peru; Kluger L.C., Center for Ocean and Society, Kiel University, Neufeldtstraße 10, Kiel, 24118, Germany, Department of Agricultural Economics, Kiel University, Olshausenstraße 40, Leibniz, Kiel, 24118, Germany; Gonzales I.E., Pontifical Catholic University of Peru, Department of Social Sciences, Lima, Peru, Grupo de Análisis para el Desarrollo, Lima, Peru","Following pro-market policies, the Peruvian state has aimed to regulate profitable fisheries and aquaculture activities in order to increase their production. However, informal and illegal activities not only persist but are also interlinked with formal practices and frameworks, creating intertwined realities in fostering processes of institutional hybridization. This article analyses the (re)production of informal and illegal activities by explaining the formation of hybrid institutional entanglements in the Peruvian anchoveta (Engraulis ringens) fishery in Pisco and the Peruvian bay scallop (Argopecten purpuratus) aquaculture industry in Sechura. It argues that state policies to promote industrial fisheries and entrepreneurial aquaculture for the global market coupled with limited interest in supporting small-scale fisheries and aquaculture activities have resulted in processes of institutional hybridization. Within these processes, social actors resist and accommodate formal regulatory frameworks to suit their respective needs, while intertwining formal and informal practices and institutional arrangements, based on their political leverage or ability to produce hybrid institutional entanglements in a context where regulation is limited and state authority is negotiated. Under these forms of hybrid governance, the article shows that interactions between state and non-state actors do not lead to collaborations for solving problems but to the persistence of sustainability problems. © 2023, The Author(s), under exclusive licence to Springer-Verlag GmbH Germany, part of Springer Nature.",aquaculture; fisheries; hybrid institutions; peru; regulation; sustainability,Ica; Peru; Pisco; aquaculture industry; clupeoid fishery; fishery economics; fishery management; fishery policy; institutional framework; regulatory approach; sustainability,"G.H. Damonte; Pontifical Catholic University of Peru, Department of Social Sciences, Lima, Peru; email: gdamonte@pucp.pe",,Springer Science and Business Media Deutschland GmbH,,,,,,18727859,,,,English,Marit. Stud.,Article,Final,All Open Access; Bronze Open Access; Green Open Access,Scopus,2-s2.0-85158922831 Spillias S.; Cottrell R.S.; Kelly R.; O'Brien K.R.; Adams J.; Bellgrove A.; Kelly B.; Kilpatrick C.; Layton C.; Macleod C.; Roberts S.; Stringer D.; McDonald-Madden E.,"Spillias, Scott (57219594447); Cottrell, Richard S. (57196122128); Kelly, Rachel (57202729480); O'Brien, Katherine R. (7202076951); Adams, John (57684920300); Bellgrove, Alecia (6508186645); Kelly, Bronagh (57817133100); Kilpatrick, Carley (57817399300); Layton, Cayne (55548123500); Macleod, Catriona (7102386339); Roberts, Shane (57817803600); Stringer, Damien (56023331000); McDonald-Madden, Eve (25031826200)",57219594447; 57196122128; 57202729480; 7202076951; 57684920300; 6508186645; 57817133100; 57817399300; 55548123500; 7102386339; 57817803600; 56023331000; 25031826200,Expert perceptions of seaweed farming for sustainable development,2022,Journal of Cleaner Production,368,,133052,,,,23,10.1016/j.jclepro.2022.133052,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85134793134&doi=10.1016%2fj.jclepro.2022.133052&partnerID=40&md5=e9cda066c531264c09b8e4596f47bc87,"Centre for Biodiversity and Conservation Science, School of Earth and Environmental Science, The University of Queensland, Brisbane, 4101, Australia; Institute for Marine and Antarctic Studies, University of Tasmania, Hobart, Tasmania, 7004, Australia; Centre for Marine Socioecology, University of Tasmania, Hobart, Tasmania, 7004, Australia; School of Chemical Engineering, The University of Queensland, St Lucia, QLD 4072, Australia; Department of Natural Resources and Environment Tasmania, Lands Building, Level 3, 134 Macquarie St, Hobart, 7000, Australia; School of Life and Environmental Sciences, Centre for Integrative Ecology, Deakin University, Warrnambool campus, Warrnambool, VIC 3280, Australia; Queensland Parks and Wildlife Service and Partnerships, Department of Environment and Science, Manly, Queensland 4000, Australia, Australia; Department of Primary Industries and Regions, Fisheries and Aquaculture, Adelaide, SA, Australia; Marinova Pty Ltd, Cambridge, Australia","Spillias S., Centre for Biodiversity and Conservation Science, School of Earth and Environmental Science, The University of Queensland, Brisbane, 4101, Australia; Cottrell R.S., Centre for Biodiversity and Conservation Science, School of Earth and Environmental Science, The University of Queensland, Brisbane, 4101, Australia, Institute for Marine and Antarctic Studies, University of Tasmania, Hobart, Tasmania, 7004, Australia, Centre for Marine Socioecology, University of Tasmania, Hobart, Tasmania, 7004, Australia; Kelly R., Institute for Marine and Antarctic Studies, University of Tasmania, Hobart, Tasmania, 7004, Australia, Centre for Marine Socioecology, University of Tasmania, Hobart, Tasmania, 7004, Australia; O'Brien K.R., School of Chemical Engineering, The University of Queensland, St Lucia, QLD 4072, Australia; Adams J., Department of Natural Resources and Environment Tasmania, Lands Building, Level 3, 134 Macquarie St, Hobart, 7000, Australia; Bellgrove A., School of Life and Environmental Sciences, Centre for Integrative Ecology, Deakin University, Warrnambool campus, Warrnambool, VIC 3280, Australia; Kelly B., Department of Natural Resources and Environment Tasmania, Lands Building, Level 3, 134 Macquarie St, Hobart, 7000, Australia; Kilpatrick C., Queensland Parks and Wildlife Service and Partnerships, Department of Environment and Science, Manly, Queensland 4000, Australia, Australia; Layton C., Institute for Marine and Antarctic Studies, University of Tasmania, Hobart, Tasmania, 7004, Australia, Centre for Marine Socioecology, University of Tasmania, Hobart, Tasmania, 7004, Australia; Macleod C., Institute for Marine and Antarctic Studies, University of Tasmania, Hobart, Tasmania, 7004, Australia, Centre for Marine Socioecology, University of Tasmania, Hobart, Tasmania, 7004, Australia; Roberts S., Department of Primary Industries and Regions, Fisheries and Aquaculture, Adelaide, SA, Australia; Stringer D., Marinova Pty Ltd, Cambridge, Australia; McDonald-Madden E., Centre for Biodiversity and Conservation Science, School of Earth and Environmental Science, The University of Queensland, Brisbane, 4101, Australia","Large-scale seaweed aquaculture in the ocean is being pursued globally as a solution to many contemporary challenges, including climate change, food security, and ecosystem degradation. However, the required development and transformation of marine systems for farming may have unknown implications for sustainability objectives, such as those outlined in the United Nations Sustainable Development Goals (SDGs). The aim of this paper is to outline the opportunities for, and threats from, seaweed farming in the context of sustainability. We synthesise the perspectives of expert stakeholders from multiple sectors through a series of Australian workshops to catalogue the pathways through which seaweed farming may affect sustainability, giving specific focus to the SDGs. In doing so, this study illustrates that seaweed farming has the potential to influence, to some degree, the majority of SDGs, with both positive and negative influences. Indeed, seaweed farming is most likely to benefit progress towards achieving SDGs 2 (Zero Hunger), 8 (Decent Work and Economic Growth), 9 (Industry, Innovation, and Infrastructure), 12 (Sustainable Production and Consumption), and 15 (Life on Land). But expectations of seaweed farming may also fall short for supporting some goals if appropriate measures are not implemented to mitigate potential impacts, most notably SDG 14 (Life Below Water). We underscore that seaweed farming has the potential to contribute to sustainable development, and that this potential can only be realised with appropriate regulation and mitigation to avoid unwanted negative outcomes. Better identification and management of trade-offs between these potential positive and negative outcomes across sustainability domains, will be critical for realising the full potential of seaweed aquaculture for sustainable development. © 2022 Elsevier Ltd",aquaculture; blue economy; nominal group technique; seaweed; sustainability; swot analysis,Aquaculture; Climate change; Economic and social effects; Economics; Food supply; Planning; Seaweed; Blue economies; Ecosystem degradation; Food security; Large-scales; Marine systems; Nominal group techniques; Seaweed farming; Sustainability objectives; SWOT analysis; United Nations; Sustainable development,"S. Spillias; Centre for Biodiversity and Conservation Science, School of Earth and Environmental Science, The University of Queensland, Brisbane, 4101, Australia; email: s.spillias@uq.edu.au",,Elsevier Ltd,,,,,,09596526,,JCROE,,English,J. Clean. Prod.,Article,Final,,Scopus,2-s2.0-85134793134 Simmance F.A.; Cohen P.J.; Huchery C.; Sutcliffe S.; Suri S.K.; Tezzo X.; Thilsted S.H.; Oosterveer P.; McDougall C.; Ahern M.; Freed S.; Byrd K.A.; Wesana J.; Cowx I.G.; Mills D.J.; Akester M.; Chan C.Y.; Nagoli J.; Wate J.T.; Phillips M.J.,"Simmance, Fiona A. (57221467584); Cohen, Philippa J. (55457897300); Huchery, Cindy (16052604700); Sutcliffe, Sarah (57203617299); Suri, Sharon K. (57193253370); Tezzo, Xavier (57202871923); Thilsted, Shakuntala H. (6603405476); Oosterveer, Peter (6506513620); McDougall, Cynthia (57533311800); Ahern, Molly (57216830650); Freed, Sarah (57217783490); Byrd, Kendra A. (57203885956); Wesana, Joshua (56688521300); Cowx, Ian G. (56284380100); Mills, David J. (36889435700); Akester, Michael (57188739061); Chan, Chin Yee (57193257206); Nagoli, Joseph (36005245000); Wate, Jillian T. (55946001400); Phillips, Michael J. (7402770404)",57221467584; 55457897300; 16052604700; 57203617299; 57193253370; 57202871923; 6603405476; 6506513620; 57533311800; 57216830650; 57217783490; 57203885956; 56688521300; 56284380100; 36889435700; 57188739061; 57193257206; 36005245000; 55946001400; 7402770404,Nudging fisheries and aquaculture research towards food systems,2022,Fish and Fisheries,23,1,,34,53,19,25,10.1111/faf.12597,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85111361919&doi=10.1111%2ffaf.12597&partnerID=40&md5=c123be82019baa4c5f0433e0b626be8a,"WorldFish, Penang, Malaysia; Australian Research Council Centre of Excellence for Coral Reef Studies, James Cook University, Townsville, QLD, Australia; Centre for Marine Socioecology, University of Tasmania, Hobart, TAS, Australia; Amsterdam Institute for Social Science Research, University of Amsterdam, Amsterdam, Netherlands; Environmental Policy Group, Wageningen University, Wageningen, Netherlands; Fisheries Division, Food and Agriculture Organization of the United Nations, Rome, Italy; Natural Resources Institute, University of Greenwich, London, United Kingdom; Hull International Fisheries Institute, University of Hull, Hull, United Kingdom","Simmance F.A., WorldFish, Penang, Malaysia; Cohen P.J., WorldFish, Penang, Malaysia, Australian Research Council Centre of Excellence for Coral Reef Studies, James Cook University, Townsville, QLD, Australia, Centre for Marine Socioecology, University of Tasmania, Hobart, TAS, Australia; Huchery C., WorldFish, Penang, Malaysia, Australian Research Council Centre of Excellence for Coral Reef Studies, James Cook University, Townsville, QLD, Australia; Sutcliffe S., WorldFish, Penang, Malaysia, Australian Research Council Centre of Excellence for Coral Reef Studies, James Cook University, Townsville, QLD, Australia; Suri S.K., Amsterdam Institute for Social Science Research, University of Amsterdam, Amsterdam, Netherlands; Tezzo X., WorldFish, Penang, Malaysia, Environmental Policy Group, Wageningen University, Wageningen, Netherlands; Thilsted S.H., WorldFish, Penang, Malaysia; Oosterveer P., Environmental Policy Group, Wageningen University, Wageningen, Netherlands; McDougall C., WorldFish, Penang, Malaysia; Ahern M., Fisheries Division, Food and Agriculture Organization of the United Nations, Rome, Italy; Freed S., WorldFish, Penang, Malaysia; Byrd K.A., WorldFish, Penang, Malaysia; Wesana J., WorldFish, Penang, Malaysia, Natural Resources Institute, University of Greenwich, London, United Kingdom; Cowx I.G., Hull International Fisheries Institute, University of Hull, Hull, United Kingdom; Mills D.J., WorldFish, Penang, Malaysia, Australian Research Council Centre of Excellence for Coral Reef Studies, James Cook University, Townsville, QLD, Australia; Akester M., WorldFish, Penang, Malaysia; Chan C.Y., WorldFish, Penang, Malaysia; Nagoli J., WorldFish, Penang, Malaysia; Wate J.T., WorldFish, Penang, Malaysia; Phillips M.J., WorldFish, Penang, Malaysia","Food system is a powerful concept for understanding and responding to nutrition and sustainability challenges. Food systems integrate social, economic, environmental and health aspects of food production through to consumption. Aquatic foods are an essential part of food systems providing an accessible source of nutrition for millions of people. Yet, it is unclear to what degree research across diverse disciplines concerning aquatic foods has engaged food systems, and the value this concept has added. We conducted a systematic review of fisheries, aquaculture and aquatic food literature (2017–2019) to determine the following: the characteristics of this research; the food systems components and interrelations with which research engaged; and the insights generated on nutrition, justice, sustainability and climate change. Sixty five of the 88 reviewed articles focussed on production and supply chains, with 23 considering human nutrition. Only 13% of studies examined low- and middle-income countries that are most vulnerable to undernutrition. One third of articles looked beyond finfish to other aquatic foods, which illuminated values of local knowledge systems and diverse foods for nutrition. When aggregated, reviewed articles examined the full range of food system drivers—biophysical and environmental (34%), demographic (24%) and socio-cultural (27%)—but rarely examined interactions between drivers. Future research that examines a diversity of species in diets, system-wide flows of nutrients, trade-offs amongst objectives, and the nutritional needs of vulnerable social groups would be nudging closer to the ambitions of the food systems concept, which is necessary to address the global challenges of equity, nutrition and sustainability. © 2021 The Authors. Fish and Fisheries published by John Wiley & Sons Ltd.",aquatic foods; fish; food security; nutrition; policy; sustainability,aquaculture; finfish; fishery; food production; nutrition; sustainability,"F.A. Simmance; WorldFish, Penang, Malaysia; email: F.simmance@cgiar.org",,John Wiley and Sons Inc,,,,,,14672960,,FFIIA,,English,Fish Fish.,Article,Final,All Open Access; Green Open Access,Scopus,2-s2.0-85111361919 Froehlich H.E.; Gentry R.R.; Lester S.E.; Cottrell R.S.; Fay G.; Branch T.A.; Gephart J.A.; White E.R.; Baum J.K.,"Froehlich, Halley E. (55818148100); Gentry, Rebecca R. (55574287000); Lester, Sarah E. (8134852700); Cottrell, Richard S. (57196122128); Fay, Gavin (14522188400); Branch, Trevor A. (56208494100); Gephart, Jessica A. (55811795300); White, Easton R. (55744158400); Baum, Julia K. (7202982542)",55818148100; 55574287000; 8134852700; 57196122128; 14522188400; 56208494100; 55811795300; 55744158400; 7202982542,Securing a sustainable future for US seafood in the wake of a global crisis,2021,Marine Policy,124,,104328,,,,30,10.1016/j.marpol.2020.104328,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85098967609&doi=10.1016%2fj.marpol.2020.104328&partnerID=40&md5=52f2624757407ce1d90b4f30f1290ffd,"Environmental Studies, University of California, Santa Barbara, 93106, CA, United States; Ecology, Evolution, & Marine Biology, University of California, Santa Barbara, 93106, CA, United States; Department of Geography, Florida State University, Tallahassee, 32306, FL, United States; National Center for Ecological Analysis and Synthesis, University of California, Santa Barbara, 93101, CA, United States; Centre for Marine Socioecology, University of Tasmania, Hobart, Australia; Department of Fisheries Oceanography, School for Marine Science and Technology, University of Massachusetts Dartmouth, New Bedford, 02744, MA, United States; School of Aquatic and Fishery Sciences, University of Washington, Box 355020, Seattle, 98195, WA, United States; Department of Environmental Science, American University, Washington, 20016, DC, United States; Department of Biology, University of Vermont, Burlington, 05405, VT, United States; Gund Institute for Environment, University of Vermont, Burlington, 05405, VT, United States; Department of Biology, University of Victoria, Victoria, V8W 2Y2, BC, Canada; Hawai'i Institute of Marine Biology, Kāneʻohe, 96744, HI, United States","Froehlich H.E., Environmental Studies, University of California, Santa Barbara, 93106, CA, United States, Ecology, Evolution, & Marine Biology, University of California, Santa Barbara, 93106, CA, United States; Gentry R.R., Department of Geography, Florida State University, Tallahassee, 32306, FL, United States; Lester S.E., Department of Geography, Florida State University, Tallahassee, 32306, FL, United States; Cottrell R.S., National Center for Ecological Analysis and Synthesis, University of California, Santa Barbara, 93101, CA, United States, Centre for Marine Socioecology, University of Tasmania, Hobart, Australia; Fay G., Department of Fisheries Oceanography, School for Marine Science and Technology, University of Massachusetts Dartmouth, New Bedford, 02744, MA, United States; Branch T.A., School of Aquatic and Fishery Sciences, University of Washington, Box 355020, Seattle, 98195, WA, United States; Gephart J.A., Department of Environmental Science, American University, Washington, 20016, DC, United States; White E.R., Department of Biology, University of Vermont, Burlington, 05405, VT, United States, Gund Institute for Environment, University of Vermont, Burlington, 05405, VT, United States; Baum J.K., Department of Biology, University of Victoria, Victoria, V8W 2Y2, BC, Canada, Hawai'i Institute of Marine Biology, Kāneʻohe, 96744, HI, United States","The United States seafood industry is undergoing rapid change, as a result of the current trade war with China, ongoing global COVID-19 pandemic, and new governance mandates. The Executive Order on Promoting American Seafood Competitiveness and Economic Growth, signed in May 2020, proposes wild-capture fisheries deregulation and prioritization of aquaculture, with an emphasis on offshore development. Recent disruption of wild-caught seafood supply and demand could create space for sustainable aquaculture growth, but expansion could also undermine wild fisheries livelihoods and economics if integrated management between industries is ignored. Here, we review the current state of US seafood and outline five guiding principles around the implementation, and possible modifications, of the Executive Order to facilitate sustainable US fisheries and aquaculture: (1) make precise and strategic fisheries reforms that continue to support sustainable wild fisheries, (2) integrate aquaculture and fisheries using an ecosystem-based approach, (3) improve aquaculture data collection, (4) address social resistance to aquaculture, and (5) reconcile nationalism in a global market. Regardless of the Head of State, implementation of these science-informed principles is critical for balancing social-ecological tradeoffs between wild captured and farmed seafood systems, and for ensuring a more resilient US seafood sector under an anticipated future of increased volatility. © 2020 Elsevier Ltd",aquatic farming; consumption; livelihoods; north america; policy; shocks; trade,United States; deregulation; economic growth; fishery management; fishery policy; food consumption; livelihood; seafood; sustainability,"H.E. Froehlich; University of California, Santa Barbara, 93106, United States; email: hefroehlich@ucsb.edu",,Elsevier Ltd,,,,,,0308597X,,,,English,Mar. Policy,Article,Final,All Open Access; Bronze Open Access; Green Open Access,Scopus,2-s2.0-85098967609 Papageorgiou N.; Dimitriou P.D.; Moraitis M.L.; Massa F.; Fezzardi D.; Karakassis I.,"Papageorgiou, Nafsika (15077256100); Dimitriou, Panagiotis D. (55071222100); Moraitis, Manos L. (55785191300); Massa, Fabio (23489583900); Fezzardi, Davide (57044780100); Karakassis, Ioannis (6701548136)",15077256100; 55071222100; 55785191300; 23489583900; 57044780100; 6701548136,"Changes of the Mediterranean fish farm sector towards a more sustainable approach: A closer look at temporal, spatial and technical shifts",2021,Ocean and Coastal Management,214,,105903,,,,14,10.1016/j.ocecoaman.2021.105903,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85116318389&doi=10.1016%2fj.ocecoaman.2021.105903&partnerID=40&md5=19bc0d99585f328dfb6671b2be2b93ec,"University of Crete, Biology Department, Heraklion, 70013, Crete, Greece; Senior Expert on Aquaculture, Rome, Italy","Papageorgiou N., University of Crete, Biology Department, Heraklion, 70013, Crete, Greece; Dimitriou P.D., University of Crete, Biology Department, Heraklion, 70013, Crete, Greece; Moraitis M.L., University of Crete, Biology Department, Heraklion, 70013, Crete, Greece; Massa F., Senior Expert on Aquaculture, Rome, Italy; Fezzardi D., Senior Expert on Aquaculture, Rome, Italy; Karakassis I., University of Crete, Biology Department, Heraklion, 70013, Crete, Greece","The Mediterranean is a miniature of the world with 22 countries sharing the its coastline. In the past few decades aquaculture production in Mediterranean showed an increasing trend but brought with it several environmental and socio-economic issues. In order to establish sustainable development, the Mediterranean aquaculture sector has adopted integrated management plans. Within this framework, our aim was to evaluate the state of the Mediterranean aquaculture industry with respect to sustainable growth, focusing mostly on the spatial scale. We used the evaluation framework for ICZM proposed by Billé (2007) that takes into consideration how multiple policies can be accountable for sustainable management practices. In order to identify the different management regimes and trends in the area, satellite images were processed as a diagnostic tool to locate and analyse the characteristics of the Mediterranean fish farms in cages over time. Google Earth historical images were used to map the characteristics of the Mediterranean fish farms in three different periods between 2006 and 2017. The average coastal surface occupied by the fish cages in the Mediterranean was 0.01%; only two countries currently exceed this percentage due to having a large number of cages (Turkey and Greece) and five others due to their limited coastline. In total, 15,499 cages were counted in recent years in the Mediterranean area, 46.5% of them belonging to larger cluster aggregations. Over time, square steel cages have been gradually replaced by larger and technically more advanced circular cages that significantly increased the finfish production rates. To understand the level of integration done by Mediterranean aquaculture we examined four dimensions of aquaculture issues: (i) policy and management; (ii) environment; (iii) economy - industry and (iv) social. State-of-the-art aquaculture policy and management systems were integrated in national legislations, boosting the production, ensuring at the same time better environmental quality from and for the aquaculture. Despite these positive results for the Mediterranean aquaculture industry, other factors, such as social issues related with the general bad image of aquaculture and the conflicts with local stakeholders, seem to inhibit the further development of aquaculture production. Thus, studies like this can identify factors that have favoured the expansion of aquaculture but also the evolving needs of the stakeholders in the context of changing market and social conditions. © 2021 Elsevier Ltd",allocated zone for aquaculture; aquaculture; ecosystem services; mediterranean,Greece; Turkey; Economic and social effects; Environmental management; Fisheries; Sustainable development; Allocated zone for aquaculture; Aquaculture industry; Economic issues; Ecosystem approach; Ecosystem approach to aquaculture; Environmental economics; Fish farms; Integrated management; Mediterranean sea; Socio-economics; aquaculture effluent; aquaculture industry; detection method; economic growth; environmental quality; fish culture; satellite imagery; socioeconomic conditions; spatiotemporal analysis; stakeholder; sustainability; Fish,"N. Papageorgiou; University of Crete, Biology Department, Heraklion, 70013, Greece; email: n.papageorgiou@uoc.gr",,Elsevier Ltd,,,,,,09645691,,OCMAE,,English,Ocean Coast. Manage.,Article,Final,,Scopus,2-s2.0-85116318389 Perles-Ribes J.F.; Rámon-Rodríguez A.; Jiménez M.S.; Such-Devesa M.J.; Aranda-Cuellar P.,"Perles-Ribes, José Francisco (36682818000); Rámon-Rodríguez, Ana (8284283100); Jiménez, Martín Sevilla (26023755500); Such-Devesa, María Jesús (57211003141); Aranda-Cuellar, Patricia (57217534872)",36682818000; 8284283100; 26023755500; 57211003141; 57217534872,Aquaculture in tourist destinations: the need to consider economic aspects in environmental impact studies,2023,Current Issues in Tourism,26,22,,3671,3685,14,3,10.1080/13683500.2022.2144158,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85142650656&doi=10.1080%2f13683500.2022.2144158&partnerID=40&md5=d51804d8f4f3e59e4ab71606f2c5e3ef,"Department of Applied Economic Analysis, Faculty of Economics and Business Sciences, University of Alicante, Alicante, Spain; Department of Economics, Faculty of Economics, Business and Tourism, University of Alcalá, Spain","Perles-Ribes J.F., Department of Applied Economic Analysis, Faculty of Economics and Business Sciences, University of Alicante, Alicante, Spain; Rámon-Rodríguez A., Department of Applied Economic Analysis, Faculty of Economics and Business Sciences, University of Alicante, Alicante, Spain; Jiménez M.S., Department of Applied Economic Analysis, Faculty of Economics and Business Sciences, University of Alicante, Alicante, Spain; Such-Devesa M.J., Department of Economics, Faculty of Economics, Business and Tourism, University of Alcalá, Spain; Aranda-Cuellar P., Department of Economics, Faculty of Economics, Business and Tourism, University of Alcalá, Spain","The search for sustainable alternative food sources has led to the expansion of aquaculture, with the proliferation of marine farms in more and more places, some of them very touristic. The installation of these farms in the waters of consolidated Sun and Beach tourist destinations represents a planning challenge, which requires consideration of the potential environmental and economic impacts of those activities on tourism attractions. This article critically analyzes the implementation of marine farms in the Costa Blanca (Alicante), one of the most consolidated Sun and Beach tourist destinations in the Mediterranean. The case study shows that the environmental impact studies and other documentation accompanying these projects do not include tourism aspects, which represents a deficiency that jeopardizes the economic and social sustainability of the projects. © 2022 Informa UK Limited, trading as Taylor & Francis Group.",aquaculture; environmental sustainability; integrated management; community-based conservation; sustainability,Alicante [Comunidad Valencia]; Comunidad Valencia; Costa Blanca; Spain; aquaculture; coastal zone management; economic impact; environmental economics; environmental impact; installation; integrated approach; marine environment; sustainability; tourist destination,"J.F. Perles-Ribes; Department of Applied Economic Analysis, Faculty of Economics and Business Sciences, University of Alicante, Alicante, Spain; email: jfperles@gmail.com",,Routledge,,,,,,13683500,,,,English,Curr. Issues Tour.,Article,Final,,Scopus,2-s2.0-85142650656 Liu H.; Brosse S.; Qu X.; Xia W.; Li X.; Chen Y.,"Liu, Han (56644173400); Brosse, Sébastien (6701830103); Qu, Xiao (57199649044); Xia, Wentong (57202994462); Li, Xiuqi (57201583481); Chen, Yushun (24170757700)",56644173400; 6701830103; 57199649044; 57202994462; 57201583481; 24170757700,Land use outweighs other stressors in declining fish biodiversity in lakes of Eastern China during the 1980s-2010s,2023,Ecological Indicators,152,,110390,,,,7,10.1016/j.ecolind.2023.110390,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85160014219&doi=10.1016%2fj.ecolind.2023.110390&partnerID=40&md5=135c36e788b0a6f3916b9e264830632a,"State Key Laboratory of Freshwater Ecology and Biotechnology, Institute of Hydrobiology, Chinese Academy of Sciences, Hubei, Wuhan, 430072, China; University of Chinese Academy of Sciences, Beijing, 100049, China; Laboratoire Evolution et Diversité Biologique (EDB), UMR5174, Université Toulouse 3 Paul Sabatier, CNRS, IRD, Toulouse, France; State Key Laboratory of Marine Resource Utilization in South China Sea, Hainan University, Hainan, Haikou, 570228, China; Huai'an Research Center, Institute of Hydrobiology, Chinese Academy of Sciences, Jiangsu, Huai'an, 223001, China; Shandong Freshwater Fisheries Research Institute, Shandong, Jinan, 250013, China","Liu H., State Key Laboratory of Freshwater Ecology and Biotechnology, Institute of Hydrobiology, Chinese Academy of Sciences, Hubei, Wuhan, 430072, China, University of Chinese Academy of Sciences, Beijing, 100049, China; Brosse S., Laboratoire Evolution et Diversité Biologique (EDB), UMR5174, Université Toulouse 3 Paul Sabatier, CNRS, IRD, Toulouse, France; Qu X., State Key Laboratory of Freshwater Ecology and Biotechnology, Institute of Hydrobiology, Chinese Academy of Sciences, Hubei, Wuhan, 430072, China, University of Chinese Academy of Sciences, Beijing, 100049, China, Huai'an Research Center, Institute of Hydrobiology, Chinese Academy of Sciences, Jiangsu, Huai'an, 223001, China; Xia W., State Key Laboratory of Freshwater Ecology and Biotechnology, Institute of Hydrobiology, Chinese Academy of Sciences, Hubei, Wuhan, 430072, China, University of Chinese Academy of Sciences, Beijing, 100049, China, State Key Laboratory of Marine Resource Utilization in South China Sea, Hainan University, Hainan, Haikou, 570228, China; Li X., Shandong Freshwater Fisheries Research Institute, Shandong, Jinan, 250013, China; Chen Y., State Key Laboratory of Freshwater Ecology and Biotechnology, Institute of Hydrobiology, Chinese Academy of Sciences, Hubei, Wuhan, 430072, China, University of Chinese Academy of Sciences, Beijing, 100049, China, Huai'an Research Center, Institute of Hydrobiology, Chinese Academy of Sciences, Jiangsu, Huai'an, 223001, China","Understanding patterns and driving factors of freshwater fish biodiversity in metacommunities is essential for biological conservation but rarely studied in regions experiencing rapid land use changes. We examined changes of both alpha and beta fish diversities in taxonomic, functional, and phylogenetic facets during the 1980 s to 2010 s, and quantified contributions from natural and human drivers in lakes located in China's fastest economic development region. Results showed that almost all indices of alpha and beta diversity decreased through time. For alpha diversity, taxonomic and functional richness declined by 13 to 15%. Rheophilic and piscivorous fish species declined by 50 and 36%, respectively. For beta diversity, the decline of overall functional (-31%) diversity was greater than taxonomic (-17%) and phylogenetic (-19%) diversity. The decline of multiple facets of beta diversity indicated that fish communities in these lakes have homogenized through time. Land use (i.e., increased urban land and aquaculture ponds), hydrology (i.e., increased water level), climate (i.e., increased air temperature), and fishing (i.e., increased lake fishery catch) factors all made significant contributions to both alpha and beta fish diversity decline in multiple facets. The overall contribution from land use to the decline of multidimensional fish diversity was greater than those of other stressors. While attention should be given to both local human disturbance and regional climate factors, in regions experiencing rapid economic development and land use changes, local disturbances should be considered as a priority in biodiversity management plans. © 2023 The Author(s)",alpha and beta diversity; climate change; fish assemblage; homogenization; human disturbance; multifaceted diversity,China; Biodiversity; Climate change; Economic and social effects; Economics; Fisheries; Lakes; Land use; Phylogenetic; Water levels; Alpha and beta diversities; Beta diversities; Eastern China; Economic development; Fish assemblages; Homogenization; Human disturbances; Landuse change; Multifaceted diversity; Phylogenetics; aquaculture; biodiversity; biological invasion; economic development; fishery management; habitat loss; land use change; nature conservation; regional climate; species diversity; Fish,"Y. Chen; State Key Laboratory of Freshwater Ecology and Biotechnology, Institute of Hydrobiology, Chinese Academy of Sciences, Wuhan, Hubei, 430072, China; email: yushunchen@ihb.ac.cn",,Elsevier B.V.,,,,,,1470160X,,,,English,Ecol. Indic.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85160014219 Murray G.D.; Fail R.; Fairbanks L.; Campbell L.M.; D'Anna L.; Stoll J.,"Murray, Grant D. (23110755200); Fail, Robin (57201257142); Fairbanks, Luke (55946674300); Campbell, Lisa M. (35298771200); D'Anna, Linda (14830185900); Stoll, Joshua (36633263200)",23110755200; 57201257142; 55946674300; 35298771200; 14830185900; 36633263200,Seafood consumption and the management of shellfish aquaculture,2023,Marine Policy,150,,105534,,,,6,10.1016/j.marpol.2023.105534,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85147572899&doi=10.1016%2fj.marpol.2023.105534&partnerID=40&md5=21ba778376de051d29e4a246eb9d6f83,"Duke University Marine Laboratory, Nicholas School of the Environment, Duke University, Beaufort, NC, United States; Institute at Brown for Environment and Society, Brown University, Providence, RI, United States; Coastal Studies Institute, Integrated Coastal Programs, East Carolina University, Wanchese, NC, United States; School of Marine Sciences, University of Maine, Orono, ME, United States","Murray G.D., Duke University Marine Laboratory, Nicholas School of the Environment, Duke University, Beaufort, NC, United States; Fail R., Duke University Marine Laboratory, Nicholas School of the Environment, Duke University, Beaufort, NC, United States; Fairbanks L., Institute at Brown for Environment and Society, Brown University, Providence, RI, United States; Campbell L.M., Duke University Marine Laboratory, Nicholas School of the Environment, Duke University, Beaufort, NC, United States; D'Anna L., Coastal Studies Institute, Integrated Coastal Programs, East Carolina University, Wanchese, NC, United States; Stoll J., School of Marine Sciences, University of Maine, Orono, ME, United States","As aquaculture has expanded, researchers and governing authorities have increasingly considered the nature and distribution of the environmental, economic, and social impacts of the industry. Much of that consideration, however, has focused primarily on areas where seafood is produced. This article draws on a case study of the North Carolina oyster aquaculture industry to explore how the preferences and behaviors associated with consuming aquaculture products as well as the management relevant priorities of state residents outside of producing areas might also be important considerations for governing authorities. The study draws on an analysis of North Carolina's management objectives for the shellfish aquaculture industry and compares those objectives to findings from a survey (n = 1040) of seafood consumers (who are also residents) in the state. Results show that consumers tended to prioritize ‘consumer-facing’ product attributes such as taste, health benefits and price over ‘production-facing’ attributes such as local origin, sustainability, economic or cultural benefits to local areas, and whether the product was farm-raised or wild-caught. Consumers also consistently stated a preference for wild-caught products and reported that oysters are consumed infrequently as compared to tuna, shrimp, and salmon (the ‘big three’). Response patterns varied geographically and across other respondent characteristics, highlighting the importance of both place and culture in shaping both seafood preferences and management objectives. The article concludes with a comparison of these patterns with the objectives of the State, revealing areas of alignment as well as areas of apparent disconnection. The article concludes with a discussion of management implications of the findings, suggesting that attention to seafood consumption patterns should be an important area of management attention in addition to issues associated with production. © 2023 Elsevier Ltd",consumer preference; management; oysters; seafood; shellfish aquaculture,North Carolina; United States; consumption behavior; environmental management; food consumption; seafood; shellfish culture,"G.D. Murray; Duke University Marine Laboratory, Nicholas School of the Environment, Duke University, Beaufort, United States; email: grant.murray@duke.edu",,Elsevier Ltd,,,,,,0308597X,,,,English,Mar. Policy,Article,Final,,Scopus,2-s2.0-85147572899 Meyer C.; Gerlitz L.; Prause G.,"Meyer, Christopher (57216038551); Gerlitz, Laima (57015379200); Prause, Gunnar (57210178465)",57216038551; 57015379200; 57210178465,Small and Medium-Sized Port Greening Initiatives as Trigger for a Servitisation Port Ecosystem,2023,Environmental and Climate Technologies,27,1,,476,488,12,4,10.2478/rtuect-2023-0035,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85173431774&doi=10.2478%2frtuect-2023-0035&partnerID=40&md5=d76fc5e314a79f2b042c576076fdceb2,"Hochschule Wismar, University of Applied Sciences: Technology, Business and Design, Philipp-Müller-Str.14, Wismar, 23966, Germany; Tallinn University of Technology - TalTech, Ehitajate tee 5, Tallinn, 19086, Estonia","Meyer C., Hochschule Wismar, University of Applied Sciences: Technology, Business and Design, Philipp-Müller-Str.14, Wismar, 23966, Germany; Gerlitz L., Tallinn University of Technology - TalTech, Ehitajate tee 5, Tallinn, 19086, Estonia; Prause G., Hochschule Wismar, University of Applied Sciences: Technology, Business and Design, Philipp-Müller-Str.14, Wismar, 23966, Germany, Tallinn University of Technology - TalTech, Ehitajate tee 5, Tallinn, 19086, Estonia","Despite the highest competition among the big EU seaports - gateways and hubs, such as Rotterdam, Antwerp, Hamburg or Valencia, etc. which stand for the Core Ports in the European Union (EU) Trans-European Transport Network (TEN-T) Core and Comprehensive Network, the present paper addresses challenges and raises potentials immanent in Small and Medium-Sized Ports (SMSPs) in the EU. Environmental responsibility and digital efficiency - Europe's twin to a green and digital economy paves the way for SMSPs to improve innovation capacity, upgrade demanded future skills and competencies, accelerate EU policies compliant operational, environmental, digital, social and market performance. The paper deploys a multi-case study approach. Using an ecosystem approach, the paper reveals potentials and pinpoints to key short- and long-term challenges pursuant to SMSPs in the three different EU macro-regions - Baltic Sea Region, Adriatic-Ionian Sea Region and Mediterranean Sea Region along the three TEN-T Core Network Corridors Orient-East Med, North Sea-Baltic and Scandinavian-Mediterranean. Departing from the role model - Baltic Sea Region - ports of Kaunas, Klaipeda & Wismar are connected via TEN-T corridors with ports of Bari and Corfu. In this vein, knowledge, skills and best practices are transferred from the North Europe to the South and vice versa using the concepts of co-creation and servitisation. Illustrated case studies reveal how all SMSPs are capable to kick-start environmental and digital transition through co-creation and servitisation mindset in a SMSP ecosystem conceptualisation. © 2023 Christopher Meyer et al., published by Sciendo.",blue economy; green transition; maritime transition; port sector,Adriatic Sea; Atlantic Ocean; Baltic Sea; Ionian Sea; Mediterranean Sea; Mediterranean Sea; Ports and harbors; Baltic sea; Blue economies; Co-creation; European union; Green transitions; Maritime transition; Network core; Port sector; Servitization; Trans european transport networks; aquaculture; European Union; maritime trade; port; small and medium-sized enterprise; Ecosystems,"C. Meyer; Hochschule Wismar, University of Applied Sciences: Technology, Business and Design, Wismar, Philipp-Müller-Str.14, 23966, Germany; email: christopher.meyer@hs-wismar.de",,Sciendo,,,,,,22558837,,,,English,Environ. Clim. Technol.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85173431774 Ratnasari E.D.; Susilowati I.; Maria N.S.B.,"Ratnasari, Emma Dwi (58176495800); Susilowati, Indah (6507735168); Maria, Nugroho Sumarjiyanto Benedictus (57383082600)",58176495800; 6507735168; 57383082600,"SMALL-SCALE VANNAMEI SHRIMP FARM BUSINESS SUSTAINABILITY ANALYSIS WITH MICMAC: A STUDY ON KEBUMEN COASTAL AREA, INDONESIA; [ANÁLISE DA SUSTENTABILIDADE DO NEGÓCIO DA QUINTA DE CAMARÃO VANNAMEI EM PEQUENA ESCALA COM MICMAC: UM ESTUDO NA ÁREA COSTEIRA DE KEBUMEN]; [ANÁLISIS DE SOSTENIBILIDAD EMPRESARIAL DE LA GRANJA CAMARONERA VANNAMEI A PEQUEÑA ESCALA CON MICMAC: UN ESTUDIO SOBRE EL ÁREA COSTERA DE KEBUMEN]",2023,International Journal of Professional Business Review,8,3,e0659,,,,1,10.26668/businessreview/2023.v8i3.659,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85152112627&doi=10.26668%2fbusinessreview%2f2023.v8i3.659&partnerID=40&md5=335150f3754c7326dc0330643a396727,"Economics Department, Universitas Diponegoro, Semarang, Indonesia; The Faculty of Economics, Universitas Tidar, Magelang, Indonesia; The Faculty of Economics and Business, Universitas Diponegoro, Semarang, Indonesia","Ratnasari E.D., Economics Department, Universitas Diponegoro, Semarang, Indonesia, The Faculty of Economics, Universitas Tidar, Magelang, Indonesia; Susilowati I., The Faculty of Economics and Business, Universitas Diponegoro, Semarang, Indonesia; Maria N.S.B., The Faculty of Economics, Universitas Tidar, Magelang, Indonesia","Purpose: The objective of this study was to identify the internal and external factors of the sustainability of the vannamei shrimp farming business and the relationship of influence and dependence between the factors. Theoretical framework: Sustainability is required to create a balance between nature and humans for the use of coastal space in Kebumen Regency as a development area for the shrimp farming business to be carried out sustainably and provide sustainable benefits, as well as to preserve existing resources for long-term sustainability (UN, 2020). Development that ignores the interaction of the two results in price increases, which leads to a general decline in human welfare (Fauzi, 2019). This is to the global development agenda and the Sustainable Development Goals(SDGs)., which call for Indonesia to become a maritime axis. Design/methodology/approach: The research used a participatory method with semi-structured and in-depth interviews with the shrimp farming community and FGD. The data were analyzed using the sustainability analysis technique of Matrix of Cross Impact Multiplications Applied to a Classification (MICMAC). Findings: Identification of key elements in the sustainability of shrimp farming is essential to overcome and limit the risk of uncertainty caused by external and internal disturbances and pressures on shrimp farms. Government policy is a variable that has a strong and large influence on the sustainability of the shrimp farming business, and good government policy will enable the shrimp farming business system to reduce the pressure and threat of continuity. Research, Practical & Social implications: Future research should focus on the management of shrimp farming and waste management to reduce the ecological, social, and economic impacts and the sustainability of shrimp farming that is environmentally and socially friendly. Originality/value: Government policy is a variable that has a strong and significant impact on aquaculture sustainability, with good government policies allowing the aquaculture system to reduce pressure and threats to shrimp. According to the facts on the ground, the shrimp farming business on the coast of Kebumen regency is operating independently due to a lack of attention, guidance, and policies governing the implementation of the shrimp aquaculture business. © 2023 AOS-Estratagia and Inovacao. All rights reserved.",coastal; farm business; mic-mac; shrimp; sustainability; vulnerability,,,,AOS-Estratagia and Inovacao,,,,,,25253654,,,,English,Int. J. Prof. Bus. Rev.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85152112627 Puspitawati D.; Susilo E.; Cahyandari D.; Maharani D.P.; Fadli M.; Lutfi M.; Anggoro S.A.; Liemanto A.,"Puspitawati, Dhiana (57217972062); Susilo, Edi (57216261511); Cahyandari, Dewi (57791973300); Maharani, Diah P. (57215812478); Fadli, Mohammad (57194415966); Lutfi, Mustafa (57852782700); Anggoro, Syahriza A. (57433565400); Liemanto, Airin (57210827873)",57217972062; 57216261511; 57791973300; 57215812478; 57194415966; 57852782700; 57433565400; 57210827873,The design of regulatory reform in aquaculture in Indonesia: opportunities and threats of the implementation of SDGs in fisheries governance,2022,AACL Bioflux,15,3,,1215,1225,10,2,,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85133786224&partnerID=40&md5=7ad20c8f8cf1a2fe5996e9947a3bb4c7,"Faculty of Law, Brawijaya University, East Java, Malang, Indonesia; Faculty of Fisheries and Marine Science, Brawijaya University, East Java, Indonesia; Sharia Faculty, Maulana Malik Ibrahim Islamic State University Malang, East Java, Malang, Indonesia","Puspitawati D., Faculty of Law, Brawijaya University, East Java, Malang, Indonesia; Susilo E., Faculty of Fisheries and Marine Science, Brawijaya University, East Java, Indonesia; Cahyandari D., Faculty of Law, Brawijaya University, East Java, Malang, Indonesia; Maharani D.P., Faculty of Law, Brawijaya University, East Java, Malang, Indonesia; Fadli M., Faculty of Law, Brawijaya University, East Java, Malang, Indonesia; Lutfi M., Sharia Faculty, Maulana Malik Ibrahim Islamic State University Malang, East Java, Malang, Indonesia; Anggoro S.A., Faculty of Law, Brawijaya University, East Java, Malang, Indonesia; Liemanto A., Faculty of Law, Brawijaya University, East Java, Malang, Indonesia","The geographical position of the Indonesian archipelago is quite strategic to serve as the central maritime across continents. Abundant coastal and marine resources in Indonesia have not given any significant contribution to economic and national development. On a national scale, aquaculture management is expected to be sustainably performed and bring welfare to the locals. Aquaculture management in Indonesia is also expected to be more integrated in the future, as pertinent to the environmental capacity to allow the empowerment of the coastal people and islets. Marine resources and fisheries management require comprehensive, integrated, and appropriately-addressed policies. This article is emphasized on the urgency of law reform and trans-sectoral participation-based enforcement model, involving NGOs, business sectors, local community, and government that are integrated to underpin the food security agenda. This article opines that Indonesia needs to adopt SDGs framework in the design of aquaculture regulation in the time to come and merge the utilization and the development of technology proportionally, which is expected to yield civilized social, economic, and environmental sustainability. © 2022, BIOFLUX SRL. All rights reserved.",fisheries governance; food security; indonesia; regulatory framework; sgds,,"D. Puspitawati; Faculty of Law, Brawijaya University, Malang, East Java, Indonesia; email: dhiana@ub.ac.id",,BIOFLUX SRL,,,,,,18448143,,,,English,AACL Bioflux,Article,Final,,Scopus,2-s2.0-85133786224 Rahadian A.; Kusmana C.; Setiawan Y.; Prasetyo L.B.,"Rahadian, Aswin (57214138936); Kusmana, Cecep (30467860100); Setiawan, Yudi (36697084100); Prasetyo, Lilik Budi (35762297500)",57214138936; 30467860100; 36697084100; 35762297500,Adaptive Mangrove Ecosystem Rehabilitation Plan based on Coastal Typology and Ecological Dynamics Approach,2022,HAYATI Journal of Biosciences,29,4,,445,458,13,3,10.4308/hjb.29.4.445-458,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85130840157&doi=10.4308%2fhjb.29.4.445-458&partnerID=40&md5=451ba987c26bbe75cf9dbee0b8eccd50,"Natural Resources and Environmental Management Science, IPB University, Bogor, Indonesia; Department of Silviculture, Faculty of Forestry and Environment, IPB University, Bogor, Indonesia; Department of Forest Resource Conservation and Ecotourism, Faculty of Forestry and Environment, IPB University, Bogor, Indonesia","Rahadian A., Natural Resources and Environmental Management Science, IPB University, Bogor, Indonesia; Kusmana C., Department of Silviculture, Faculty of Forestry and Environment, IPB University, Bogor, Indonesia; Setiawan Y., Department of Forest Resource Conservation and Ecotourism, Faculty of Forestry and Environment, IPB University, Bogor, Indonesia; Prasetyo L.B., Department of Forest Resource Conservation and Ecotourism, Faculty of Forestry and Environment, IPB University, Bogor, Indonesia","Mangrove rehabilitation has implications for important ecological, social and economic values for coastal communities. The mangroves ecosystem Karawang Regency is still under pressure due to the management and utilization that does not pay attention to the sustainability aspect. The rehabilitation plan to mangrove management must be adapted to the nature and characteristics of the habitat. This study aims to formulate technical considerations for the direction of a rehabilitation plan based on an ecological approach and the dynamics of the mangrove ecosystem. The methods used in this study were geospatial approach that integrated with field quanitative and qualitative data. The results show that the total of mangrove potential area in Karawang Regency was 19,139.53 ha, consisting of 421.95 ha (2.2%) of vegetated area and 18,717.58 ha (97.8%) of unvegetated area. We integrate mangrove typology, mangrove stand density, physical parameters, and land use as the basis for determining the direction of rehabilitation planning. In the estuarine deltaic mangrove typology, we aim at protecting with natural regeneration. In infringe areas, we recommend constructing natural coastal structures before planting. On the backward for intensive planting. Furthermore, mangroves with low density, medium density, and high density are recommended for planting, species enrichment, and protecting respectively, and on the pond with implementing the mixed mangrove-aquaculture system to bridge between rehabilitation effort and economic needs of coastal communities. © 2022, Bogor Agricultural University. All rights reserved.",adaptability rehabilitation; coastal enhancement; geospatial approach; nature based solutions,,"A. Rahadian; Natural Resources and Environmental Management Science, IPB University, Bogor, Indonesia; email: ckmangrove@gmail.com",,Bogor Agricultural University,,,,,,19783019,,,,English,Hayati J. Biosciences,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85130840157 Billing S.-L.; Rostan J.; Tett P.; Macleod A.,"Billing, Suzannah-Lynn (57192379316); Rostan, Julie (57221047550); Tett, Paul (7003353929); Macleod, Adrian (55909321700)",57192379316; 57221047550; 7003353929; 55909321700,Is social license to operate relevant for seaweed cultivation in Europe?,2021,Aquaculture,534,,736203,,,,32,10.1016/j.aquaculture.2020.736203,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85098068940&doi=10.1016%2fj.aquaculture.2020.736203&partnerID=40&md5=ebd75b41e8bc48068ef7e728830775c1,"Scottish Association for Marine Science, Oban, PA37 1QA, Scotland, United Kingdom; The Bryden Centre, University of the Highlands and Islands, Scotland, United Kingdom","Billing S.-L., Scottish Association for Marine Science, Oban, PA37 1QA, Scotland, United Kingdom; Rostan J., Scottish Association for Marine Science, Oban, PA37 1QA, Scotland, United Kingdom, The Bryden Centre, University of the Highlands and Islands, Scotland, United Kingdom; Tett P., Scottish Association for Marine Science, Oban, PA37 1QA, Scotland, United Kingdom; Macleod A., Scottish Association for Marine Science, Oban, PA37 1QA, Scotland, United Kingdom","The need for more sustainable sources of food, chemicals, and energy, combined with the European Union's Blue Growth Agenda and national policies of European Economic Area member states, has facilitated increasing interest in the cultivation of seaweed in European waters. There have been several research projects looking at the economic and environmental feasibility of seaweed cultivation as a low carbon commercial endeavour, however there is very little in the way of contextual social research. Given mounting evidence of a decline in social acceptability of aquaculture activities (both shellfish and finfish) at a site level, it is imperative to improve understanding of where seaweed cultivation might fit within this picture. The aim of this study is to explore site-scale social interactions of seaweed cultivation using social license to operate as the analysis framework. Two in-depth case studies in were chosen to cover a developing commercial seaweed cultivation industry (France) and an embryonic one (Scotland) in addition to a survey of seaweed cultivation organisations across five European countries. The findings show that interpersonal relationships, perceptions of environmental risk, scale of decision-making and of operations, and communication were key to local perceptions of seaweed cultivation operations in both case studies. The views of seaweed cultivation organisations on social interactions and the usefulness of the social license to operate concept for this emergent industry is discussed. © 2020 Elsevier B.V.",consent; legitimacy; seaweed cultivation; social licence; trust,France; Scotland; United Kingdom; aquaculture; cultivation; environmental economics; European Union; finfish; human activity; national planning; seaweed; seaweed culture; shellfish culture; sustainability,"S.-L. Billing; Scottish Association for Marine Science, Oban, PA37 1QA, United Kingdom; email: suzi.billing@sams.ac.uk",,Elsevier B.V.,,,,,,00448486,,AQCLA,,English,Aquaculture,Article,Final,,Scopus,2-s2.0-85098068940 Nuryadi A.M.; Rosmalah S.; Muthalib Z.A.; Hartati; Zarliani W.O.A.; Rizka S.; Zulkarnain M.I.; Rijanto D.A.,"Nuryadi, Ahmad M. (57194542521); Rosmalah, Sitti (57194323329); Muthalib, Zulfikri A. (57477711300); Hartati (57194348200); Zarliani, Wa O. A. (58529002700); Rizka, Syahria (58529002800); Zulkarnain, Muh I. (58528605000); Rijanto, Dewa A. (58529271300)",57194542521; 57194323329; 57477711300; 57194348200; 58529002700; 58529002800; 58528605000; 58529271300,"A management design for cooperative-based seaweed cultivation business in Southeast Sulawesi Province, Indonesia",2023,AACL Bioflux,16,4,,1878,1886,8,3,,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85167396045&partnerID=40&md5=d83a1dbccc66182c824a7bf7c306be2e,"Study Program of Agribusiness, Faculty of Agriculture, Muhammadiyah Kendari University, Southeast Sulawesi, Kendari, Indonesia; Study Program of Management, Faculty of Economic, Muhammadiyah Kendari University, Southeast Sulawesi, Kendari, Indonesia; Study Program of Agribusiness, Faculty of Agriculture, Muhammadiyah Buton University, Southeast Sulawesi, Bau-Bau, Indonesia","Nuryadi A.M., Study Program of Agribusiness, Faculty of Agriculture, Muhammadiyah Kendari University, Southeast Sulawesi, Kendari, Indonesia; Rosmalah S., Study Program of Agribusiness, Faculty of Agriculture, Muhammadiyah Kendari University, Southeast Sulawesi, Kendari, Indonesia; Muthalib Z.A., Study Program of Management, Faculty of Economic, Muhammadiyah Kendari University, Southeast Sulawesi, Kendari, Indonesia; Hartati, Study Program of Agribusiness, Faculty of Agriculture, Muhammadiyah Kendari University, Southeast Sulawesi, Kendari, Indonesia; Zarliani W.O.A., Study Program of Agribusiness, Faculty of Agriculture, Muhammadiyah Buton University, Southeast Sulawesi, Bau-Bau, Indonesia; Rizka S., Study Program of Agribusiness, Faculty of Agriculture, Muhammadiyah Kendari University, Southeast Sulawesi, Kendari, Indonesia; Zulkarnain M.I., Study Program of Agribusiness, Faculty of Agriculture, Muhammadiyah Kendari University, Southeast Sulawesi, Kendari, Indonesia; Rijanto D.A., Study Program of Agribusiness, Faculty of Agriculture, Muhammadiyah Kendari University, Southeast Sulawesi, Kendari, Indonesia","Aquaculture is a sub-sector of the fisheries sector, which can bring benefits for the economy and welfare of the coastal community. The management of the sub-sector should be designed based on increasing added value, business sustainability, and regional development. Therefore, this study aims to design a management model for cooperative-based seaweed cultivation. The study was carried out in Southeast Sulawesi Province, taking two regencies, South Konawe and Bombana, as study locations. The method was conducted by surveying experts using the Exponential Comparison Method (MPE) analysis. The experts came from several parties, including universities, the fisheries service, the cooperative office, seaweed processing agro-industry managers, and cultivators. The results show that: (1) the management requires a cooperative with a strong capacity to build partnerships, with strength in the aspect of capital, and which can provide roles and services to seaweed cultivators; (2) it is necessary to increase the capacity of human resources in strengthening the cooperative capacity; the cooperative is required to build partnerships with the agro-industry, universities, and financial institutions; banks are needed to increase the cooperative role for the cultivators. Furthermore, the expansion of capital assistance, human resources, and infrastructure are vital. © 2023, BIOFLUX SRL. All rights reserved.",cooperative; development; model; seaweed,,"A.M. Nuryadi; Study Program of Agribusiness, Faculty of Agriculture, Muhammadiyah Kendari University, Kendari, Southeast Sulawesi, Indonesia; email: ahmadmuhlis24@yahoo.co.id",,BIOFLUX SRL,,,,,,18448143,,,,English,AACL Bioflux,Article,Final,,Scopus,2-s2.0-85167396045 Dong Y.; Zhou Y.; Zhang L.; Gu Y.; Sutrisno D.,"Dong, Yuqi (57223006415); Zhou, Yu (57221212696); Zhang, Li (58853352100); Gu, Yu (57203816986); Sutrisno, Dewayany (55349853100)",57223006415; 57221212696; 58853352100; 57203816986; 55349853100,Intensive land-use is associated with development status in port cities of Southeast Asia,2023,Environmental Research Letters,18,4,044006,,,,7,10.1088/1748-9326/acc2d2,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85151032890&doi=10.1088%2f1748-9326%2facc2d2&partnerID=40&md5=343ae06b85e189371c8968779f47377c,"Key Laboratory of Digital Earth Science, Aerospace Information Research Institute, Chinese Academy of Sciences, Beijing, 100094, China; International Research Center of Big Data for Sustainable Development Goals, Beijing, 100094, China; University of Chinese Academy of Sciences, Beijing, 100094, China; School of Integrative Plant Science, Cornell University, Ithaca, 14850, NY, United States; School of Geography and Planning, Sun Yat-sen University, Guangzhou, 510275, China; Research Center for Geospatial, National Research and Innovation Agency, Jalan Raya Jakarta Bogor Km 46, Cibinong, 16911, Indonesia","Dong Y., Key Laboratory of Digital Earth Science, Aerospace Information Research Institute, Chinese Academy of Sciences, Beijing, 100094, China, International Research Center of Big Data for Sustainable Development Goals, Beijing, 100094, China, University of Chinese Academy of Sciences, Beijing, 100094, China; Zhou Y., School of Integrative Plant Science, Cornell University, Ithaca, 14850, NY, United States; Zhang L., Key Laboratory of Digital Earth Science, Aerospace Information Research Institute, Chinese Academy of Sciences, Beijing, 100094, China, International Research Center of Big Data for Sustainable Development Goals, Beijing, 100094, China; Gu Y., Key Laboratory of Digital Earth Science, Aerospace Information Research Institute, Chinese Academy of Sciences, Beijing, 100094, China, School of Geography and Planning, Sun Yat-sen University, Guangzhou, 510275, China; Sutrisno D., Research Center for Geospatial, National Research and Innovation Agency, Jalan Raya Jakarta Bogor Km 46, Cibinong, 16911, Indonesia","Port cities in Southeast Asia (SEA) have been undergoing intensive land use and land cover change (LUCC) because of rapid socio-economic development in recent decades. However, various development statuses among these cities could result in divergent LUCC transitions and therefore affect the local ecosystem at different levels. This study investigated the historic land-use transition in the SEA port cities by classifying Landsat images from 1990 to 2020 with the random forest algorithm, and further integrated these patterns with land-use modeling to inform the future land uses under the current developing mode. DIVISON was used to assess land-use fragmentation and investigated its relationship with development levels represented by the average nighttime light index (ANLI). The results showed an intensive LUCC in SEA port cities in 1990-2020, with artificial surface increasing by 9.2% (175.9 km2) of the total area, mainly converted from cultivated land which decreased by 136.9 km2. An inverted V-shaped relationship between fragmentation and development level was found at the landscape level and for cultivated land, in which both turning points (TPs) occurred in the mid-developed stage (ANLI = 41.1 and 20.0, respectively). Artificial surfaces tended to be more aggregated in later developed stages, showing a TP of ANLI around 53.2. Under the current developing mode, the aggregation trend will be generally continued for the next three decades, mainly resulting from the increased connection in artificial surfaces. The findings also highlighted a tradeoff between city development and agricultural production in SEA port cities, leading to increased food insecurity in more developed stages. Recent developments also negatively affected aqua ecosystems, such as aquaculture, mangroves, and natural waterbodies in several cities. This study underscored the importance of the sustainable LUCC strategy in SEA port cities and provides insights into rationalizing land-use policies for other port cities worldwide. © 2023 The Author(s). Published by IOP Publishing Ltd.",aquaculture; cropland; land cover; sdg; socioeconomic; sustainability; urban expansion,Southeast Asia; Aquaculture; Economic and social effects; Economics; Ecosystems; Forestry; Urban growth; Aquaculture ponds; Cropland; Intensive land use; Land cover; Land use and land cover change; Port city; SDG; Socio-economics; Southeast Asia; Urban expansion; agricultural land; agricultural production; algorithm; development level; intensive agriculture; land cover; land use change; Landsat; pond culture; satellite imagery; socioeconomic conditions; sustainability; Sustainable Development Goal; urban development; Land use,"Y. Zhou; School of Integrative Plant Science, Cornell University, Ithaca, 14850, United States; email: zhouy.work@gmail.com; L. Zhang; Key Laboratory of Digital Earth Science, Aerospace Information Research Institute, Chinese Academy of Sciences, Beijing, 100094, China; email: zhangli@aircas.ac.cn",,Institute of Physics,,,,,,17489318,,,,English,Environ.Res.Lett.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85151032890 Ugalde S.C.; Vu S.V.; Giang C.T.; Ngoc N.T.H.; Tran T.K.A.; Mullen J.D.; Van In V.; O'Connor W.,"Ugalde, Sarah C. (55775188300); Vu, Sang V. (57214362662); Giang, Cao Truong (57212247929); Ngoc, Nguyen Thi Hong (58042174500); Tran, Thi Kim Anh (57149755000); Mullen, John D. (7202991447); Van In, Vu (51261570600); O'Connor, Wayne (23025552100)",55775188300; 57214362662; 57212247929; 58042174500; 57149755000; 7202991447; 51261570600; 23025552100,"Status, supply chain, challenges, and opportunities to advance oyster aquaculture in northern Vietnam",2023,Aquaculture,572,,739548,,,,7,10.1016/j.aquaculture.2023.739548,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85152272808&doi=10.1016%2fj.aquaculture.2023.739548&partnerID=40&md5=81aa86b02e0b8d9f1a26ac4b21379fbc,"Institute for Marine and Antarctic Studies, University of Tasmania, Private Bag 49, Hobart, 7001, TAS, Australia; Centre for Marine Socioecology, University of Tasmania, Hobart, TAS, Australia; Research Institute for Aquaculture No.1, Dinh Bang, Tu Son, Bac Ninh, 16352, Viet Nam; School of Agriculture and Natural Resources, Vinh University, Vinh, 460000, Viet Nam; Global Innovative Centre for Advanced Nanomaterials, College of Engineering, Science and Environment, The University of Newcastle, Callaghan, 2308, NSW, Australia; Economist, Orange, 2800, NSW, Australia; NSW Department of Primary Industries, Port Stephens Fisheries Institute, Taylors Beach, 2316, NSW, Australia","Ugalde S.C., Institute for Marine and Antarctic Studies, University of Tasmania, Private Bag 49, Hobart, 7001, TAS, Australia, Centre for Marine Socioecology, University of Tasmania, Hobart, TAS, Australia; Vu S.V., Research Institute for Aquaculture No.1, Dinh Bang, Tu Son, Bac Ninh, 16352, Viet Nam; Giang C.T., Research Institute for Aquaculture No.1, Dinh Bang, Tu Son, Bac Ninh, 16352, Viet Nam; Ngoc N.T.H., Research Institute for Aquaculture No.1, Dinh Bang, Tu Son, Bac Ninh, 16352, Viet Nam; Tran T.K.A., School of Agriculture and Natural Resources, Vinh University, Vinh, 460000, Viet Nam, Global Innovative Centre for Advanced Nanomaterials, College of Engineering, Science and Environment, The University of Newcastle, Callaghan, 2308, NSW, Australia; Mullen J.D., Economist, Orange, 2800, NSW, Australia; Van In V., Research Institute for Aquaculture No.1, Dinh Bang, Tu Son, Bac Ninh, 16352, Viet Nam; O'Connor W., NSW Department of Primary Industries, Port Stephens Fisheries Institute, Taylors Beach, 2316, NSW, Australia","Oyster aquaculture in northern Vietnam is a new and growing industry that brings benefits to coastal communities. By understanding the oyster supply chain, the potential value can be fully explored, and socio-economic and environmental gains targeted. This study surveyed industry representatives – from farm to plate – to examine the industry status, distribution network, challenges, and opportunities. Four broad distribution network models were identified: direct-to-sale, wholesaler, cooperative/processor, and retailer. These models are quite different and comparing them is complex. A reduction in the marketing margin in any supply chain is likely to result in shared economic and/or welfare gains for pre-harvest elements, elements in the value chain, and consumers. Similarly, lower farm production and hatchery costs and increased consumer demand would result in welfare gains shared along the supply chain, although these do not necessarily translate to changes in the marketing margin. Key challenges were associated with spatial and marine development planning, lack of monitoring, collaboration/coordination along the supply chain, market price variation and consumers. Challenges were further explored in the categories of collaboration/coordination, regulation, and export. Opportunities exist to better understand how oyster shell might be used as a by-product such as a livestock mineral supplement, in soil acidity management, and in crop and vegetable growth. Almost half of the survey respondents have oyster shell as a by-product, suggesting the potential for carbon offset schemes could also be explored, at least to the extent to which they ameliorate the carbon footprint of the industry. These opportunities could advance and value-add to oyster aquaculture in northern Vietnam. © 2023",aquaculture; asia; bivalve; oyster; supply chain; vietnam,Viet Nam; acidity; bivalve; byproduct; carbon footprint; hatchery; marketing; shellfish culture; socioeconomic conditions; supply chain management,"S.C. Ugalde; Institute for Marine and Antarctic Studies, University of Tasmania, Hobart, Private Bag 49, 7001, Australia; email: sarah.ugalde@utas.edu.au",,Elsevier B.V.,,,,,,00448486,,AQCLA,,English,Aquaculture,Article,Final,,Scopus,2-s2.0-85152272808 Robinson J.P.W.; Garrett A.; Paredes Esclapez J.C.; Maire E.; Parker R.W.R.; Graham N.A.J.,"Robinson, James P. W. (55899015900); Garrett, Angus (57427263500); Paredes Esclapez, Juan Carlos (58025400600); Maire, Eva (56652531200); Parker, Robert W. R. (55636317798); Graham, Nicholas A. J. (8503393500)",55899015900; 57427263500; 58025400600; 56652531200; 55636317798; 8503393500,Navigating sustainability and health trade-offs in global seafood systems,2022,Environmental Research Letters,17,12,124042,,,,7,10.1088/1748-9326/aca490,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85144508133&doi=10.1088%2f1748-9326%2faca490&partnerID=40&md5=72998f4c41f7be4090eca64a898d326c,"Lancaster Environment Centre, Lancaster University, Lancaster, LA1 4YQ, United Kingdom; Seafish, Edinburgh, EH7 4HS, United Kingdom; Dalhousie University, Halifax, NS, Canada","Robinson J.P.W., Lancaster Environment Centre, Lancaster University, Lancaster, LA1 4YQ, United Kingdom; Garrett A., Seafish, Edinburgh, EH7 4HS, United Kingdom; Paredes Esclapez J.C., Seafish, Edinburgh, EH7 4HS, United Kingdom; Maire E., Lancaster Environment Centre, Lancaster University, Lancaster, LA1 4YQ, United Kingdom; Parker R.W.R., Dalhousie University, Halifax, NS, Canada; Graham N.A.J., Lancaster Environment Centre, Lancaster University, Lancaster, LA1 4YQ, United Kingdom","Seafood is expected to play a key role in improving access to healthy diets while providing food products with relatively low rates of greenhouse gas emissions. However, both nutrients and carbon footprints vary among species and production methods, and seafood consumption is further influenced by price and consumer preference, such that it is unclear which species are best placed to provide low-emissions nutritious seafood. Here, we use seafood production data to assess the nutritional value, carbon emissions, sustainability, affordability, and availability of seafood available to UK consumers. Globally, most seafood products are more nutritious and emit lower greenhouse gases than terrestrial animal-source foods, particularly small pelagic fishes and bivalves that contributed to recommended intakes for 3-4 essential dietary nutrients at the lowest emissions. For seafood products relevant to UK markets and consumers, Atlantic mackerel had the highest availability (i.e. landings) of all wild-caught UK seafood and lowest carbon footprint of all finfish, with one fillet portion exceeding recommended intakes of three nutrients (selenium, vitamins B12 and D). We found that price and sustainability of UK seafood, both factors in consumer demand, had considerable trade-offs with nutrients, carbon footprint, and availability. Farmed salmon, for example, were produced in large volumes but were relatively more expensive than other seafood, whereas highly nutritious, low-emissions farmed mussels had limited production volumes. The UK’s seafood system is therefore not currently optimised to produce nutritious, low-emissions seafood in large amounts. Policies that promote local consumption of affordable species already produced in high volumes, such as mackerel, could improve intakes of nutrients that are deficient in the UK population at relatively low environmental cost. © 2022 The Author(s). Published by IOP Publishing Ltd.",aquaculture; blue foods; fisheries; greenhouse gas emissions; health; seafood; sustainability,Atlantic Ocean; Commerce; Economic and social effects; Farms; Gas emissions; Greenhouse gases; Meats; Molluscs; Nutrients; Nutrition; Sustainable development; Blue food; Carbon availability; Greenhouse gas emissions; Healthy diet; Low emission; Low rates; Production methods; Seafood; Seafood products; Trade off; aquaculture; fishery production; greenhouse gas; seafood; sustainability; trade-off; Carbon footprint,"J.P.W. Robinson; Lancaster Environment Centre, Lancaster University, Lancaster, LA1 4YQ, United Kingdom; email: james.robinson@lancaster.ac.uk",,Institute of Physics,,,,,,17489318,,,,English,Environ.Res.Lett.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85144508133 He Y.; Huang S.; Tang Y.,"He, Yuru (57204909802); Huang, Shuolin (53063823600); Tang, Yi (57254637400)",57204909802; 53063823600; 57254637400,Sustainable Practicalities towards Good Governance in Fish Townships and Villages by Ethics-Based Approach,2022,Sustainability (Switzerland),14,12,7505,,,,6,10.3390/su14127505,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85132846865&doi=10.3390%2fsu14127505&partnerID=40&md5=06bcb6700b243b3d0d22e032038b53ba,"Institute of Marine Science, Shanghai Ocean University, Shanghai, 201306, China; College of Foreign Languages, Shanghai Ocean University, Shanghai, 201306, China; College of Marine Culture and Law, Shanghai Ocean University, Shanghai, 201306, China; Fisheries Law Research and Consulting Center, Shanghai, 201306, China","He Y., Institute of Marine Science, Shanghai Ocean University, Shanghai, 201306, China, College of Foreign Languages, Shanghai Ocean University, Shanghai, 201306, China; Huang S., Institute of Marine Science, Shanghai Ocean University, Shanghai, 201306, China, College of Marine Culture and Law, Shanghai Ocean University, Shanghai, 201306, China; Tang Y., College of Marine Culture and Law, Shanghai Ocean University, Shanghai, 201306, China, Fisheries Law Research and Consulting Center, Shanghai, 201306, China","As humanity’s moral failure leads to wild aquatic resources decline, habitat destruction and community tension, an ethically sound path towards good governance is increasingly needed globally. To epitomize sustainable paradigm shifts of grassroots practicalities in the fish sector, an ethical governance framework is initially conceptualized with a meta-governance infrastructure and a value-based decision-making mechanism. The ethical approach is then contextualized by using fish-specific evidence and outlining evolution of participatory fisheries and aquaculture management in rural China as a case study. The empirical investigation of socio-ecological justice manifested in social empowerment, ethical conduct and ecological resilience reveals that in China: fisheries and aquaculture governance models have been transforming from hierarchical governance to integrated governance combining hierarchy, market and community; participatory ethics are embedded in civil organizations upgraded from fishery association, offices, leagues to societies and cooperatives, indicating a multi-stakeholder governance mechanism steered by the government as meta-governor; villagers’ committees play a critical intermediary role in extending township governance and promoting autonomy of fishermen (farmers); local knowledge and traditional code of conduct regulates fish activities of fishermen (farmers) ready for community cooperation and mutual assistance; fish communities adopt socio-ecological measures to ensure property rights to fish (farm) and conserve aquatic resources. The current study aims to provide value reference in leveraging justified policy tools while promoting legitimacy of fish grassroots governance, in hope of contributing to a greener future of fisheries and aquaculture worldwide. © 2022 by the authors. Licensee MDPI, Basel, Switzerland.",ethics; fish village; grassroots governance; socio-ecological systems; sustainability,China; autonomy; conceptual framework; decision making; ethics; fishing community; governance approach; grassroots level; habitat fragmentation; participatory approach; sustainability,"Y. Tang; College of Marine Culture and Law, Shanghai Ocean University, Shanghai, 201306, China; email: ytang@shou.edu.cn",,MDPI,,,,,,20711050,,,,English,Sustainability,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85132846865 Vijaya Pandi P.; Karthi N.; Dhivya S.; Krishnamoorthy P.R.; Jashwanth M.; Asir Ramesh D.,"Vijaya Pandi, P. (57886108800); Karthi, N. (58043248500); Dhivya, S. (57885422600); Krishnamoorthy, P.R. (57886108900); Jashwanth, M. (57885422700); Asir Ramesh, D. (57886348900)",57886108800; 58043248500; 57885422600; 57886108900; 57885422700; 57886348900,"Economic valuation of ecosystem services for application of circular economy approach in conservation of Kundapura mangroves of Karnataka, India",2022,Environmental Quality Management,32,2,,187,196,9,5,10.1002/tqem.21919,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85137764477&doi=10.1002%2ftqem.21919&partnerID=40&md5=96e56c2887b719ac374d0643aa0b7790,"Integrated Social Sciences and Economics Division Team(ISE), National Centre for Sustainable Coastal Management (NCSCM), Tamil Nadu, Chennai, India; Ministry of Environment, Forest & Climate Change (MoE&F), Government of India, Anna University Campus, Tamil Nadu, Chennai, India","Vijaya Pandi P., Integrated Social Sciences and Economics Division Team(ISE), National Centre for Sustainable Coastal Management (NCSCM), Tamil Nadu, Chennai, India, Ministry of Environment, Forest & Climate Change (MoE&F), Government of India, Anna University Campus, Tamil Nadu, Chennai, India; Karthi N., Integrated Social Sciences and Economics Division Team(ISE), National Centre for Sustainable Coastal Management (NCSCM), Tamil Nadu, Chennai, India, Ministry of Environment, Forest & Climate Change (MoE&F), Government of India, Anna University Campus, Tamil Nadu, Chennai, India; Dhivya S., Integrated Social Sciences and Economics Division Team(ISE), National Centre for Sustainable Coastal Management (NCSCM), Tamil Nadu, Chennai, India, Ministry of Environment, Forest & Climate Change (MoE&F), Government of India, Anna University Campus, Tamil Nadu, Chennai, India; Krishnamoorthy P.R., Integrated Social Sciences and Economics Division Team(ISE), National Centre for Sustainable Coastal Management (NCSCM), Tamil Nadu, Chennai, India, Ministry of Environment, Forest & Climate Change (MoE&F), Government of India, Anna University Campus, Tamil Nadu, Chennai, India; Jashwanth M., Integrated Social Sciences and Economics Division Team(ISE), National Centre for Sustainable Coastal Management (NCSCM), Tamil Nadu, Chennai, India, Ministry of Environment, Forest & Climate Change (MoE&F), Government of India, Anna University Campus, Tamil Nadu, Chennai, India; Asir Ramesh D., Integrated Social Sciences and Economics Division Team(ISE), National Centre for Sustainable Coastal Management (NCSCM), Tamil Nadu, Chennai, India, Ministry of Environment, Forest & Climate Change (MoE&F), Government of India, Anna University Campus, Tamil Nadu, Chennai, India","Coastal areas are overwhelmingly rich in resources and support the livelihoods of the local communities. Coastal mangrove ecosystem provides a wide range of goods and services for human needs and wellbeing. To value conservation benefits of 252.29 ha extent of Kundapura mangrove ecosystem's goods and services, an economic valuation study was conducted using Systems of Environmental Economics Accounting (SEEA) framework. In total, seven ecosystem benefits were identified under provisioning, regulating and cultural services categories of SEEA. Identified baskets of benefits are fisheries, timber, fuelwood, protection against storms and floods, water quality maintenance, carbon sequestration, recreation and tourism. Out of seven benefits, the present study has found that the disturbance regulation benefit's contribution, which is about 92.65% of overall benefits with its economic value, US$1.786 million per year (17.86 lakh). Disturbance regulation benefit has significant role in reducing the impact of vulnerability from coastal hazards and sheltering 4354 individuals of population occupying 1088 houses. Despite that fact, Kundapura mangrove's assets are being degraded by various negative externalities. Particularly reclamation for aquaculture purpose and consequent discharging of the effluents, and dumping of sludge and municipal solid wastes (MSWs). These externalities would exacerbate the environmental problems and impacts on the flow of benefits. Hence, circular economic approach as pioneering to renovate the current linear system into circular one through 3R's strategy (reduce, reuse, and recycle) in the process of production, distribution, and consumption of ecosystem goods and services. This research paper explains about the application of circular economic approach in conservation management by assessing economic valuation of Kundapura mangrove's specific services. This approach is expected to finally result in aiding decision-making process to limit the quantity of polluting residuals and control the degradation activities thereby sustain the mangroves in good health. Further the regeneration and expansion of mangrove extent would improve the mangrove-dependent fishery, promote sustainable tourism, and maximize the coastal protection and economic benefits in this region. This will go a long way in sustaining the health of the otherwise fragile mangrove ecosystem of Kundapura coastal stretch, which is under the category of Critically Vulnerable Coastal Areas (CCVAs), identified under CRZ of India. © 2022 Wiley Periodicals LLC.",circular economy; economic benefits; externalities; goods and services; vulnerability,India; Karnataka; coastal zone; conservation management; decision making; ecosystem service; mangrove; species conservation; valuation; vulnerability,"P. Vijaya Pandi; integrated Social Sciences and Economics Division Team (ISE), National centre for sustainable Coastal Management of Environment, Forest & Climate Change (MoE&F), Government of India, Chennai, Annae University Campus, Tamil Nadu, India; email: vijaypandi1986@gmail.com",,John Wiley and Sons Inc,,,,,,10881913,,,,English,Environ. Qual. Manage.,Article,Final,,Scopus,2-s2.0-85137764477 Kraly P.; Weitzman J.; Filgueira R.,"Kraly, Paul (57244676400); Weitzman, Jenny (57191991117); Filgueira, Ramón (16549712900)",57244676400; 57191991117; 16549712900,Understanding factors influencing social acceptability: Insights from media portrayal of salmon aquaculture in Atlantic Canada,2022,Aquaculture,547,,737497,,,,25,10.1016/j.aquaculture.2021.737497,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85116038643&doi=10.1016%2fj.aquaculture.2021.737497&partnerID=40&md5=1c83ba3873a6c188babc03fbf3c37bd8,"Marine Affairs Program, Dalhousie University, 1355 Oxford Street, Halifax, B3H 4R2, NS, Canada","Kraly P., Marine Affairs Program, Dalhousie University, 1355 Oxford Street, Halifax, B3H 4R2, NS, Canada; Weitzman J., Marine Affairs Program, Dalhousie University, 1355 Oxford Street, Halifax, B3H 4R2, NS, Canada; Filgueira R., Marine Affairs Program, Dalhousie University, 1355 Oxford Street, Halifax, B3H 4R2, NS, Canada","In Canada, Atlantic salmon (S. salar) aquaculture has been growing rapidly and is consistently being promoted for its potential to support economic growth and employment opportunities, particularly in rural communities. However, salmon aquaculture is a controversial topic, making acquiring and maintaining social acceptance an enduring challenge. The factors that drive the acceptability of aquaculture by neighbouring communities and wider society are poorly understood and are influenced by local settings. This research investigated how salmon aquaculture has been portrayed in the media in Atlantic Canada over a 15-year time frame to explore potential factors influencing the social acceptability of salmon aquaculture in Atlantic Canada. Results highlight that perceived environmental risks were major factors influencing the portrayal of aquaculture by the media, while social and economic risks to local communities were also prominent. Comparing regions found differences in the tone in which aquaculture was portrayed, despite little difference in the topics discussed in the media. These findings suggest that acceptance may be affected by the age of the industry as areas with a longer history of aquaculture encounter less negative media. These findings may help bring to light the most relevant and prominent concerns that drive social acceptance of salmon aquaculture in Atlantic Canada, and how the surrounding communities may be affected by such government policies and decisions. © 2021 The Authors",aquaculture; atlantic canada; media analysis; salmon; social acceptance,Canada; Salmo salar; detection method; economic growth; environmental risk; government; growth; policy approach; rural population; salmonid; salmonid culture,"P. Kraly; Marine Affairs Program, Dalhousie University, Halifax, 1355 Oxford Street, B3H 4R2, Canada; email: paul.kraly@dal.ca",,Elsevier B.V.,,,,,,00448486,,AQCLA,,English,Aquaculture,Article,Final,All Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85116038643 Heting Z.; Yongjiang X.; Yan J.; Aijun C.; Bin W.; Xuezhou L.,"Heting, Zhou (57930760200); Yongjiang, Xu (7406449654); Yan, Jiang (57537065400); Aijun, Cui (57538302500); Bin, Wang (57210743277); Xuezhou, Liu (7409291615)",57930760200; 7406449654; 57537065400; 57538302500; 57210743277; 7409291615,Microecological regulation of gastrointestinal microflora in the growth of yellowtail kingfish (Seriola lalandi) juveniles under indoor tank culture and cage culture modes; [两种养殖模式下黄条鰤幼鱼消化道菌群对生长的微生态调控作用],2022,Journal of Fishery Sciences of China,29,10,,1437,1448,11,0,10.12264/JFSC2022-0185,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85141771610&doi=10.12264%2fJFSC2022-0185&partnerID=40&md5=0a5348e0a2ed7797ee47de70cde636c6,"Yellow Sea Fisheries Research Institute, Chinese Academy of Fishery Sciences, Joint Laboratory for Deep Blue Fishery Engineering of Qingdao National Laboratory for Marine Science and Technology, Qingdao, 266071, China; School of Fisheries and Life Sciences, Shanghai Ocean University, Shanghai, 201306, China","Heting Z., Yellow Sea Fisheries Research Institute, Chinese Academy of Fishery Sciences, Joint Laboratory for Deep Blue Fishery Engineering of Qingdao National Laboratory for Marine Science and Technology, Qingdao, 266071, China, School of Fisheries and Life Sciences, Shanghai Ocean University, Shanghai, 201306, China; Yongjiang X., Yellow Sea Fisheries Research Institute, Chinese Academy of Fishery Sciences, Joint Laboratory for Deep Blue Fishery Engineering of Qingdao National Laboratory for Marine Science and Technology, Qingdao, 266071, China; Yan J., Yellow Sea Fisheries Research Institute, Chinese Academy of Fishery Sciences, Joint Laboratory for Deep Blue Fishery Engineering of Qingdao National Laboratory for Marine Science and Technology, Qingdao, 266071, China; Aijun C., Yellow Sea Fisheries Research Institute, Chinese Academy of Fishery Sciences, Joint Laboratory for Deep Blue Fishery Engineering of Qingdao National Laboratory for Marine Science and Technology, Qingdao, 266071, China; Bin W., Yellow Sea Fisheries Research Institute, Chinese Academy of Fishery Sciences, Joint Laboratory for Deep Blue Fishery Engineering of Qingdao National Laboratory for Marine Science and Technology, Qingdao, 266071, China; Xuezhou L., Yellow Sea Fisheries Research Institute, Chinese Academy of Fishery Sciences, Joint Laboratory for Deep Blue Fishery Engineering of Qingdao National Laboratory for Marine Science and Technology, Qingdao, 266071, China","Growth is one of the most important economic traits in aquaculture and is directly related to the financial benefits of farming. It is influenced by a number of factors, including genetic and environmental factors. When faced with different environments, fish growth is not only regulated by their own physiological conditions but also by symbionts, such as gastrointestinal microbiota. To investigate the differences in the growth of yellowtail kingfish juveniles under two culture modes, namely indoor tank and deep sea cage culture, and their relationship with gastrointestinal flora, as well as with feed microbiota and culture water microbiota, six-month-old fish of the same size at (17.23±0.99) cm and body mass at (77.44±11.58) g were selected for a 30-day culture experiment under these two culture modes. The differences in the rate of yellowtail kingfish juvenile growth under these two culture modes were recorded. The structure and abundance of gastrointestinal microbiota (stomach, pyloric blind sac, and intestine), as well as feed and culture water microbiota, were analyzed by 16S rRNA high-throughput sequencing and bioinformatic analysis. The results showed that the growth of cage cultured juvenile yellowtail kingfish was significantly faster than that of indoor tank cultured fish. As for the gastrointestinal microbiota of juveniles cultured in cage, the abundance of Bacteroidetes and Firmicutes at the phylum level, as well as the abundance of Alloprevotella and Bacteroides at the genus level, were higher than in indoor tank cultured fish, wherein the abundance of Bacteroides was significantly higher. The composition of the gastrointestinal microbiota of the indoor tank cultured fish was different from that of the feed microbiota and significantly different from that of culture water microbiota, whereas the composition of the gastrointestinal microbiota of fish from cage culture was more similar with that of the feed microbiota but also significantly different from that of the culture water microbiota. Beta diversity analysis showed that the gastrointestinal microbiota of juvenile yellowtail kingfish was more influenced by feed microbiota and less by the culture water bacterial community. KEGG annotation analysis showed that the main functional pathways involved in the gastrointestinal microbiota of juvenile yellowtail kingfish in the cage culture were the phosphotransferase system (PTS) and NOD-like receptor signaling pathway, whereas carbohydrate metabolism and the carotenoid biosynthesis pathway were found in the indoor tank cultured fish. These results indicate that the gastrointestinal microbiota regulate the growth of yellowtail kingfish juveniles under indoor tank and cage culture conditions by changing their structure and abundance, as well as via functional pathways. Moreover, feed microbiota had a greater influence on gastrointestinal microbiota than culture water microbiota. According to these results, the faster growth of cage cultured fish may be due to the production of more short-chain fatty acid (SCFA) by gastrointestinal microbiota (e.g., Alloprevotella and Bacteroides) to induce the production of insulin-like growth factor 1 (IGF-1). These findings provide micro-ecological support for high-efficient commercial feed and healthy culture technology for yellowtail kingfish. © 2022, Journal of Fishery Sciences of China. All Rights Reserved.",cage culture; gastrointestinal microbiota; growth; indoor tank culture; seriola lalandi,,"X. Yongjiang; Yellow Sea Fisheries Research Institute, Chinese Academy of Fishery Sciences, Joint Laboratory for Deep Blue Fishery Engineering of Qingdao National Laboratory for Marine Science and Technology, Qingdao, 266071, China; email: xuyj@ysfri.ac.cn",,Chinese Academy of Fishery Sciences,,,,,,10058737,,,,English,J. Fishery Sci. China,Article,Final,,Scopus,2-s2.0-85141771610 Lasima W.; Supriyono E.; Junior M.Z.; Budiharsono S.; Nirmal K.; Sukenda,"Lasima, Wisriati (58641757400); Supriyono, Eddy (56688550300); Junior, Muhammad Zairin (58640855100); Budiharsono, Sugeng (57208154095); Nirmal, Kukuh (58641992700); Sukenda (57112541000)",58641757400; 56688550300; 58640855100; 57208154095; 58641992700; 57112541000,"The implementation strategy of Ecosystem Approach to Aquaculture (EAA) shrimp commodities in Pinrang District, South Sulawesi",2021,Jurnal Pengelolaan Sumberdaya Alam dan Lingkungan,11,3,,504,512,8,0,10.29244/jpsl.11.3.504-512,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85173814361&doi=10.29244%2fjpsl.11.3.504-512&partnerID=40&md5=16d36c59b479cd63e58d8b807a02c27e,"Aquaculture Study Program, Graduate School, IPB University, Darmaga, Bogor, 16680, Indonesia; Department of Aquaculture, Faculty of Fisheries and Marine Sciences, IPB University, Darmaga, Bogor, 16680, Indonesia; Postgraduate Program, University of Nusa Bangsa, Jl. KH Sholeh Iskandar KM 4, Tanah Sareal, Bogor, 16166, Indonesia","Lasima W., Aquaculture Study Program, Graduate School, IPB University, Darmaga, Bogor, 16680, Indonesia; Supriyono E., Department of Aquaculture, Faculty of Fisheries and Marine Sciences, IPB University, Darmaga, Bogor, 16680, Indonesia; Junior M.Z., Department of Aquaculture, Faculty of Fisheries and Marine Sciences, IPB University, Darmaga, Bogor, 16680, Indonesia; Budiharsono S., Postgraduate Program, University of Nusa Bangsa, Jl. KH Sholeh Iskandar KM 4, Tanah Sareal, Bogor, 16166, Indonesia; Nirmal K., Department of Aquaculture, Faculty of Fisheries and Marine Sciences, IPB University, Darmaga, Bogor, 16680, Indonesia; Sukenda, Department of Aquaculture, Faculty of Fisheries and Marine Sciences, IPB University, Darmaga, Bogor, 16680, Indonesia","This study aims to develop a strategy for the sustainability of shrimp aquaculture using an ecosystem approach or EAA in Pinrang Regency, South Sulawesi. A series of analyzes were carried out, namely the environmental carrying capacity analysis of aquaculture using pond environmental feasibility standards, analysis of critical factors for the sustainability of aquaculture using multidimensional scaling analysis, analysis of the sustainability status of aquaculture using pairwise comparison analysis and analysis of shrimp aquaculture management strategies based on EAA. Using hierarchy process analysis. The results showed that the following strategies were needed: a) accelerating spatial planning and implementing programs in accordance with the directions for spatial use and control; b) institutional strengthening of capital cultivators in order to complement and improve facilities and infrastructure in accordance with the SOP; and c) increasing the level of education and providing a social and economic security system for members of the shrimp farming community. © 2021, Pusat Penelitian Lingkungan Hidup - Lembaga Penelitian dan Pengabdian Kepada Masyarakat Institut Pertanian Bogor (PPLH-LPPM IPB). All rights reserved.",ecosystem services; shrimp; sustainability,,"E. Supriyono; Department of Aquaculture, Faculty of Fisheries and Marine Sciences, IPB University, Indonesia; email: eddysupriyonoiipb@gmail.com",,Pusat Penelitian Lingkungan Hidup - Lembaga Penelitian dan Pengabdian Kepada Masyarakat Institut Pertanian Bogor (PPLH-LPPM IPB),,,,,,20864639,,,,English,J. Pengelolaan. Sumberd. Alam. Lingkung.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85173814361 Garza-Gil M.ª.D.; Varela-Lafuente M.M.; Pérez-Pérez M.I.,"Garza-Gil, Mª Dolores (6506143656); Varela-Lafuente, Manuel M. (6507715965); Pérez-Pérez, Marcos I. (56055802500)",6506143656; 6507715965; 56055802500,The blue economy in the european union: Valuation of spanish small-scale fishers’ perceptions on environmental and socioeconomic effects,2021,Panoeconomicus,68,4,,461,481,20,7,10.2298/PAN180425013G,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85118359025&doi=10.2298%2fPAN180425013G&partnerID=40&md5=47356763a70fe0d7398b60569c2c30d5,"University of Vigo, Department of Applied Economics, Vigo, Spain","Garza-Gil M.ª.D., University of Vigo, Department of Applied Economics, Vigo, Spain; Varela-Lafuente M.M., University of Vigo, Department of Applied Economics, Vigo, Spain; Pérez-Pérez M.I., University of Vigo, Department of Applied Economics, Vigo, Spain","Summary: European coastline has undergone a transformation in becoming a significant sector of the economy. The economic importance of aquaculture, coastal and maritime tourism, and industry based on oceanic energy is crucial for explaining that transformation. The European “blue growth” generates employment and economic opportunities but could have major environmental effects on coastal zones. This could become inimical to small-scale fishing and those communities that depend heavily on fishing. This paper studies the Spanish fishers’ perceptions to the linkages between the Blue Growth and small-scale fishing. Results show a significantly positive attitude toward potential contribution of blue growth to socioeconomic development and a significantly negative perception on environmental impact of such activities. Interactions are identified as well as possible opportunities that Blue Growth could offer to small-scale fishing. Recommendations for Blue Growth strategy are provided. © 2021, Savez Ekonomista Vojvodine. All rights reserved.",blue economy; coastal management; environmental sustainability; perceptions and attitudes; small-scale fisheries,,"M.ª.D. Garza-Gil; University of Vigo, Department of Applied Economics, Vigo, Spain; email: dgarza@uvigo.es",,Savez Ekonomista Vojvodine,,,,,,1452595X,,,,English,Panoeconomicus,Article,Final,All Open Access; Gold Open Access; Green Open Access,Scopus,2-s2.0-85118359025 Massa F.; Aydin I.; Fezzardi D.; Akbulut B.; Atanasoff A.; Beken A.T.; Bekh V.; Buhlak Y.; Burlachenko I.; Can E.; Carboni S.; Caruso F.; Dağtekin M.; Demianenko K.; Deniz H.; Fidan D.; Fourdain L.; Frederiksen M.; Guchmanidze A.; Hamza H.; Harvey J.; Nenciu M.; Nikolov G.; Niţă V.; Özdemir M.D.; Petrova-Pavlova E.; Platon C.; Popescu G.; Rad F.; Can S.S.; Theodorou J.A.; Thomas B.; Tonachella N.; Tribilustova E.; Yakhontova I.; Yesilsu A.F.; Yücel-Gier G.,"Massa, Fabio (23489583900); Aydin, Ilhan (36239770300); Fezzardi, Davide (57044780100); Akbulut, Bilal (6505914696); Atanasoff, Alexander (56073377100); Beken, Atife Tuba (57234233600); Bekh, Vitaliy (8538112400); Buhlak, Yuliia (57222606131); Burlachenko, Irina (57233502600); Can, Erkan (35751213100); Carboni, Stefano (37119890100); Caruso, Fabrizio (57234731200); Dağtekin, Murat (37055323500); Demianenko, Kostiantyn (54386860800); Deniz, Hayri (57519570800); Fidan, Dilek (57203209364); Fourdain, Linda (57234983200); Frederiksen, Marco (57226786905); Guchmanidze, Archil (57193716694); Hamza, Housam (57213378677); Harvey, Jessica (57233991000); Nenciu, Magda (55193472000); Nikolov, Galin (57223170661); Niţă, Victor (36161295000); Özdemir, Muhammed Doğan (57233991100); Petrova-Pavlova, Elitsa (56009748900); Platon, Catalin (57193421719); Popescu, Gabriel (57234233900); Rad, Ferit (7003935845); Can, Safak Seyhaneyildiz (55330917000); Theodorou, John A. (6603499253); Thomas, Behnan (57234983300); Tonachella, Nicolò (56405498400); Tribilustova, Ekaterina (57233257100); Yakhontova, Irina (57234983400); Yesilsu, Ahmet Faruk (36683400200); Yücel-Gier, Güzel (15926297100)",23489583900; 36239770300; 57044780100; 6505914696; 56073377100; 57234233600; 8538112400; 57222606131; 57233502600; 35751213100; 37119890100; 57234731200; 37055323500; 54386860800; 57519570800; 57203209364; 57234983200; 57226786905; 57193716694; 57213378677; 57233991000; 55193472000; 57223170661; 36161295000; 57233991100; 56009748900; 57193421719; 57234233900; 7003935845; 55330917000; 6603499253; 57234983300; 56405498400; 57233257100; 57234983400; 36683400200; 15926297100,"Black sea aquaculture: Legacy, challenges & future opportunities",2021,Aquaculture Studies,21,4,,181,220,39,16,10.4194/2618-6381-V21_4_05,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85113636582&doi=10.4194%2f2618-6381-V21_4_05&partnerID=40&md5=f2ee04465b587e7b555f9847d2fb0a7b,"Senior Expert on Aquaculture, Rome, 00136, Italy; General Directorate of Agricultural Research and Policies, Ankara, 06800, Turkey; Senior Expert on Aquaculture, Rome, 00166, Italy; Central Fisheries Research Institute, Yomra, Trabzon, 61250, Turkey; Trakia University, Faculty of Veterinary Medicine, Stara Zagora, 6014, Bulgaria; National University of Life and Environmental Sciences of Ukraine, Aquaculture Department, Kyiv, 03041, Ukraine; University of Patras, Department of Animal Production, Fisheries & Aquaculture, Messolonghi, 30200, Greece; Aquaculture Ukraine LLC, Kyiv, 03118, Ukraine; Russian Federal Research Institute of Fisheries and Oceanography (VNIRO), Department of Aquaculture, Moscow, Russian Federation; Izmir Kâtip Celebi University, Faculty of Fisheries, Department of Aquaculture, Izmir, 35620, Turkey; Institute of Aquaculture, University of Stirling, Stirling, FK9 4LA, United Kingdom; M.A.R.E. Società Cooperativa a r.l., Cattolica, Rimini, 47841, Italy; Institute of Fisheries and Marine Ecology (IFME), Berdyansk, 71118, Ukraine; Muğla Fish Farmers Association, Güllük Milas, Muğla, 48670, Turkey; Aquaculture Expert, Alicante, 03003, Spain; Eurofish International Organisation, Copenhagen V, DK-1553, Denmark; Association Flora and Fauna, Batumi, Georgia; General Fisheries Commission for the Mediterranean (GFCM), Rome, 00193, Italy; Pontus Research Ltd., Hirwaun, Aberdare, CF44 9UP, United Kingdom; National Institute for Marine Research and Development “Grigore Antipa”, Marine Living Resources Department, Constanta, 900581, Romania; Executive Agency of Fisheries and Aquaculture, Burgas, 8000, Bulgaria; Institute of Fish Resources, Varna, 9000, Bulgaria; National Fish Farmers Association, Romfish Bd. Nicolae lorga nr. 12A, et.1, biroul 2, Lasi, 700224, Romania; National Agency for Fisheries and Aquaculture, Constanta Maritime Policies and Inspections Department, Constanta, 900690, Romania; University of Mersin, Faculty of Fisheries, Department of Aquaculture, Mersin, 33150, Turkey; Eylül University, Institute of Marine Sciences and Technology, Inciralti-Izmir, 35340, Turkey; Council for Agricultural Research and Economics (CREA), Research Centre for Animal Production and Aquaculture, Monterotondo, Rome, 00015, Italy","Massa F., Senior Expert on Aquaculture, Rome, 00136, Italy; Aydin I., General Directorate of Agricultural Research and Policies, Ankara, 06800, Turkey; Fezzardi D., Senior Expert on Aquaculture, Rome, 00166, Italy; Akbulut B., Central Fisheries Research Institute, Yomra, Trabzon, 61250, Turkey; Atanasoff A., Trakia University, Faculty of Veterinary Medicine, Stara Zagora, 6014, Bulgaria; Beken A.T., Central Fisheries Research Institute, Yomra, Trabzon, 61250, Turkey; Bekh V., National University of Life and Environmental Sciences of Ukraine, Aquaculture Department, Kyiv, 03041, Ukraine; Buhlak Y., University of Patras, Department of Animal Production, Fisheries & Aquaculture, Messolonghi, 30200, Greece, Aquaculture Ukraine LLC, Kyiv, 03118, Ukraine; Burlachenko I., Russian Federal Research Institute of Fisheries and Oceanography (VNIRO), Department of Aquaculture, Moscow, Russian Federation; Can E., Izmir Kâtip Celebi University, Faculty of Fisheries, Department of Aquaculture, Izmir, 35620, Turkey; Carboni S., Institute of Aquaculture, University of Stirling, Stirling, FK9 4LA, United Kingdom; Caruso F., M.A.R.E. Società Cooperativa a r.l., Cattolica, Rimini, 47841, Italy; Dağtekin M., Central Fisheries Research Institute, Yomra, Trabzon, 61250, Turkey; Demianenko K., Institute of Fisheries and Marine Ecology (IFME), Berdyansk, 71118, Ukraine; Deniz H., Muğla Fish Farmers Association, Güllük Milas, Muğla, 48670, Turkey; Fidan D., Central Fisheries Research Institute, Yomra, Trabzon, 61250, Turkey; Fourdain L., Aquaculture Expert, Alicante, 03003, Spain; Frederiksen M., Eurofish International Organisation, Copenhagen V, DK-1553, Denmark; Guchmanidze A., Association Flora and Fauna, Batumi, Georgia; Hamza H., General Fisheries Commission for the Mediterranean (GFCM), Rome, 00193, Italy; Harvey J., Pontus Research Ltd., Hirwaun, Aberdare, CF44 9UP, United Kingdom; Nenciu M., National Institute for Marine Research and Development “Grigore Antipa”, Marine Living Resources Department, Constanta, 900581, Romania; Nikolov G., Executive Agency of Fisheries and Aquaculture, Burgas, 8000, Bulgaria; Niţă V., Institute of Fish Resources, Varna, 9000, Bulgaria; Özdemir M.D., Central Fisheries Research Institute, Yomra, Trabzon, 61250, Turkey; Petrova-Pavlova E., Institute of Fish Resources, Varna, 9000, Bulgaria; Platon C., National Fish Farmers Association, Romfish Bd. Nicolae lorga nr. 12A, et.1, biroul 2, Lasi, 700224, Romania; Popescu G., National Agency for Fisheries and Aquaculture, Constanta Maritime Policies and Inspections Department, Constanta, 900690, Romania; Rad F., University of Mersin, Faculty of Fisheries, Department of Aquaculture, Mersin, 33150, Turkey; Can S.S., Eylül University, Institute of Marine Sciences and Technology, Inciralti-Izmir, 35340, Turkey; Theodorou J.A., University of Patras, Department of Animal Production, Fisheries & Aquaculture, Messolonghi, 30200, Greece; Thomas B., Eurofish International Organisation, Copenhagen V, DK-1553, Denmark; Tonachella N., Council for Agricultural Research and Economics (CREA), Research Centre for Animal Production and Aquaculture, Monterotondo, Rome, 00015, Italy; Tribilustova E., Eurofish International Organisation, Copenhagen V, DK-1553, Denmark; Yakhontova I., Russian Federal Research Institute of Fisheries and Oceanography (VNIRO), Department of Aquaculture, Moscow, Russian Federation; Yesilsu A.F., Central Fisheries Research Institute, Yomra, Trabzon, 61250, Turkey; Yücel-Gier G., Eylül University, Institute of Marine Sciences and Technology, Inciralti-Izmir, 35340, Turkey","Responsible aquaculture, the farming of aquatic organisms, is a sustainable strategic sector for land and coastal communities. It significantly contributes to food security and enhancement of economic development; it provides employment opportunities and often contributes to the ecological services provided by the environment. According to the Food and Agriculture Organization of the United Nations, the contribution of aquaculture to the global food security is widely demonstrated by an astounding industry growth of 7.5% per year since 1970. In 2018, aquaculture reached the all-time highest production of 114.5 million tonnes in live weight with a total farm gate sale value of USD 263.6 billion. This makes aquaculture a key player within the Blue Growth concept and a strong contributor to some of its key Sustainable Development Goals. This is particularly true in geographical areas where dependence of local economies on fishery products is high, and yet access to sustainable landings is hampered by ecological barriers. One such area is represented by the Black Sea basin. Whilst the Black Sea annual capture fishery production has varied considerably since 1990 and its current landings are significant, growing attention is currently given to boost aquaculture development along the Black Sea bordering countries, with marine aquaculture being considered as an important contributor to the total fisheries production. Nonetheless, aquaculture development in this region is not homogenous and its development has, so far, been limited by environmental, economic, social, and more generally governance issues. This paper, for the first time, attempts to provide a comprehensive fresh outlook of the aquaculture sector in the Black Sea, stressing the importance of regional cooperation as an essential pillar to support the sustainable development of the industry. The paper addresses aquaculture in the Black Sea from different perspectives: it outlines the key characteristics of the Black Sea environment; it discusses the most common farmed aquatic species and the potential for new ones; it frames the national approaches to aquaculture development, sharing information about success stories, while shedding light on the main challenges and priorities ahead. This collective endeavour will represent a helpful contribution to Black Sea riparian countries to answer the many questions they have, and expectations they hold from the aquaculture sector. © 2021, Central Fisheries Research Inst. All rights reserved.",aquaculture; black sea; diversification; marine spatial planning; stock enhancement,,"F. Massa; Senior Expert on Aquaculture, Rome, 00136, Italy; email: fabiomassa1@outlook.it",,Central Fisheries Research Inst,,,,,,26186381,,,,English,Aquac. Stud.,Article,Final,All Open Access; Bronze Open Access,Scopus,2-s2.0-85113636582 Shumao W.; Xiuhua W.; Na Z.; Fenglin W.; Xuan D.; Qingli Z.; Guoliang Y.; Yang G.,"Shumao, Wang (57547430900); Xiuhua, Wang (57193601271); Na, Zhu (57545504600); Fenglin, Wang (24170912400); Xuan, Dong (57821766500); Qingli, Zhang (57219139497); Guoliang, Yang (59158466900); Yang, Gao (57212081196)",57547430900; 57193601271; 57545504600; 24170912400; 57821766500; 57219139497; 59158466900; 57212081196,"The composition of cultivable bacteria in the pond aquaculture system of Macrobrachium rosenbergii in Gaoyou City, Jiangsu Province",2022,Journal of Fishery Sciences of China,29,6,,890,902,12,0,10.12264/JFSC2021-0148,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85135051284&doi=10.12264%2fJFSC2021-0148&partnerID=40&md5=0e01e63e5951947bd6ca7856b8728241,"Fisheries College, Zhejiang Ocean University, Zhoushan, 316022, China; Yellow Sea Fisheries Research Institute, Chinese Academy of Fishery Sciences, Key Laboratory of Maricultural Organism Disease Control, Ministry of Agriculture and Rural Affairs, Qingdao Key Laboratory of Mariculture Epidemiology and Biosecurity, Qingdao, 266071, China; Jiangsu Shufeng Prawn Breeding Co. LtD., Gaoyou, 225654, China","Shumao W., Fisheries College, Zhejiang Ocean University, Zhoushan, 316022, China, Yellow Sea Fisheries Research Institute, Chinese Academy of Fishery Sciences, Key Laboratory of Maricultural Organism Disease Control, Ministry of Agriculture and Rural Affairs, Qingdao Key Laboratory of Mariculture Epidemiology and Biosecurity, Qingdao, 266071, China; Xiuhua W., Yellow Sea Fisheries Research Institute, Chinese Academy of Fishery Sciences, Key Laboratory of Maricultural Organism Disease Control, Ministry of Agriculture and Rural Affairs, Qingdao Key Laboratory of Mariculture Epidemiology and Biosecurity, Qingdao, 266071, China; Na Z., Yellow Sea Fisheries Research Institute, Chinese Academy of Fishery Sciences, Key Laboratory of Maricultural Organism Disease Control, Ministry of Agriculture and Rural Affairs, Qingdao Key Laboratory of Mariculture Epidemiology and Biosecurity, Qingdao, 266071, China; Fenglin W., Yellow Sea Fisheries Research Institute, Chinese Academy of Fishery Sciences, Key Laboratory of Maricultural Organism Disease Control, Ministry of Agriculture and Rural Affairs, Qingdao Key Laboratory of Mariculture Epidemiology and Biosecurity, Qingdao, 266071, China; Xuan D., Yellow Sea Fisheries Research Institute, Chinese Academy of Fishery Sciences, Key Laboratory of Maricultural Organism Disease Control, Ministry of Agriculture and Rural Affairs, Qingdao Key Laboratory of Mariculture Epidemiology and Biosecurity, Qingdao, 266071, China; Qingli Z., Yellow Sea Fisheries Research Institute, Chinese Academy of Fishery Sciences, Key Laboratory of Maricultural Organism Disease Control, Ministry of Agriculture and Rural Affairs, Qingdao Key Laboratory of Mariculture Epidemiology and Biosecurity, Qingdao, 266071, China; Guoliang Y., Jiangsu Shufeng Prawn Breeding Co. LtD., Gaoyou, 225654, China; Yang G., Fisheries College, Zhejiang Ocean University, Zhoushan, 316022, China","Giant freshwater prawn Macrobrachium rosenbergii is an important aquaculture species in inland areas of East and South China. In the past decade, prawn disease has occurred frequently during the grow-out stage, mainly due to pathogenic bacteria, which have caused different diseases in different regions. Gaoyou City in Jiangsu Province is the core aquaculture zone of M. rosenbergii in China, however the prawns cultivated in this region suffer from “Dixing disease” during summer. This disease causes prawns to die every day, with lower daily mortality over a long period. Since 2012, another disease has appeared, which causes prawns to grow slowly and develop precocity (commonly known as “iron prawn syndrome” prawn). Both these diseases have caused great economic losses to the prawn industry. In the mid-late grow-out stages, Cyanobacteria blooms have caused the pond water to deteriorate, indirectly affecting prawn production. Microbes in the aquaculture environment are closely related to the health of farmed animals, and the flora structure in the intestinal tract and pond environment of healthy prawn are significantly different from those of a diseased prawn pond. To better understand the composition of dominant bacteria in the aquaculture system of M. rosenbergii and improve the management technology, the composition of cultivable bacteria in the prawn and pond water was investigated in Gaoyou City in July, August, and October 2019. Luria-Bertani medium was used to separate and purify the cultivable bacteria from the hepatopancreas, intestines, gills, and pond water of prawn. Subsequently, the isolated bacteria were identified using 16S rRNA gene sequencing. High-throughput sequencing technology was employed to analyze the microbial community composition in a pond of the prawn affected by “iron prawn syndrome ”and in a pond with a bloom of Microcystis aeruginosa. Additionally, the species of antagonistic bacteria, and their effects on prawn pathogens in the aquaculture system, were screened and analyzed using Aeromonas dhakensis as a test pathogen. A total of 605 cultivable bacteria were isolated and 601 strains were successfully identified, belonging to 37 genera and 119 species. Among them, 76 species in 23 genera were isolated from prawn and 81 species in 28 genera were isolated from pond waters. Investigation results confirmed the existence of potential pathogens in the pond system, belonging to genera such as Aeromonas spp., Enterobacter spp., Lactococcus spp., and Vibrio spp. The species composition and proportion of dominant environmental microorganisms in ponds with “iron shell” prawn are similar to those of healthy prawn ponds, but bacteria in the genera Exiguobacterium and Acinetobacter had higher proportions in disease-affected ponds than those in healthy pond. The blooming of M. aeruginosa could affect the species and structure of environmental microflora and lead to an increase in the proportion of Aeromonas bacteria. Four Bacillus spp., namely B. subtilis, B. methylotrophicus, B. velezensis, and B. amyloliquefaciens, were screened as potential probiotics and were found to have a strong antagonistic effect on Aeromonas spp. These results aid in clarifying the composition of bacterial pathogens in the culture system of M. rosenbergii and provide a theoretical basis for establishing prevention and control technologies for prawn disease. © 2022",aquaculture; cultivable bacteria; macrobrachium rosenbergii; pathogenic bacteria; probiotics,,"W. Xiuhua; Yellow Sea Fisheries Research Institute, Chinese Academy of Fishery Sciences, Key Laboratory of Maricultural Organism Disease Control, Ministry of Agriculture and Rural Affairs, Qingdao Key Laboratory of Mariculture Epidemiology and Biosecurity, Qingdao, 266071, China; email: wangxh@ysfri.ac.cn",,Chinese Academy of Fishery Sciences,,,,,,10058737,,,,English,J. Fishery Sci. China,Article,Final,,Scopus,2-s2.0-85135051284 Tran N.; Rodriguez U.-P.; Chan C.Y.; Aung Y.M.; Chu L.; Saiful Islam A.H.M.; Barman B.K.; Phillips M.J.,"Tran, Nhuong (55598283400); Rodriguez, U-Primo (6507332268); Chan, Chin Yee (57205213289); Aung, Yee Mon (57246014600); Chu, Long (36611178200); Saiful Islam, Abu Hayat Md. (57214526193); Barman, Benoy Kumar (15065188400); Phillips, Michael John (7402770404)",55598283400; 6507332268; 57205213289; 57246014600; 36611178200; 57214526193; 15065188400; 7402770404,Future scenarios of fish supply and demand for food and nutrition security in Bangladesh: An analysis with the AsiaFish model,2023,Aquaculture,568,,739288,,,,6,10.1016/j.aquaculture.2023.739288,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85148063540&doi=10.1016%2fj.aquaculture.2023.739288&partnerID=40&md5=39e3c46c324c7632d9bc7ff02f0a87ae,"WorldFish, Jalan Batu Maung, Batu Maung, Penang, Malaysia; Department of Economics, University of the Philippines Los Baños, Philippines; Crawford School of Public Policy, the Australian National University, Canberra, Australia; Department of Agricultural Economics, Bangladesh Agricultural University (BAU), Mymensingh, Bangladesh; WorldFish Bangladesh, House no: 88, 2B Rd No. 4, Dhaka, Bangladesh","Tran N., WorldFish, Jalan Batu Maung, Batu Maung, Penang, Malaysia; Rodriguez U.-P., Department of Economics, University of the Philippines Los Baños, Philippines; Chan C.Y., WorldFish, Jalan Batu Maung, Batu Maung, Penang, Malaysia; Aung Y.M., WorldFish, Jalan Batu Maung, Batu Maung, Penang, Malaysia; Chu L., Crawford School of Public Policy, the Australian National University, Canberra, Australia; Saiful Islam A.H.M., Department of Agricultural Economics, Bangladesh Agricultural University (BAU), Mymensingh, Bangladesh; Barman B.K., WorldFish Bangladesh, House no: 88, 2B Rd No. 4, Dhaka, Bangladesh; Phillips M.J., WorldFish, Jalan Batu Maung, Batu Maung, Penang, Malaysia","Bangladesh has made significant progress in social and economic development in recent years, but micronutrient deficiencies and poor dietary diversity remain a significant challenge. This paper developed five scenarios to explore futures of fish supply-demand in Bangladesh using the AsiaFish model, with special emphasis on the role of fish in macronutrient and micronutrient supply to address the nation's malnutrition and nutrition security challenges. A business-as-usual (BAU) scenario followed historical trends for exogenous variables used in the model. The four alternative scenarios explored: the implications of increase productivity of farmed tilapia, pangasius and rohu carp (AS1); improvements in the quality of feeds (AS2); disease outbreak in farmed shrimps and prawns (AS3); and climate change impacts (AS4). The BAU scenario indicates that aquaculture growth will be a prominent contribution to increasing total fish supply and demand and fish exports to 2040. Apart from the scenarios that are favourable to aquaculture sector development, other alternative scenarios highlighted the lower growth rate of capture fisheries and aquaculture compared to BAU, resulting in declining in per capita fish consumption, fish exports and nutrient supply from fish as a consequence. Increased availability of aquaculture fish can slightly compensate for the lower growth of capture fisheries in term of their nutrition quality and dietary diversity, particularly for poor consumers. Policies towards sustaining fisheries and a nutrition-sensitive approach to aquaculture is recommended as both capture fisheries and aquaculture are essential for sustaining healthy and nutritious diets in Bangladesh. © 2023 The Author(s)",asiafish model; bangladesh; nutrients; scenarios; supply-demand,Bangladesh; cichlid; climate change; climate effect; economic development; food security; growth rate; nutrient dynamics; nutrition; sustainability,"N. Tran; WorldFish, Bayan Lepas, Jalan Batu Maung, Batu Maung, Penang, 11960, Malaysia; email: N.Tran@cgiar.org",,Elsevier B.V.,,,,,,00448486,,AQCLA,,English,Aquaculture,Article,Final,All Open Access; Green Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85148063540 Basconi L.; Rova S.; Stocco A.; Pranovi F.,"Basconi, Laura (57194023044); Rova, Silvia (55253649800); Stocco, Alice (57577789200); Pranovi, Fabio (6603162433)",57194023044; 55253649800; 57577789200; 6603162433,"Ecosystem services for supporting coastal and marine resources management, an example from the Adriatic sea (Central Mediterranean sea)",2023,Ocean and Coastal Management,235,,106486,,,,4,10.1016/j.ocecoaman.2023.106486,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85146600662&doi=10.1016%2fj.ocecoaman.2023.106486&partnerID=40&md5=af4557d15d1bc377a9ada37a2a58a6f2,"Department of Environmental Sciences, Informatics and Statistics, Università Ca’ Foscari, Venezia, Italy","Basconi L., Department of Environmental Sciences, Informatics and Statistics, Università Ca’ Foscari, Venezia, Italy; Rova S., Department of Environmental Sciences, Informatics and Statistics, Università Ca’ Foscari, Venezia, Italy; Stocco A., Department of Environmental Sciences, Informatics and Statistics, Università Ca’ Foscari, Venezia, Italy; Pranovi F., Department of Environmental Sciences, Informatics and Statistics, Università Ca’ Foscari, Venezia, Italy","Ecosystem Services (ESs) assessment is increasingly considered the constitutive metric to embrace the social, ecological, and economic spheres. Spatially explicit ES assessments can integrate and standardize different types of information, making them comparable. In this context, a multiple coastal and marine ESs assessment in the Northern-Central Adriatic Sea was carried out, considering seven ESs. Two cultural (tourism and recreational boating), two regulating (carbon sequestration and coastal erosion prevention potential), and three provisioning (mussel, whitefish aquaculture, and industrial fishery) ESs have been measured. The spatial analysis described (un)sustainable human uses of ecosystems in the area. (De)coupling of ES capacities and flows and synergies and tradeoffs among ESs were analyzed. Results indicate spatial agreement for capacities, while contrasting results emerged from the analysis across flows and of the capacity-flow balance. The evidence of a geographical pattern and areas of high, medium, and low capability to provide ESs across the study area was highlighted, suggesting the need for implementing the natural resources management. Some coastal provinces maximize a single ES at the detriment of other ESs, and other provinces built mimics of Nature through artificial facilities. These strategies are not far-sighted in the view of conserving the supply of the whole ESs set. These findings might be useful in the context of the Marine Strategy Framework Directive (MSFD), and for the implementation of the Maritime Spatial Planning (MSP) in the Northern-Central Adriatic Sea. © 2023 Elsevier Ltd",adriatic sea; coastal area; ecosystem services; marine area; multiple correspondence analysis,Adriatic Sea; Mediterranean Sea; Ecosystems; Fisheries; Marine biology; Adriatic Sea; Central Mediterranean; Coastal area; Coastal resources management; Ecosystem services; Marine areas; Marine resource management; Mediterranean sea; Multiple ecosystem service assessment; coastal erosion; coastal zone management; ecosystem service; marine environment; marine resource; resource management; trade-off; Natural resources management,"L. Basconi; Department of Environmental Sciences, Informatics and Statistics, Università Ca’ Foscari, Venezia, Italy; email: laura.basconi@unive.it",,Elsevier Ltd,,,,,,09645691,,OCMAE,,English,Ocean Coast. Manage.,Article,Final,All Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85146600662 Bakri S.; Hartati F.; Kaskoyo H.; Febryano I.G.; Dewi B.S.,"Bakri, Samsul (57200694193); Hartati, Ferli (58087860100); Kaskoyo, Hari (57190274419); Febryano, Indra Gumay (57193735754); Dewi, Bainah Sari (57214103948)",57200694193; 58087860100; 57190274419; 57193735754; 57214103948,"The fate of mangrove ecosystem sustainability on the shrimp cultivation area in Tulang Bawang District, Lampung, Indonesia",2023,Biodiversitas,24,1,,379,390,11,2,10.13057/biodiv/d240145,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85147299419&doi=10.13057%2fbiodiv%2fd240145&partnerID=40&md5=c7b0b4f57e8bdb10a56933ccf28847ff,"Department of Environmental Science, Postgraduate Program, Universitas Lampung, Jl. Prof. Dr. Sumantri Brojonegoro No. 1, Lampung, Bandar Lampung, 35145, Indonesia; Department of Forestry, Faculty of Agriculture, Universitas Lampung, Jl. Prof. Dr. Sumantri Brojonegoro No. 1, Lampung, Bandar Lampung, 35145, Indonesia; Department of Coastal and Marine Zone Management, Graduate Program, Universitas Lampung, Jl. Prof. Dr. Sumantri Brojonegoro No. 1, Lampung, Bandar Lampung, 35145, Indonesia","Bakri S., Department of Environmental Science, Postgraduate Program, Universitas Lampung, Jl. Prof. Dr. Sumantri Brojonegoro No. 1, Lampung, Bandar Lampung, 35145, Indonesia, Department of Forestry, Faculty of Agriculture, Universitas Lampung, Jl. Prof. Dr. Sumantri Brojonegoro No. 1, Lampung, Bandar Lampung, 35145, Indonesia; Hartati F., Department of Environmental Science, Postgraduate Program, Universitas Lampung, Jl. Prof. Dr. Sumantri Brojonegoro No. 1, Lampung, Bandar Lampung, 35145, Indonesia; Kaskoyo H., Department of Environmental Science, Postgraduate Program, Universitas Lampung, Jl. Prof. Dr. Sumantri Brojonegoro No. 1, Lampung, Bandar Lampung, 35145, Indonesia, Department of Forestry, Faculty of Agriculture, Universitas Lampung, Jl. Prof. Dr. Sumantri Brojonegoro No. 1, Lampung, Bandar Lampung, 35145, Indonesia; Febryano I.G., Department of Forestry, Faculty of Agriculture, Universitas Lampung, Jl. Prof. Dr. Sumantri Brojonegoro No. 1, Lampung, Bandar Lampung, 35145, Indonesia, Department of Coastal and Marine Zone Management, Graduate Program, Universitas Lampung, Jl. Prof. Dr. Sumantri Brojonegoro No. 1, Lampung, Bandar Lampung, 35145, Indonesia; Dewi B.S., Department of Forestry, Faculty of Agriculture, Universitas Lampung, Jl. Prof. Dr. Sumantri Brojonegoro No. 1, Lampung, Bandar Lampung, 35145, Indonesia","The exploitation of mangrove forests for economic purposes is rampant in tropical countries nowadays, particularly for shrimp farming, such as in the Lampung green belt in the front of the Java Sea. So, ensuring the sustainability of existing mangroves is the need of the hour. In view of above, this study aims to analyze the sustainability index of mangrove ecosystem management and the sustainability status of the mangrove ecosystem from the ecological, economic, social, and institutional dimensions using the Multidimensional Scaling (MDS) method through the Rapid Appraisal for Fisheries (RAPFISH) approach in East Rawajitu Sub-district, Tulang Bawang District, Lampung Province, Indonesia. The analysis revealed that mangrove ecosystem management’s sustainability index was categorized as ‘less sustainable’ (index 43.01 out of 100). Meanwhile, the social dimension (51.65) was categorized as ‘quite sustainable’, and other dimensions (ecological, economic, and institutional) were ‘less sustainable.’ Therefore, it is proposed that further development of the social dimension is a strategic way to develop the other three sustainability dimensions to achieve ecosystem sustainability as a whole in the study area. Alternative strategies that can be applied for sustainable management of mangrove ecosystems in East Rawajitu Sub-district, Tulang Bawang District are increasing coordination between stakeholders, creating formal regulations, increasing the productivity and creativity of Ikatan Istri-istri Petambak Dipasena (ISTANA), formulating an integrated mangrove ecosystem management plan program, undertaking rehabilitation efforts, increasing the role of mangrove groups, and increase the attention of researchers. © 2023, Society for Indonesian Biodiversity. All rights reserved.",mangroves; rapfish; shrimp cultivation; strategy; sustainability,,"F. Hartati; Department of Environmental Science, Postgraduate Program, Universitas Lampung, Bandar Lampung, Jl. Prof. Dr. Sumantri Brojonegoro No. 1, Lampung, 35145, Indonesia; email: ferlihartati@gmail.com",,Society for Indonesian Biodiversity,,,,,,1412033X,,,,English,Biodiversitas,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85147299419 Zhu B.; Liao J.; Shen G.,"Zhu, Bin (57229676400); Liao, Jingjuan (7402988316); Shen, Guozhuang (26039527600)",57229676400; 7402988316; 26039527600,"Combining time series and land cover data for analyzing spatio-temporal changes in mangrove forests: A case study of Qinglangang Nature Reserve, Hainan, China",2021,Ecological Indicators,131,,108135,,,,37,10.1016/j.ecolind.2021.108135,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85113361249&doi=10.1016%2fj.ecolind.2021.108135&partnerID=40&md5=8826c3ca2e70b50ba563f501b930e17b,"Key Laboratory of Digital Earth Science, Aerospace Information Research Institute, Chinese Academy of Sciences, Beijing, 100094, China; University of Chinese Academy of Sciences, Beijing, 100049, China; Key Laboratory of Earth Observation Hainan Province, Hainan, 572029, China","Zhu B., Key Laboratory of Digital Earth Science, Aerospace Information Research Institute, Chinese Academy of Sciences, Beijing, 100094, China, University of Chinese Academy of Sciences, Beijing, 100049, China; Liao J., Key Laboratory of Digital Earth Science, Aerospace Information Research Institute, Chinese Academy of Sciences, Beijing, 100094, China, Key Laboratory of Earth Observation Hainan Province, Hainan, 572029, China; Shen G., Key Laboratory of Digital Earth Science, Aerospace Information Research Institute, Chinese Academy of Sciences, Beijing, 100094, China","Mangrove forests have important social, ecological, and economic value in coastal ecosystems. However, they are one of the most vulnerable ecosystems in the world and are widely threatened due to their unique location along the land-sea interface. Thus, mangrove conservation based on scientific and effective monitoring methods is essential. In this study, a method for analyzing the spatio-temporal changes in mangrove forests was proposed in Qinglangang Nature Reserve, Hainan Province, China. This method combined multiple time series analysis (including Theil-Sen median trend analysis, Mann-Kendall test, and Hurst exponent) with land cover data from Landsat and Sentinel-1/2 to provide a clearer geographic explanation for changes in mangrove forests. The study showed that high-resolution data performs better than low-resolution data, optical indices are more ideal than SAR indices, and EVI is more advantageous than NDVI for mangrove time series analysis. The results revealed that mangroves in Qinglangang have experienced a severe degradation stage (1987–2003), a slow improvement stage (2003–2013), and a coexistence of improvement and degradation stage (2013–2020). In all stages, the main causes of mangrove degradation are anthropogenic factors, such as development of aquaculture ponds and building land, and natural factors caused by typhoons and sea-level rise. The anthropogenic factors have a broader and longer impact and should be a focus of future studies. The improvement in mangrove forests is due to habitat quality restoration and artificial planting, which is shown to be quite effective. © 2021 The Author(s)",land cover; mangrove forests; remote sensing; spatio-temporal changes; time series analysis,China; Hainan; Rhizophoraceae; Degradation; Ecosystems; Forestry; Harmonic analysis; Remote sensing; Sea level; Anthropogenic factors; Degradation stages; Land cover; Land cover data; Mangrove forest; Nature reserves; Remote-sensing; Spatio-temporal changes; Time-series analysis; Times series; conservation management; habitat conservation; habitat quality; land cover; Landsat; mangrove; nature reserve; NDVI; Sentinel; spatiotemporal analysis; Time series analysis,"J. Liao; Key Laboratory of Digital Earth Science, Aerospace Information Research Institute, Chinese Academy of Sciences, Beijing, 100094, China; email: liaojj@aircas.ac.cn",,Elsevier B.V.,,,,,,1470160X,,,,English,Ecol. Indic.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85113361249 Wang M.; Mao D.; Xiao X.; Song K.; Jia M.; Ren C.; Wang Z.,"Wang, Ming (55732003100); Mao, Dehua (36483152900); Xiao, Xiangming (7402170368); Song, Kaishan (8453127300); Jia, Mingming (35191764600); Ren, Chunying (23052217800); Wang, Zongming (56021233500)",55732003100; 36483152900; 7402170368; 8453127300; 35191764600; 23052217800; 56021233500,Interannual changes of coastal aquaculture ponds in China at 10-m spatial resolution during 2016–2021,2023,Remote Sensing of Environment,284,,113347,,,,76,10.1016/j.rse.2022.113347,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85141805949&doi=10.1016%2fj.rse.2022.113347&partnerID=40&md5=c72a0440399aa3d1231567ec685273c8,"Key Laboratory of Wetland Ecology and Environment, Northeast Institute of Geography and Agroecology, Chinese Academy of Sciences, Changchun, 130102, China; University of Chinese Academy of Sciences, Beijing, 100049, China; Department of Microbiology and Plant Biology, Center for Earth Observation and Modeling, University of Oklahoma, Norman, 73019, OK, United States; National Earth System Science Data Center, Beijing, 100101, China","Wang M., Key Laboratory of Wetland Ecology and Environment, Northeast Institute of Geography and Agroecology, Chinese Academy of Sciences, Changchun, 130102, China, University of Chinese Academy of Sciences, Beijing, 100049, China; Mao D., Key Laboratory of Wetland Ecology and Environment, Northeast Institute of Geography and Agroecology, Chinese Academy of Sciences, Changchun, 130102, China; Xiao X., Department of Microbiology and Plant Biology, Center for Earth Observation and Modeling, University of Oklahoma, Norman, 73019, OK, United States; Song K., Key Laboratory of Wetland Ecology and Environment, Northeast Institute of Geography and Agroecology, Chinese Academy of Sciences, Changchun, 130102, China; Jia M., Key Laboratory of Wetland Ecology and Environment, Northeast Institute of Geography and Agroecology, Chinese Academy of Sciences, Changchun, 130102, China; Ren C., Key Laboratory of Wetland Ecology and Environment, Northeast Institute of Geography and Agroecology, Chinese Academy of Sciences, Changchun, 130102, China; Wang Z., Key Laboratory of Wetland Ecology and Environment, Northeast Institute of Geography and Agroecology, Chinese Academy of Sciences, Changchun, 130102, China, National Earth System Science Data Center, Beijing, 100101, China","The rapid growth of coastal aquaculture has strongly supported global food security and economic development of coastal areas in the past few decades but has also caused remarkable impacts on coastal ecosystems. Accurate delineation of coastal aquaculture extent and changes is thus significant for improving coastal zone management toward sustainability. Here, by means of Sentinel-2 images, we propose an effective and rapid approach that combines simple non-iterative clustering (SNIC) with hierarchical decision trees (HDT), so-called SNIC-HDT, to generate fine-resolution coastal aquaculture pond data at the national scale of China. The SNIC-HDT fully considers the spatial heterogeneity of coastal aquaculture ponds and performs accurate segmentation by determining the optimal segmentation scale for coastal aquaculture ponds with different sizes and shapes. In addition, the SNIC-HDT incorporates temporal features into the establishment of HDT and thus effectively distinguishes coastal aquaculture ponds from other water bodies. In support of the Google Earth Engine platform, we employed 85,501 scenes of Sentinel-2 images and generated the first annual 10-m spatial resolution national coastal aquaculture pond dataset of China between 2016 and 2021 (China_CAP), with an overall classification accuracy of more than 90%. This dataset reveals that total area of China's coastal aquaculture ponds experienced a substantial loss of 13.21% from 9769 km2 in 2016 to 8629 km2 in 2021. The most remarkable areal reduction occurred in Zhejiang Province, with a decrease rate of 38.24%, followed by Guangdong (27.93%), and these reductions were mostly related to the policy of retuning aquaculture ponds to natural wetlands. Coastal aquaculture ponds in Fujian and Tianjin provinces experienced slight areal gains (7.24% and 2.13%). The results generated in this study could provide a basis for the conservation of habitats of migratory water birds on the East Asia-Australia Flyway and are of great scientific and practical importance to support the evaluation of Sustainable Development Goals. © 2022 Elsevier Inc.",china; coastal aquaculture; coastal wetlands; google earth engine; sentinel-2 imagery,Australia; China; Fujian; Guangdong; Tianjin; Zhejiang; Biodiversity; Classification (of information); Data mining; Decision trees; Economic and social effects; Ecosystems; Engines; Food supply; Forestry; Image resolution; Lakes; Regional planning; Wetlands; Aquaculture ponds; China; Coastal aquaculture; Coastal aquaculture pond; Coastal wetlands; Google earth engine; Google earths; Hierarchical decision trees; Sentinel-2 imagery; Simple++; coastal zone; data set; pond culture; segmentation; Sentinel; spatial resolution; Sustainable development,"D. Mao; Key Laboratory of Wetland Ecology and Environment, Northeast Institute of Geography and Agroecology, Chinese Academy of Sciences, Changchun, 130102, China; email: maodehua@neigae.ac.cn",,Elsevier Inc.,,,,,,00344257,,RSEEA,,English,Remote Sens. Environ.,Article,Final,,Scopus,2-s2.0-85141805949 Divu D.N.; Mojjada S.K.; Dash G.; Sundaram S.L.P.; Menon M.; Tade M.S.; Mojjada R.K.; Bhint H.M.; Bhardwaj J.; Subramanian A.; Suresh V.R.; Gopalakrishnan A.,"Divu, Damodaran Nair (55841053200); Mojjada, Suresh Kumar (55387142800); Dash, Gyanaranjan (55322554500); Sundaram, Swathi Lekshmi Perumal (55521069500); Menon, Muktha (56321637700); Tade, Mayur Shivdas (57219651366); Mojjada, Ramesh Kumar (57659137400); Bhint, Hiralal Mepabhai (35338805800); Bhardwaj, Jaishree (58016975500); Subramanian, Aarsha (58016995600); Suresh, Vettath Raghavan (14520027900); Gopalakrishnan, Achamveetil (14119839700)",55841053200; 55387142800; 55322554500; 55521069500; 56321637700; 57219651366; 57659137400; 35338805800; 58016975500; 58016995600; 14520027900; 14119839700,A novel decision-support system for augmenting sustainable lobster production through comparison of mariculture systems at increasing stages of technological development,2023,Journal of Cleaner Production,401,,136759,,,,5,10.1016/j.jclepro.2023.136759,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85150059310&doi=10.1016%2fj.jclepro.2023.136759&partnerID=40&md5=150efd0c32e0f0928de38ee5c4d23579,"Mariculture Division, Indian Council of Agricultural Research-Central Marine Fisheries Research Institute (ICAR-CMFRI), Veraval Regional Station, Matsya Bhavan, Bhidia plot, Gujarat, Veraval, 362 269, India; Shellfish Fisheries Division, Indian Council of Agricultural Research-Central Marine Fisheries Research Institute (ICAR-CMFRI), Puri Field Centre, Opp. Urban Haat, State Fisheries Campus, Odisha, Puri, 752 002, India; Fisheries Resource Assessment, Economics and Extension Division, Indian Council of Agricultural Research-Central Marine Fisheries Research Institute (ICAR-CMFRI), Vizhinjam Regional Centre, P.B. No. 9., Vizhinjam P.O., Kerala, Thiruvananthapuram, 692 521, India; Finfish Fisheries Division, Indian Council of Agricultural Research-Central Marine Fisheries Research Institute (ICAR-CMFRI), Visakhapatnam Regional Centre, Ocean view layout, Pandurangapuram, Andhra Pradesh, Visakhapatnam, 530 003, India; Department of Computer Science, KL University, Greenfields, Vaddeswaram, Andhra Pradesh, Guntur, Vijayawada, 522 302, India; Mariculture Division, Indian Council of Agricultural Research-Central Marine Fisheries Research Institute (ICAR-CMFRI), North P.O Abraham Madamakkal Road, Ernakulam, Ayyappankavu, Kerala, Kochi, 682 018, India; Indian Council of Agricultural Research-Central Marine Fisheries Research Institute (ICAR-CMFRI), North P.O Abraham Madamakkal Road, Ernakulam, Ayyappankavu, Kerala, Kochi, 682 018, India","Divu D.N., Mariculture Division, Indian Council of Agricultural Research-Central Marine Fisheries Research Institute (ICAR-CMFRI), Veraval Regional Station, Matsya Bhavan, Bhidia plot, Gujarat, Veraval, 362 269, India; Mojjada S.K., Mariculture Division, Indian Council of Agricultural Research-Central Marine Fisheries Research Institute (ICAR-CMFRI), Veraval Regional Station, Matsya Bhavan, Bhidia plot, Gujarat, Veraval, 362 269, India; Dash G., Shellfish Fisheries Division, Indian Council of Agricultural Research-Central Marine Fisheries Research Institute (ICAR-CMFRI), Puri Field Centre, Opp. Urban Haat, State Fisheries Campus, Odisha, Puri, 752 002, India; Sundaram S.L.P., Fisheries Resource Assessment, Economics and Extension Division, Indian Council of Agricultural Research-Central Marine Fisheries Research Institute (ICAR-CMFRI), Vizhinjam Regional Centre, P.B. No. 9., Vizhinjam P.O., Kerala, Thiruvananthapuram, 692 521, India; Menon M., Finfish Fisheries Division, Indian Council of Agricultural Research-Central Marine Fisheries Research Institute (ICAR-CMFRI), Visakhapatnam Regional Centre, Ocean view layout, Pandurangapuram, Andhra Pradesh, Visakhapatnam, 530 003, India; Tade M.S., Mariculture Division, Indian Council of Agricultural Research-Central Marine Fisheries Research Institute (ICAR-CMFRI), Veraval Regional Station, Matsya Bhavan, Bhidia plot, Gujarat, Veraval, 362 269, India; Mojjada R.K., Department of Computer Science, KL University, Greenfields, Vaddeswaram, Andhra Pradesh, Guntur, Vijayawada, 522 302, India; Bhint H.M., Mariculture Division, Indian Council of Agricultural Research-Central Marine Fisheries Research Institute (ICAR-CMFRI), Veraval Regional Station, Matsya Bhavan, Bhidia plot, Gujarat, Veraval, 362 269, India; Bhardwaj J., Mariculture Division, Indian Council of Agricultural Research-Central Marine Fisheries Research Institute (ICAR-CMFRI), Veraval Regional Station, Matsya Bhavan, Bhidia plot, Gujarat, Veraval, 362 269, India; Subramanian A., Mariculture Division, Indian Council of Agricultural Research-Central Marine Fisheries Research Institute (ICAR-CMFRI), Veraval Regional Station, Matsya Bhavan, Bhidia plot, Gujarat, Veraval, 362 269, India; Suresh V.R., Mariculture Division, Indian Council of Agricultural Research-Central Marine Fisheries Research Institute (ICAR-CMFRI), North P.O Abraham Madamakkal Road, Ernakulam, Ayyappankavu, Kerala, Kochi, 682 018, India; Gopalakrishnan A., Indian Council of Agricultural Research-Central Marine Fisheries Research Institute (ICAR-CMFRI), North P.O Abraham Madamakkal Road, Ernakulam, Ayyappankavu, Kerala, Kochi, 682 018, India","In the face of depleting wild stocks of lobster globally, mariculture is widely viewed as a technology for enhancing production, resource efficiency, economics, and effective management of dwindling stocks while supporting livelihood security. We used a novel multi-stage experimental strategy followed by robust non-linear growth model simulations for establishing a Decision-Support System (DSS) to foster sustainable and cleaner production practices in lobster mariculture. The strategies explored in the first stage, which dealt with rearing lobsters in sea cages at increasing levels of technological development, significantly enhanced lobster production and thus, culture system productivity 5.9 times over unsustainable conventional systems. Growth performance, feed utilization, and survivability of lobsters were found to be significantly ameliorated in culture setup-3 (P ≤ 0.01), which was the most technologically advanced setup. In the second stage, non-linear models were fit to growth curves, and the best-fit models were used for the prediction of lobster biological metrics in the mariculture systems. These predictions were then validated using in-situ allometric traits. The DSS thus developed can effectively aid decision-making to optimize culture duration, stock condition, feed optimization, and harvest size to maximise economic returns from lobster mariculture while ensuring sustainability. © 2023 Elsevier Ltd",conservation; decision-making; growth modelling; mariculture; resource management; sustainability,Artificial intelligence; Decision support systems; Economic and social effects; Economics; Marine biology; Pollution control; Shellfish; Sustainable development; Decisions makings; Economic management; Effective management; Efficiency managements; Growth models; Mariculture; Production resources; Resource efficiencies; Resource management; Technological development; Decision making,"S.K. Mojjada; Indian Council of Agricultural Research-Central Marine Fisheries Research Institute (ICAR-CMFRI), Veraval, Veraval Regional Station, Matsya Bhavan, Bhidia plot, Gujarat, 362 269, India; email: sureshkumar.mjd@gmail.com",,Elsevier Ltd,,,,,,09596526,,JCROE,,English,J. Clean. Prod.,Article,Final,,Scopus,2-s2.0-85150059310 Ngo T.T.T.; Nguyen H.Q.; Gorman T.; Ngo Xuan Q.; Ngo P.L.T.; Vanreusel A.,"Ngo, Thu Trang Thi (59455383200); Nguyen, Hong Quan (57189902911); Gorman, Timothy (55893721300); Ngo Xuan, Quang (55576323400); Ngo, Phuong Lan Thi (57411679400); Vanreusel, Ann (6603031506)",59455383200; 57189902911; 55893721300; 55576323400; 57411679400; 6603031506,Impacts of a saline water control project on aquaculture livelihoods in the Vietnamese Mekong Delta,2023,Journal of Agribusiness in Developing and Emerging Economies,13,3,,418,436,18,5,10.1108/JADEE-06-2021-0155,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85122791547&doi=10.1108%2fJADEE-06-2021-0155&partnerID=40&md5=bb8c7d95dfb82486581391b54f68faeb,"University of Social Sciences and Humanities, Vietnam National University–Ho Chi Minh City (VNU–HCM), Ho Chi Minh City, Viet Nam; Center of Water Management and Climate Change (WACC), Institute for Environment and Resources (IER), Vietnam National University–Ho Chi Minh City (VNU–HCM), Ho Chi Minh City, Viet Nam; Institute for Circular Economy Development (ICED), Vietnam National University–Ho Chi Minh City (VNU–HCM), Ho Chi Minh City, Viet Nam; Department of Sociology, Montclair State University, Montclair, NJ, United States; Department of Environmental Management and Technology, Institute of Tropical Biology, Vietnam Academy of Science and Technology, Hanoi, Viet Nam; Graduate University of Science and Technology, Vietnam Academy of Science and Technology, Hanoi, Viet Nam; Biology Department, Marine Biology Research Group, Ghent University, Ghent, Belgium","Ngo T.T.T., University of Social Sciences and Humanities, Vietnam National University–Ho Chi Minh City (VNU–HCM), Ho Chi Minh City, Viet Nam; Nguyen H.Q., Center of Water Management and Climate Change (WACC), Institute for Environment and Resources (IER), Vietnam National University–Ho Chi Minh City (VNU–HCM), Ho Chi Minh City, Viet Nam, Institute for Circular Economy Development (ICED), Vietnam National University–Ho Chi Minh City (VNU–HCM), Ho Chi Minh City, Viet Nam; Gorman T., Department of Sociology, Montclair State University, Montclair, NJ, United States; Ngo Xuan Q., Department of Environmental Management and Technology, Institute of Tropical Biology, Vietnam Academy of Science and Technology, Hanoi, Viet Nam, Graduate University of Science and Technology, Vietnam Academy of Science and Technology, Hanoi, Viet Nam; Ngo P.L.T., University of Social Sciences and Humanities, Vietnam National University–Ho Chi Minh City (VNU–HCM), Ho Chi Minh City, Viet Nam; Vanreusel A., Biology Department, Marine Biology Research Group, Ghent University, Ghent, Belgium","Purpose: Drought and salinity intrusion aggravated by climate change threaten agricultural livelihoods in Viet Nan's Mekong Delta. In response, authorities have built water management infrastructure for irrigation and salinity protection. This study assessed the impact of one such project, the Ba Lai dam in Ben Tre province, on the livelihoods of aquaculture farmers. Design/methodology/approach: This study uses the Sustainable Livelihoods Framework to assess the impact of the Ba Lai dam on the livelihood capitals of 18 farming households in four communes, located both upstream and downstream of the dam. Findings: The authors find that, apart from some positive effects, the dam has also brought negative environmental consequences, such as increased water pollution. The authors also find that farmers have responded to the changes by adapting their livelihood practices. Research limitations/implications: The samples were relatively small, encompassing four communes in Ben Tre province. On the other hand, this case study is instructive to the many ongoing infrastructure projects in the Vietnamese Mekong Delta. Social implications: The project have caused an increase in water-related social conflict. Originality/value: The case of the Ba Lai dam provides a cautionary example for infrastructure-based water management plans, both in Viet Nam and more broadly. The study suggests the need to strengthen community participation and prioritize impacts of farmers' capital assets when constructing water management infrastructure for climate change adaptation. © 2021, Emerald Publishing Limited.",infrastructure; saline intrusion; sustainability; vietnamese mekong delta; water management,,"H.Q. Nguyen; Center of Water Management and Climate Change (WACC), Institute for Environment and Resources (IER), Vietnam National University–Ho Chi Minh City (VNU–HCM), Ho Chi Minh City, Viet Nam; email: hongquanmt@yahoo.com",,Emerald Publishing,,,,,,20440839,,,,English,J. Agribusiness Dev. Emerg. Economies,Article,Final,,Scopus,2-s2.0-85122791547 Sarkar A.; Chattaraj S.; Chattaraj M.; Maity S.; Ganguly A.; Nandi B.; Pahari P.R.; Rakshit M.D.; Das Mohapatra P.K.,"Sarkar, Anwesha (58046283300); Chattaraj, Sourav (57217008505); Chattaraj, Manasi (58046611300); Maity, Suresh (58046829400); Ganguly, Arindam (57209305396); Nandi, Biplab (58046391100); Pahari, Priti Ranjan (6602666072); Rakshit, Madhuchhanda Duari (58046611400); Das Mohapatra, Pradeep Kumar (59339918700)",58046283300; 57217008505; 58046611300; 58046829400; 57209305396; 58046391100; 6602666072; 58046611400; 59339918700,"Ichthyodiversity and water quality parameters of Uttar Dinajpur, West Bengal, India",2022,North-Western Journal of Zoology,18,2,,151,160,9,5,,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85145919537&partnerID=40&md5=b4e81c1839e11e84bc7767c4142f0587,"Department of Microbiology, Raiganj University, West Bengal, Raiganj,Uttar Dinajpur, 733134, India; Department of Applied Geography, Ravenshaw University, Odisha, Cuttack, 753003, India; Department of Microbiology, Bankura Sammilani College, West Bengal, Bankura, 722102, India; Hemtabad Development Block, West Bengal, Uttar Dinajpur, 733130, India; PG Department of Zoology, Tamralipta Mahavidyalaya, West Bengal, Tamluk, 721636, India; Department of Zoology, Belda College, West Bengal, Belda,Paschim Midnapore, 721424, India","Sarkar A., Department of Microbiology, Raiganj University, West Bengal, Raiganj,Uttar Dinajpur, 733134, India; Chattaraj S., Department of Microbiology, Raiganj University, West Bengal, Raiganj,Uttar Dinajpur, 733134, India; Chattaraj M., Department of Applied Geography, Ravenshaw University, Odisha, Cuttack, 753003, India; Maity S., Department of Microbiology, Raiganj University, West Bengal, Raiganj,Uttar Dinajpur, 733134, India; Ganguly A., Department of Microbiology, Bankura Sammilani College, West Bengal, Bankura, 722102, India; Nandi B., Hemtabad Development Block, West Bengal, Uttar Dinajpur, 733130, India; Pahari P.R., PG Department of Zoology, Tamralipta Mahavidyalaya, West Bengal, Tamluk, 721636, India; Rakshit M.D., Department of Zoology, Belda College, West Bengal, Belda,Paschim Midnapore, 721424, India; Das Mohapatra P.K., Department of Microbiology, Raiganj University, West Bengal, Raiganj,Uttar Dinajpur, 733134, India","The ichthyodiversity of Uttar Dinajpur district of West Bengal, India was assessed in the current study. The district is adorned by various rivers, feeder channels, dams, bills, ponds, reservoirs and thus contributes significantly to the aquatic productivity of the state. A field survey was conducted in randomly chosen fish markets of nine community development blocks of Uttar Dinajpur. The study found a large ichthyodiversity in the area including 76 fish species from 26 families. With 28 distinct species, the Cyprinidae family dominated. Thirteen, globally endemic, freshwater fish species were also observed during the study. Clarias magur, one of the endangered species, is also available in the district. The overall physicochemical parameters of the culture waters of Uttar Dinajpur district are ideal for freshwater fish farming. Geo-Spatial analysis discloses the fragmentation of natural water bodies in the district. The district consists of 10 registered and 7 unregistered hatcheries which are playing a vital role in the restoration of various indigenous fishes and provide accommodation to the exotic fishes. Uttar Dinajpur has many perennial freshwater bodies. Thus, the region holds a high potentiality in the aquaculture sector. Efficient management, proper knowledge, and scientific cultivation can greatly influence aquatic productivity and diversity. Simultaneously, the restoration of indigenous fishes has become a surging need of the hour. The current study pointed out the fact that the indigenous Clarias magur has often been substituted by C. gariepinus which may cause a potential threat to biodiversity. Some traders promote this banned exotic species through illegal farming. As a result, the native, nutrient rich C. batrachus is now becoming critically endangered. The existing endemic fishes must urgently be conserved to uphold the diversification of the ichthyofauna in the district. © NWJZ, Oradea, Romania, 2022",endangered species; geospatial technology; ichthyofaunal diversity; uttar dinajpur; west bengal.,,"P.K. Das Mohapatra; Department of Microbiology, Raiganj University, Raiganj,Uttar Dinajpur, West Bengal, 733134, India; email: pkdmvu@gmail.com",,Editura Universitatii din Oradea,,,,,,15849074,,,,English,North-West. J. Zool.,Article,Final,,Scopus,2-s2.0-85145919537 Parappurathu S.; Menon M.; Jeeva C.; Belevendran J.; Anirudhan A.; Lekshmi P.S.S.; Ramachandran C.; Padua S.; Aswathy N.; Ghosh S.; Damodaran D.; Megarajan S.; Rajamanickam G.; Vinuja S.V.; Ignatius B.; Raghavan S.V.; Narayanakumar R.; Gopalakrishnan A.; Chand P.,"Parappurathu, Shinoj (36088050300); Menon, Muktha (56321637700); Jeeva, Charles (55325316200); Belevendran, Johnson (58149556900); Anirudhan, Anuraj (57831649500); Lekshmi, P. S. Swathi (55325378800); Ramachandran, C. (55821709700); Padua, Shelton (57194392828); Aswathy, Natarajan (43661116400); Ghosh, Shubhadeep (16063754000); Damodaran, Divu (55841053200); Megarajan, Sekar (57193643645); Rajamanickam, Geetha (58150157700); Vinuja, S.V. (58149638800); Ignatius, Boby (14060182600); Raghavan, Suresh Vettath (14520027900); Narayanakumar, Ramani (59157901200); Gopalakrishnan, Achamveetil (14119839700); Chand, Prem (55336211500)",36088050300; 56321637700; 55325316200; 58149556900; 57831649500; 55325378800; 55821709700; 57194392828; 43661116400; 16063754000; 55841053200; 57193643645; 58150157700; 58149638800; 14060182600; 14520027900; 59157901200; 14119839700; 55336211500,Sustainable intensification of small-scale mariculture systems: Farm-level insights from the coastal regions of India,2023,Frontiers in Sustainable Food Systems,7,,1078314,,,,8,10.3389/fsufs.2023.1078314,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85150524129&doi=10.3389%2ffsufs.2023.1078314&partnerID=40&md5=6919b252bf586625463cf11c3aad00a1,"ICAR-Central Marine Fisheries Research Institute (CMFRI), Kochi, India; ICAR, Central Institute of Brackishwater Aquaculture (CIBA), Chennai, India; ICAR-National Institute of Agricultural Economics and Policy Research (NIAP), New Delhi, India","Parappurathu S., ICAR-Central Marine Fisheries Research Institute (CMFRI), Kochi, India; Menon M., ICAR-Central Marine Fisheries Research Institute (CMFRI), Kochi, India; Jeeva C., ICAR-Central Marine Fisheries Research Institute (CMFRI), Kochi, India; Belevendran J., ICAR-Central Marine Fisheries Research Institute (CMFRI), Kochi, India; Anirudhan A., ICAR-Central Marine Fisheries Research Institute (CMFRI), Kochi, India; Lekshmi P.S.S., ICAR-Central Marine Fisheries Research Institute (CMFRI), Kochi, India; Ramachandran C., ICAR-Central Marine Fisheries Research Institute (CMFRI), Kochi, India; Padua S., ICAR-Central Marine Fisheries Research Institute (CMFRI), Kochi, India; Aswathy N., ICAR-Central Marine Fisheries Research Institute (CMFRI), Kochi, India; Ghosh S., ICAR-Central Marine Fisheries Research Institute (CMFRI), Kochi, India; Damodaran D., ICAR-Central Marine Fisheries Research Institute (CMFRI), Kochi, India; Megarajan S., ICAR-Central Marine Fisheries Research Institute (CMFRI), Kochi, India; Rajamanickam G., ICAR, Central Institute of Brackishwater Aquaculture (CIBA), Chennai, India; Vinuja S.V., ICAR-Central Marine Fisheries Research Institute (CMFRI), Kochi, India; Ignatius B., ICAR-Central Marine Fisheries Research Institute (CMFRI), Kochi, India; Raghavan S.V., ICAR-Central Marine Fisheries Research Institute (CMFRI), Kochi, India; Narayanakumar R., ICAR-Central Marine Fisheries Research Institute (CMFRI), Kochi, India; Gopalakrishnan A., ICAR-Central Marine Fisheries Research Institute (CMFRI), Kochi, India; Chand P., ICAR-National Institute of Agricultural Economics and Policy Research (NIAP), New Delhi, India","This study undertakes a comprehensive assessment of selected mariculture enterprises in the coastal regions of India, centered on long-term sustainability as the key focus. This is juxtaposed against India's ambitious blue economy targets and policy thrust that pin on the expansion of mariculture as a promising avenue for enhancing marine fish production. Farm-level, region-specific, techno-economic, and socio-cultural factors associated with, and conditional on, sustainable intensification of mariculture-based production systems are examined in detail. The Principles-Criteria-Indicators (PCI) approach is used to establish the linkage between identified farm-level indicators and various dimensions of sustainability. While the selected enterprises were assessed to be technically and economically viable in general, glaring gaps were evident on key indicators of sustainability such as the legitimacy of access over water bodies, use of quality seed and feed, institutional credit access, market access, and fair marketing practices, optimal stocking density, mechanization, use of renewable energy, adoption of environmental-friendly culture practices, farm surveillance, crew safety, and social protection. This indicates the need for taking proactive measures to ensure the long-term sustainability of mariculture, particularly in the initial stages of establishment when such interventions are easy to adopt. Based on the insights obtained from the analysis, a broad set of strategies, policy options, and institutional interventions critical to scaling-up coastal mariculture enterprises along the east and west coasts of India are presented. Copyright © 2023 Parappurathu, Menon, Jeeva, Belevendran, Anirudhan, Lekshmi, Ramachandran, Padua, Aswathy, Ghosh, Damodaran, Megarajan, Rajamanickam, Vinuja, Ignatius, Raghavan, Narayanakumar, Gopalakrishnan and Chand.",blue economy; cage culture; diversified coastal economy; india; mariculture; production efficiency; small-holder aquaculture; sustainability,,"S. Parappurathu; ICAR-Central Marine Fisheries Research Institute (CMFRI), Kochi, India; email: pshinoj@gmail.com",,Frontiers Media S.A.,,,,,,2571581X,,,,English,Front. Sustain. food Syst.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85150524129 Nguyen H.; Chu L.; Harper R.J.; Dell B.; Hoang H.,"Nguyen, Hai (57693830600); Chu, Long (36611178200); Harper, Richard J. (7401530212); Dell, Bernard (7004909808); Hoang, Hanh (24922703800)",57693830600; 36611178200; 7401530212; 7004909808; 24922703800,Mangrove-shrimp farming: A triple-win approach for communities in the Mekong River Delta,2022,Ocean and Coastal Management,221,,106082,,,,12,10.1016/j.ocecoaman.2022.106082,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85126089229&doi=10.1016%2fj.ocecoaman.2022.106082&partnerID=40&md5=17399b016dd921716d5f5016ff696e2a,"College of Science, Health Engineering and Education, Murdoch University, Murdoch, 6150, Australia; Crawford School of Public Policy, The Australian National University, Canberra, 2601, Australia; Minh Hai Centre for Mangrove Forest Research and Technique Application, Ca Mau Province, Viet Nam","Nguyen H., College of Science, Health Engineering and Education, Murdoch University, Murdoch, 6150, Australia; Chu L., Crawford School of Public Policy, The Australian National University, Canberra, 2601, Australia; Harper R.J., College of Science, Health Engineering and Education, Murdoch University, Murdoch, 6150, Australia; Dell B., College of Science, Health Engineering and Education, Murdoch University, Murdoch, 6150, Australia; Hoang H., Minh Hai Centre for Mangrove Forest Research and Technique Application, Ca Mau Province, Viet Nam","Balancing economic, environmental and social objectives usually challenges policymakers, but it is feasible. Using a unique household survey dataset with 98 households in Ca Mau Province, Vietnam, we found that integrating mangroves with shrimp farming, in a mangrove-aquaculture system (MAS), can support multiple objectives. The MAS provides the highest average benefit-cost ratio (BCR), from 2.7 to 2.9, while the BCR of surveyed intensive shrimp farms ranged from 1.1 to 1.2, and that of the traditional extensive shrimp farming systems was from 1.7 to 1.8. MAS was also the least expensive in terms of investment and suitable for people with limited financial capacity. MAS can also produce other economic and environmental benefits, such as from carbon mitigation, with less overall risk than the other systems. Our survey data show that mangrove coverage may contribute to economic efficiency; and the optimal mangrove coverage from the perspective of individual farmers (30%) was lower than what is demonstrated by empirical data (60%). While our findings draw from survey data in a specific location, they highlight the benefits of MAS as a possible triple-win approach towards sustainable development and also emphasise the importance of complementary programs, such as awareness enhancement, communication, and training. © 2022 Elsevier Ltd",carbon mitigation; environmental sustainability; farmer income; mangroves; rural livelihoods; shrimp farming; sustainability,Ca Mau; Mekong River; Viet Nam; Agriculture; Carbon; Cost benefit analysis; Economic and social effects; Planning; Shellfish; Surveys; Aquaculture systems; Benefit cost ratios; Carbon mitigation; Environmental services; Farmer's incomes; Mangrove; Mekong River; Rural livelihood; Shrimp farming; Survey data; crustacean culture; household survey; mangrove; policy making; shrimp culture; sustainable development; Sustainable development,"H. Nguyen; College of Science, Health Engineering and Education, Murdoch University, Murdoch, 6150, Australia; email: hai.nguyen@murdoch.edu.au",,Elsevier Ltd,,,,,,09645691,,OCMAE,,English,Ocean Coast. Manage.,Article,Final,,Scopus,2-s2.0-85126089229 Coglan L.; Pascoe S.; Scheufele G.,"Coglan, Louisa (8357640700); Pascoe, Sean (7003873213); Scheufele, Gabriela (8146124400)",8357640700; 7003873213; 8146124400,Availability of non-market values to inform decision-making in australian fisheries and aquaculture: An audit and gap analysis,2021,Sustainability (Switzerland),13,2,920,1,18,17,3,10.3390/su13020920,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85099541576&doi=10.3390%2fsu13020920&partnerID=40&md5=e3d8ff3e629e2fa57a6707a8d2dd50ad,"QUT School of Economics and Finance, Brisbane, 4001, QLD, Australia; CSIRO Oceans and Atmosphere, St Lucia, 4067, QLD, Australia","Coglan L., QUT School of Economics and Finance, Brisbane, 4001, QLD, Australia; Pascoe S., CSIRO Oceans and Atmosphere, St Lucia, 4067, QLD, Australia; Scheufele G., CSIRO Oceans and Atmosphere, St Lucia, 4067, QLD, Australia","Fisheries and aquaculture management can have impacts on economic, social and environmental outcomes. Assessing alternative management options requires an understanding of the different trade-offs between these outcomes. Cost–benefit analysis provides a framework in which these trade-offs can be assessed, but requires all costs and benefits to be enumerated in monetary terms. However, some impacts associated with fisheries and aquaculture, particularly environmental, have no explicit monetary value, so they require non-market values to be derived. In this study, we identify and prioritize, through a stakeholder workshop, non-market values that are of the most relevance to Australian fisheries and aquaculture managers. We assess the potential of existing studies to provide appropriate values for use by managers through a detailed review of available studies. We found a deficiency in the number of recent studies across all priority areas. Non-market valuation of recreational fishing has attracted the most attention previously in Australia, but studies in the last five years were found in only half of the states. Other priority non-market values have been estimated in only one or two states, and most have no estimates within the last five years. The results of the study highlight the need for further research in this area. © 2021 by the authors. Licensee MDPI, Basel, Switzerland.",aquaculture; fisheries management; non-market values,Australia; decision making; estimation method; fishery management; management practice; prioritization; stakeholder; trade-off; valuation,"L. Coglan; QUT School of Economics and Finance, Brisbane, 4001, Australia; email: l.coglan@qut.edu.au",,MDPI AG,,,,,,20711050,,,,English,Sustainability,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85099541576 Phang S.; March A.; Touron-Gardic G.; Deane K.; Failler P.,"Phang, Sui (57190860880); March, Antaya (57222724627); Touron-Gardic, Gregoire (57210257971); Deane, Kieran (58643398300); Failler, Pierre (14631752400)",57190860880; 57222724627; 57210257971; 58643398300; 14631752400,"A review of the blue economy, potential, and opportunities in seven Caribbean nations pre-COVID-19",2023,ICES Journal of Marine Science,,,,,,,9,10.1093/icesjms/fsac230,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85173941161&doi=10.1093%2ficesjms%2ffsac230&partnerID=40&md5=0c4191e147025e6d87691f8746c98cbf,"Centre for Blue Governance, University of Portsmouth, PO1 2UP, Portsmouth, United Kingdom","Phang S., Centre for Blue Governance, University of Portsmouth, PO1 2UP, Portsmouth, United Kingdom; March A., Centre for Blue Governance, University of Portsmouth, PO1 2UP, Portsmouth, United Kingdom; Touron-Gardic G., Centre for Blue Governance, University of Portsmouth, PO1 2UP, Portsmouth, United Kingdom; Deane K., Centre for Blue Governance, University of Portsmouth, PO1 2UP, Portsmouth, United Kingdom; Failler P., Centre for Blue Governance, University of Portsmouth, PO1 2UP, Portsmouth, United Kingdom","Caribbean countries face many challenges to effectively implement and benefit from the blue economy. This study synthesized current available information from the literature about the main blue economy activities in the Bahamas, Barbados, Belize, Guyana, Jamaica, Trinidad and Tobago, and Suriname, prior to the COVID-19 pandemic, to highlight their value in the context of blue economic recovery. This timestamp of data provides a point of comparison to understand the vulnerability of blue economy sectors to external shocks. The top performing sectors prior to the pandemic were shipping and tourism, both of which were significant contributors to the GDP. The other sectors (e.g. fisheries, aquaculture, pharmaceuticals, etc.) in some countries were well established and in others, at a minimum, displayed potential for continued development. To valorize the blue economy in a post pandemic recovery, there are three core areas of opportunity: sustainable resource extraction and production; cultivated economic development; and improved ecosystem economic valuations. Harnessing these opportunities will require a transition from a traditional ocean economy towards a coordinated blue economy, including the adoption of effective governance and sustainability principles, improved social, economic, and environmental valuations, and sustainable financing, as well as a more regional coordinated approach to the management of resources. © The Author(s) 2023. Published by Oxford University Press.",blue economy; blue growth; caribbean; economic development; ocean economy; sustainability,Bahamas; Barbados; Belize [Central America]; Guyana; Jamaica; Suriname; Trinidad and Tobago; COVID-19; economic activity; economic analysis; literature review; resource economy; sustainability; vulnerability,"A. March; Centre for Blue Governance, University of Portsmouth, Portsmouth, PO1 2UP, United Kingdom; email: antaya.march@port.ac.uk",,Oxford University Press,,,,,,10543139,,ICESE,,English,ICES J. Mar. Sci.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85173941161 Michaelis A.K.; Walton W.C.; Webster D.W.; Shaffer L.J.,"Michaelis, Adriane K. (54914206500); Walton, William C. (55273992000); Webster, Donald W. (55904237000); Shaffer, L. Jen (36497693100)",54914206500; 55273992000; 55904237000; 36497693100,Cultural ecosystem services enabled through work with shellfish,2021,Marine Policy,132,,104689,,,,14,10.1016/j.marpol.2021.104689,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85110619970&doi=10.1016%2fj.marpol.2021.104689&partnerID=40&md5=9230840f2152abdf0df843c548e13a4c,"University of Maryland Department of Anthropology, 1111 Woods Hall, 4302 Chapel Lane, College Park, 20742, MD, United States; Auburn University Shellfish Laboratory, 150 Agassiz St, Dauphin Island, 36528, AL, United States; Virginia Institute of Marine Science, College of William & Mary, 1375 Greate Rd, Gloucester Point, 23062, VA, United States; University of Maryland Extension, Wye Research and Education Center, 124 Wye Narrows Drive, Queenstown, 21658-0169, MD, United States","Michaelis A.K., University of Maryland Department of Anthropology, 1111 Woods Hall, 4302 Chapel Lane, College Park, 20742, MD, United States; Walton W.C., Auburn University Shellfish Laboratory, 150 Agassiz St, Dauphin Island, 36528, AL, United States, Virginia Institute of Marine Science, College of William & Mary, 1375 Greate Rd, Gloucester Point, 23062, VA, United States; Webster D.W., University of Maryland Extension, Wye Research and Education Center, 124 Wye Narrows Drive, Queenstown, 21658-0169, MD, United States; Shaffer L.J., University of Maryland Department of Anthropology, 1111 Woods Hall, 4302 Chapel Lane, College Park, 20742, MD, United States","Cultural ecosystem services are understudied relative to other types of ecosystem services. This is especially true as they relate to bivalve shellfish. Approaching cultural services through shellfish-based livelihoods, this study utilized ethnographic field methods to detail the benefits received and enabled by individuals through work with shellfish. A total of 218 shellfish growers, wild harvesters, and others working in roles that support shellfisheries in the United States regions of Chesapeake Bay, Gulf of Mexico, and New England were interviewed to create a list of shellfish-enabled cultural, provisioning, regulating, and supporting ecosystem services as well as their related benefits. Results illustrated that individuals involved in both wild and aquaculture shellfisheries perceive and receive similar benefits, though the interpretation of these benefits may vary depending on industry role. In addition to describing benefits overall, attention was given to linked services as well as how services may be enhanced or diminished with a changing social-ecological system. The comprehensive dataset is useful for understanding the myriad benefits associated with shellfisheries and provides the foundation necessary for continued research and analysis of shellfish-associated services. Findings underscore the importance of cultural services relative to their noted absence in shellfish management and policy discussions and, ultimately, policy decisions. Beyond shellfisheries, the study showcases the combined utility of a participatory approach and flexible framework with which to describe cultural services. © 2021 Elsevier Ltd",aquaculture; cultural ecosystem services; oyster; shellfish,Chesapeake Bay; New England; United States; Bivalvia; Miletinae; Ostreidae; ecosystem service; livelihood; oyster culture; shellfish culture,"A.K. Michaelis; University of Maryland Department of Anthropology, College Park, 1111 Woods Hall, 4302 Chapel Lane, 20742, United States; email: adriane.michaelis@ecstech.com",,Elsevier Ltd,,,,,,0308597X,,,,English,Mar. Policy,Article,Final,All Open Access; Bronze Open Access,Scopus,2-s2.0-85110619970 Yan L.; Roy D.P.; Promkhambut A.; Fox J.; Zhai Y.,"Yan, L. (55877448700); Roy, D.P. (7402439028); Promkhambut, A. (36551471600); Fox, J. (35584326300); Zhai, Y. (57189490408)",55877448700; 7402439028; 36551471600; 35584326300; 57189490408,Automated extraction of aquaculture ponds from Sentinel-2 seasonal imagery – A validated case study in central Thailand,2022,Science of Remote Sensing,6,,100063,,,,7,10.1016/j.srs.2022.100063,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85166791630&doi=10.1016%2fj.srs.2022.100063&partnerID=40&md5=87655684e4abfd567103ca4dcc1b4b2a,"Center for Global Change and Earth Observations, Michigan State University, East Lansing, 48824, MI, United States; Department of Geography, Environment, and Spatial Sciences, Michigan State University, East Lansing, 48824, MI, United States; Department of Agricultural Extension and Development, Khon Kaen University, Muang District, Khon Kaen, 40002, Thailand; The East-West Center, Honolulu, 96848, HI, United States; Water Conservancy and Civil Engineering College, Inner Mongolia Agricultural University, Inner Mongolia, Hohhot, 010010, China","Yan L., Center for Global Change and Earth Observations, Michigan State University, East Lansing, 48824, MI, United States; Roy D.P., Center for Global Change and Earth Observations, Michigan State University, East Lansing, 48824, MI, United States, Department of Geography, Environment, and Spatial Sciences, Michigan State University, East Lansing, 48824, MI, United States; Promkhambut A., Department of Agricultural Extension and Development, Khon Kaen University, Muang District, Khon Kaen, 40002, Thailand; Fox J., The East-West Center, Honolulu, 96848, HI, United States; Zhai Y., Center for Global Change and Earth Observations, Michigan State University, East Lansing, 48824, MI, United States, Water Conservancy and Civil Engineering College, Inner Mongolia Agricultural University, Inner Mongolia, Hohhot, 010010, China","The incidence and size of aquaculture ponds are related to a variety of economic, social, environmental, and policy factors, but there is scarce publicly available information. Satellite based aquaculture pond mapping has typically been undertaken by segmentation of single-date images or of temporal composites derived from image time series. In Asia, both aquaculture and rice farming can be undertaken in the same locality and, combined with frequent cloud cover, meaning that segmentations should be derived throughout the year to be able to differentiate aquaculture ponds from rice paddies and to provide spatially-complete pond mapping results. In this paper, a new approach is presented to extract individual aquaculture ponds from seasonal Sentinel-2 10 m images and to combine different sets of pond objects extracted from different images into a single set of pond objects. The approach is demonstrated for the province of Nakhon Pathom (216,800 ha) in central Thailand that is a major shrimp farming area. Aquaculture ponds were extracted from near-cloud-free Sentinel-2 images acquired in January and June 2019 to reduce confusion with rice paddies that are typically vegetation covered in these months. The ponds extracted at different times were then combined using a multi-temporal object combination strategy. Surveys undertaken in 2019 to elucidate farmers’ attitudes and land use practices were used to contextualize the extraction results. Across the province, 22,833 aquaculture ponds were extracted with a total area of 18,066 ha. The mean and median pond sizes were 0.79 ha and 0.60 ha, respectively, which is close to the 0.65 ha mean shrimp pond size in Thailand reported by other researchers via independent surveys. Current methods to map aquaculture ponds have not typically reported object-based validation results and so it is unknown whether object-level information (e.g., number of ponds and pond sizes) are reliable. Therefore, the extraction results were evaluated quantitatively using object-based accuracy metrics. A total of 1733 aquaculture ponds at three validation sites were manually digitized using multi-date GoogleEarth high-resolution images, and compared with the extracted ponds. The evaluation results indicated a robust pond extraction performance, with 87.7% object-based overall accuracy considering all the reference data and the extracted ponds at the three sites. 0.9% of the extracted ponds were over-extracted (commission error), 0.9% were under-split, 2.6% were over-split, and 6.9% of the of the reference ponds were not extracted (omission error). In addition, the mean over-segmentation error of 0.154, mean under-segmentation error of 0.111, and mean F-score (dice coefficient) of 0.858 were obtained. The causes of these errors were examined and discussed with recommended potential research using other sensor data. © 2022 The Author(s)",,,"L. Yan; Center for Global Change and Earth Observations, Michigan State University, East Lansing, 48824, United States; email: yanlin@msu.edu",,Elsevier B.V.,,,,,,26660172,,,,English,Sci. Remote Sens.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85166791630 Bartley D.M.,"Bartley, Devin Michael (7006633471)",7006633471,Freshwater and fisheries: The need for comparative valuation,2022,Aquatic Ecosystem Health and Management,25,1,,39,48,9,0,10.14321/aehm.025.01.39,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85132383054&doi=10.14321%2faehm.025.01.39&partnerID=40&md5=6f99a915a5bca5b4df7aa64947f3e6f7,"Department of Fisheries and Wildlife, Michigan State University, MI, United States","Bartley D.M., Department of Fisheries and Wildlife, Michigan State University, MI, United States","Aquatic ecosystems and specifically the freshwater therein, provide several ecosystem benefits including provisioning, regulating, supporting, and cultural services. These benefits are substantial but are not partitioned equally or equitably among the various stakeholders. Demand for freshwater is expected to double by 2050; the inland fisheries sector is in competition with other users of freshwater and will need to demonstrate the value of freshwater and its fisheries to ensure appropriate policies to manage inland aquatic ecosystems. I have examined published material to estimate the value of water to industry, domestic, agriculture, and fisheries users. Although the estimates are extremely rough, there are differences of many orders of magnitude in the value of freshwater depending on what it is used for. For example: Inland fisheries harvested in 2016 â 10.2 million t worth US$5.5 billion Inland aquaculture produced in 2016 33.8 million t worth US$61.1 billion 45,000 large dams generated 20 percent of world electricity worth US$5.7 trillion Large dams irrigated 100 million ha of land worth US$665 billion The large values associated with water use by non-fisheries sectors are often not realized by the fisheries, sector, but need to be in policy negotiations. The large differences in dollar value between inland fisheries'products and the other users of freshwater do not reflect the true value of inland fisheries in terms of nutrition, food security, and cultural values for many stakeholders. Those values are difficult to determine, and the stakeholders are often rural communities in developing countries whose needs are not often addressed. As reflected in the Rome Declaration: Ten steps to responsible inland fisheries, efforts must be made to engage other users of freshwater and accurately value the services provided by freshwater ecosystems. Examples of specific benefits derived from freshwater fish are provided to help develop a robust valuation system for these ecosystem services. Inland fisheries will never produce the number of pounds of product produced from irrigated farmland, or surpass the value of electricity from hydropower, but crops and electricity do not have the nutritional value of fish. Therefore, elements of a more robust value system and framework are proposed that acknowledges the other uses of freshwater and addresses the social and cultural needs of communities that depend on inland fisheries for their livelihood. © Copyright © 2022 Aquatic Ecosystem Health & Management Society.",ecosystem services; inland fisheries; water management,,"D.M. Bartley; Department of Fisheries and Wildlife, Michigan State University, MI, United States; email: devinmichaelbartley@gmail.com",,Michigan State University Press,,,,,,14634988,,AEHMF,,English,Aquatic Ecosyst. Health Manage.,Article,Final,,Scopus,2-s2.0-85132383054 Le Gouvello R.; Cohen-Shacham E.; Herr D.; Spadone A.; Simard F.; Brugere C.,"Le Gouvello, Raphaëla (6507233677); Cohen-Shacham, Emmanuelle (55102892600); Herr, Dorothee (55221391200); Spadone, Aurélie (14420425500); Simard, François (56432493500); Brugere, Cécile (8306660900)",6507233677; 55102892600; 55221391200; 14420425500; 56432493500; 8306660900,The IUCN Global Standard for Nature-based Solutions™ as a tool for enhancing the sustainable development of marine aquaculture,2023,Frontiers in Marine Science,10,,1146637,,,,17,10.3389/fmars.2023.1146637,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85159067729&doi=10.3389%2ffmars.2023.1146637&partnerID=40&md5=637fa4dfdfa8df6c194d0d32eda7a854,"General Management STERMOR Ocean and Coastal Sustainability, Pénestin, France; Ecosystem-based Aquaculture Group (E-bAG) Commission on Ecosystem Management, IUCN, Gland, Switzerland; Nature-based Solution Thematic Group, IUCN Commission on Ecosystem Management, Gland, Switzerland; Centre for Conservation Action, Ocean Team, IUCN, Gland, Switzerland; Center for Conservation Action, Ocean Team, IUCN, Bonn, Germany; Soulfish Research and Consultancy, York, United Kingdom","Le Gouvello R., General Management STERMOR Ocean and Coastal Sustainability, Pénestin, France, Ecosystem-based Aquaculture Group (E-bAG) Commission on Ecosystem Management, IUCN, Gland, Switzerland; Cohen-Shacham E., Nature-based Solution Thematic Group, IUCN Commission on Ecosystem Management, Gland, Switzerland; Herr D., Centre for Conservation Action, Ocean Team, IUCN, Gland, Switzerland; Spadone A., Center for Conservation Action, Ocean Team, IUCN, Bonn, Germany; Simard F., Ecosystem-based Aquaculture Group (E-bAG) Commission on Ecosystem Management, IUCN, Gland, Switzerland; Brugere C., Ecosystem-based Aquaculture Group (E-bAG) Commission on Ecosystem Management, IUCN, Gland, Switzerland, Soulfish Research and Consultancy, York, United Kingdom","This paper applies the IUCN Global Standard for Nature based Solutions™ self-assessment tool (published in 2020) to two aquaculture case studies. Data from the case studies were compiled by the authors. In Zanzibar, secondary data were obtained through a previous project, which included a stakeholder workshop in Zanzibar (in 2019) and one deliverable published by the IUCN on Zanzibar of their catalogue “Aquaculture and Marine Conservation”. In Indonesia, the original data were provided by the Blue Natural Capital Funding Facility (BNCFF) and the associated local teams. The analysis of the data, the information provided, and the scoring itself were done by the authors, in association with local teams in both areas. The results of the two assessments, discussed in the paper and presented in detail in the Supplementary materials, can be considered original research, never previously published in a scientific journal. The concept of Nature-based Solutions (NbS) was proposed by the International Union for Conservation of Nature (IUCN) to protect, restore, and sustainably manage natural and modified ecosystems for achieving a variety of societal benefits. The IUCN released the IUCN Global Standard for NbS™ to help design, assess, strengthen, and upscale NbS interventions. In the current context of growing uncertainties for the future of coastlines and oceans, aquaculture has been recognized as a positive activity for achieving sustainable development in coastal communities; supporting food security, poverty alleviation, and economic resilience; and contributing to the conservation of marine ecosystems in some cases. However, the sustainability of aquaculture systems has often been criticized. Aquaculture initiatives in coastal areas can achieve both nature conservation and sustainable development objectives, but reflection on the conditions under which this would happen is needed. This article examines aquaculture systems through the lens of the NbS concept and the IUCN Global Standard for NbS™, along with other sustainability concepts and instruments currently used in the context of aquaculture. The application of the IUCN Global Standard for NbS™’s to two case studies is explored: seaweed farming in Zanzibar in marine conservation areas and shrimp farming coupled with mangrove restoration in Indonesia. The results show that the NbS concept underpinning the IUCN Global Standard for NbS™ could help in the overall assessment of aquaculture systems and improve their sustainability by highlighting both their positive outcomes and issues requiring further examination in relation to marine biodiversity benefits, socio-economic development, and/or governance. The IUCN Global Standard for NbS™ could provide an operational framework to implement existing concepts, such as the Ecosystem Approach to Aquaculture, contribute to clarifying critical issues in aquaculture development, and provide guidance for the development of a new type of aquaculture project, specifically designed as NbS. This finding advocates the context-dependent exploration and promotion of aquaculture projects as NbS. Copyright © 2023 Le Gouvello, Cohen-Shacham, Herr, Spadone, Simard and Brugere.",coastal ecosystems; ecosystem services; iucn global standard for nbs™; nature based solutions; sustainability,,"R. Le Gouvello; General Management STERMOR Ocean and Coastal Sustainability, Pénestin, France; email: raphaela.legouvello@wanadoo.fr",,Frontiers Media S.A.,,,,,,22967745,,,,English,Front. Mar. Sci.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85159067729 Risitano M.; Romano R.; Rusciano V.; Civero G.; Scarpato D.,"Risitano, Marcello (57191257390); Romano, Rosaria (22958799100); Rusciano, Vincenzo (57193697469); Civero, Gennaro (57193701001); Scarpato, Debora (55565234200)",57191257390; 22958799100; 57193697469; 57193701001; 55565234200,The impact of sustainability on marketing strategy and business performance: The case of Italian fisheries,2022,Business Strategy and the Environment,31,4,,1538,1551,13,30,10.1002/bse.2968,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85122061888&doi=10.1002%2fbse.2968&partnerID=40&md5=284af735b80fd55878283ce5a6a69def,"Department of Management Studies and Quantitative Methods, University of Naples Parthenope, Naples, Italy; Department of Economics and Statistics, University of Naples Federico II, Naples, Italy; Department of Economic and Legal Studies, University of Naples Parthenope, Naples, Italy","Risitano M., Department of Management Studies and Quantitative Methods, University of Naples Parthenope, Naples, Italy; Romano R., Department of Economics and Statistics, University of Naples Federico II, Naples, Italy; Rusciano V., Department of Economic and Legal Studies, University of Naples Parthenope, Naples, Italy; Civero G., Department of Economic and Legal Studies, University of Naples Parthenope, Naples, Italy; Scarpato D., Department of Economic and Legal Studies, University of Naples Parthenope, Naples, Italy","In the last years, sustainability has become a successful, relevant, critical factor in several food industries. The adoption of a sustainable marketing strategy contributes positively to changes in society in terms of environmental, social and economic development. The relationship between sustainability and business performance has been widely debated in management and organisational studies. However, despite its importance and relevance, fishery sustainability has not been systematically considered by scientific studies. This paper identifies and analyses the critical factors that describe the propensity towards sustainable development for large companies within the Italian fishery sector. For this purpose, the relationships among the following latent variables were analysed: sustainable social behaviour, sustainable environmental behaviour, sustainable marketing, and return on investment. A theoretical research model has been proposed and empirically tested using a methodology based on structural equation modelling. © 2021 ERP Environment and John Wiley & Sons Ltd.",fishery industry sem; marketing strategies; return on investment; sustainability; sustainability,Italy; aquaculture industry; economic development; fishery; food industry; sustainability; sustainable development,"V. Rusciano; Department of Economic and Legal Studies, University of Naples Parthenope, Naples, Italy; email: vincenzo.rusciano@uniparthenope.it",,John Wiley and Sons Ltd,,,,,,09644733,,,,English,Bus. Strategy Environ.,Article,Final,,Scopus,2-s2.0-85122061888 Mozumder M.M.H.; Schneider P.; Islam M.M.; Deb D.; Hasan M.; Monzer M.A.; Nur A.-A.U.,"Mozumder, Mohammad Mojibul Hoque (57200142240); Schneider, Petra (55422072200); Islam, Mohammad Mahmudul (55626318000); Deb, Dibash (57381481100); Hasan, Mehedi (58713796800); Monzer, Md. Abdulla (58531454700); Nur, As-Ad Ujjaman (57221258563)",57200142240; 55422072200; 55626318000; 57381481100; 58713796800; 58531454700; 57221258563,"Climate change adaptation strategies for small-scale Hilsa fishers in the coastal area of Bangladesh: social, economic, and ecological perspectives",2023,Frontiers in Marine Science,10,,1151875,,,,7,10.3389/fmars.2023.1151875,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85167627555&doi=10.3389%2ffmars.2023.1151875&partnerID=40&md5=b9768722a8bce7fd3591e78011eab055,"Fisheries and Environmental Management Group, Helsinki Institute of Sustainability Science (HELSUS), Faculty of Biological and Environmental Sciences, University of Helsinki, Helsinki, Finland; Department for Water, Environment, Civil Engineering and Safety, University of Applied Sciences Magdeburg-Stendal, Magdeburg, Germany; Department of Coastal and Marine Fisheries, Sylhet Agricultural University, Sylhet, Bangladesh; Department of Oceanography, Faculty of Marine Sciences and Fisheries, University of Chittagong, Chattogram, Bangladesh; Department of Fisheries, Faculty of Marine Sciences and Fisheries, University of Chittagong, Chattogram, Bangladesh; Department of Fisheries and Marine Science, Noakhali Science and Technology University, Sonapur, Bangladesh","Mozumder M.M.H., Fisheries and Environmental Management Group, Helsinki Institute of Sustainability Science (HELSUS), Faculty of Biological and Environmental Sciences, University of Helsinki, Helsinki, Finland; Schneider P., Department for Water, Environment, Civil Engineering and Safety, University of Applied Sciences Magdeburg-Stendal, Magdeburg, Germany; Islam M.M., Department of Coastal and Marine Fisheries, Sylhet Agricultural University, Sylhet, Bangladesh; Deb D., Department of Oceanography, Faculty of Marine Sciences and Fisheries, University of Chittagong, Chattogram, Bangladesh; Hasan M., Department of Oceanography, Faculty of Marine Sciences and Fisheries, University of Chittagong, Chattogram, Bangladesh; Monzer M.A., Department of Fisheries, Faculty of Marine Sciences and Fisheries, University of Chittagong, Chattogram, Bangladesh; Nur A.-A.U., Department of Fisheries and Marine Science, Noakhali Science and Technology University, Sonapur, Bangladesh","This study examines social, economic, and ecological adaptation strategies for small-scale Hilsa fishers in Bangladesh’s coastal areas in response to the impacts of climate change. The Hilsa fishery and the communities dependent on it are vulnerable to the adverse effects of climate change, making it imperative to adopt mechanisms to cope with its consequences. Using a mixed-method approach, including in-depth interviews, focus group discussions, and a review of secondary resources, this study explores adaptation policies, relevant factors, and aspects of the Hilsa fishing community’s response to climate change. The study finds that climate change poses a significant threat to biodiversity, potentially leading to changes in fish migration systems and declining fish stocks. The Hilsa fishers perceive that addressing climate change requires policies that combat poverty, preserve or restore biodiversity, and enhance ecosystem services simultaneously. The study identifies social adaptation strategies such as risk reduction, social relationships, and participation in adaptation planning. Economic adaptation strategies include alternative livelihood development, aquaculture, and access to credit. The study also suggests that effective ecological adaptation actions include developing climate change knowledge and fishers’ local ecological knowledge, establishing more effective sanctuaries, and developing networks among protected areas. The study concludes that formal adaptation policies should consider fishers’ interests and practices for adaptation, including their knowledge of social, economic, and ecological issues, to address the impacts of climate change on small-scale fishers and their communities. Copyright © 2023 Mozumder, Schneider, Islam, Deb, Hasan, Monzer and Nur.",adaptation; alternative aquafeeds; climate change; coastal area; ecological mangrove restoration; small-scale fisheries; social relationship,,"M.M.H. Mozumder; Fisheries and Environmental Management Group, Helsinki Institute of Sustainability Science (HELSUS), Faculty of Biological and Environmental Sciences, University of Helsinki, Helsinki, Finland; email: mohammad.mozumder@helsinki.fi",,Frontiers Media SA,,,,,,22967745,,,,English,Front. Mar. Sci.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85167627555 Pinnegar J.K.; Hamon K.G.; Kreiss C.M.; Tabeau A.; Rybicki S.; Papathanasopoulou E.; Engelhard G.H.; Eddy T.D.; Peck M.A.,"Pinnegar, John K. (6603881869); Hamon, Katell G. (36169742000); Kreiss, Cornelia M. (42961551600); Tabeau, Andrzej (12753130300); Rybicki, Sandra (57218502270); Papathanasopoulou, Eleni (8626677000); Engelhard, Georg H. (56366598000); Eddy, Tyler D. (36625376900); Peck, Myron A. (7102119738)",6603881869; 36169742000; 42961551600; 12753130300; 57218502270; 8626677000; 56366598000; 36625376900; 7102119738,Future Socio-Political Scenarios for Aquatic Resources in Europe: A Common Framework Based on Shared-Socioeconomic-Pathways (SSPs),2021,Frontiers in Marine Science,7,,568219,,,,20,10.3389/fmars.2020.568219,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85101095968&doi=10.3389%2ffmars.2020.568219&partnerID=40&md5=d6e69bd7cd457139cd0a8e08be522482,"Centre for Environment, Fisheries and Aquaculture Science (Cefas), Lowestoft, United Kingdom; School of Environmental Sciences, University of East Anglia (UEA), Norwich, United Kingdom; Wageningen Economic Research, The Hague, Netherlands; Thuenen Institute of Sea Fisheries, Bremerhaven, Germany; Plymouth Marine Laboratory, Plymouth, United Kingdom; Department for Accounting, Economics and Finance, University of the West of England, Bristol, United Kingdom; Centre for Fisheries Ecosystems Research, Fisheries and Marine Institute, Memorial University of Newfoundland, St. John’s, NL, Canada; Institute of Marine Ecosystem and Fishery Science, Center for Earth System Research and Sustainability, University of Hamburg, Hamburg, Germany; Department of Coastal Systems (COS), Royal Netherlands Institute for Sea Research (NIOZ), Texel, Netherlands","Pinnegar J.K., Centre for Environment, Fisheries and Aquaculture Science (Cefas), Lowestoft, United Kingdom, School of Environmental Sciences, University of East Anglia (UEA), Norwich, United Kingdom; Hamon K.G., Wageningen Economic Research, The Hague, Netherlands; Kreiss C.M., Thuenen Institute of Sea Fisheries, Bremerhaven, Germany; Tabeau A., Wageningen Economic Research, The Hague, Netherlands; Rybicki S., Thuenen Institute of Sea Fisheries, Bremerhaven, Germany; Papathanasopoulou E., Plymouth Marine Laboratory, Plymouth, United Kingdom, Department for Accounting, Economics and Finance, University of the West of England, Bristol, United Kingdom; Engelhard G.H., Centre for Environment, Fisheries and Aquaculture Science (Cefas), Lowestoft, United Kingdom, School of Environmental Sciences, University of East Anglia (UEA), Norwich, United Kingdom; Eddy T.D., Centre for Fisheries Ecosystems Research, Fisheries and Marine Institute, Memorial University of Newfoundland, St. John’s, NL, Canada; Peck M.A., Institute of Marine Ecosystem and Fishery Science, Center for Earth System Research and Sustainability, University of Hamburg, Hamburg, Germany, Department of Coastal Systems (COS), Royal Netherlands Institute for Sea Research (NIOZ), Texel, Netherlands","It has proven extremely challenging for researchers to predict with confidence how human societies might develop in the future, yet managers and industries need to make projections in order to test adaptation and mitigation strategies designed to build resilience to long-term shocks. This paper introduces exploratory scenarios with a particular focus on European aquaculture and fisheries and describes how these scenarios were designed. Short-, medium- and long-term developments in socio-political drivers may be just as important in determining profits, revenues and prospects in the aquaculture and fisheries industries as physical drivers such as long-term climate change. Four socio-political-economic futures were developed, based partly on the IPCC SRES (Special Report on Emissions Scenarios) framework and partly on the newer system of Shared Socio-economic Pathways (SSPs). ‘Off the shelf’ narrative material as well as quantitative outputs were ‘borrowed’ from earlier frameworks but supplemented with material generated through in-depth stakeholder workshops involving industry and policy makers. Workshop participants were tasked to outline how they thought their sector might look under the four future worlds and, in particular, to make use of the PESTEL conceptual framework (Political, Economic, Social, Technological, Environmental, and Legal) as an aide memoire to help define the scope of each scenario. This work was carried out under the auspices of the EU Horizon 2020 project CERES (Climate change and European aquatic RESources), and for each ‘CERES scenario’ (World Markets, National Enterprise, Global Sustainability and Local Stewardship), additional quantitative outputs were generated, including projections of future fuel and fish prices, using the MAGNET (Modular Applied GeNeral Equilibrium Tool) modeling framework. In developing and applying the CERES scenarios, we have demonstrated that the basic architecture is sufficiently flexible to be used at a wide diversity of scales. We urge the climate science community to adopt a similar scenarios framework, based around SSPs, to facilitate global cross-comparison of fisheries and aquaculture model outputs more broadly and to harmonize communication regarding potential future bioeconomic impacts of climate change. © Copyright © 2021 Pinnegar, Hamon, Kreiss, Tabeau, Rybicki, Papathanasopoulou, Engelhard, Eddy and Peck.",aquaculture; climate change; fisheries; marine; scenario,,"J.K. Pinnegar; Centre for Environment, Fisheries and Aquaculture Science (Cefas), Lowestoft, United Kingdom; email: john.pinnegar@cefas.co.uk; J.K. Pinnegar; School of Environmental Sciences, University of East Anglia (UEA), Norwich, United Kingdom; email: john.pinnegar@cefas.co.uk; K.G. Hamon; Wageningen Economic Research, The Hague, Netherlands; email: katell.hamon@wur.nl",,Frontiers Media S.A.,,,,,,22967745,,,,English,Front. Mar. Sci.,Article,Final,All Open Access; Gold Open Access; Green Open Access,Scopus,2-s2.0-85101095968 Song A.M.; Dressler W.H.; Satizábal P.; Fabinyi M.,"Song, Andrew M. (36242236100); Dressler, Wolfram H. (56072132200); Satizábal, Paula (55534484300); Fabinyi, Michael (30467447000)",36242236100; 56072132200; 55534484300; 30467447000,From conversion to conservation to carbon: The changing policy discourse on mangrove governance and use in the Philippines,2021,Journal of Rural Studies,82,,,184,195,11,35,10.1016/j.jrurstud.2021.01.008,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85100110148&doi=10.1016%2fj.jrurstud.2021.01.008&partnerID=40&md5=f35ae991bc0a77448828e0087c19d47d,"Faculty of Arts and Social Sciences, University of Technology Sydney, Ultimo, 2007, New South Wales, Australia; School of Geography, University of Melbourne, Carlton, 3053, Victoria, Australia","Song A.M., Faculty of Arts and Social Sciences, University of Technology Sydney, Ultimo, 2007, New South Wales, Australia; Dressler W.H., School of Geography, University of Melbourne, Carlton, 3053, Victoria, Australia; Satizábal P., School of Geography, University of Melbourne, Carlton, 3053, Victoria, Australia; Fabinyi M., Faculty of Arts and Social Sciences, University of Technology Sydney, Ultimo, 2007, New South Wales, Australia","The current focus on mangroves as key ecosystems in mitigating the impacts of climate change has largely neglected the livelihoods of coastal dwellers interacting with mangroves. This article provides a review of scholarly and policy attention paid to these social groups and their means of struggle. It argues that the latest dominant governance discourse tying mangroves to blue carbon signifies a departure from catering to coastal people's interests and rights in mangroves. We describe the evolving discourses that have shaped mangrove use and conservation in the Philippines since the 1970s. While the mid-century preoccupation with mangrove conversion to fish farms gradually gave way to the pursuit of community-based mangrove conservation in the late 1980s and 1990s, recent experiences suggest a comparably weakened focus towards recognizing local access and use patterns. We contend that the present blue carbon framing of mangroves, which harbours technocratic and financialized ideals of sustainability, poses a fundamental disadvantage to local users of mangroves. We conclude by reflecting on ways to redress this trend via a new framing of mangroves. © 2021 The Authors",aquaculture; blue economy; climage change; coastal governance; framing; small-scale fisheries,Philippines; Rhizophoraceae; artisanal fishery; climate change; climate effect; governance approach; local government; mangrove; rural economy; rural policy; sustainability,"A.M. Song; Faculty of Arts and Social Sciences, University of Technology Sydney, Ultimo, 2007, Australia; email: andrew.song@uts.edu.au",,Elsevier Ltd,,,,,,07430167,,JRSTF,,English,J. Rural Stud.,Article,Final,All Open Access; Green Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85100110148 Hukom V.; Nielsen R.; Nielsen M.,"Hukom, Venticia (57211536069); Nielsen, Rasmus (57205709508); Nielsen, Max (7402929419)",57211536069; 57205709508; 7402929419,Effects of co-management on technical efficiency and environmental stressors: An application to small-scale shrimp polyculture in Indonesia,2022,Aquaculture Economics and Management,26,1,,98,117,19,14,10.1080/13657305.2021.1897190,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85103390935&doi=10.1080%2f13657305.2021.1897190&partnerID=40&md5=30ca7786dd7bc629ee0c9d8a2092d0a8,"Institute of Food and Resource Economics, University of Copenhagen, Copenhagen, Denmark; Yayasan Inobu, Bali, Indonesia","Hukom V., Institute of Food and Resource Economics, University of Copenhagen, Copenhagen, Denmark, Yayasan Inobu, Bali, Indonesia; Nielsen R., Institute of Food and Resource Economics, University of Copenhagen, Copenhagen, Denmark; Nielsen M., Institute of Food and Resource Economics, University of Copenhagen, Copenhagen, Denmark","Shrimp polyculture is an important activity in South East Asia, providing a livelihood and food for small-scale farmers. However, farmers are facing challenges due to increasing environmental problems in rivers used as the primary source of water in aquaculture pond production. To deal with these challenges, farmers have organized co-management communities, which gives them a stronger voice among river users. This study investigates the effects of co-management on technical efficiency and environmental stressors using a second-stage Data Envelopment Analysis model. Environmental stressors are identified through interviews with 306 farmers in eight sub-districts, of which two are practicing co-management. The results show that farmers in areas with co-management have relatively high technical efficiency after taking other drivers into account. Furthermore, the farmer’s technical efficiency seems to be less affected by the identified environmental stressors. In conclusion, co-management could be used as a tool to improve technical efficiency and limit stress factors for farmers. It could be initiated by the farmers themselves or by policymakers and natural resource managers and could improve the livelihoods of small-scale shrimp polyculture farmers. © 2021 Taylor & Francis Group, LLC.",co-management; environmental sustainability; shrimp polyculture; small-scale fisheries; stress resilience; technical efficiency,Indonesia; comanagement; data envelopment analysis; environmental stress; polyculture; shrimp culture; technical efficiency,"V. Hukom; Yayasan Inobu, Bali, 80228, Indonesia; email: vhukom@inobu.org",,Taylor and Francis Ltd.,,,,,,13657305,,AEMAF,,English,Aquac. Econ. Manage.,Article,Final,,Scopus,2-s2.0-85103390935 Fu T.; Zhang L.; Yuan X.; Chen B.; Yan M.,"Fu, Tianmeng (57209456628); Zhang, Li (58853352100); Yuan, Xin (57273931200); Chen, Bowei (56789262700); Yan, Min (56421152600)",57209456628; 58853352100; 57273931200; 56789262700; 56421152600,"Spatio-temporal patterns and sustainable development of coastal aquaculture in Hainan Island, China: 30 Years of evidence from remote sensing",2021,Ocean and Coastal Management,214,,105897,,,,27,10.1016/j.ocecoaman.2021.105897,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85115807398&doi=10.1016%2fj.ocecoaman.2021.105897&partnerID=40&md5=b40505dc448cae1232b44cbebf1aeb33,"Key Laboratory of Digital Earth Science, Aerospace Information Research Institute, Chinese Academy of Sciences, Beijing, 100094, China; Key Laboratory of Earth Observation of Hainan Province, Sanya, 572000, China; University of Chinese Academy of Sciences, Beijing, 100049, China","Fu T., Key Laboratory of Digital Earth Science, Aerospace Information Research Institute, Chinese Academy of Sciences, Beijing, 100094, China, Key Laboratory of Earth Observation of Hainan Province, Sanya, 572000, China, University of Chinese Academy of Sciences, Beijing, 100049, China; Zhang L., Key Laboratory of Digital Earth Science, Aerospace Information Research Institute, Chinese Academy of Sciences, Beijing, 100094, China, Key Laboratory of Earth Observation of Hainan Province, Sanya, 572000, China; Yuan X., Key Laboratory of Digital Earth Science, Aerospace Information Research Institute, Chinese Academy of Sciences, Beijing, 100094, China; Chen B., Key Laboratory of Digital Earth Science, Aerospace Information Research Institute, Chinese Academy of Sciences, Beijing, 100094, China, Key Laboratory of Earth Observation of Hainan Province, Sanya, 572000, China; Yan M., Key Laboratory of Digital Earth Science, Aerospace Information Research Institute, Chinese Academy of Sciences, Beijing, 100094, China, Key Laboratory of Earth Observation of Hainan Province, Sanya, 572000, China","The fast-growing coastal aquaculture industry provides nutritious seafood and huge wealth for society, but also affects the natural environment and coastal ecosystems. There is an urgent need to realize the sustainable development of coastal aquaculture with regard to the trade-off between economic development and ecological conservation. Satellite remote sensing provides long-term data on the distribution and dynamics of aquaculture, which is essential for the design of suitable policy interventions for sustainable development. In this study, Landsat time series were used to map the tendencies and dynamics of aquaculture ponds for 30 years (1987–2018) in the coastal area of Hainan Island, China. The results showed that (1) the coastal aquaculture area of Hainan Island first increased rapidly, then increased slowly, and then decreased slightly in the past 30 years, increasing by approximately 10 times. The largest annual change rate of aquaculture ponds was between 2000 and 2005 (1597 ha/year), followed by the period 1995–2000 (1414 ha/year). (2) The development of aquaculture was unbalanced in the space, and Wenchang City in the northeast of Hainan Island accounted for 47.87% of the total aquaculture area in 2018. The aquaculture centroids moved from the center of Hainan Island to the northeast with a total migration distance of 72.9 km from 1987 to 2018. (3) There were three different types of development tendencies in the coastal cities (counties) (aquaculture areas increased continually; aquaculture areas increased first and then decreased slightly; aquaculture areas increased first, and then decreased significantly), mainly related to the different regional characteristics and development orientations. The different evolution phases of coastal aquaculture in Hainan Island were driven by relevant national and local government policies. Formulating and implementing appropriate aquaculture policies according to local conditions, as well as promoting industrial upgrading of aquaculture with high-tech, are significant suggestions for sustainable aquaculture. This study provides baseline data for local managers to assess the development of coastal aquaculture and reference experiences of sustainable aquaculture for other tropical islands and countries. © 2021 Elsevier Ltd",coastal aquaculture; hainan island; policies impact; remote sensing; sustainability,Hainan; Aquaculture; Economic and social effects; Ecosystems; Lakes; Planning; Remote sensing; Aquaculture industry; Aquaculture ponds; Coastal aquaculture; Coastal ecosystems; Hainan island; Natural environments; Policy impact; Remote-sensing; Spatiotemporal patterns; Trade off; aquaculture industry; coastal zone; economic conditions; economic development; local government; remote sensing; satellite data; spatiotemporal analysis; sustainable development; Sustainable development,"L. Zhang; Key Laboratory of Digital Earth Science, Aerospace Information Research Institute, Chinese Academy of Sciences, Beijing, 100094, China; email: zhangli@aircas.ac.cn",,Elsevier Ltd,,,,,,09645691,,OCMAE,,English,Ocean Coast. Manage.,Article,Final,,Scopus,2-s2.0-85115807398 Atufa R.; Ananthan P.S.; Balkhi M.-U.H.; Gul S.,"Atufa, Regu (58156861400); Ananthan, Pachampalayam Shanmugam (35321915200); Balkhi, Masood-ul Hassan (16433488700); Gul, Sadaf (58157718300)",58156861400; 35321915200; 16433488700; 58157718300,"Interdisciplinary assessment of fisheries sustainability in Wular Lake, India",2023,Fisheries Management and Ecology,30,3,,284,299,15,1,10.1111/fme.12619,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85150931198&doi=10.1111%2ffme.12619&partnerID=40&md5=d65f89dee904df26e056179ea715728d,"Fisheries Economics, Extension and Statistics Division, ICAR-Central Institute of Fisheries Education, Maharashtra, Mumbai, India; Faculty of Fisheries, Sher-e-Kashmir University of Agricultural Sciences and Technology, Jammu and Kashmir, Srinagar, India; Rinchen Shah Center for West Himalayan Cultures, Islamic University of Science and Technology, Jammu and Kashmir, Awantipora, India","Atufa R., Fisheries Economics, Extension and Statistics Division, ICAR-Central Institute of Fisheries Education, Maharashtra, Mumbai, India; Ananthan P.S., Fisheries Economics, Extension and Statistics Division, ICAR-Central Institute of Fisheries Education, Maharashtra, Mumbai, India; Balkhi M.-U.H., Faculty of Fisheries, Sher-e-Kashmir University of Agricultural Sciences and Technology, Jammu and Kashmir, Srinagar, India; Gul S., Rinchen Shah Center for West Himalayan Cultures, Islamic University of Science and Technology, Jammu and Kashmir, Awantipora, India","Inland fisheries, including aquaculture, contributed 73.65% of India's total fish production of 14.16 million tons in 2019–2020. Wular Lake, one of the largest freshwater lakes in Asia with a 13,000 ha area and a notable Ramsar wetland of international importance, supports thriving but increasingly threatened endemic fisheries that supply almost one-fourth of Jammu and Kashmir's fish catch and supports livelihoods of 3147 families of indigenous communities in a remote Himalayan region of India. A modified multi-dimensional RAPFISH methodology was used to ascertain the sustainability of the lake's fisheries. Catch records and published literature formed secondary data sources while primary information was collected through detailed key informant interviews, focus group discussions and participant observation methods, among both resource users and resource managers during 2018–2019. With a RAPFISH score of 40%, Wular lake fisheries fell in a less sustainable category, which is a cause of concern. Along with the technology evaluation field, which fared worst with a poor score of 15.77%, social (30.39%) and governance (39.09%) fields were less sustainable, while economic (69.33%) and ecology fields (57.68%) fell in the quite sustainable category. Very poor education level, high population density, minimal infrastructure, primitive craft, increasing pollution and ineffective governance are prime drivers of low sustainability. Variability in scores of evaluation fields and indicators supports the validity and utility of the modified RAPFISH tool for illuminating multi-dimensionality and complexity of lake fishery management. In the context of sustaining a small-scale artisanal fishery and associated livelihoods, our findings suggest specific evidence-based interventions to improve the sustainability of lake fisheries that can avoid tragedy of commons problem. © 2023 John Wiley & Sons Ltd.",fisheries; fisheries; rapfish; small-scale fisheries; sustainability; wular lake,India; Jammu and Kashmir; Wular Lake; endemic species; fish culture; fishery management; indigenous population; inland fishery; interdisciplinary approach; livelihood; Ramsar Convention; sustainability,"P.S. Ananthan; Fisheries Economics, Extension and Statistics Division, ICAR-Central Institute of Fisheries Education, Mumbai, Maharashtra, India; email: ananthan@cife.edu.in",,John Wiley and Sons Inc,,,,,,0969997X,,,,English,Fish. Manage. Ecol.,Article,Final,,Scopus,2-s2.0-85150931198 Peiró-Signes A.; Miret-Pastor L.; Galati A.; Segarra-Oña M.,"Peiró-Signes, Angel (52564142600); Miret-Pastor, Lluís (54884016300); Galati, Antonino (35226305100); Segarra-Oña, Marival (36024367900)",52564142600; 54884016300; 35226305100; 36024367900,"Consumer Demand for Environmental, Social, and Ethical Information in Fishery and Aquaculture Product Labels",2022,Frontiers in Marine Science,9,,948437,,,,9,10.3389/fmars.2022.948437,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85135485540&doi=10.3389%2ffmars.2022.948437&partnerID=40&md5=ccc84a5f0e6323fada8e34f03e719e01,"Management Department, Universitat Politècnica de València, València, Spain; Research Institute for Integrated Management of Coastal Areas, IGIC), Universitat Politècnica de València, Gandia, Spain; Department of Agricultural, Food and Forest Science, University of Palermo, Palermo, Italy","Peiró-Signes A., Management Department, Universitat Politècnica de València, València, Spain; Miret-Pastor L., Research Institute for Integrated Management of Coastal Areas, IGIC), Universitat Politècnica de València, Gandia, Spain; Galati A., Department of Agricultural, Food and Forest Science, University of Palermo, Palermo, Italy; Segarra-Oña M., Management Department, Universitat Politècnica de València, València, Spain","Customers’ attention to sustainability labels in fishery and aquaculture products (FAPs) has been increasing in the last decades, and the industry has adapted to this growing interest by adopting fish ecolabels. However, there is a growing interest to widen the sustainability concept to include the social and ethical information of the fishery and aquaculture industry and to go further from the voluntary approach on the labeling of these aspects in FAPs. For this reason, using data from 2021 Eurobarometer and using machine learning techniques, we disentangle the characteristics of the FAP buyers that consider the importance of environmental impact, ethical, and social information appearing on FAP labeling. The results confirmed that most of the consumers who consider environmental, social, and ethical aspects when buying FAPs also think that this information should be labeled. In line with other works, young, educated, and environmentally aware consumers in high-income countries are more likely to request this information in the FAP label. One interesting finding of the study relates with the asymmetric impact of the variables and the important group of respondents who do not consider these aspects but also advocate to include them in the FAP label. The study outcomes can be beneficial for policymakers to design future public policies regarding FAP labeling, as well as to be taken into consideration in the marketing policies of fishery and aquaculture producers and retailers. Copyright © 2022 Peiró-Signes, Miret-Pastor, Galati and Segarra-Oña.",ecolabels; european market; fishery and aquaculture production; labels information; mandatory labels; seafood customers,,"L. Miret-Pastor; Research Institute for Integrated Management of Coastal Areas, IGIC), Universitat Politècnica de València, Gandia, Spain; email: luimipas@esp.upv.es",,Frontiers Media S.A.,,,,,,22967745,,,,English,Front. Mar. Sci.,Article,Final,All Open Access; Gold Open Access; Green Open Access,Scopus,2-s2.0-85135485540 Gutiérrez-Estrada J.C.; Pulido-Calvo I.; Peregrín A.; García-Gálvez A.; Báez J.C.; Bellido J.J.; Souviron-Priego L.; Sánchez-Laulhé J.M.; López J.A.,"Gutiérrez-Estrada, J.C. (6506769856); Pulido-Calvo, I. (6506600630); Peregrín, A. (6508373874); García-Gálvez, A. (57220579717); Báez, J.C. (8373427200); Bellido, J.J. (57211382641); Souviron-Priego, L. (57201690136); Sánchez-Laulhé, J.M. (7801488879); López, J.A. (57219901333)",6506769856; 6506600630; 6508373874; 57220579717; 8373427200; 57211382641; 57201690136; 7801488879; 57219901333,Integrating local environmental data and information from non-driven citizen science to estimate jellyfish abundance in Costa del Sol (southern Spain),2021,"Estuarine, Coastal and Shelf Science",249,,107112,,,,17,10.1016/j.ecss.2020.107112,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85097405878&doi=10.1016%2fj.ecss.2020.107112&partnerID=40&md5=36c0bff2028c929e4a17c61092d420ae,"Dpto. Ciencias Agroforestales, Escuela Técnica Superior de Ingeniería, Campus de El Carmen, Universidad de Huelva, Huelva, 21007, Spain; Centro de Estudios Avanzados en Física, Matemáticas y Computación, Universidad de Huelva, Huelva, 21007, Spain; Instituto Español de Oceanografía (IEO), Centro Oceanográfico de Málaga, Puerto Pesquero s/n, Fuengirola, Málaga, 29640, Spain; Investigador asociado de la Facultad de Ciencias de la Salud, Universidad Autónoma de Chile, Chile; Aula del Mar de Málaga, Calle Pacífico 80, Málaga, E-29004, Spain; Departamento de Biología Animal, Facultad de Ciencias, Universidad de Málaga, Málaga, E-29071, Spain; Agencia Estatal de Meteorología, Centro Meteorológico de Málaga, Spain","Gutiérrez-Estrada J.C., Dpto. Ciencias Agroforestales, Escuela Técnica Superior de Ingeniería, Campus de El Carmen, Universidad de Huelva, Huelva, 21007, Spain; Pulido-Calvo I., Dpto. Ciencias Agroforestales, Escuela Técnica Superior de Ingeniería, Campus de El Carmen, Universidad de Huelva, Huelva, 21007, Spain; Peregrín A., Centro de Estudios Avanzados en Física, Matemáticas y Computación, Universidad de Huelva, Huelva, 21007, Spain; García-Gálvez A., Dpto. Ciencias Agroforestales, Escuela Técnica Superior de Ingeniería, Campus de El Carmen, Universidad de Huelva, Huelva, 21007, Spain; Báez J.C., Instituto Español de Oceanografía (IEO), Centro Oceanográfico de Málaga, Puerto Pesquero s/n, Fuengirola, Málaga, 29640, Spain, Investigador asociado de la Facultad de Ciencias de la Salud, Universidad Autónoma de Chile, Chile; Bellido J.J., Aula del Mar de Málaga, Calle Pacífico 80, Málaga, E-29004, Spain, Departamento de Biología Animal, Facultad de Ciencias, Universidad de Málaga, Málaga, E-29071, Spain; Souviron-Priego L., Aula del Mar de Málaga, Calle Pacífico 80, Málaga, E-29004, Spain, Departamento de Biología Animal, Facultad de Ciencias, Universidad de Málaga, Málaga, E-29071, Spain; Sánchez-Laulhé J.M., Agencia Estatal de Meteorología, Centro Meteorológico de Málaga, Spain; López J.A., Aula del Mar de Málaga, Calle Pacífico 80, Málaga, E-29004, Spain","Tourism, fishing and aquaculture are key economic sectors of Costa del Sol (southern Iberian Peninsula). The management of these activities is sometimes disturbed by the onshore arrival and stranding of jellyfish swarms. In the absence data on the occurrence of these organisms, it may be interesting to explore data from non-driven systems, such as social networks. The present study show how data in text format from a mobile app called Infomedusa can be processed and used to model the relationship between estimated abundance of jellyfish on the beaches and local environmental conditions. The data retrieved from this app using artificial intelligence procedures (transition network or TN algorithm), were used as input for GAM models to estimate the abundance of jellyfish based on wind speed and direction. The analysis of data provided by Infomedusa indicated that only 30.39% of messages provided by the users had information about absence/presence of jellyfishes in the beaches. On the other hand, the TN processing capacity showed an accuracy level to discriminate messages with information on absence/presence of jellyfish slightly higher than 80%. GAM models considering the wind direction and speed of previous day explained between 37% and 77% of the variance of jellyfish abundance estimate from Infomedusa data. In conclusion, this approach may contribute to the development of a system for predicting the onshore arrival of jellyfish in the Costa del Sol. © 2020 Elsevier Ltd",alborán sea; artificial creeks; gelatinous organisms; transition networks; transport,Andalucia; Costa del Sol; Spain; Scyphozoa; abundance; accuracy assessment; artificial intelligence; discriminant analysis; environmental conditions; estimation method; jellyfish; wind direction; wind velocity,"J.C. Gutiérrez-Estrada; Dpto. Ciencias Agroforestales, Escuela Técnica Superior de Ingeniería, Campus de El Carmen, Universidad de Huelva, Huelva, 21007, Spain; email: juanc@uhu.es",,Academic Press,,,,,,02727714,,ECSSD,,English,Estuar. Coast. Shelf Sci.,Article,Final,All Open Access; Green Open Access,Scopus,2-s2.0-85097405878 Matoju I.; Le Masson V.; Montalescot V.; Ndawala M.A.; Msuya F.E.,"Matoju, Ivy (57191613825); Le Masson, Virginie (23110731700); Montalescot, Valeria (56690412300); Ndawala, Msafiri Andrew (57418835800); Msuya, Flower E. (6602330271)",57191613825; 23110731700; 56690412300; 57418835800; 6602330271,A resilience lens to explore seaweed farmers’ responses to the impacts of climate change in Tanzania,2022,Applied Phycology,3,1,,132,148,16,4,10.1080/26388081.2022.2091951,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85139908666&doi=10.1080%2f26388081.2022.2091951&partnerID=40&md5=97ba97e79ba5739ab34882a260eafcf4,"Botany Department, University of Dar es Salaam, Dar es Salaam, Tanzania; IRDR Centre for Gender and Disaster, University College London, London, United Kingdom; Scottish Association for Marine Science, SAMS, Oban, United Kingdom","Matoju I., Botany Department, University of Dar es Salaam, Dar es Salaam, Tanzania; Le Masson V., IRDR Centre for Gender and Disaster, University College London, London, United Kingdom; Montalescot V., Scottish Association for Marine Science, SAMS, Oban, United Kingdom; Ndawala M.A., Botany Department, University of Dar es Salaam, Dar es Salaam, Tanzania; Msuya F.E., Botany Department, University of Dar es Salaam, Dar es Salaam, Tanzania","Seaweed-based mariculture is an important source of livelihoods for impoverished coastal communities in Tanzania. However, the impacts of climate change across East Africa are putting a strain on the growth of the seaweed industry. Smallholder farmers are already mobilizing strategies to cope with challenges such as disease outbreaks, but they are struggling to maintain seaweed production and derive sufficient income. A better understanding of the challenges they face and the factors inhibiting their ability to build resilience is needed to inform policies and development programmes to achieve the Sustainable Development Goals, particularly Goal 13 on Climate action and Goal 14 on Life Below Water. The global demand for seaweed is expanding rapidly. Strengthening the adaptability of seaweed production to climate change is important for farmers to rely on it as a source of livelihoods on which they can build their own resilience to climate change. Drawing on qualitative data from key informant interviews in four Tanzanian seaweed-producing areas, this paper assesses the long-term resilience capacities of seaweed farmers to respond to one of the main hazards: diseases affecting seaweed crops. While several strategies help farmers maintain their income, most of them only support resilience in the short term. The increasing pressure on marine resources and the lack of regulations for supporting an equitable and sustainable seaweed-based mariculture sector do not bode well for farmers’ long-term adaptation to climate change and environmental degradation. Seaweed farming remains a crucial source of livelihoods for poor coastal communities in Tanzania, but it does not currently lead to positive transformative changes in their socio-economic conditions. Policies aiming to support sustainable aquaculture, particularly in tropical ecosystems that are highly vulnerable to climate change, must address the existing social, economic and knowledge inequities that prevent poor communities from building their resilience. © 2022 The Author(s). Published by Informa UK Limited, trading as Taylor & Francis Group.",aquaculture; climate change; resilience; seaweed farming; tanzania,,"V. Le Masson; IRDR Centre for Gender and Disaster, University College London, London, United Kingdom; email: v.lemasson@ucl.ac.uk",,Informa UK Ltd,,,,,,26388081,,,,English,Appl. Phycol.,Article,Final,All Open Access; Gold Open Access; Green Open Access,Scopus,2-s2.0-85139908666 García-Bueno N.; Marín A.,"García-Bueno, Nuria (55195606200); Marín, Arnaldo (7201715818)",55195606200; 7201715818,Ecological management of biomass and metal bioaccumulation in fish-cage nettings: Influence of antifouling paint and fiber manufacture,2021,Aquaculture,544,,737142,,,,13,10.1016/j.aquaculture.2021.737142,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85109667693&doi=10.1016%2fj.aquaculture.2021.737142&partnerID=40&md5=23a9a5f938396ffb18898b3b2101e6fd,"Departamento de Ecología e Hidrología, Facultad de Biología, Universidad de Murcia, Murcia, 30100, Spain","García-Bueno N., Departamento de Ecología e Hidrología, Facultad de Biología, Universidad de Murcia, Murcia, 30100, Spain; Marín A., Departamento de Ecología e Hidrología, Facultad de Biología, Universidad de Murcia, Murcia, 30100, Spain","Biofouling causes major functional and economic problems for aquaculture due to their settlement and subsequent growth on fish-cage netting. As biofouling management is an economic and environmental issue, feasible management practices are clearly required to balance industries and environmental requirements. The most frequent way to control biofouling in aquaculture is by applying Cu-based antifouling paints on fish nets to prevent the undesired growth of biofouling. The most important fish species employed in marine fish farming are cultivated with knotted nylon and ultra-high-molecular-weight polyethylene (UW-polyethylene) nettings. In this study, we examined the effects of two commercial Cu coatings and two manufactured net materials (nylon and UW-polyethylene) on biofouling biomass, community structure, Cu bioaccumulation and the metal composition of fouling assemblages in order to provide farmers with a tool to help reduce the environmental impact of the biocide employed for coating nets. The MDS ordination of the samples coated with both paints on nylon and UW-polyethylene nets showed a gradual modification of community structure associated with rising Cu concentrations. The PCA analysis indicated that the ordination of trace element composition of biofouling varied between concentrations and nets in both paints. The experiments revealed that the fouling biomass decreased following negative exponential regression with an increasing Cu concentration. The increase in fouling biomass with reduced Cu bioaccumulation was greater in nylon than in UW-polyethylene nets. In the nylon nets, the median bioaccumulation on nets (CuF-50) rose with an 0.75- to 0.82-fold increase in the basal biomass. Conversely, biomass increased 0.50- to 0.63-fold the basal or minimum fouling biomass with a full antifouling paint concentration (B0) when CuF-50was calculated in the UW-polyethylene nets. These results suggest that similar reductions in bioaccumulated Cu in both nets could be achieved without sacrificing excessive fouling biomass increases. © 2021 The Authors",biofouling; cu-based antifouling paints; metal bioaccumulation; nylon and uw-polyethylene netting,antifouling; bioaccumulation; biofouling; biomass; biopesticide; trace element,"N. García-Bueno; Departamento de Ecología e Hidrología, Facultad de Biología, Universidad de Murcia, Murcia, 30100, Spain; email: nuria.garciab@um.es",,Elsevier B.V.,,,,,,00448486,,AQCLA,,English,Aquaculture,Article,Final,All Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85109667693 Conejo-Watt H.; Muench A.; Mangi S.C.; Jeffery K.; Hyder K.,"Conejo-Watt, Heather (57210286391); Muench, Angela (57217202553); Mangi, Stephen C. (16310212400); Jeffery, Keith (22937829400); Hyder, Kieran (14627633000)",57210286391; 57217202553; 16310212400; 22937829400; 14627633000,Fishers perspectives on the barriers for the English inshore fleet to diversify into aquaculture,2021,Marine Policy,131,,104610,,,,5,10.1016/j.marpol.2021.104610,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85107693847&doi=10.1016%2fj.marpol.2021.104610&partnerID=40&md5=00832739e559e3da9494d0991e49cba5,"Cefas Lowestoft, Pakefield Road, Lowestoft, NR33 0HT, Suffolk, United Kingdom; School of Environmental Sciences, University of East Anglia, Norwich Research Park, Norwich, NR4 7TJ, Norfolk, United Kingdom; MRAG Ltd, 18 Queen Street, London, W1J 5PN, United Kingdom; Cefas Weymouth, Barrack Road, The Nothe, Weymouth, DT4 8UB, Dorset, United Kingdom","Conejo-Watt H., Cefas Lowestoft, Pakefield Road, Lowestoft, NR33 0HT, Suffolk, United Kingdom, School of Environmental Sciences, University of East Anglia, Norwich Research Park, Norwich, NR4 7TJ, Norfolk, United Kingdom; Muench A., Cefas Lowestoft, Pakefield Road, Lowestoft, NR33 0HT, Suffolk, United Kingdom, School of Environmental Sciences, University of East Anglia, Norwich Research Park, Norwich, NR4 7TJ, Norfolk, United Kingdom; Mangi S.C., MRAG Ltd, 18 Queen Street, London, W1J 5PN, United Kingdom; Jeffery K., Cefas Weymouth, Barrack Road, The Nothe, Weymouth, DT4 8UB, Dorset, United Kingdom; Hyder K., Cefas Lowestoft, Pakefield Road, Lowestoft, NR33 0HT, Suffolk, United Kingdom, School of Environmental Sciences, University of East Anglia, Norwich Research Park, Norwich, NR4 7TJ, Norfolk, United Kingdom","Long-term trends in seafood production and demand indicate a need to move away from capture fisheries in favour of increased aquaculture production. The paper explores the potential social and economic barriers towards creating a more holistic seafood production chain. Fisheries not only provide food but also play a significant role in the provision of cultural ecosystem services. Diversification to a similar maritime activity is therefore a potential solution to help preserve this culturally significant activity as well as sustaining food provision and income. However, there are potential social and economic barriers that need to be understood to allow this integration of sectors to happen. This study uses the Q-methodology to investigate the integration or diversification into aquaculture in the English inshore fleet. The results indicate distinctive viewpoints of fishers on aquaculture and the barriers to integration. There were two emergent viewpoints that were positive to diversification into aquaculture and two viewpoints that were against integration. The findings suggest that there is room for policy makers to encourage diversification using measures such as providing guidance documents or training in winter downtime to help fishers to get technical knowledge on aquaculture. Moreover, aquaculture out-reach programmes, addressing public perceptions and aquaculture design consultations, run by NGO's or funded by government, may also provide an outlet for this group to learn more and help address the wants and interests of this group. To ease uncertainty for fishers, pilot projects demonstrating the potential co-location of aquaculture and fisheries, may another way to overcome the reluctance of some fishers to diversify into aquaculture. © 2021 Elsevier Ltd",blue growth; income diversification; q-methodology; seafood production; small-scale fisheries; sustainability,Martes; aquaculture production; fishery production; income distribution; policy making; seafood; sustainability,"A. Muench; Cefas Lowestoft, Lowestoft, Pakefield Road, NR33 0HT, United Kingdom; email: angela.muench@cefas.co.uk",,Elsevier Ltd,,,,,,0308597X,,,,English,Mar. Policy,Article,Final,,Scopus,2-s2.0-85107693847 Ghauri S.; Jackson E.L.; Marinova D.; Mohammadi H.,"Ghauri, Shahid (56880165500); Jackson, Elizabeth L. (56472317000); Marinova, Dora (6701561637); Mohammadi, Hossein (57939189200)",56880165500; 56472317000; 6701561637; 57939189200,Agricultural co-operatives for managing natural capital to achieve UN Sustainable Development Goals 12–15: A conceptual framework,2022,Journal of Co-operative Organization and Management,10,2,100188,,,,5,10.1016/j.jcom.2022.100188,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85140436160&doi=10.1016%2fj.jcom.2022.100188&partnerID=40&md5=5d71650028e9bdf2ef972a298898a4d2,"School of Management and Marketing, Curtin University, Perth, Australia; Curtin University Sustainability Policy Institute, Perth, Australia","Ghauri S., School of Management and Marketing, Curtin University, Perth, Australia; Jackson E.L., School of Management and Marketing, Curtin University, Perth, Australia; Marinova D., Curtin University Sustainability Policy Institute, Perth, Australia; Mohammadi H., School of Management and Marketing, Curtin University, Perth, Australia","Natural capital is becoming an important topic for global biodiversity and sovereign risk of nations for their food supply chains which can be linked to the United Nations Sustainable Development Goals 12–15. In this paper we explored the literature to develop a conceptual framework to determine how primary industry co-operatives (such as in agriculture and aquaculture) can play a role in managing natural capital. The conceptual framework developed shows that members of co-operatives have roles to act within their organisation that utilise natural capital. Acting out these roles may see the co-operative become pro-active in governing its natural capital based on economic and social goals which are guided by the co-operative principles and values. Working with the financial services sector, co-operatives would be able to engage with their members to educate and share knowledge on strategies to manage and/or mitigate the risk of natural capital depletion. This can be managed through farm management techniques and financial instruments such as credit and insurance. © 2022 Elsevier Ltd",climate change; co-operatives; finance; insurance; natural capital; sustainability; un sdgs,,"S. Ghauri; School of Management and Marketing, Curtin University, Perth, Australia; email: shahid.ghauri@curtin.edu.au",,Elsevier Ltd,,,,,,2213297X,,,,English,J. Coop. Organ. Manage.,Article,Final,,Scopus,2-s2.0-85140436160 Lu D.; Yingjie L.; Xiaofeng W.; Chuanye G.; Wenzhi L.; Lin H.; Fangying Y.; Peng W.; Yanchun S.,"Lu, Ding (58199356800); Yingjie, Liu (57820744200); Xiaofeng, Wei (58198820700); Chuanye, Geng (58198996000); Wenzhi, Liu (57219012320); Lin, Han (58198996100); Fangying, Yuan (57218863758); Peng, Wang (57219017987); Yanchun, Sun (57821002700)",58199356800; 57820744200; 58198820700; 58198996000; 57219012320; 58198996100; 57218863758; 57219017987; 57821002700,Effects of α-ketoglutarate supplementation on serum metabolism of crucian carp under carbonate alkaline stress based on UPLC-Q-TOF/ MS metabolomics; [基于UPLC-Q-TOF/MS 代谢组学技术探究α-酮戊二酸对碳酸盐 碱胁迫下鲫血清代谢的影响],2023,Journal of Fishery Sciences of China,30,2,,138,149,11,6,10.12264/JFSC2022-0316,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85153704900&doi=10.12264%2fJFSC2022-0316&partnerID=40&md5=38318de9a19cf4fd2fe7af3bace33fc0,"College of Food Sciences and Technology, Shanghai Ocean University, Shanghai, 201306, China; Aquatic Product Quality and Safety Risk Assessment Laboratory, Heilongjiang River Fisheries Research Institute, Chinese Academy of Fishery Sciences, Harbin, 150070, China; School of Food Science and Engineering, Dalian Ocean University, Dalian, 116023, China; School of Materials and Chemical Engineering, Harbin University of Science and Technology, Harbin, 150080, China","Lu D., College of Food Sciences and Technology, Shanghai Ocean University, Shanghai, 201306, China, Aquatic Product Quality and Safety Risk Assessment Laboratory, Heilongjiang River Fisheries Research Institute, Chinese Academy of Fishery Sciences, Harbin, 150070, China; Yingjie L., College of Food Sciences and Technology, Shanghai Ocean University, Shanghai, 201306, China, Aquatic Product Quality and Safety Risk Assessment Laboratory, Heilongjiang River Fisheries Research Institute, Chinese Academy of Fishery Sciences, Harbin, 150070, China; Xiaofeng W., Aquatic Product Quality and Safety Risk Assessment Laboratory, Heilongjiang River Fisheries Research Institute, Chinese Academy of Fishery Sciences, Harbin, 150070, China, School of Food Science and Engineering, Dalian Ocean University, Dalian, 116023, China; Chuanye G., College of Food Sciences and Technology, Shanghai Ocean University, Shanghai, 201306, China, Aquatic Product Quality and Safety Risk Assessment Laboratory, Heilongjiang River Fisheries Research Institute, Chinese Academy of Fishery Sciences, Harbin, 150070, China; Wenzhi L., College of Food Sciences and Technology, Shanghai Ocean University, Shanghai, 201306, China, Aquatic Product Quality and Safety Risk Assessment Laboratory, Heilongjiang River Fisheries Research Institute, Chinese Academy of Fishery Sciences, Harbin, 150070, China; Lin H., College of Food Sciences and Technology, Shanghai Ocean University, Shanghai, 201306, China, Aquatic Product Quality and Safety Risk Assessment Laboratory, Heilongjiang River Fisheries Research Institute, Chinese Academy of Fishery Sciences, Harbin, 150070, China; Fangying Y., Aquatic Product Quality and Safety Risk Assessment Laboratory, Heilongjiang River Fisheries Research Institute, Chinese Academy of Fishery Sciences, Harbin, 150070, China, School of Materials and Chemical Engineering, Harbin University of Science and Technology, Harbin, 150080, China; Peng W., Aquatic Product Quality and Safety Risk Assessment Laboratory, Heilongjiang River Fisheries Research Institute, Chinese Academy of Fishery Sciences, Harbin, 150070, China; Yanchun S., College of Food Sciences and Technology, Shanghai Ocean University, Shanghai, 201306, China, Aquatic Product Quality and Safety Risk Assessment Laboratory, Heilongjiang River Fisheries Research Institute, Chinese Academy of Fishery Sciences, Harbin, 150070, China, School of Food Science and Engineering, Dalian Ocean University, Dalian, 116023, China, School of Materials and Chemical Engineering, Harbin University of Science and Technology, Harbin, 150080, China","China has a large area of saline-alkali waters with high salinity, high pH, and ion ratio imbalance, which seriously affects the growth and reproduction of fish and leads to extremely low fishery development and utilization. α-ketoglutarate (AKG), as the crucial metabolic intermediate of the tricarboxylic acid cycle, has a variety of biological functions such as regulating energy metabolism, nitrogen metabolism, and lipid metabolism and improving the body’s antioxidant capacity and non-specific immunity. However, the effect and regulatory mechanism of AKG supplementation on the physiological metabolism of freshwater teleosts in saline-alkali habitats are still unclear. This article preliminarily discusses the effects of α-ketoglutarate (AKG) supplementation on the serum metabolism of crucian carp (Carassius auratus) under saline-alkali stress based on ultra performance liquid chromatography-quadrupole time-of-flight mass spectrometry (UPLC-Q-TOF/MS) non-targeted metabolomics. The experimental crucian carp were randomly divided into a freshwater control group (Con group), NaHCO3 exposure group (CA group), and NaHCO3 exposure and AKG feeding group (AKG group) and fed for 30 days. The UPLC-Q-TOF/MS technology was used to establish a serum metabolomics analysis method. Multivariate pattern recognition techniques including principal component analysis (PCA) and orthogonal partial least squares discriminant analysis (OPLS-DA) were used to analyze the changes in serum metabolite composition and content in crucian carp and identify significantly different metabolites. MetaboAnalyst 5.0 and the KEGG database were used to analyze related metabolic pathways and construct an interaction network diagram of serum differential metabolite-metabolic pathways to clarify the regulation mechanism of AKG supplementation on the growth and metabolism of crucian carp under saline-alkali stress. According to the results of DMs and KEGG pathway enrichment analysis, there were 27 differential metabolites in the CA group compared with the control group, and enrichment in 12 metabolic pathways including glycerophospholipid metabolism, linoleic acid metabolism, tryptophan metabolism, etc; while 38 differential metabolites were identified in the AKG group compared with the CA group, and enrichment in 14 metabolic pathways including glycerophospholipid metabolism, linoleic acid metabolism, α-linolenic acid metabolism, and unsaturated fatty acid biosynthesis, etc. The study showed that carbonate alkali stress caused fish oxidative stress damage, causing disorders of the glycerophospholipid metabolism, sphingolipid metabolism, and energy. However, AKG supplementation can promote the TCA cycle to increase carbon source and energy supply and improve the antioxidant capacity and immune capacity of fish under carbonate alkaline stress by positively regulating metabolic pathways such as glycerophospholipid metabolism, sphingolipid metabolism, and amino acid metabolism, thereby alleviating carbonate alkaline-induced oxidative stress damage. This study clarified the effectiveness of AKG as a feed additive to alleviate the damage to freshwater teleosts under saline-alkali stress at the metabolic level. This provides a scientific basis for the application of AKG in the field of aquaculture in saline-alkali waters and has important ecological, economic, and social significance for improving the utilization of saline-alkali water resources © 2023, Journal of Fishery Sciences of China.All Rights Reserved.",carassius auratus; carbonate alkaline stress; regulatory mechanisms; serum metabolomics; α-ketoglutarate,,"S. Yanchun; College of Food Sciences and Technology, Shanghai Ocean University, Shanghai, 201306, China; email: sunyc2004@163.com",,Chinese Academy of Fishery Sciences,,,,,,10058737,,,,English,J. Fishery Sci. China,Article,Final,,Scopus,2-s2.0-85153704900 Simard N.S.M.; Militz T.A.; Kinch J.; Southgate P.C.,"Simard, Nittya S. M. (57202961997); Militz, Thane A. (55770009000); Kinch, Jeff (55569140500); Southgate, Paul C. (7006706157)",57202961997; 55770009000; 55569140500; 7006706157,Utilization of marine taxa within an artisanal shellcraft sector of the Indo-Pacific region,2022,Frontiers in Marine Science,9,,1074996,,,,4,10.3389/fmars.2022.1074996,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85143847229&doi=10.3389%2ffmars.2022.1074996&partnerID=40&md5=064def9dcce2ecdf2b7bec801cf3949c,"School of Science, Technology & Engineering, Australian Centre for Pacific Islands Research, University of the Sunshine Coast, Sippy Downs, QLD, Australia; School of Science, Technology & Engineering, Australian Centre for Pacific Islands Research, University of the Sunshine Coast, Sippy Downs, QLD, Australia","Simard N.S.M., School of Science, Technology & Engineering, Australian Centre for Pacific Islands Research, University of the Sunshine Coast, Sippy Downs, QLD, Australia; Militz T.A., School of Science, Technology & Engineering, Australian Centre for Pacific Islands Research, University of the Sunshine Coast, Sippy Downs, QLD, Australia; Kinch J., School of Science, Technology & Engineering, Australian Centre for Pacific Islands Research, University of the Sunshine Coast, Sippy Downs, QLD, Australia; Southgate P.C., School of Science, Technology & Engineering, Australian Centre for Pacific Islands Research, University of the Sunshine Coast, Sippy Downs, QLD, Australia","Sustainable utilization of marine taxa is critical for maximizing social and economic goals of livelihood development within the Indo-Pacific. Yet, despite an increasing importance of shellcraft as a livelihood activity within the Indo-Pacific, information on the taxa utilized within shellcraft sectors remains scant. To address this knowledge gap, our study examined diversity, in terms of composition and quantities, of marine taxa utilized by artisan households and, collectively, within an artisanal shellcraft sector of Papua New Guinea. For each taxon, critical source habitats were identified, and the geographic scale of exploitation established. Critically, presented data revealed 73 taxa, representing at least 77 species, were utilized within the studied sector. Many of the taxa utilized had not previously been linked to shellcraft sectors, demonstrating that a broader composition of taxa is utilized than previously acknowledged. In terms of quantity, annual utilization within the sector was close to 500,000 individuals, the majority being mollusks of either class Gastropoda (83.6%), represented by 37 genera, or class Bivalvia (9.6%), represented by four genera. There was a strong bias towards a particular species, Chrysostoma paradoxum (78.5% of all individuals), as indicated by indices for the diversity utilized (H′ = 1.23; D = 0.38). However, substantial variation was evident in the diversity of taxa utilized among households (n = 36) engaged in shellcraft (H′ = 1.09 ± 0.71; D = 0.43 ± 0.27), with each household utilizing a unique composition of 19.1 ± 10.6 taxa. Source habitats for taxa ranged from pelagic to benthic intertidal and subtidal substrates, with the geographic scale of exploitation extending to 34 discrete locations up to 417 km away. The array of sector, household, and taxon-specific information presented provides a basis for supporting greater sustainability within shellcraft sectors across the Indo-Pacific, which is discussed within a context of informing community-based resource management, further developing marine aquaculture, and strengthening existing governance. Copyright © 2022 Simard, Militz, Kinch and Southgate.",artisanal fisheries; coastal communities; diversity; exploitation; livelihoods; mollusks (molluscs); papua new guinea (png),,"N.S.M. Simard; School of Science, Technology & Engineering, Australian Centre for Pacific Islands Research, University of the Sunshine Coast, Sippy Downs, Australia; email: Nittya.simard@research.usc.edu.au",,Frontiers Media S.A.,,,,,,22967745,,,,English,Front. Mar. Sci.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85143847229 Huang X.; Yan J.; Zhang G.; Huang J.; Wang Q.; Li B.; Ma Y.,"Huang, Xiaolu (57204198879); Yan, Jishun (57211021151); Zhang, Guangshuai (57213770217); Huang, Jie (57849667500); Wang, Quanming (57206920403); Li, Binyong (37120436300); Ma, Yu (57218906220)",57204198879; 57211021151; 57213770217; 57849667500; 57206920403; 37120436300; 57218906220,Marine Ecological Function Zoning and Management Countermeasures: A Case Study of the Sea Area of Zhejiang Province,2023,Sustainability (Switzerland),15,5,4254,,,,3,10.3390/su15054254,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85149991940&doi=10.3390%2fsu15054254&partnerID=40&md5=c94b396e3d742270cc1e64eacd65cb48,"National Marine Environmental Monitoring Center, Dalian, 116023, China; State Environmental Protection Key Laboratory of Marine Ecosystem Restoration, Dalian, 116023, China; Ministry of Natural Resources Key Laboratory of Marine Spatial Resource Management Technology, Hangzhou, 310012, China","Huang X., National Marine Environmental Monitoring Center, Dalian, 116023, China, State Environmental Protection Key Laboratory of Marine Ecosystem Restoration, Dalian, 116023, China; Yan J., National Marine Environmental Monitoring Center, Dalian, 116023, China, State Environmental Protection Key Laboratory of Marine Ecosystem Restoration, Dalian, 116023, China, Ministry of Natural Resources Key Laboratory of Marine Spatial Resource Management Technology, Hangzhou, 310012, China; Zhang G., National Marine Environmental Monitoring Center, Dalian, 116023, China, State Environmental Protection Key Laboratory of Marine Ecosystem Restoration, Dalian, 116023, China; Huang J., National Marine Environmental Monitoring Center, Dalian, 116023, China, State Environmental Protection Key Laboratory of Marine Ecosystem Restoration, Dalian, 116023, China; Wang Q., National Marine Environmental Monitoring Center, Dalian, 116023, China, State Environmental Protection Key Laboratory of Marine Ecosystem Restoration, Dalian, 116023, China; Li B., National Marine Environmental Monitoring Center, Dalian, 116023, China, State Environmental Protection Key Laboratory of Marine Ecosystem Restoration, Dalian, 116023, China; Ma Y., National Marine Environmental Monitoring Center, Dalian, 116023, China, State Environmental Protection Key Laboratory of Marine Ecosystem Restoration, Dalian, 116023, China","The contradiction between the development of marine resources and ecological protection in Zhejiang is prominent, which restricts the high-quality and continuous supply of marine ecological products. As a result, the efficient maintenance of the ecological security pattern of inshore waters relies on the scientific division of marine ecological function zones and the management and maintenance of zoning areas. This paper constructs a technical framework for marine ecological function zoning from the aspects of marine ecosystem health, marine ecosystem diversity and economic and social development balance using GIS-based overlay analysis and the three-dimensional matrix discriminant model to divide marine ecological function zones in the managed waters of Zhejiang Province. The results indicate that the managed sea areas in Zhejiang Province are divided into ten marine ecological function areas, including three marine ecological supply areas (54%), four marine mariculture and resting areas (24%) and three marine ecological restoration areas (22%). As per the zoning results of the marine ecological function, this study further proposes protection and management strategies for different zoning units, in the hopes of providing technical support and practical reference for the division and management of marine ecological function areas in other sea areas. © 2023 by the authors.",eco-function; ecosystem services; marine; resources; zoning,China; Zhejiang; ecosystem function; ecosystem health; ecosystem management; marine ecosystem; social development; spatiotemporal analysis; strategic approach,"G. Zhang; National Marine Environmental Monitoring Center, Dalian, 116023, China; email: gszhang@nmemc.org.cn",,MDPI,,,,,,20711050,,,,English,Sustainability,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85149991940 Larson S.; Anderson C.; Tiitii U.; Madar L.; Tanielu E.; Paul N.; Swanepoel L.,"Larson, Silva (23393117000); Anderson, Courtney (57972504900); Tiitii, Ulusapeti (57216250257); Madar, Losan (57972505000); Tanielu, Esmay (57972767300); Paul, Nicholas (12789579500); Swanepoel, Libby (57159916800)",23393117000; 57972504900; 57216250257; 57972505000; 57972767300; 12789579500; 57159916800,Barriers and enablers for engagement in a new aquaculture activity: An example from seaweed initiatives in Samoa,2023,Aquaculture,571,,739328,,,,5,10.1016/j.aquaculture.2023.739328,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85150266361&doi=10.1016%2fj.aquaculture.2023.739328&partnerID=40&md5=c0a9ef048c8702f31e36b4becde64830,"University of the Sunshine Coast, Maroochydore, QLD, Australia; Fisheries Division, Ministry of Agriculture and Fisheries, Apia, Samoa; Australian Centre for Pacific Islands Research, University of the Sunshine Coast, Australia","Larson S., University of the Sunshine Coast, Maroochydore, QLD, Australia; Anderson C., University of the Sunshine Coast, Maroochydore, QLD, Australia, Australian Centre for Pacific Islands Research, University of the Sunshine Coast, Australia; Tiitii U., Fisheries Division, Ministry of Agriculture and Fisheries, Apia, Samoa; Madar L., Fisheries Division, Ministry of Agriculture and Fisheries, Apia, Samoa; Tanielu E., Fisheries Division, Ministry of Agriculture and Fisheries, Apia, Samoa; Paul N., University of the Sunshine Coast, Maroochydore, QLD, Australia; Swanepoel L., University of the Sunshine Coast, Maroochydore, QLD, Australia, Australian Centre for Pacific Islands Research, University of the Sunshine Coast, Australia","Adoption of any new agriculture or aquaculture technology by intended beneficiary farmers is not a simple process. Typically, new technologies and new activities have been delivered to farmers through a ‘technology-push’, designed and supported by governments, non-government organisations and donor community, yet rates of adoption are disappointingly low. In this paper we set out to explore barriers and enablers for engagement in a new aquaculture activity, as perceived by the intended farmers. Our example is of ‘technology-push’ towards seaweed farming in coastal villages in Samoa. To increase the likelihood of greater adoption in the future, we explored perceptions of the intended beneficiaries by conducting 20 focus group discussions with 135 women and men, in 10 villages. Specifically, we explored their perceptions of seaweed as an industry, as well as perceptions of barriers and enablers linked to the key market system components: core production functions (inputs and outputs); supporting functions (such as transport, finance, training); institutional barriers; and personal agency. We found that a set of inputs seen as ‘essential’ was much broader than inputs suggested in market systems studies. Essential inputs included not only materials, tools, equipment and labour, but also extended to include information, knowledge and skills; farm governance and protection of the farms; personal agency; and environmental context. What emerged from our data is a clear division of what participants saw as solutions that can be resolved by them (such as arranging informal institutions) versus solutions that need to be provided externally (such as tools, skills, financing and markets) for which the Ministry of Agriculture and Fisheries was seen as the key external provider. We suggest that, when introducing new activities or technologies, adequate time and effort needs to be put into (a) finding out what essential inputs for the potential beneficiaries of the activity are; and (b) providing them with such inputs in pre-planned manner. © 2023 The Authors",gender; inclusivity; mariculture; nutrition; pacific; women; youth,Samoa; aquaculture industry; aquaculture system; gender; mariculture; market system; nutrition; seaweed; young population,"L. Swanepoel; University of the Sunshine Coast, Maroochydore DC, Locked Bag 4, Australia; email: lswanepo@usc.edu.au",,Elsevier B.V.,,,,,,00448486,,AQCLA,,English,Aquaculture,Article,Final,All Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85150266361 Lyons P.; Mynott S.; Melbourne-Thomas J.,"Lyons, Peci (57957529900); Mynott, Sara (57208160395); Melbourne-Thomas, Jess (35956354400)",57957529900; 57208160395; 35956354400,Enabling Indigenous innovations to re-centre social licence to operate in the Blue Economy,2023,Marine Policy,147,,105384,,,,13,10.1016/j.marpol.2022.105384,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85141478210&doi=10.1016%2fj.marpol.2022.105384&partnerID=40&md5=7d283dee46874bc718fb03d22a626a8a,"CSIRO Land & Water, Cairns, QLD, Australia; University of Victoria, Victoria, BC, Canada; Centre for Marine Socioecology, Hobart, TAS, Australia; CSIRO Oceans & Atmosphere, Battery Point, TAS, Australia","Lyons P., CSIRO Land & Water, Cairns, QLD, Australia; Mynott S., University of Victoria, Victoria, BC, Canada, Centre for Marine Socioecology, Hobart, TAS, Australia; Melbourne-Thomas J., Centre for Marine Socioecology, Hobart, TAS, Australia, CSIRO Oceans & Atmosphere, Battery Point, TAS, Australia","Sustainable, inclusive and equitable development and expansion of the Blue Economy hinges on deliberative and responsible negotiations and an understanding of the distribution of benefits, resource ownership and risks within community and interest groups and Indigenous Peoples. In this review we examine questions of governance and mechanisms for Indigenous participation and inclusion in the distribution of economic benefits, and monitoring and managing environmental and cultural impacts of Blue Economy industries. We suggest a shift in practice of social licence to operate such that consent is granted by Indigenous groups based on their perspective of social licence at all stages of the project life-cycle and at each interface where new social and cultural risks and opportunities emerge. Such a shift in practice across the Blue Economy requires the consideration of multiple collaborative arrangements and a platform for Indigenous driven transformation in how Indigenous Peoples participate in Blue Economy sectors and in business agreements based on their particular historical, social, cultural and economic context and goals. Such as an arrangement centres on new competencies that includes adaptive capacities within the particular blue economic partnership governance systems. © 2022 The Authors",aquaculture; blue economy; indigenous peoples; marine renewable energy; social licence,alternative energy; aquaculture; economic development; governance approach; innovation; marine environment,"P. Lyons; CSIRO Land & Water, Cairns, Australia; email: Ilisapeci.Lyons@csiro.au",,Elsevier Ltd,,,,,,0308597X,,,,English,Mar. Policy,Article,Final,All Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85141478210 Fabinyi M.; Gorospe J.R.; McClean N.; Juinio-Meñez M.A.,"Fabinyi, Michael (30467447000); Gorospe, Jay R (57192305665); McClean, Nicholas (57204242063); Juinio-Meñez, Marie Antonette (6602207943)",30467447000; 57192305665; 57204242063; 6602207943,Evolving governance structures in community-based sandfish mariculture and their interactions with livelihood outcomes: Evidence from the Philippines,2022,Frontiers in Marine Science,9,,1025693,,,,5,10.3389/fmars.2022.1025693,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85142184711&doi=10.3389%2ffmars.2022.1025693&partnerID=40&md5=d5afa7021e57c15ec493a39d5b91112a,"Climate, Society and Environment Research Centre, University of Technology Sydney, NSW, Australia; Crawford School of Public Policy, The Australian National University, Canberra, ACT, Australia; School of Science, Technology and Engineering, Australian Centre for Pacific Island Research, University of the Sunshine Coast Sippy Downs, Maroochydore, QLD, Australia; Marine Environment and Resources Foundation, Inc, Diliman, Quezon City, Philippines; The Marine Science Institute-University of the Philippines, Diliman, Quezon City, Philippines","Fabinyi M., Climate, Society and Environment Research Centre, University of Technology Sydney, NSW, Australia, Crawford School of Public Policy, The Australian National University, Canberra, ACT, Australia; Gorospe J.R., School of Science, Technology and Engineering, Australian Centre for Pacific Island Research, University of the Sunshine Coast Sippy Downs, Maroochydore, QLD, Australia, Marine Environment and Resources Foundation, Inc, Diliman, Quezon City, Philippines; McClean N., Climate, Society and Environment Research Centre, University of Technology Sydney, NSW, Australia; Juinio-Meñez M.A., The Marine Science Institute-University of the Philippines, Diliman, Quezon City, Philippines","Sea cucumber mariculture is an important emerging field of practice and applied research in the coastal tropics. This is due to the existing importance of tropical sea cucumber fisheries for wealth generation and poverty reduction, and the potential for mariculture to contribute to the longer term sustainability of these fisheries while generating benefits additional to those from wild caught sea cucumber. Understanding the optimal institutional arrangements for sea cucumber mariculture is an important area of focus in this field, with a variety of arrangements currently in place. This paper documents the establishment of a communal form of sea ranching in the Philippines, as a case study of community level institutional processes. It describes the background to establishment of the sea ranch in the community of Victory, challenges encountered and how these were managed, and the evolution of governance arrangements. In charting this process, we assess the impacts on livelihood outcomes, highlighting this as a crucial aspect influencing this evolution and the nature of community involvement in the sea ranch. While the sea ranching project generated a range of benefits for livelihoods, including possible spillover effects for the surrounding fishery, substantial economic returns from harvests did not occur. Thus, the system of governing the sea ranch evolved from a communal model to a more exclusive household model primarily to improve operational efficiency. In order for possible benefits of the sea ranch to be sustained and enhanced, greater integration with fisheries management and government support will be needed. Copyright © 2022 Fabinyi, Gorospe, McClean and Juinio-Meñez.",aquaculture; coastal livelihoods; mariculture; sea cucumbers; southeast asia,,"M. Fabinyi; Climate, Society and Environment Research Centre, University of Technology Sydney, Australia; email: michael.fabinyi@uts.edu.au",,Frontiers Media S.A.,,,,,,22967745,,,,English,Front. Mar. Sci.,Article,Final,All Open Access; Gold Open Access; Green Open Access,Scopus,2-s2.0-85142184711 McManus C.; McIlgorm A.; Nichols R.; Cooper A.,"McManus, Catherine (57890632500); McIlgorm, Alistair (6507295837); Nichols, Rachel (57617656100); Cooper, Andrew (7406078414)",57890632500; 6507295837; 57617656100; 7406078414,"An initial consideration of data availability issues in downscaling ocean accounting to inform sustainable aquaculture development: The example of Clew Bay, Ireland.",2022,Marine Policy,145,,105286,,,,3,10.1016/j.marpol.2022.105286,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85138054083&doi=10.1016%2fj.marpol.2022.105286&partnerID=40&md5=fb0341fb3b4f0ef91f989d0496342bcd,"School of Geography and Environmental Sciences, Ulster University, Ireland; Australian National Centre for Ocean Resources and Security, University of Wollongong, Australia; Centre for Marine Socioecology, University of Tasmania, Australia; Discipline of Geology, University of KwaZulu-Natal, South Africa","McManus C., School of Geography and Environmental Sciences, Ulster University, Ireland; McIlgorm A., School of Geography and Environmental Sciences, Ulster University, Ireland, Australian National Centre for Ocean Resources and Security, University of Wollongong, Australia; Nichols R., Australian National Centre for Ocean Resources and Security, University of Wollongong, Australia, Centre for Marine Socioecology, University of Tasmania, Australia; Cooper A., School of Geography and Environmental Sciences, Ulster University, Ireland, Discipline of Geology, University of KwaZulu-Natal, South Africa","With the international prioritisation of sustainable development for management of marine resources and areas, those involved in marine industry are seeking how they progress their environmental, economic and social relationships, in a sustainable manner. Ocean accounting is an emerging tool that may enable stakeholders to integrate data and information from different disciplinary areas, bringing it together to facilitate sustainable development. The case of Clew Bay, Ireland is examined to see the extent to which ocean accounts may be translated to a regional marine area. The study identifies significant gaps between nationally available marine data sets and the regional requirements of ocean accounts. These reflect past marine governance, management and policy approaches and suggests that progressing ocean accounts in regional areas will require significant realignment and adaptation by agencies providing marine data to meet the needs of stakeholder groups such as aquaculturists. The case study indicates that pilot exercises based around ocean account information are required for government agencies and stakeholders to develop more integrated plans for a sustainable industry and regional community. © 2022 The Authors",aquaculture; ecosystem services; ireland; natural capital; ocean accounting,Clew Bay; Connacht; Ireland; Mayo [Connacht]; data acquisition; downscaling; ecosystem service; environmental economics; governance approach; marine environment; marine policy; policy approach; resource development; resource management; stakeholder; sustainability; sustainable development,"C. McManus; School of Geography and Environmental Sciences, Ulster University, Ireland; email: mcmanus-c32@ulster.ac.uk",,Elsevier Ltd,,,,,,0308597X,,,,English,Mar. Policy,Article,Final,All Open Access; Green Open Access,Scopus,2-s2.0-85138054083 Manlosa A.O.; Hornidge A.-K.; Schlüter A.,"Manlosa, Aisa O. (56296914600); Hornidge, Anna-Katharina (20435989300); Schlüter, Achim (56240507200)",56296914600; 20435989300; 56240507200,"Aquaculture-capture fisheries nexus under Covid-19: impacts, diversity, and social-ecological resilience",2021,Maritime Studies,20,1,,75,85,10,54,10.1007/s40152-021-00213-6,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85100139159&doi=10.1007%2fs40152-021-00213-6&partnerID=40&md5=13c0509e3a5d946458c902688cadf818,"Social Sciences Department, Leibniz Centre for Tropical Marine Research (ZMT), Bremen, Germany; German Development Institute/Deutsches Institut für Entwicklungspolitik (DIE), Bonn, Germany; Institute of Political Sciences and Sociology, University of Bonn, Bonn, Germany; Department of Business and Economics, Jacobs University, Bremen, Germany","Manlosa A.O., Social Sciences Department, Leibniz Centre for Tropical Marine Research (ZMT), Bremen, Germany; Hornidge A.-K., German Development Institute/Deutsches Institut für Entwicklungspolitik (DIE), Bonn, Germany, Institute of Political Sciences and Sociology, University of Bonn, Bonn, Germany; Schlüter A., Social Sciences Department, Leibniz Centre for Tropical Marine Research (ZMT), Bremen, Germany, Department of Business and Economics, Jacobs University, Bremen, Germany","The Covid-19 pandemic is a global shock that is significantly affecting coastal social-ecological systems (SES) in different parts of the world. Its widespread impacts have unravelled vulnerabilities in many aspects of society, including food systems. Our study investigated the impacts of a lockdown associated with the pandemic in the province of Bulacan, in the region of Central Luzon, Philippines, where aquaculture and capture fisheries are important and interconnected sectors. In particular, we focused on impacts related to production and market. We considered people’s coping strategies and the factors that enabled such strategies. Our investigation adopted a case study approach and drew on qualitative data analysed through thematic analysis. The findings revealed differentiated mechanisms through which aquaculture and capture fisheries production were impacted. Both were strongly affected by market disruptions but through slightly different ways. In effect, the lockdown provided the impetus for the uptake and spreading of practices that were previously peripheral, particularly in relation to market exchanges. The study also identified a variety of coping strategies, as well as the importance of social support in the form of food aid, financial assistance, and institutional livelihood assistance. Finally, it discusses the importance of diversity in food sources, the role of local food systems, and governance implications for foregrounding social-ecological resilience in short-term response and long-term recovery. © 2021, The Author(s).",aquaculture; covid-19 impacts; fisheries; livelihoods; resilience; social-ecological systems; sustainability,Bulacan; Central Luzon; Philippines; aquaculture production; capture method; COVID-19; fishery management; food market; food security; livelihood; thematic mapping; vulnerability,"A.O. Manlosa; Social Sciences Department, Leibniz Centre for Tropical Marine Research (ZMT), Bremen, Germany; email: aisa.manlosa@leibniz-zmt.de",,Springer Science and Business Media Deutschland GmbH,,,,,,18727859,,,,English,Marit. Stud.,Article,Final,All Open Access; Green Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85100139159 Ward M.; Spalding A.K.; Levine A.; Wolters E.A.,"Ward, Melissa (57222605091); Spalding, Ana K. (56821669900); Levine, Arielle (7401603671); Wolters, Erika Allen (55943265000)",57222605091; 56821669900; 7401603671; 55943265000,California shellfish farmers: Perceptions of changing ocean conditions and strategies for adaptive capacity,2022,Ocean and Coastal Management,225,,106155,,,,8,10.1016/j.ocecoaman.2022.106155,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85130346020&doi=10.1016%2fj.ocecoaman.2022.106155&partnerID=40&md5=ed4cd31017eb3554d3a529791cb75a52,"San Diego State University, Coastal and Marine Institute, 5500 Campanile Drive, San Diego, 92182, CA, United States; San Diego State University, Department of Geography, 5500 Campanile Drive, San Diego, 92182, CA, United States; Oregon State University, School of Public Policy, 300 Bexell Hall, Corvallis, 97331, OR, United States; Smithsonian Tropical Research Institute, Bldg. 401 Tupper, Balboa, Ancon, Panama; Coiba Research Station, Panama","Ward M., San Diego State University, Coastal and Marine Institute, 5500 Campanile Drive, San Diego, 92182, CA, United States, San Diego State University, Department of Geography, 5500 Campanile Drive, San Diego, 92182, CA, United States; Spalding A.K., Oregon State University, School of Public Policy, 300 Bexell Hall, Corvallis, 97331, OR, United States, Smithsonian Tropical Research Institute, Bldg. 401 Tupper, Balboa, Ancon, Panama, Coiba Research Station, Panama; Levine A., San Diego State University, Department of Geography, 5500 Campanile Drive, San Diego, 92182, CA, United States; Wolters E.A., Oregon State University, School of Public Policy, 300 Bexell Hall, Corvallis, 97331, OR, United States","Coastal communities along the U.S. West Coast experience a myriad of environmental stressors, including exposure to low pH waters exacerbated by ocean acidification (OA). This can result in ecological and social consequences, making necessary the exploration and support for locally relevant strategies to adapt to OA and other environmental changes. The shellfish aquaculture industry along the West Coast is particularly vulnerable to OA, given the negative effects of low pH on shellfish survival and growth. As such, the social-ecological system exemplified by this industry serves as an opportunity to identify and address strategies for local adaptation. Through interviews conducted with West Coast shellfish farm owners and managers (‘growers’), we investigate perceptions of OA and environmental change and identify specific strategies for adaptation. We find that growers are concerned about OA, among many other environmental stressors such as marine pathogens and water temperature. However, growers are often unable to attribute changes in shellfish survival or health to these environmental factors due to a lack of data and the resources and network required to acquire and interpret these data. From these interviews, we identify a list of adaptive strategies growers employ or would like to employ to improve their overall adaptive capacity to multiple stressors (environmental, economic, political), which together, allow farms to weather periods of OA-induced stress more effectively. Very few studies to date have identified specific adaptive strategies derived directly from the communities being impacted. This work therefore fills a gap in the literature on adaptive capacity by amplifying the voices of those on the front lines of climate change and identifying explicit pathways for adaptation. © 2022 The Authors",adaptive capacity; ocean acidification; shellfish aquaculture,Acidification; Aquaculture; Climate change; Ecology; Adaptive capacity; Adaptive strategy; California; Environmental change; Environmental stressors; Farmer perception; Ocean acidifications; Ocean conditions; Shellfish aquaculture; West coast; adaptive management; aquaculture industry; climate change; ocean acidification; shellfish; strategic approach; Shellfish,"M. Ward; San Diego State University, Coastal and Marine Institute, San Diego, 5500 Campanile Drive, 92182, United States; email: maward@ucdavis.edu",,Elsevier Ltd,,,,,,09645691,,OCMAE,,English,Ocean Coast. Manage.,Article,Final,All Open Access; Green Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85130346020 Gourguet S.; Marzloff M.P.; Bacher C.; Boudry P.; Cugier P.; Dambacher J.M.; Desroy N.; Gangnery A.; Le Mao P.; Monnier L.; Pérez Agúndez J.A.; Thébaud O.,"Gourguet, Sophie (54924527300); Marzloff, Martin Pierre (25722202600); Bacher, Cedric (7003432534); Boudry, Pierre (7003723972); Cugier, Philippe (6506806180); Dambacher, Jeffrey Mark (6602221141); Desroy, Nicolas (6602577984); Gangnery, Aline (6602382379); Le Mao, Patrick (24471792400); Monnier, Léa (57248672700); Pérez Agúndez, José A. (38361864500); Thébaud, Olivier (55897354800)",54924527300; 25722202600; 7003432534; 7003723972; 6506806180; 6602221141; 6602577984; 6602382379; 24471792400; 57248672700; 38361864500; 55897354800,Participatory Qualitative Modeling to Assess the Sustainability of a Coastal Socio-Ecological System,2021,Frontiers in Ecology and Evolution,9,,635857,,,,10,10.3389/fevo.2021.635857,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85114284910&doi=10.3389%2ffevo.2021.635857&partnerID=40&md5=c39998ca6b20d1cf509e8c1573d0d175,"Ifremer, Univ Brest, CNRS, UMR 6308, AMURE, Unité d’Economie Maritime, IUEM, Plouzané, France; Ifremer, DYNECO, Plouzané, France; Ifremer, Univ Brest, CNRS, IRD, LEMAR, Plouzané, France; Commonwealth Scientific and Industrial Research Organisation (CSIRO), Hobart, TAS, Australia; Ifremer, LITTORAL, Dinard, France; Ifremer, LITTORAL, Port-en-Bessin, France","Gourguet S., Ifremer, Univ Brest, CNRS, UMR 6308, AMURE, Unité d’Economie Maritime, IUEM, Plouzané, France; Marzloff M.P., Ifremer, DYNECO, Plouzané, France; Bacher C., Ifremer, DYNECO, Plouzané, France; Boudry P., Ifremer, Univ Brest, CNRS, IRD, LEMAR, Plouzané, France; Cugier P., Ifremer, DYNECO, Plouzané, France; Dambacher J.M., Commonwealth Scientific and Industrial Research Organisation (CSIRO), Hobart, TAS, Australia; Desroy N., Ifremer, LITTORAL, Dinard, France; Gangnery A., Ifremer, DYNECO, Plouzané, France, Ifremer, LITTORAL, Port-en-Bessin, France; Le Mao P., Ifremer, LITTORAL, Dinard, France; Monnier L., Ifremer, Univ Brest, CNRS, UMR 6308, AMURE, Unité d’Economie Maritime, IUEM, Plouzané, France; Pérez Agúndez J.A., Ifremer, Univ Brest, CNRS, UMR 6308, AMURE, Unité d’Economie Maritime, IUEM, Plouzané, France; Thébaud O., Ifremer, Univ Brest, CNRS, UMR 6308, AMURE, Unité d’Economie Maritime, IUEM, Plouzané, France","Assessing the sustainability of socio-ecological systems requires understanding the interactions between numerous ecological, economic and social components. Models are often used to investigate how interactions shape system feedbacks and drive the complex dynamics at play in such systems. However, building these models is a non-trivial exercise, which often neglects stakeholder knowledge and perceptions. We adopted a participatory approach that relies on conducting workshops to engage stakeholders into the development of qualitative models of system feedback. This type of participatory qualitative modeling is well suited to address the complexity of socio-ecological systems in a holistic manner, identify key stakes and feedbacks, and predict responses to perturbations. We use this approach to investigate the factors that condition sustainability of the socio-ecological system associated with shellfish aquaculture in the Normand-Breton Gulf in France. Six region-specific workshops were organized with shellfish producers, managers and other stakeholders to identify and describe key components, interactions and pressures that contribute to overall socio-ecological dynamics. Differences and commonalities in system perceptions were identified across the different regions and focus groups. We reconciled stakeholder-specific discrepancies in model structure into a synthetic representation that conciliates alternative views of the system. Next, we predicted how the system might respond to alternative scenarios of change. Overall, our participatory qualitative modeling exercise identified key drivers of the system under study that constitute effective management levers to maintain system sustainability. For instance, low social acceptability of the aquaculture industry generally appears to be a major constraint on the sustainability of shellfish aquaculture in the Normand-Breton Gulf, while reducing rearing density appears to be a key driver of sustainability. © Copyright © 2021 Gourguet, Marzloff, Bacher, Boudry, Cugier, Dambacher, Desroy, Gangnery, Le Mao, Monnier, Pérez Agúndez and Thébaud.",loop analysis; normand-breton gulf; participatory approach; shellfish aquaculture; socio-ecological systems; sustainability,,"S. Gourguet; Ifremer, Univ Brest, CNRS, UMR 6308, AMURE, Unité d’Economie Maritime, IUEM, Plouzané, France; email: sophie.gourguet@ifremer.fr",,Frontiers Media S.A.,,,,,,2296701X,,,,English,Front. ecol. evol.,Article,Final,All Open Access; Gold Open Access; Green Open Access,Scopus,2-s2.0-85114284910 Trueman J.D.; Filgueira R.; Fanning L.,"Trueman, Justin D. (57889437700); Filgueira, Ramón (16549712900); Fanning, Lucia (16244779200)",57889437700; 16549712900; 16244779200,Transparency and communication in Norwegian and Nova Scotian Atlantic salmon aquaculture industries,2022,Marine Policy,138,,104958,,,,7,10.1016/j.marpol.2022.104958,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85123933662&doi=10.1016%2fj.marpol.2022.104958&partnerID=40&md5=692977d16bf45ef11553566bdc39212d,"Marine Affairs Program, Dalhousie University, Halifax, Canada; Institute of Marine Research, Bergen, Norway","Trueman J.D., Marine Affairs Program, Dalhousie University, Halifax, Canada; Filgueira R., Marine Affairs Program, Dalhousie University, Halifax, Canada, Institute of Marine Research, Bergen, Norway; Fanning L., Marine Affairs Program, Dalhousie University, Halifax, Canada","The Atlantic salmon aquaculture industry has the potential to make a significant contribution to economic development and seafood production globally – particularly in rural and coastal communities. However, the lack of social licence to operate (SLO) can become a barrier for industry development. Greater transparency and communication have been suggested as two of the potential drivers for the industry to achieve SLO. This study explores the role of transparency and communication in the achievement of SLO in the salmon aquaculture industry by contrasting the perceptions of relevant stakeholders (researchers, managers/regulators, NGOs/community groups, and industry). The comparison was carried out in Norway, having national ocean policies incorporating SLO, and Nova Scotia, Canada, that has adopted new aquaculture regulations in 2015 following a three-year moratorium. Results highlight the need for industry to take on a leadership role in transparency and communication. Results also reinforce the importance of meaningful engagement and reporting of environmental standards, but also the need to monitor and report social standards. Comparison of Norway and Nova Scotia helps to understand the role of transparency and communication in achieving SLO, which may be key to promoting the development and sustainability of the salmon aquaculture industry worldwide. © 2022 The Authors",aquaculture; atlantic salmon; communication; q-methodology; social licence; transparency,Canada; Norway; Nova Scotia; economic development; regulatory approach; resource development; salmonid culture; seafood; stakeholder; standardization,"J.D. Trueman; Marine Affairs Program, Dalhousie University, Halifax, Canada; email: justin.d.trueman@gmail.com",,Elsevier Ltd,,,,,,0308597X,,,,English,Mar. Policy,Article,Final,All Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85123933662 Chowdhury A.J.K.; John A.; Abdullah R.; Musa N.; Ashraf M.A.,"Chowdhury, Ahmed Jalal Khan (57202939851); John, Akbar (57222421516); Abdullah, Rose (56430599800); Musa, Najiah (59157917700); Ashraf, Muhammad Aqeel (36630102500)",57202939851; 57222421516; 56430599800; 59157917700; 36630102500,"Impact of COVID-19 on aquaculture and fisheries in ASEAN countries: some aspects of challenges, mitigations for future strategies in Malaysia",2021,Desalination and Water Treatment,241,,,331,339,8,8,10.5004/dwt.2021.27792,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85123176556&doi=10.5004%2fdwt.2021.27792&partnerID=40&md5=1640c2807a2569aaab15a51fbde21304,"Department of Marine Science, Kulliyyah (Faculty) of Science, International Islamic University Malaysia, Pahang, Kuantan, 25200, Malaysia; Institute of Oceanography and Maritime Studies (INOCEM), International Islamic University Malaysia (INOCEM), Pahang, Kuantan, 25200, Malaysia; Faculty of Agriculture, Universiti Islam Sultan Sharif Ali, Brunei Darussalam; Faculty of Fisheries and Food Science, Universiti Malaysia Terengganu, Malaysia; School of Environmental Studies, China University of Geosciences, Wuhan, China","Chowdhury A.J.K., Department of Marine Science, Kulliyyah (Faculty) of Science, International Islamic University Malaysia, Pahang, Kuantan, 25200, Malaysia; John A., Institute of Oceanography and Maritime Studies (INOCEM), International Islamic University Malaysia (INOCEM), Pahang, Kuantan, 25200, Malaysia; Abdullah R., Faculty of Agriculture, Universiti Islam Sultan Sharif Ali, Brunei Darussalam; Musa N., Faculty of Fisheries and Food Science, Universiti Malaysia Terengganu, Malaysia; Ashraf M.A., School of Environmental Studies, China University of Geosciences, Wuhan, China","This review paper discusses some of the challenges on the effects of COVID-19 on aquaculture and fisheries and their mitigations and strategies in ASEAN perspectives with special emphasis on Malaysia due to significant impacts of COVID-19 occurred in this country’s enormous aquaculture and fishing industries. Substantial factors within fishery systems, as well as ecological and social impacts outside their control, such as climate change, chronic pollution, resource degradation, fluctuating commodity prices and changes in management strategies that can asymmetrically affect different communities, stress fish culturists and fisher-folk communities. COVID-19’s broken food supply chain and shrinking market have certainly impacted everyone in the fishing and aquaculture business, with small-scale fishermen being the most susceptible. During COVID-19 pandemic in ASEAN countries, it was discovered that the potential effects on agricultural sectors in Malaysia needed to be protected in order to defend the well-being of farmers, breeders, fishers, and workers, the majority of whom are low-income earners. The relevant authorities have created different supply chains and expand supply sources to maintain revenue in the event of a national economic downturn through traditional marketing channels. The Post COVID-19 monitoring should be undertaken as a model role based on the Malaysian scenario to gain a quick grasp of the food security and livelihood situation of all fishing communities. As a result, a national platform is urgently needed to boost production, supply, and marketing integration so that the fisheries and aquaculture products may be traded efficiently. Nevertheless, transparency in policy responses, as well as regional and international cooperation, will support to build trust in the future of fish value chains and markets. Furthermore, these real-world lessons will make it easier to learn from the pandemic crisis to improve the sustainability and viability of fisheries and aquaculture industries in ASEAN countries and global as well. © 2021 Desalination Publications. All rights reserved.",aquaculture; covid-19 pandemic; fisheries; mitigation strategies; value chain,Malaysia; aquaculture; ASEAN; COVID-19; disease spread; epidemic; fishery; food security; food supply; future prospect; livelihood; market conditions; mitigation; pandemic,"A.J.K. Chowdhury; Department of Marine Science, Kulliyyah (Faculty) of Science, International Islamic University Malaysia, Kuantan, Pahang, 25200, Malaysia; email: jkchowdhury@iium.edu.my",,Desalination Publications,,,,,,19443994,,,,English,Desalin. Water Treat.,Article,Final,,Scopus,2-s2.0-85123176556 Gómez-Ballesteros M.; Cervera - Núñez C.; Campillos-Llanos M.; Quintela A.; Sousa L.; Marques M.; Alves F.L.; Murciano C.; Alloncle N.; Sala P.; Lloret A.; Simão A.P.; Costa A.C.; Carval D.; Bailly D.; Nys C.; Sybill H.; Dilasser J.,"Gómez-Ballesteros, M. (26534240500); Cervera - Núñez, C. (57222038103); Campillos-Llanos, M. (57222048827); Quintela, A. (36716599700); Sousa, L. (55851275800); Marques, M. (57212649143); Alves, F.L. (36130953500); Murciano, C. (57222045409); Alloncle, N. (56433388200); Sala, P. (57222052966); Lloret, A. (56356552000); Simão, A.P. (57214716123); Costa, A.C. (59632292000); Carval, D. (57222051369); Bailly, D. (7004913055); Nys, C. (57212473296); Sybill, H. (57222048978); Dilasser, J. (57222051853)",26534240500; 57222038103; 57222048827; 36716599700; 55851275800; 57212649143; 36130953500; 57222045409; 56433388200; 57222052966; 56356552000; 57214716123; 59632292000; 57222051369; 7004913055; 57212473296; 57222048978; 57222051853,Transboundary cooperation and mechanisms for Maritime Spatial Planning implementation. SIMNORAT project,2021,Marine Policy,127,,104434,,,,23,10.1016/j.marpol.2021.104434,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85101077250&doi=10.1016%2fj.marpol.2021.104434&partnerID=40&md5=f2f4cdecb5e6e1f48055cf02c4248b02,"IEO – Spanish Institute of Oceanography, Calle Corazón de María, 8, Madrid, 28002, Spain; CESAM - Centre for Environmental and Marine Studies & Department of Environment and Planning, University of Aveiro, Campus de Santiago, Aveiro, 3810-193, Portugal; CEDEX – Centro de Estudios de Puertos y Costas, Área de Medio Marino, Calle de Antonio López, 81, Madrid, 28026, Spain; AFB – Agence Française pour la Biodiversité, Site de Brest, 16 Quai de la douane, France; CEREMA - Centre d'études et d'expertise sur les risques, l'environnement, la mobilité et l'aménagement, France; DGRM - Direção-Geral de Recursos Naturais, Segurança e Serviços Marítimos, Avenida Brasília, Lisboa, 1449-030, Portugal; SHOM - Service Hydrographique et Océanographique de la Marine, 13 rue du Chatellier, Brest, 29200, France; UBO, Université de Bretagne Occidentale, Amure, UMR 6308, France","Gómez-Ballesteros M., IEO – Spanish Institute of Oceanography, Calle Corazón de María, 8, Madrid, 28002, Spain; Cervera - Núñez C., IEO – Spanish Institute of Oceanography, Calle Corazón de María, 8, Madrid, 28002, Spain; Campillos-Llanos M., IEO – Spanish Institute of Oceanography, Calle Corazón de María, 8, Madrid, 28002, Spain; Quintela A., CESAM - Centre for Environmental and Marine Studies & Department of Environment and Planning, University of Aveiro, Campus de Santiago, Aveiro, 3810-193, Portugal; Sousa L., CESAM - Centre for Environmental and Marine Studies & Department of Environment and Planning, University of Aveiro, Campus de Santiago, Aveiro, 3810-193, Portugal; Marques M., CESAM - Centre for Environmental and Marine Studies & Department of Environment and Planning, University of Aveiro, Campus de Santiago, Aveiro, 3810-193, Portugal; Alves F.L., CESAM - Centre for Environmental and Marine Studies & Department of Environment and Planning, University of Aveiro, Campus de Santiago, Aveiro, 3810-193, Portugal; Murciano C., CEDEX – Centro de Estudios de Puertos y Costas, Área de Medio Marino, Calle de Antonio López, 81, Madrid, 28026, Spain; Alloncle N., AFB – Agence Française pour la Biodiversité, Site de Brest, 16 Quai de la douane, France; Sala P., CEREMA - Centre d'études et d'expertise sur les risques, l'environnement, la mobilité et l'aménagement, France; Lloret A., CEDEX – Centro de Estudios de Puertos y Costas, Área de Medio Marino, Calle de Antonio López, 81, Madrid, 28026, Spain; Simão A.P., DGRM - Direção-Geral de Recursos Naturais, Segurança e Serviços Marítimos, Avenida Brasília, Lisboa, 1449-030, Portugal; Costa A.C., DGRM - Direção-Geral de Recursos Naturais, Segurança e Serviços Marítimos, Avenida Brasília, Lisboa, 1449-030, Portugal; Carval D., SHOM - Service Hydrographique et Océanographique de la Marine, 13 rue du Chatellier, Brest, 29200, France; Bailly D., UBO, Université de Bretagne Occidentale, Amure, UMR 6308, France; Nys C., SHOM - Service Hydrographique et Océanographique de la Marine, 13 rue du Chatellier, Brest, 29200, France; Sybill H., UBO, Université de Bretagne Occidentale, Amure, UMR 6308, France; Dilasser J., CEREMA - Centre d'études et d'expertise sur les risques, l'environnement, la mobilité et l'aménagement, France","Maritime Spatial Planning (MSP) is gaining importance as a new process for the governance of seas and oceans, as maritime nations exercise greater management over their territorial waters and, in many cases, over exclusive economic zones that span a larger area. The purpose of this planning is to reverse the environmental degradation of the seas and facilitate the sustainable use of marine resources, both for mature uses such as fishing and navigation, and for emergent uses, including renewable energies and mariculture. In Europe, the Directive 2014/89/EU of the European Parliament and of the Council of 23 July 2014 establishing a framework for maritime spatial planning oblige coastal Member States to develop maritime spatial plans at the latest by 31st March 2021. To help in that process, countries have at their disposal a set of existing instruments, including research projects, supporting guidelines, recommendations and sets of tools and data, as the SIMNORAT project, co-funded by the EC – DG Maritime Affairs and Fisheries (DG MARE). This paper presents best practices developed in this project on technical, scientific, and social aspects of MSP to overcome barriers of MSPD implementation testing effective cooperation on transboundary areas and providing a set of cross-cutting MSP related recommendations to foster collaborative efforts and to improve the overall transboundary dimension of the MSP Directive. © 2021 Elsevier Ltd",cross-border cooperation; marine spatial planning; simnorat project; stakeholders; transboundary,Europe; environmental degradation; governance approach; guideline; marine policy; marine resource; policy implementation; resource management; spatial planning; stakeholder; transboundary cooperation,"M. Gómez-Ballesteros; IEO – Spanish Institute of Oceanography, Madrid, Calle Corazón de María, 8, 28002, Spain; email: maria.gomez@ieo.es",,Elsevier Ltd,,,,,,0308597X,,,,English,Mar. Policy,Article,Final,All Open Access; Green Open Access,Scopus,2-s2.0-85101077250 Quevedo J.M.D.; Lukman K.M.; Ulumuddin Y.I.; Uchiyama Y.; Kohsaka R.,"Quevedo, Jay Mar D. (57212104928); Lukman, Kevin Muhamad (57212107746); Ulumuddin, Yaya Ihya (56145073800); Uchiyama, Yuta (56166101900); Kohsaka, Ryo (12544866500)",57212104928; 57212107746; 56145073800; 56166101900; 12544866500,Applying the DPSIR framework to qualitatively assess the globally important mangrove ecosystems of Indonesia: A review towards evidence-based policymaking approaches,2023,Marine Policy,147,,105354,,,,38,10.1016/j.marpol.2022.105354,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85141294172&doi=10.1016%2fj.marpol.2022.105354&partnerID=40&md5=833de7c5463a9fbb8eaca62ce6a9ab6b,"Graduate School of Agricultural and Life Sciences, The University of Tokyo, Japan; Research Centre for Oceanography – National Research and Innovation Agency (BRIN), Indonesia; Graduate School of Human Development and Environment, Kobe University, Japan","Quevedo J.M.D., Graduate School of Agricultural and Life Sciences, The University of Tokyo, Japan; Lukman K.M., Research Centre for Oceanography – National Research and Innovation Agency (BRIN), Indonesia; Ulumuddin Y.I., Research Centre for Oceanography – National Research and Innovation Agency (BRIN), Indonesia; Uchiyama Y., Graduate School of Human Development and Environment, Kobe University, Japan; Kohsaka R., Graduate School of Agricultural and Life Sciences, The University of Tokyo, Japan","Indonesia has the largest extent of mangroves globally, supporting communities at the local scale while contributing to climate change mitigation at the global scale. Yet, they are highly threatened by multiple anthropogenic and natural stressors. Thus, in this study, we aim to qualitatively assess Indonesia's mangrove ecosystems by conducting a literature review applying the Driver-Pressure-State-Impact-Response (DPSIR) framework. By using the framework, we identified multiple stressors and existing management efforts in 27 provinces of Indonesia. For instance, we identified aquaculture expansion as the most frequented driver of mangrove loss leading to the conversion of mangroves to shrimp farms in 20 provinces. In terms of responses, mangrove rehabilitation and community-based management have a long history in Indonesia while economic valuation and payment of ecosystem services are yet to be established across the country. The identification of multiple stressors and/or threats is instrumental to addressing the causes of degradation of globally-important mangroves in Indonesia if effectively translated into policies, which remains a future challenge. © 2022 The Authors",blue carbon; dpsir; indonesia; literature review; mangroves,Indonesia; carbon; coastal protection; ecosystem service; literature review; mangrove; marine policy; policy making,"R. Kohsaka; Graduate School of Agricultural and Life Sciences, The University of Tokyo, Japan; email: kohsaka@hotmail.com",,Elsevier Ltd,,,,,,0308597X,,,,English,Mar. Policy,Article,Final,All Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85141294172 Duan H.; Yu X.,"Duan, Houlang (57200969788); Yu, Xiubo (35197677500)",57200969788; 35197677500,Linking landscape characteristics to shorebird habitat quality changes in a key stopover site along the East Asian–Australasian Flyway migratory route,2022,Ecological Indicators,144,,109490,,,,7,10.1016/j.ecolind.2022.109490,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85138483283&doi=10.1016%2fj.ecolind.2022.109490&partnerID=40&md5=68ee961f8fc1f1c9084d27ca4e419485,"Key Laboratory of Ecosystem Network Observation and Modeling, Institute of Geographic Sciences and Natural Resources Research, Chinese Academy of Sciences, Beijing, 100101, China; College of Resources and Environment, University of Chinese Academy of Sciences, Beijing, 100190, China","Duan H., Key Laboratory of Ecosystem Network Observation and Modeling, Institute of Geographic Sciences and Natural Resources Research, Chinese Academy of Sciences, Beijing, 100101, China, College of Resources and Environment, University of Chinese Academy of Sciences, Beijing, 100190, China; Yu X., Key Laboratory of Ecosystem Network Observation and Modeling, Institute of Geographic Sciences and Natural Resources Research, Chinese Academy of Sciences, Beijing, 100101, China, College of Resources and Environment, University of Chinese Academy of Sciences, Beijing, 100190, China","The area and quality of shorebird stopover habitat along the key East Asian–Australasian Flyway migratory route has decreased. The cause is not fully understood. We apply an InVEST (Integrated Valuation of Ecosystem Services and Trade-offs) model to examine shorebird habitat quality between 1975 and 2020 in the Yellow River Delta (YRD), and link landscape characteristics to habitat quality. Mean habitat quality declined from 0.42 to 0.20, areas of high habitat quality declined by 31.75%, and those of low and medium quality increased by 18.67% and 12.98%, respectively. Increased percentages of landscape (PLAND) and largest patch index (LPI) for city, industrial mining, reservoir/pond, and mariculture land-usage categories, and decreased PLAND and LPI for coastal wetlands significantly contribute to decreased mean habitat quality. Increased mean patch area (AREA_MN) and area-weighted mean patch fractal dimension (FRAC_AM) for city and reservoir/pond also greatly contribute to habitat quality decrease. For Spartina alterniflora, increased PLAND, LPI, number of patches (NP), AREA_MN, FRAC_AM and aggregation index (AI) contribute to reduced mean habitat quality. In the Shandong YRD National Nature Reserve, the impact of increased S. alterniflora invasion on shorebird habitat quality is greater than that of other forms of land use. In contrast, in Non-Reserve, the increased area of degraded land poses a greater threat to habitat quality than other factors. Managing S. alterniflora in Reserve, and reducing human activity in Non-Reserve, is required to curtail further decreases in habitat quality. © 2022",conservation; land reclamation; natural wetlands; reserve; shorebird habitat; spartina alterniflora invasion,China; Shandong; Yellow River Delta; Economic and social effects; Ecosystems; Land reclamation; Land use; Marine biology; Reclamation; Wetlands; Conservation and management; Habitat quality; Landscape characteristic; Largest patch indices; Natural wetland; Reserve; Shorebird habitat; Spartina alterniflora; Spartinum alterniflorum invasion; Yellow River delta; habitat quality; land reclamation; landscape; migratory behavior; stopover; wader; wetland; Fractal dimension,"X. Yu; Key Laboratory of Ecosystem Network Observation and Modeling, Institute of Geographic Sciences and Natural Resources Research, Chinese Academy of Sciences, Beijing, 100101, China; email: yuxb@igsnrr.ac.cn",,Elsevier B.V.,,,,,,1470160X,,,,English,Ecol. Indic.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85138483283 Quimby B.; Roque A.D.; Nébié E.K.I.; Levine A.; Amaama S.A.; Wutich A.; Brewis A.; Samuelu L.E.,"Quimby, Barbara (56458451000); Roque, Anaís Delilah (57226880662); Nébié, Elisabeth Kago Ilboudo (56755345400); Levine, Arielle (7401603671); Amaama, Safua Akeli (57215652531); Wutich, Amber (23981822300); Brewis, Alexandra (6603755078); Samuelu, Lemasaniai Erenei (58169215600)",56458451000; 57226880662; 56755345400; 7401603671; 57215652531; 23981822300; 6603755078; 58169215600,Blue Food Sovereignty Benefits Social-Ecological Resilience: A Case Study of Small-Scale Fisheries Co-Management and Mariculture in Samoa,2023,Human Ecology,51,2,,279,289,10,8,10.1007/s10745-023-00401-4,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85151512000&doi=10.1007%2fs10745-023-00401-4&partnerID=40&md5=4af12098a34fba53fe59aad154e3adb4,"Department of Natural Science, Hawai’i Pacific University, Honolulu, HI, United States; Department of Anthropology, The Ohio State University, Columbus, OH, United States; School of Human Evolution and Social Change, Arizona State University, Tempe, AZ, United States; Center for Global Discovery and Conservation Science, Arizona State University, Tempe, AZ, United States; Department of Geography, San Diego State University, San Diego, CA, United States; Museum of New Zealand Te Papa Tongarewa, Wellington, New Zealand; Centre for Samoan Studies, National University of Samoa, Le Papaigalagala Campus, To’omatagi, Apia, Samoa","Quimby B., Department of Natural Science, Hawai’i Pacific University, Honolulu, HI, United States; Roque A.D., Department of Anthropology, The Ohio State University, Columbus, OH, United States; Nébié E.K.I., School of Human Evolution and Social Change, Arizona State University, Tempe, AZ, United States, Center for Global Discovery and Conservation Science, Arizona State University, Tempe, AZ, United States; Levine A., Department of Geography, San Diego State University, San Diego, CA, United States; Amaama S.A., Museum of New Zealand Te Papa Tongarewa, Wellington, New Zealand; Wutich A., School of Human Evolution and Social Change, Arizona State University, Tempe, AZ, United States; Brewis A., School of Human Evolution and Social Change, Arizona State University, Tempe, AZ, United States; Samuelu L.E., Centre for Samoan Studies, National University of Samoa, Le Papaigalagala Campus, To’omatagi, Apia, Samoa","“Blue” (aquatic) food systems have a vital role in providing nutrition, livelihoods, and food security for coastal communities, but addressing and evaluating issues of equity and social resilience continue to challenge small-scale fisheries management. We examine how marine aquaculture and co-management approaches that integrate traditional institutions can support food sovereignty for more equitable blue food systems. Interviews with stakeholders in 11 fishing communities in Samoa indicate that several benefits associated with food sovereignty are derived from co-managed village fish reserves. Reserves support biodiversity health and are a source of culturally valued seafoods that build food security, social capital, and sustainable livelihood opportunities for women. Local values, food systems, providers, and consumers are centered, though traditional hierarchies present challenges for equitable decision-making. Our findings demonstrate how incorporating food sovereignty into the operation and evaluation of fisheries co-management can aid in addressing equity and resilience. © 2023, The Author(s).",aquaculture; fisheries management; food security; food sovereignty; pacific islands; resilience; samoa; south pacific,Samoa; fishery management; food security; food supply; livelihood; mariculture; small scale industry; sovereignty,"B. Quimby; Department of Natural Science, Hawai’i Pacific University, Honolulu, United States; email: bquimby@hpu.edu",,Springer,,,,,,03007839,,,,English,Hum. Ecol.,Article,Final,All Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85151512000 Lam Y.; Winch P.J.; Nizame F.A.; Broaddus-Shea E.T.; Harun M.G.D.; Surkan P.J.,"Lam, Yukyan (55959211100); Winch, Peter J. (7004237185); Nizame, Fosiul Alam (54990464300); Broaddus-Shea, Elena T. (55958954900); Harun, Md. Golam Dostogir (57200339311); Surkan, Pamela J. (6603056321)",55959211100; 7004237185; 54990464300; 55958954900; 57200339311; 6603056321,Salinity and food security in southwest coastal Bangladesh: impacts on household food production and strategies for adaptation,2022,Food Security,14,1,,229,248,19,48,10.1007/s12571-021-01177-5,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85112055259&doi=10.1007%2fs12571-021-01177-5&partnerID=40&md5=2ab48e4dca3df0d3ace4fa12b3d4c456,"Department of International Health, Johns Hopkins Bloomberg School of Public Health, Baltimore, MD, United States; International Centre for Diarrhoeal Disease Research, Dhaka, Bangladesh; Department of Family Medicine, University of Colorado Anschutz Medical Campus, Aurora, CO, United States","Lam Y., Department of International Health, Johns Hopkins Bloomberg School of Public Health, Baltimore, MD, United States; Winch P.J., Department of International Health, Johns Hopkins Bloomberg School of Public Health, Baltimore, MD, United States; Nizame F.A., International Centre for Diarrhoeal Disease Research, Dhaka, Bangladesh; Broaddus-Shea E.T., Department of Family Medicine, University of Colorado Anschutz Medical Campus, Aurora, CO, United States; Harun M.G.D., International Centre for Diarrhoeal Disease Research, Dhaka, Bangladesh; Surkan P.J., Department of International Health, Johns Hopkins Bloomberg School of Public Health, Baltimore, MD, United States","The rising salinity of land and water is an important, but understudied, climate change-sensitive trend that can exert devastating impacts on food security. This mixed methods investigation combines salinity testing with qualitative research methods to explore these impacts in one of the most salinity-affected regions in the world—the Ganges River Delta. Data collection in 2015 and 2016 undertaken in Bangladesh’s southwest coastal region and Dhaka consisted of 83 in-depth household and stakeholder interviews, six community focus groups, and salinity testing of 27 soil and 45 surface and groundwater samples. Results show that household food production is a multifaceted cornerstone of rural livelihood in the southwest coastal region, and virtually every component of it—from rice plantation and homestead gardening to livestock cultivation and aquaculture—is being negatively affected by salinity. Although households have attempted multiple strategies for adapting food production, effective adaptation remains elusive. At the community level, improved irrigation and floodplain management, as well as restrictions on saltwater aquaculture to abate salinity, are viewed as promising interventions. However, the potential of such measures remains unrealized on a broad scale, as they require a level of external resources and regulation not yet provided by the NGO and government sectors. This study elucidates issues of accessibility, equity, and governance surrounding agricultural interventions for climate change-related salinity adaptation, and its findings can help inform the community of organizations that will increasingly need to grapple with salinity in order to guarantee food security in the context of environmental change. © 2021, The Author(s).",bangladesh; climate change; climate change; food security; salinity; saltwater intrusion,Ganges Delta; climate change; coast; data acquisition; food security; paddy field; rural population; saline intrusion; salinity; stakeholder,"Y. Lam; Department of International Health, Johns Hopkins Bloomberg School of Public Health, Baltimore, United States; email: ylam.pub@gmail.com",,Springer Science and Business Media B.V.,,,,,,18764517,,,,English,Food Secur.,Article,Final,All Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85112055259 Wan X.; Li Q.; Qiu L.; Du Y.,"Wan, Xiaole (56673451500); Li, Qianqian (57217874379); Qiu, Lulian (57223249764); Du, Yuanwei (56331148600)",56673451500; 57217874379; 57223249764; 56331148600,How do carbon trading platform participation and government subsidy motivate blue carbon trading of marine ranching? A study based on evolutionary equilibrium strategy method,2021,Marine Policy,130,,104567,,,,49,10.1016/j.marpol.2021.104567,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85105344833&doi=10.1016%2fj.marpol.2021.104567&partnerID=40&md5=1de43e1b48cc4b63e2f4df803126a5c1,"Management College, Ocean University of China, Qingdao, 266100, China; Marine Development Studies Institute of OUC, Key Research Institute of Humanities and Social Sciences at Universities, Ministry of Education, Qingdao, 266100, China","Wan X., Management College, Ocean University of China, Qingdao, 266100, China; Li Q., Management College, Ocean University of China, Qingdao, 266100, China; Qiu L., Management College, Ocean University of China, Qingdao, 266100, China; Du Y., Management College, Ocean University of China, Qingdao, 266100, China, Marine Development Studies Institute of OUC, Key Research Institute of Humanities and Social Sciences at Universities, Ministry of Education, Qingdao, 266100, China","Amidst the efforts to develop a low-carbon economy, blue carbon sequestration provides new approaches and opportunities for economic growth. Not only will blue carbon sequestration trading increase the value added for marine ranching firms, but it will also be conducive to conserving the ocean ecology and safeguarding sustainable marine development. From the supply chain perspective, this paper develops an evolutionary game model with three players: the marine ranching firm, the carbon trading platform, and the government. The model is then employed to examine the impacts of the carbon trading price, the government subsidy, and consumers’ willingness to pay for blue carbon on the participants’ choice of strategy in a blue carbon trading regime. The MATLABR2016b application is employed to perform numerical simulations and analyses. The following conclusions can be drawn from the research findings: The strategies chosen by the marine ranching firm, the carbon trading platform, and the government affect each other. Both the marine ranching firm and the carbon trading platform are affected by the choices of the other two players, while the government's choice of strategy is only affected by the platform's strategy. Reductions in carbon emitted by the marine ranching's aquaculture activity, increases in the blue carbon trading price, improvements in consumers’ willingness to pay for blue carbon, and deceases in transaction costs to the marine ranching firm and the trading platform all motivate the marine ranching firm and the platform to choose a cooperative strategy. Government subsidies can encourage the marine ranching firm to improve its carbon sequestration capacity and incentivize the platform to cooperate. However, when the subsidy to the platform is too high, the system does not have an evolutionarily stable strategy. If the marine ranching firm reasonably uses the government subsidy to sequester carbon and improve the environmental friendliness of its products, the government's willingness to subsidize will increase. Our findings will contribute to the theory on managing marine ranching blue carbon sequestration. This paper can provide evidence to improve the utilization of blue carbon sequestration, the development of the blue carbon sequestration trading market, and the design of the government subsidy mechanism. © 2021 Elsevier Ltd",blue carbon; evolutionary strategy; government; marine ranching,carbon emission; carbon sequestration; economic growth; emissions trading; environmental economics; governance approach; participatory approach; subsidy system; willingness to pay,"X. Wan; Management College, Ocean University of China, Qingdao, 266100, China; email: wanxiaole@ouc.edu.cn",,Elsevier Ltd,,,,,,0308597X,,,,English,Mar. Policy,Article,Final,,Scopus,2-s2.0-85105344833 Blythe J.; Sulu R.; Harohau D.; Weeks R.; Schwarz A.-M.; Mills D.; Phillips M.,"Blythe, Jessica (55993171700); Sulu, Reuben (23089546200); Harohau, Daykin (57112616500); Weeks, Rebecca (35747277500); Schwarz, Anne-Maree (7202735682); Mills, David (36889435700); Phillips, Michael (7402770404)",55993171700; 23089546200; 57112616500; 35747277500; 7202735682; 36889435700; 7402770404,Social dynamics shaping the diffusion of sustainable aquaculture innovations in the Solomon Islands,2017,Sustainability (Switzerland),9,1,126,,,,40,10.3390/su9010126,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85011269874&doi=10.3390%2fsu9010126&partnerID=40&md5=55fbda940ca53909663704e8857a8cdd,"WorldFish, P.O. Box 438, Honiara, Solomon Islands; Australian Research Council Centre of Excellence for Coral Reef Studies, James Cook University, Townsville, 4811, QLD, Australia; WorldFish, 11960 Bayan Lepas, Penang, 10670, Malaysia; Secretariat of the Pacific Community, Private Mail Bag, Suva, Fiji","Blythe J., WorldFish, P.O. Box 438, Honiara, Solomon Islands, Australian Research Council Centre of Excellence for Coral Reef Studies, James Cook University, Townsville, 4811, QLD, Australia; Sulu R., WorldFish, P.O. Box 438, Honiara, Solomon Islands; Harohau D., WorldFish, P.O. Box 438, Honiara, Solomon Islands; Weeks R., Australian Research Council Centre of Excellence for Coral Reef Studies, James Cook University, Townsville, 4811, QLD, Australia; Schwarz A.-M., WorldFish, P.O. Box 438, Honiara, Solomon Islands; Mills D., Australian Research Council Centre of Excellence for Coral Reef Studies, James Cook University, Townsville, 4811, QLD, Australia, WorldFish, 11960 Bayan Lepas, Penang, 10670, Malaysia; Phillips M., WorldFish, 11960 Bayan Lepas, Penang, 10670, Malaysia, Secretariat of the Pacific Community, Private Mail Bag, Suva, Fiji","Sustainably feeding the world's growing population represents one of our most significant challenges. Aquaculture is well positioned to make contributions towards this challenge. Yet, the translation of aquaculture production innovations into benefits for rural communities is constrained by a limited understanding of the social dynamics that influence the adoption of new agricultural practices. In this paper, we investigate the factors that shape the spread of small-scale tilapia aquaculture through rural Solomon Islands. Based on diffusion of innovation theory, we focus on three potentially influential factors: (i) socio-economic characteristics of adopters; (ii) the role of opinion leaders; and (iii) characteristics of the innovation. We find that farmers who were wealthier, older, and had more diverse livelihoods were most likely to be adopters. Opinion leaders facilitated the adoption of tilapia aquaculture, but lacked the capacity to provide fundamental knowledge necessary to realize its potential benefits to food security. The paper argues for more explicit attention to the poorest households and makes the case for a deeper engagement with the broader social and institutional contexts that shape the adoption process. Aquaculture interventions that account for these social dynamics are critical for translating production innovations into sustainable benefits to rural communities. © 2017 by the authors.",diffusion of innovation; melanesia; small-scale aquaculture; sustainability; tilapia,Solomon Islands [(ISG) Melanesia]; Tilapia; aquaculture; aquaculture production; cichlid; fish culture; fishery economics; fishery management; fishing community; innovation; rural area; rural population; small scale industry; socioeconomic conditions; sustainability,"J. Blythe; WorldFish, Honiara, P.O. Box 438, Solomon Islands; email: jessica.blythe@jcu.edu.au",,MDPI,,,,,,20711050,,,,English,Sustainability,Article,Final,All Open Access; Gold Open Access; Green Open Access,Scopus,2-s2.0-85011269874 Tong Y.D.; Clarke H.,"Tong, Yen Dan (57191920034); Clarke, Harry (57214748125)",57191920034; 57214748125,Economic analysis of development policies with reference to large-scale water control infrastructures and rural intensification in the Mekong River Delta: a case study from Vietnam,2020,Journal of the Asia Pacific Economy,25,1,,124,155,31,5,10.1080/13547860.2019.1636605,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85069036394&doi=10.1080%2f13547860.2019.1636605&partnerID=40&md5=6559fc5bfa26d2a05b1e3f31aa969a70,"Faculty of Business, Economics and Law, La Trobe University, Melbourne, Australia; College of Economics, Can Tho University, Can Tho City, Viet Nam; Faculty of Law and Management, La Trobe University, Melbourne, Australia","Tong Y.D., Faculty of Business, Economics and Law, La Trobe University, Melbourne, Australia, College of Economics, Can Tho University, Can Tho City, Viet Nam; Clarke H., Faculty of Law and Management, La Trobe University, Melbourne, Australia","This study conducts a Cost-benefit analysis of dyke heightening in the Vietnam floodplain to explore some of economic issues associated with three interrelated aspects of the Mekong Development Programme (MDDP) in Vietnam, namely: (i) the implications of switching to more intensified agriculture and aquaculture; (ii) the effects of a more intensive use of agro-chemicals, and (iii) the construction of large-scale water control infrastructure. The study incorporates environmental and ecological economic perspectives in its analysis. The finding of strongly negative social and private net benefits as a consequence of dyke heightening led the study to the questioning of the economic effectiveness of the MDDP. It is intended that the work will hold interest for both decision-makers and local people concerned with water control infrastructures and intensified farming practises. It could also serve to provide an important lesson for other areas of the Mekong Basin that are planning similar development schemes. © 2019, © 2019 Informa UK Limited, trading as Taylor & Francis Group.",agriculture; cost-benefit analysis; dyke; large-scale water control infrastructure; rice intensification,Mekong Delta; Viet Nam; agricultural economics; agricultural intensification; cost-benefit analysis; economic analysis; floodplain; infrastructure; rice,"Y.D. Tong; Can Tho City, Campus II, 3/2 Street, Xuan Khanh District, Ninh Kieu, Viet Nam; email: tydan@ctu.edu.vn",,Routledge,,,,,,13547860,,,,English,J. Asia Pac. Econ.,Article,Final,,Scopus,2-s2.0-85069036394 Long S.; Hamilton P.B.; Yang Y.; Ma J.; Chobet O.C.; Chen C.; Liu Z.; Dong X.; Dang A.; Chen J.,"Long, Shengxing (36117143600); Hamilton, Paul B. (7201998055); Yang, Yang (42662672900); Ma, Jianrong (55751977600); Chobet, Ondhoro C. (57203662392); Chen, Chuan (56393664600); Liu, Zhiwei (56092768100); Dong, Xian (55812058600); Dang, Anzhi (57734345700); Chen, Jingan (7501884047)",36117143600; 7201998055; 42662672900; 55751977600; 57203662392; 56393664600; 56092768100; 55812058600; 57734345700; 7501884047,"Multi-year succession of cyanobacteria blooms in a highland reservoir with changing nutrient status, Guizhou Province, China",2018,Journal of Limnology,77,2,,232,246,14,11,10.4081/jlimnol.2018.1636,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85045073134&doi=10.4081%2fjlimnol.2018.1636&partnerID=40&md5=de862caaa6335c206584297abc624e4a,"College of life Science and Technology, Jinan University, Guangzhou, 510632, Guangdong, China; Canadian Museum of Nature, P.O. Box 3443, Station D, Ottawa, K1P 6P4, ON, Canada; Key Laboratory of Reservoir Aquatic Environment, Chongqing Institute of Green and Intelligent Technology, Chinese Academy of Sciences, Chongqing, 400714, China; 4Buginyanya Zonal Agricultural Research and Development Institute, P.O. BOX 1356, Mbale, Uganda; Guizhou Normal University, Guiyang, 550001, Guizhou, China; Institute of Geochemistry Chinese Academy of Sciences, Guizhou, 550001, Guiyang, China","Long S., College of life Science and Technology, Jinan University, Guangzhou, 510632, Guangdong, China; Hamilton P.B., Canadian Museum of Nature, P.O. Box 3443, Station D, Ottawa, K1P 6P4, ON, Canada; Yang Y., College of life Science and Technology, Jinan University, Guangzhou, 510632, Guangdong, China; Ma J., Key Laboratory of Reservoir Aquatic Environment, Chongqing Institute of Green and Intelligent Technology, Chinese Academy of Sciences, Chongqing, 400714, China; Chobet O.C., 4Buginyanya Zonal Agricultural Research and Development Institute, P.O. BOX 1356, Mbale, Uganda; Chen C., Guizhou Normal University, Guiyang, 550001, Guizhou, China; Liu Z., College of life Science and Technology, Jinan University, Guangzhou, 510632, Guangdong, China; Dong X., Guizhou Normal University, Guiyang, 550001, Guizhou, China; Dang A., Guizhou Normal University, Guiyang, 550001, Guizhou, China; Chen J., Institute of Geochemistry Chinese Academy of Sciences, Guizhou, 550001, Guiyang, China","Over the last 22 years significant phytoplankton changes in Hongfeng lake reservoir have been observed with multiple years of harmful cyanobacteria blooms (cHABs). Fish farming and other anthropogenic activities from 1994-2001 triggered the harmful blooms. Nine years after the cessation of aquaculture, a conversion from problematic species (Microcystis spp, Aphanizomenon flos-aquae) to the less problematic species P. limnetica and other associated non-cyanobacteria taxa was recorded. Through this period of change, trophic factors (bottom-up) were re-examined, and correlations between cHABs and selected environmental variables were observed. Higher temperatures, nutrients [total nitrogen (TN), total phosphorus (TP)] and available light significantly favored the development of Microcystis spp blooms. With declining nutrient loads, and a decline in TP relative to TN there was a competitive shift from Microcystis summer blooms to the growth of Pseudanabaena limnetica and other non-cyanobacteria. Pseudanabaena limnetica was favored over Microcystis spp when temperatures were <20°C and TP was <0.03 mg L−1. The apparent species succession to P. limnetica was enhanced by a competitive advantage under varied light conditions. Multiple environmental and biotic conditions (not always nutrients) were driving cHABs. Although only a selected number of environmental variables were examined, the CCA analysis supports observations that temperature and nutrients were associated with the species shift. The replacement of cHABs with the growth of less toxic cyanobacteria like P. limnetica, and other algae creates an interesting scenario (new community condition) for the removal of problematic taxa in reservoir systems. Diverting or controlling blooms will have direct implications on water quality and economic remediation initiatives in reservoir and lake management. © 2018, Page Press Publications. All rights reserved.",aphanizomenon; competitive succession; cyanobacteria blooms; microcystis; nitrogen and phosphorus; pseudanabaena,China; Guizhou; Hongfeng Reservoir; algae; Aphanizomenon; Aphanizomenon flos-aquae; Cyanobacteria; Microcystis; Pseudanabaena; Pseudanabaena limnetica; competition (ecology); cyanobacterium; high temperature; nitrogen; nutrient availability; phosphorus; succession; trophic status; upland region,"Y. Yang; College of life Science and Technology, Jinan University, Guangzhou, 510632, China; email: yangyang@scies.org",,Page Press Publications,,,,,,11295767,,,,English,J. Limnol.,Article,Final,All Open Access; Gold Open Access; Green Open Access,Scopus,2-s2.0-85045073134 Zhao Z.; Jiang J.; Pan Y.; Dong Y.; Chen Z.; Zhang G.; Gao S.; Sun H.; Guan X.; Wang B.; Xiao Y.; Zhou Z.,"Zhao, Zelong (57192180862); Jiang, Jingwei (57201975984); Pan, Yongjia (57190045249); Dong, Ying (35209937200); Chen, Zhong (56945846600); Zhang, Gaohua (57215079327); Gao, Shan (56729560400); Sun, Hongjuan (55962803800); Guan, Xiaoyan (36061617500); Wang, Bai (55729654500); Xiao, Yao (57215082314); Zhou, Zunchun (23969699500)",57192180862; 57201975984; 57190045249; 35209937200; 56945846600; 57215079327; 56729560400; 55962803800; 36061617500; 55729654500; 57215082314; 23969699500,Temporal dynamics of bacterial communities in the water and sediments of sea cucumber (Apostichopus japonicus) culture ponds,2020,Aquaculture,528,,735498,,,,48,10.1016/j.aquaculture.2020.735498,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85086127050&doi=10.1016%2fj.aquaculture.2020.735498&partnerID=40&md5=64f989085cd752b29a642261a0fcc4a9,"Liaoning Key Lab of Marine Fishery Molecular Biology, Liaoning Ocean and Fisheries Science Research Institute, Dalian, 116023, Liaoning, China","Zhao Z., Liaoning Key Lab of Marine Fishery Molecular Biology, Liaoning Ocean and Fisheries Science Research Institute, Dalian, 116023, Liaoning, China; Jiang J., Liaoning Key Lab of Marine Fishery Molecular Biology, Liaoning Ocean and Fisheries Science Research Institute, Dalian, 116023, Liaoning, China; Pan Y., Liaoning Key Lab of Marine Fishery Molecular Biology, Liaoning Ocean and Fisheries Science Research Institute, Dalian, 116023, Liaoning, China; Dong Y., Liaoning Key Lab of Marine Fishery Molecular Biology, Liaoning Ocean and Fisheries Science Research Institute, Dalian, 116023, Liaoning, China; Chen Z., Liaoning Key Lab of Marine Fishery Molecular Biology, Liaoning Ocean and Fisheries Science Research Institute, Dalian, 116023, Liaoning, China; Zhang G., Liaoning Key Lab of Marine Fishery Molecular Biology, Liaoning Ocean and Fisheries Science Research Institute, Dalian, 116023, Liaoning, China; Gao S., Liaoning Key Lab of Marine Fishery Molecular Biology, Liaoning Ocean and Fisheries Science Research Institute, Dalian, 116023, Liaoning, China; Sun H., Liaoning Key Lab of Marine Fishery Molecular Biology, Liaoning Ocean and Fisheries Science Research Institute, Dalian, 116023, Liaoning, China; Guan X., Liaoning Key Lab of Marine Fishery Molecular Biology, Liaoning Ocean and Fisheries Science Research Institute, Dalian, 116023, Liaoning, China; Wang B., Liaoning Key Lab of Marine Fishery Molecular Biology, Liaoning Ocean and Fisheries Science Research Institute, Dalian, 116023, Liaoning, China; Xiao Y., Liaoning Key Lab of Marine Fishery Molecular Biology, Liaoning Ocean and Fisheries Science Research Institute, Dalian, 116023, Liaoning, China; Zhou Z., Liaoning Key Lab of Marine Fishery Molecular Biology, Liaoning Ocean and Fisheries Science Research Institute, Dalian, 116023, Liaoning, China","Bacteria communities in the aquaculture environment have been shown to greatly influence the growth of culture species. The sea cucumber (Apostichopus japonicus) is one of the most important aquaculture species in China, with numerous economic benefits. The growth and physiological characteristics of A. japonicus exhibit remarkable seasonal variation. However, current knowledge regarding the bacterial communities in A. japonicus culture ponds and their potential roles in the regulation of A. japonicus growth and physiology remain unclear. In the present study, Illumina sequencing based on the bacterial 16S rRNA gene was used to investigate the variations in bacterial communities in the surface water and sediment of A. japonicus culture ponds for a period of 1 year. The sediments exhibited a higher diversity of bacterial communities, and a higher abundance of microorganisms involved in sulfur metabolism; however, the surface water had a higher abundance of bacterial species associated with the degradation of organic matter. Furthermore, the bacterial communities in the water column showed a “3 + 1” monthly pattern and those in the sediments exhibited a seasonal succession. The higher abundances of bacteria associated with organic pollution degradation and functions associated with bio-active compound secretion were detected in water samples collected in April, August, and December. In contrast, bacteria that are considered to be food sources for A. japonicus were more abundant in pond sediments in autumn and spring. Finally, correlation analysis demonstrated that water temperature negatively regulated the sulfur cycling efficiency of bacterial communities in sediments of A. japonicus culture ponds. This study provides an important theoretical basis for the micro-ecological regulation of pond-cultured A. japonicus. © 2020 Elsevier B.V.",bacterial communities; organic matter degradation; pond culture; sea cucumber; sulfur cycling,Apostichopus japonicus; Bacteria (microorganisms); Holothuroidea; bacterium; echinoderm culture; genetic analysis; growth response; pond culture; seasonal variation; sediment chemistry; temporal variation; water chemistry; water quality,"Z. Zhou; Liaoning Key Lab of Marine Fishery Molecular Biology, Liaoning Ocean and Fisheries Science Research Institute, Dalian, 116023, China; email: zunchunz@hotmail.com",,Elsevier B.V.,,,,,,00448486,,AQCLA,,English,Aquaculture,Article,Final,,Scopus,2-s2.0-85086127050 Jarvis R.M.; Young T.,"Jarvis, Rebecca M. (56581481700); Young, Tim (49664610000)",56581481700; 49664610000,Key research priorities for the future of marine science in New Zealand,2019,Marine Policy,106,,103539,,,,13,10.1016/j.marpol.2019.103539,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85065836567&doi=10.1016%2fj.marpol.2019.103539&partnerID=40&md5=cd3df9af8c984c7630779ac6084b6a55,"Institute for Applied Ecology New Zealand, School of Science, Auckland University of Technology, Auckland, New Zealand; Sydney Institute of Marine Science, Mosman, Australia; Institute for Sustainable Oceans, Auckland, New Zealand; Aquaculture Biotechnology Research Group, School of Science, Auckland University of Technology, Auckland, New Zealand","Jarvis R.M., Institute for Applied Ecology New Zealand, School of Science, Auckland University of Technology, Auckland, New Zealand, Sydney Institute of Marine Science, Mosman, Australia, Institute for Sustainable Oceans, Auckland, New Zealand; Young T., Institute for Sustainable Oceans, Auckland, New Zealand, Aquaculture Biotechnology Research Group, School of Science, Auckland University of Technology, Auckland, New Zealand","New Zealand's marine and coastal environments are of significant ecological, economic, cultural and social value. Yet a multitude of threats, disjointed legislation, and considerable knowledge gaps continue to limit the country's ability to effectively manage its marine ecosystems and resources. As such, it is important to identify the key research priorities that can best support progress towards more relevant and informed decision-making. Here we present the results of the New Zealand Marine Science Horizon Scan, which identified the ten highest priority research questions for the future of marine science in New Zealand across nine themes: 1) fisheries and aquaculture, 2) biosecurity, 3) climate change, 4) marine reserves and protected areas, 5) ecosystems and biodiversity, 6) policy and decision-making, 7) marine guardianship, 8) coastal and ocean processes, and 9) other anthropogenic factors. These key research priorities can be used to complement ongoing marine science activities, develop new and important areas of research, encourage opportunities for collaboration, and improve transparency around research and decision-making. Not only will answering these questions bridge existing knowledge gaps in marine science, but they can also be used to design research programmes that make the greatest contributions to the future of marine conservation, policy, and management in New Zealand. © 2019 Elsevier Ltd",,New Zealand; conservation; decision making; environmental planning; marine environment; marine policy; research work,"R.M. Jarvis; Sydney Institute of Marine Sciences, Mosman, Australia; email: rjarvis@aut.ac.nz",,Elsevier Ltd,,,,,,0308597X,,,,English,Mar. Policy,Article,Final,,Scopus,2-s2.0-85065836567 Vlachopoulou E.I.; Mizuta D.D.,"Vlachopoulou, Eirini Ioanna (55929468700); Mizuta, Darien Danielle (57193001251)",55929468700; 57193001251,"Shellfish aquaculture and resilience: Leadership experiences from Kesennuma Bay, Japan",2018,Marine Policy,92,,,111,119,8,12,10.1016/j.marpol.2018.02.025,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85043352543&doi=10.1016%2fj.marpol.2018.02.025&partnerID=40&md5=06388b132df6b6015c21185a692729c4,"Social, Economic and Geographical Sciences Group, The James Hutton Institute, Craigiebuckler, Macaulay Drive, Aberdeen, AB15 8QH, Scotland, United Kingdom; Yokohama National University - Faculty of Environment and Information Science, Yokohama, Japan","Vlachopoulou E.I., Social, Economic and Geographical Sciences Group, The James Hutton Institute, Craigiebuckler, Macaulay Drive, Aberdeen, AB15 8QH, Scotland, United Kingdom; Mizuta D.D., Yokohama National University - Faculty of Environment and Information Science, Yokohama, Japan","Resilience is a wide term that encompasses a variety of characteristics of different systems. The most common interpretation of resilience is the capacity of a system to absorb a change and reorganise to maintain its functions. This study explores the characteristics of resilience exhibited by a shellfish aquaculture-reliant coastal community in Kesennuma Bay, Japan, after the Great East Japan Earthquake, in relation to the principles of resilience as affected by local leadership. The community was greatly impacted by the tsunami and the Fukushima Daiichi Nuclear Power Plant meltdown in terms of ecological, social, economic damage. A local non-profit organisation (NPO) played a central role in the community's effort to respond to the devastation and reorganise to become functional again and maintain its structures. The leadership potential exhibited throughout the process of community recovery was the key factor in achieving high levels of collective action and a reorganisation of the community. © 2018 Elsevier Ltd",coastal communities; disaster management; leadership; prince william sound; shellfish aquaculture,Honshu; Japan; Kesennuma Bay; Miyagi; Tohoku; coastal zone; collective action; community organization; disaster management; earthquake event; fishing community; leadership; nonprofit organization; nuclear accident; shellfish culture; tsunami event,"E.I. Vlachopoulou; Social, Economic and Geographical Sciences Group, The James Hutton Institute, Aberdeen, Craigiebuckler, Macaulay Drive, AB15 8QH, United Kingdom; email: irianna.vlachopoulou@hutton.ac.uk",,Elsevier Ltd,,,,,,0308597X,,,,English,Mar. Policy,Article,Final,,Scopus,2-s2.0-85043352543 Queiroz L.D.S.; Rossi S.; Calvet-Mir L.; Ruiz-Mallén I.; García-Betorz S.; Salvà-Prat J.; Meireles A.J.D.A.,"Queiroz, Luciana de Souza (55574948600); Rossi, Sergio (7202573914); Calvet-Mir, Laura (24830251800); Ruiz-Mallén, Isabel (23470646300); García-Betorz, Sara (57194684641); Salvà-Prat, Júlia (57194689907); Meireles, Antônio Jeovah de Andrade (56179805000)",55574948600; 7202573914; 24830251800; 23470646300; 57194684641; 57194689907; 56179805000,Neglected ecosystem services: Highlighting the socio-cultural perception of mangroves in decision-making processes,2017,Ecosystem Services,26,,,137,145,8,121,10.1016/j.ecoser.2017.06.013,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85021639734&doi=10.1016%2fj.ecoser.2017.06.013&partnerID=40&md5=d8b4be11531976d241ae60a89ccf5438,"Institute of Environmental and Technology (ICTA), Universitat Autònoma de Barcelona (UAB), Edifici Z, Passeig de les Columnes, Universitat Autònoma de Barcelona, Cerdanyola del Vallés, 08193, Spain; Departamento de Geografia, Universidade Federal do Ceará (UFC), Bloco 911, Campus do Pici, Fortaleza, 900, Brazil; DiSTeBA, University of Salento, Campus ECOTEKNE, Lecce, 73100, Italy; Internet Interdisciplinary Institute (IN3), Universitat Oberta de Catalunya (UOC), Av Carl Friedrich Gauss, 5,08860, Castelldefels, Barcelona, Spain","Queiroz L.D.S., Institute of Environmental and Technology (ICTA), Universitat Autònoma de Barcelona (UAB), Edifici Z, Passeig de les Columnes, Universitat Autònoma de Barcelona, Cerdanyola del Vallés, 08193, Spain, Departamento de Geografia, Universidade Federal do Ceará (UFC), Bloco 911, Campus do Pici, Fortaleza, 900, Brazil; Rossi S., Institute of Environmental and Technology (ICTA), Universitat Autònoma de Barcelona (UAB), Edifici Z, Passeig de les Columnes, Universitat Autònoma de Barcelona, Cerdanyola del Vallés, 08193, Spain, DiSTeBA, University of Salento, Campus ECOTEKNE, Lecce, 73100, Italy; Calvet-Mir L., Institute of Environmental and Technology (ICTA), Universitat Autònoma de Barcelona (UAB), Edifici Z, Passeig de les Columnes, Universitat Autònoma de Barcelona, Cerdanyola del Vallés, 08193, Spain, Internet Interdisciplinary Institute (IN3), Universitat Oberta de Catalunya (UOC), Av Carl Friedrich Gauss, 5,08860, Castelldefels, Barcelona, Spain; Ruiz-Mallén I., Institute of Environmental and Technology (ICTA), Universitat Autònoma de Barcelona (UAB), Edifici Z, Passeig de les Columnes, Universitat Autònoma de Barcelona, Cerdanyola del Vallés, 08193, Spain, Internet Interdisciplinary Institute (IN3), Universitat Oberta de Catalunya (UOC), Av Carl Friedrich Gauss, 5,08860, Castelldefels, Barcelona, Spain; García-Betorz S., Institute of Environmental and Technology (ICTA), Universitat Autònoma de Barcelona (UAB), Edifici Z, Passeig de les Columnes, Universitat Autònoma de Barcelona, Cerdanyola del Vallés, 08193, Spain; Salvà-Prat J., Institute of Environmental and Technology (ICTA), Universitat Autònoma de Barcelona (UAB), Edifici Z, Passeig de les Columnes, Universitat Autònoma de Barcelona, Cerdanyola del Vallés, 08193, Spain; Meireles A.J.D.A., Departamento de Geografia, Universidade Federal do Ceará (UFC), Bloco 911, Campus do Pici, Fortaleza, 900, Brazil","Despite the increasing recognition of the need to conserve mangroves, degradation has continued during the last two decades due to ineffective and non-inclusive decision-making processes exclusively based on economic factors. The purpose of the present study is to give tools to mangrove conservation management and policy, exploring the sociocultural valuation of the ecosystem services of mangroves through a case study in northeastern Brazil, an area highly impacted by shrimp aquaculture. We used a mix of methods to complement ecosystem services identified in the academic literature with those perceived as such by local people. We analyzed these locally perceived mangrove services in relation to community livelihoods, and highlighted that local people identified four additional cultural services related to maintenance of Traditional Ecological Knowledge (TEK), creation and maintenance of social relationship, personal satisfaction and mental and physical relaxation. This demonstrates that local people have a symbolic relationship with the mangrove forest, which goes beyond the material approach normally used to evaluate ecosystem services. Such findings suggest that the socio-cultural dimension of mangrove services needs to be considered by policy-makers as an indispensable criterion for confronting the key challenges in coastal ecosystems conservation. © 2017 Elsevier B.V.",brazil; cultural ecosystem services; mangroves; policy support; shrimp aquaculture; socio-cultural valuation,,"L.D.S. Queiroz; Institute of Environmental and Technology (ICTA), Universitat Autònoma de Barcelona (UAB), Edifici Z, Passeig de les Columnes, Universitat Autònoma de Barcelona, Cerdanyola del Vallés, 08193, Spain; email: Luciana.Queiroz@uab.cat",,Elsevier B.V.,,,,,,22120416,,,,English,Ecosyst. Serv.,Article,Final,,Scopus,2-s2.0-85021639734 Ray S.; Garada R.,"Ray, Soumen (57194604437); Garada, Rabindra (57194590635)",57194604437; 57194590635,Boat automation and fishery livelihood: a case of Chilika Lake in Odisha,2018,"Environment, Development and Sustainability",20,5,,2399,2414,15,7,10.1007/s10668-017-9995-8,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85021151258&doi=10.1007%2fs10668-017-9995-8&partnerID=40&md5=6525cc504723305885c8d2e0c9f5dad7,"UNICEF, Assam Office, Basisthapur Bylane No 3, Beltola, Guwahati, Assam, India; Utkal University, Bhubaneswar, Odisha, India","Ray S., UNICEF, Assam Office, Basisthapur Bylane No 3, Beltola, Guwahati, Assam, India; Garada R., Utkal University, Bhubaneswar, Odisha, India","Chilika Lake, situated in the eastern part of India is a biodiversity site and is blessed with distinct assemblage of oceanic and fresh water. The lake having extremely rich fishery resources helps in generating instant employments and livelihoods to a large number of fishers and non-fishers residing in and around it. However, during the past few years the augmented utilisation of modern fishing technology including mechanised boats has increased the vulnerability of the traditional fisher folks. Based on a field survey of 450 fishing households (selected through multistage purposive sampling method), this paper highlights the changing concerns and crisis of traditional fishing livelihood in the context of overuse of motorised boats. In the past, the lake seems to have invited free entry and competition for fishing venture, and thereby promoting economic efficiency but resulting exactly the opposite effects. The study also reveals that the boat motorisation and its related new regulations resulting in climate vulnerability are fast weakening the traditional fisheries in the Chilika Lake. It is high time to regulate the present day means and ways of fishing in the lake keeping in mind the fast depletion of fishery resources and rapid degradation of lake environment. Thus, the article argues that the effective management of motorised boats, strict regulation of user’s rights to fishing and promotion of alternate non-fishing livelihood options can be a number of key factors for maintaining the lake’s rich biodiversity as well as sustaining fishery and aquaculture in the lake. © 2017, Springer Science+Business Media B.V.",boat automation; chilika lake; fisher community; fishery livelihood; sustainability,Chilka Lake; India; Odisha; automation; biodiversity; economic analysis; employment; field survey; fishery; fishery management; fishing community; livelihood; vulnerability,"S. Ray; UNICEF, Assam Office, Guwahati, Basisthapur Bylane No 3, Beltola, India; email: Soumen.wfp@gmail.com",,Springer Netherlands,,,,,,1387585X,,EDSNB,,English,Environ. Dev. Sustainability,Article,Final,,Scopus,2-s2.0-85021151258 Kluger L.C.; Filgueira R.,"Kluger, Lotta Clara (56862169000); Filgueira, Ramón (16549712900)",56862169000; 16549712900,Thinking outside the box: Embracing social complexity in aquaculture carrying capacity estimations,2021,ICES Journal of Marine Science,78,1,,435,442,7,19,10.1093/icesjms/fsaa063,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85102370868&doi=10.1093%2ficesjms%2ffsaa063&partnerID=40&md5=de2271e3d6fc2b9a669f6afe059c514b,"University of Bremen, Artec Sustainability Research Center, Enrique-Schmidt-Straße 7, Bremen, 28359, Germany; Leibniz Centre for Tropical Marine Research (ZMT), Fahrenheitstraße 6, Bremen, 28359, Germany; Marine Affairs Program, Dalhousie University, Halifax, Canada","Kluger L.C., University of Bremen, Artec Sustainability Research Center, Enrique-Schmidt-Straße 7, Bremen, 28359, Germany, Leibniz Centre for Tropical Marine Research (ZMT), Fahrenheitstraße 6, Bremen, 28359, Germany; Filgueira R., Marine Affairs Program, Dalhousie University, Halifax, Canada","With ever-expanding marine aquaculture, calls for sustainable development become louder. The concept of aquaculture carrying capacity (CC) emerged 30 years ago to frame development, though so far, most studies have focused on the production and ecological components, leaving aside the social perspective. Often, estimations are carried out a posteriori, once aquaculture is already in place, hence ignoring relevant voices potentially opposing the onset of aquaculture implementation. We argue that CC should be multidimensional, iterative, inclusive, and just. Hence, the evaluative scope of CC needs to be broadened by moving from industry-driven, Western-based approaches towards an inclusive vision taking into consideration historical, cultural, and socio-economic concerns of all stakeholders of a given area. To this end, we suggest guidelines to frame a safe operating space for aquaculture based on a multi-criteria, multi-stakeholder approach, while embracing the social-ecological dynamics of aquaculture settings by applying an adaptive approach and acknowledging the critical role of place-based constraints. Rather than producing a box-checking exercise, CC approaches should proactively engage with aquaculture-produced outcomes at multiple scales, embracing complexity, and uncertainty. Scoping CC with the voices of all relevant societal groups, ideally before aquaculture implementation, provides the unique opportunity to jointly develop truly sustainable aquaculture. © 2020 International Council for the Exploration of the Sea 2020.",aquaculture; aquaculture; carrying capacity; seafood farming; sustainability,aquaculture; carrying capacity; complexity; estimation method; implementation process; mariculture; multicriteria analysis; stakeholder; sustainability; sustainable development,"L.C. Kluger; University of Bremen, Artec Sustainability Research Center, Bremen, Enrique-Schmidt-Straße 7, 28359, Germany; email: lottakluger@posteo.de",,Oxford University Press,,,,,,10543139,,ICESE,,English,ICES J. Mar. Sci.,Article,Final,All Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85102370868 Kluger L.C.; Alff H.; Alfaro-Córdova E.; Alfaro-Shigueto J.,"Kluger, Lotta Clara (56862169000); Alff, Henryk (54884880500); Alfaro-Córdova, Eliana (57194685678); Alfaro-Shigueto, Joanna (12761096700)",56862169000; 54884880500; 57194685678; 12761096700,On the move: The role of mobility and migration as a coping strategy for resource users after abrupt environmental disturbance – the empirical example of the Coastal El Niño 2017,2020,Global Environmental Change,63,,102095,,,,23,10.1016/j.gloenvcha.2020.102095,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85084841539&doi=10.1016%2fj.gloenvcha.2020.102095&partnerID=40&md5=23fe55a09050cd5a341ea9b198ab5129,"Leibniz Center for Tropical Marine Research (ZMT), Fahrenheitstr. 6, Bremen, 28359, Germany; University of Bremen, artec Sustainability Research Center, Enrique-Schmidt-Straße 7, Bremen, 28359, Germany; ProDelphinus, Jose Galvez 780E, Lima, Peru; Universidad Científica del Sur, Facultad de Biologia Marina, Lima, Peru","Kluger L.C., Leibniz Center for Tropical Marine Research (ZMT), Fahrenheitstr. 6, Bremen, 28359, Germany, University of Bremen, artec Sustainability Research Center, Enrique-Schmidt-Straße 7, Bremen, 28359, Germany; Alff H., Leibniz Center for Tropical Marine Research (ZMT), Fahrenheitstr. 6, Bremen, 28359, Germany; Alfaro-Córdova E., ProDelphinus, Jose Galvez 780E, Lima, Peru, Universidad Científica del Sur, Facultad de Biologia Marina, Lima, Peru; Alfaro-Shigueto J., ProDelphinus, Jose Galvez 780E, Lima, Peru, Universidad Científica del Sur, Facultad de Biologia Marina, Lima, Peru","Individual mobility – moving between and within different geographic regions – represents an adaptation strategy of natural resource users worldwide to cope with sudden and gradual changes in resource abundances. This work traces the recent history of Peruvian small-scale fishers’ migration, and particularly analyses the spatial mobility patterns of resource users along the Peruvian coastline in the aftermath of the coastal El Niño 2017. In February-March 2017, this event caused extraordinary heavy rains and a rise in water temperatures along the coast of northern Peru, inducing negative consequences for the small-scale fisheries and scallop (Argopecten purpuratus) aquaculture sectors, both representing important socio-economic activities in the region. Responses of local resource users to these changes were highly diverse, with a great number of people leaving the region in search for work in fishing and non-fishing activities. With a particular emphasis on the province of Sechura, this work attempts to shed light on how and why migration flows differ for fishers and scallop farmers and to explore future pathways in the context of post-disturbance recovery. About one year after the disturbance event, the small-scale fishery operated almost on a regular scale, while the aquaculture sector still struggled towards pre-El Niño conditions, reflected, for example, in a higher percentage of persons engaging in other economic activities within and outside the region. The results of this study demonstrate the importance of human movement and translocal social networks emerging in moments of crisis and should be considered for future development of long-term management strategies incorporating increasing interconnectedness of places on different scales in the face of future disturbance events. Understanding adaptation strategies of resource users in this particular social-ecological setting will further serve to inform other coastal systems prone to (re-occurring) environmental change by highlighting the diversity of socio-economic and natural drivers that can stipulate mobility and affect adaptive capacity of resource users. © 2020 Elsevier Ltd",adaptation; aquaculture; environmental sustainability; peru; small-scale fisheries; translocal,Peru; Argopecten purpuratus; adaptation; bivalve; coast; coping strategy; El Nino; environmental disturbance; natural resource; resource use; socioeconomic status,"L.C. Kluger; Leibniz Center for Tropical Marine Research (ZMT), Bremen, Fahrenheitstr. 6, 28359, Germany; email: lotta.kluger@leibniz-zmt.de",,Elsevier Ltd,,,,,,09593780,,GECHE,,English,Global Environ. Change,Article,Final,,Scopus,2-s2.0-85084841539 Cadillo-Benalcazar J.J.; Giampietro M.; Bukkens S.G.F.; Strand R.,"Cadillo-Benalcazar, Juan J. (57087264100); Giampietro, Mario (7004081868); Bukkens, Sandra G.F. (6603560703); Strand, Roger (56234682700)",57087264100; 7004081868; 6603560703; 56234682700,Multi-scale integrated evaluation of the sustainability of large-scale use of alternative feeds in salmon aquaculture,2020,Journal of Cleaner Production,248,,119210,,,,27,10.1016/j.jclepro.2019.119210,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85075416015&doi=10.1016%2fj.jclepro.2019.119210&partnerID=40&md5=60428817b8d15c501cde76bd329303c4,"Institut de Ciència i Tecnologia Ambientals, Universitat Autònoma de Barcelona, Bellaterra (Barcelona), 08193, Spain; Institució Catalana de Recerca i Estudis Avançats (ICREA), Barcelona, Spain; Centre for the Study of the Sciences and the Humanities, University of Bergen, Bergen, Norway","Cadillo-Benalcazar J.J., Institut de Ciència i Tecnologia Ambientals, Universitat Autònoma de Barcelona, Bellaterra (Barcelona), 08193, Spain; Giampietro M., Institut de Ciència i Tecnologia Ambientals, Universitat Autònoma de Barcelona, Bellaterra (Barcelona), 08193, Spain, Institució Catalana de Recerca i Estudis Avançats (ICREA), Barcelona, Spain; Bukkens S.G.F., Institut de Ciència i Tecnologia Ambientals, Universitat Autònoma de Barcelona, Bellaterra (Barcelona), 08193, Spain; Strand R., Centre for the Study of the Sciences and the Humanities, University of Bergen, Bergen, Norway","The steady increase in production volume of salmon aquaculture has sharpened concerns about its sustainability. In particular the production of salmon feed is a reason for concern given its reliance on scarce natural resources, such as wild fish captures. Multi-scale integrated analysis is put forward as a tool to anticipate the environmental and socio-economic impacts of large-scale implementation of alternative salmon feeds, considering both plant and insect sources as potential replacements of fish meal and fish oil. The proposed accounting framework, based on relational analysis across hierarchical levels, describes the patterns of required inputs using biophysical and economic variables. It also considers the inputs used by external systems for the production of imported feed, thus providing a coherent assessment of the sustainability of the production system in terms of feasibility, viability, and desirability. The analytical tool-kit is illustrated in conceptual terms and then applied to the Norwegian salmon aquaculture, both in diagnostic (describing the actual situation) and anticipatory mode (examining feed scenarios). Results are used in an exercise of quantitative story-telling to check the quality of the narratives currently shaping policy discussions on aquaculture. Quantitative story-telling is a heuristic approach aimed at checking the robustness of knowledge claims in face of uncertainty. It is concluded that rearing insects in the salmon feed production chain enlarges the option space of feed sources by opening up the possibility of using locally-produced seaweed and organic waste, but also raises the level of uncertainty with regard to the possible insurgence of negative side effects. © 2019 The Authors",alternative aquafeeds; insects; musiasem; norway; quantitative content analysis; salmon aquaculture,Aquaculture; Economic analysis; Economic and social effects; Fish; Heuristic methods; Alternative aquafeeds; Insects; MuSIASEM; Norway; Salmon aquacultures; Story telling; Sustainable development,"M. Giampietro; Institut de Ciència i Tecnologia Ambientals, Universitat Autònoma de Barcelona, Bellaterra (Barcelona), 08193, Spain; email: mario.giampietro@uab.cat",,Elsevier Ltd,,,,,,09596526,,JCROE,,English,J. Clean. Prod.,Article,Final,All Open Access; Green Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85075416015 Rodríguez-Rodríguez G.; Bande Ramudo R.,"Rodríguez-Rodríguez, Gonzalo (25626359700); Bande Ramudo, Roberto (24764485500)",25626359700; 24764485500,Market driven management of climate change impacts in the Spanish mussel sector,2017,Marine Policy,83,,,230,235,5,9,10.1016/j.marpol.2017.06.014,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85020866066&doi=10.1016%2fj.marpol.2017.06.014&partnerID=40&md5=b13a620fe314deaa58b50b2baef35e69,"Department of Applied Economics, Faculty of Economics and Business Administration, University of Santiago de Compostela, Av. Burgo das Nacións s/n, Santiago de Compostela, 15782, Spain; GAME-IDEGA and Department of Economics, University of Santiago de Compostela, Av. Burgo das Nacións s/n, Santiago de Compostela, 15782, Spain","Rodríguez-Rodríguez G., Department of Applied Economics, Faculty of Economics and Business Administration, University of Santiago de Compostela, Av. Burgo das Nacións s/n, Santiago de Compostela, 15782, Spain; Bande Ramudo R., GAME-IDEGA and Department of Economics, University of Santiago de Compostela, Av. Burgo das Nacións s/n, Santiago de Compostela, 15782, Spain","Mussel farming is the largest aquaculture activity in Spain both in volume and value, being a key pillar for the development of the coastal areas in Galicia (NW Spain), where this production is concentrated. The available scientific knowledge suggests that in the long term the primary productivity of the Galician estuaries will be reduced due to climate change. Consequently, adaptive management will be required to face this challenge. The impact of the likely production decrease will depend, among other factors, on the availability of substitutes, being their identification the main object of this research. So, it was analysed whether this markets are integrated or not through cointegration tests, finding that only the French and the Spanish markets are partially integrated. This implies that since very little substitutes are available for the Galician fresh mussels, decreases in production will not necessarily affect producer's income, as prices increases will compensate the (eventual) reduction in volume. In terms of policy, this study suggests that market intelligence may contribute to an adaptive, pragmatic and flexible framework to face climate change impacts, avoiding too anticipated or blind responses that may result in economic, environmental and social costs. © 2017 Elsevier Ltd",climate change; cointegration; market intelligence; mussel farming,Galicia [Spain]; Spain; adaptive management; climate change; climate effect; coastal zone; cointegration analysis; farming system; mussel culture,"G. Rodríguez-Rodríguez; Santiago de Compostela, Av. Burgo das Nacións s/n, Spain; email: gonzalo.rodriguez@usc.es",,Elsevier Ltd,,,,,,0308597X,,,,English,Mar. Policy,Article,Final,,Scopus,2-s2.0-85020866066 Fowler A.M.; Hall K.C.; Liggins G.W.; Chick R.C.,"Fowler, Ashley M. (25629480200); Hall, Karina C. (7402946931); Liggins, Geoffrey W. (56861352500); Chick, Rowan C. (6602434946)",25629480200; 7402946931; 56861352500; 6602434946,Prioritising fished stocks for monitoring and assessment: A decision analysis approach for diverse fisheries of limited commercial value,2021,Ocean and Coastal Management,199,,105404,,,,3,10.1016/j.ocecoaman.2020.105404,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85092057441&doi=10.1016%2fj.ocecoaman.2020.105404&partnerID=40&md5=6a067ba6042c19b6fcf139fd3eefad02,"New South Wales Department of Primary Industries, Sydney Institute of Marine Science, Mosman, 2088, NSW, Australia; New South Wales Department of Primary Industries, Coffs Harbour, Australia; New South Wales Department of Primary Industries, Port Stephens Fisheries Institute, Taylors Beach, 2316, NSW, Australia; National Marine Science Centre, School of Environment, Science and Engineering, Southern Cross University, Coffs Harbour, Australia","Fowler A.M., New South Wales Department of Primary Industries, Sydney Institute of Marine Science, Mosman, 2088, NSW, Australia; Hall K.C., New South Wales Department of Primary Industries, Coffs Harbour, Australia, National Marine Science Centre, School of Environment, Science and Engineering, Southern Cross University, Coffs Harbour, Australia; Liggins G.W., New South Wales Department of Primary Industries, Sydney Institute of Marine Science, Mosman, 2088, NSW, Australia; Chick R.C., New South Wales Department of Primary Industries, Port Stephens Fisheries Institute, Taylors Beach, 2316, NSW, Australia","Prioritising fished stocks for monitoring and assessment is a challenge for management of resource-limited fisheries. We developed a participatory multi-criteria decision analysis (MCDA) to prioritise 141 fished stocks in New South Wales (NSW), Australia, based on their importance to fisheries management. The approach aimed to: (1) structure the decision problem, (2) force consideration of management objectives at the stock level, (3) balance trade-offs generated by competing objectives, and (4) balance differences in the perceived importance of objectives among fisheries managers. Performance scores and criteria weightings for ten management objectives were elicited from two groups of managers (commercial and recreational), combined into a total performance value for each stock, and ordered to infer priority for assessment. Stocks with higher total performance values typically had an exploitation status of Overfished, Growth-overfished, or Uncertain and were subject to a catch quota, because these criteria were weighted highly by both management groups. However, total performance was more sensitive to differences in weightings between management groups than to variations in relative magnitude of weightings among criteria. The priority list of stocks will assist decisions regarding the optimal allocation of resources for fisheries research in NSW. This MCDA approach is adaptive and can incorporate changes in management priorities through time and additional ecosystem components. © 2020 Elsevier Ltd",decision analysis; fisheries management; stakeholder objectives; stock assessment,Australia; New South Wales; Economic and social effects; Fisheries; Managers; Decision problems; Ecosystem components; Fisheries management; Management objectives; Monitoring and assessment; Multi-criteria decision analysis; Optimal allocation; Total performance; aquaculture industry; decision analysis; decision making; fishery policy; fishing community; multicriteria analysis; prioritization; stock identification; Decision making,"A.M. Fowler; New South Wales Department of Primary Industries, Sydney Institute of Marine Science, Mosman, 2088, Australia; email: ashley.fowler@dpi.nsw.gov.au",,Elsevier Ltd,,,,,,09645691,,OCMAE,,English,Ocean Coast. Manage.,Article,Final,,Scopus,2-s2.0-85092057441 Kluger L.C.; Scotti M.; Vivar I.; Wolff M.,"Kluger, Lotta C. (56862169000); Scotti, Marco (7003580815); Vivar, Ivonne (57209716090); Wolff, Matthias (7403304576)",56862169000; 7003580815; 57209716090; 7403304576,"Specialization of fishers leads to greater impact of external disturbance: Evidence from a social-ecological network modelling exercise for Sechura Bay, northern Peru",2019,Ocean and Coastal Management,179,,104861,,,,18,10.1016/j.ocecoaman.2019.104861,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85068532685&doi=10.1016%2fj.ocecoaman.2019.104861&partnerID=40&md5=5679b814d10a0e07195d3932afcc4370,"Leibniz Center for Tropical Marine Research (ZMT), Fahrenheitstr. 6, Bremen, 28359, Germany; GEOMAR Helmholtz Centre for Ocean Research Kiel, Germany; University of Bremen, Bibliotheksstr. 1, Bremen, 28359, Germany","Kluger L.C., Leibniz Center for Tropical Marine Research (ZMT), Fahrenheitstr. 6, Bremen, 28359, Germany; Scotti M., GEOMAR Helmholtz Centre for Ocean Research Kiel, Germany; Vivar I., University of Bremen, Bibliotheksstr. 1, Bremen, 28359, Germany; Wolff M., Leibniz Center for Tropical Marine Research (ZMT), Fahrenheitstr. 6, Bremen, 28359, Germany","Coastal marine resources provide livelihoods to human communities around the world. The interactions in respective social-ecological systems are usually of complex nature, due to a wide range of different fisheries interacting with the ecosystem. Understanding connectivity within these systems (i.e. among social and ecological actors) helps in establishing meaningful management strategies for sustainable use of marine resources. This work uses the value chain analysis of different fisheries sectors to construct a qualitative social-ecological network (SEN) model of the Sechura Bay in North Peru. Here, a diverse ensemble of small-scale fisheries co-exists with a flourishing mariculture sector, though the respective production chains partially overlap. Directed and unweighted links between actors were defined based on the transfer of biomass (trophic interactions) and money (economic interactions). Several analytical network tools were applied (e.g. degree centrality, dominator tree) to identify the most important nodes of the social-ecological network and to understand interdependencies. Results of the network analysis suggest position of system's components being related to their vulnerability in the face of external disturbances. Fisher groups with a high specialization with respect to fisheries target species were stronger impacted by the last strong El Niño event (the Coastal El Niño 2017), with drastic consequences for actors of the respective production chains. The present approach is envisioned to be applicable beyond this particular case study and to nourish on-going scientific discussions on the use of social-ecological network analysis to describe human-nature interactions. This study allows (i) estimating node (actor) susceptibilities to natural and anthropogenic disturbances, and (ii) reconciling sustainable resource use and nature conservation by enhancing the understanding of the functionality of the respective social-ecological system. © 2019 Elsevier Ltd",fisheries sustainability; small-scale resource management; social-ecological systems; value chain analysis; vulnerability,Peru; Piura [Peru]; Sechura Bay; Conservation; Ecosystems; Fisheries; Marine biology; Natural resources management; Oceanography; Anthropogenic disturbance; Ecological network analysis; Resource management; Small-scale fisheries; Social-ecological systems; Sustainable resource use; Value chain analysis; Vulnerability; El Nino-Southern Oscillation; environmental disturbance; fishery management; livelihood; marine environment; network analysis; small and medium-sized enterprise; sustainability; vulnerability; Network security,"L.C. Kluger; Leibniz Center for Tropical Marine Research (ZMT), Bremen, Fahrenheitstr. 6, 28359, Germany; email: lotta.kluger@leibniz-zmt.de",,Elsevier Ltd,,,,,,09645691,,OCMAE,,English,Ocean Coast. Manage.,Article,Final,,Scopus,2-s2.0-85068532685 Milewski I.; Smith R.E.,"Milewski, Inka (8763065000); Smith, Ruth E. (56142091200)",8763065000; 56142091200,Sustainable aquaculture in Canada: Lost in translation,2019,Marine Policy,107,,103571,,,,16,10.1016/j.marpol.2019.103571,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85066989181&doi=10.1016%2fj.marpol.2019.103571&partnerID=40&md5=fa282ec873988779b6456ee777bf516a,"Department of Biology, Dalhousie University, Halifax, B3H 4R2, Nova Scotia, Canada; Friends of Port Mouton Bay, Port Mouton, B0T 1TO, Nova Scotia, Canada","Milewski I., Department of Biology, Dalhousie University, Halifax, B3H 4R2, Nova Scotia, Canada; Smith R.E., Friends of Port Mouton Bay, Port Mouton, B0T 1TO, Nova Scotia, Canada","Canada is a signatory to United Nations conventions on sustainable development and has entrenched sustainability goals in legislation and policies relating to natural resource sectors including aquaculture. Monitoring and measuring progress towards sustainable development requires the development of sustainability indicators (SI) that, when measured, indicate movement towards or away from a stated policy objective, as well as providing the public with a measure of government accountability. This paper examined the SI used by the Canadian government to assess the social, economic and environmental sustainability of aquaculture production in Canada, whether they adequately measure policy outcomes, and whether national-level SI indicators are appropriate to assessing sustainability at the community-level. The analysis reveals that the Canadian government has made virtually no progress towards translating sustainable aquaculture policy aspirations into measurable SI that evaluate policy outcomes. The mismatch between national policy goals and on-the-ground consequences are highlighted in a community case study of finfish aquaculture in Port Mouton Bay (Nova Scotia). Aquaculture SI and sustainability narratives are discussed in relation to emergent governance arrangements (certification programs) and an international development initiative, Blue Growth, for the world's oceans. © 2019 Elsevier Ltd",aquaculture; blue growth; certification; community-level; sustainability,Canada; Nova Scotia; accountability; aquaculture production; certification; finfish; sustainability; sustainable development,"I. Milewski; Department of Biology, Dalhousie University, Halifax, B3H 4R2, Canada; email: milewski@nbnet.nb.ca",,Elsevier Ltd,,,,,,0308597X,,,,English,Mar. Policy,Article,Final,,Scopus,2-s2.0-85066989181 Hossain M.S.; Ramirez J.; Szabo S.; Eigenbrod F.; Johnson F.A.; Speranza C.I.; Dearing J.A.,"Hossain, Md Sarwar (57210742754); Ramirez, Jorge (57207412667); Szabo, Sylvia (56556036400); Eigenbrod, Felix (57200302294); Johnson, Fiifi Amoako (25959082700); Speranza, Chinwe Ifejika (23492281600); Dearing, John A (7006518459)",57210742754; 57207412667; 56556036400; 57200302294; 25959082700; 23492281600; 7006518459,Participatory modelling for conceptualizing social-ecological system dynamics in the Bangladesh delta,2020,Regional Environmental Change,20,1,28,,,,36,10.1007/s10113-020-01599-5,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85079627413&doi=10.1007%2fs10113-020-01599-5&partnerID=40&md5=0bb9233fcde4df66430af95881e6dfb7,"Institute of Geography, University of Bern, Bern, Switzerland; Department of Development and Sustainability, Asian Institute of Technology, Pathum Thani, Thailand; Geography and Environmental Science, University of Southampton, Southampton, United Kingdom; Department of Population and Health, University of Cape Coast, Cape Coast, Ghana","Hossain M.S., Institute of Geography, University of Bern, Bern, Switzerland; Ramirez J., Institute of Geography, University of Bern, Bern, Switzerland; Szabo S., Department of Development and Sustainability, Asian Institute of Technology, Pathum Thani, Thailand; Eigenbrod F., Geography and Environmental Science, University of Southampton, Southampton, United Kingdom; Johnson F.A., Department of Population and Health, University of Cape Coast, Cape Coast, Ghana; Speranza C.I., Institute of Geography, University of Bern, Bern, Switzerland; Dearing J.A., Geography and Environmental Science, University of Southampton, Southampton, United Kingdom","The concept of complex social-ecological systems (SES) as a means for capturing system dynamics properties (e.g. interactions and feedbacks) has gained attention in policymaking and advancing evidence in understanding complex systems. In contexts with limited data, conceptual system dynamic models offer a promising entry point to overcome challenges in understanding SES dynamics, which is essential for managing the long-term sustainability of SES and human wellbeing. Here, we build on previous work focused on agricultural production and use participatory approaches to develop a conceptual System Dynamics (SD) model for the south-west coastal SES in Bangladesh encompassing multiple forms of livelihood (fisheries, shrimp farming and forests, as well as agriculture). Using qualitative methods, including focus group discussions with farmers, fishermen, shrimp farmers and forest people, as well as expert consultations, we identified interactions, feedback loops and thresholds for the SES. The conceptual system model developed independently by stakeholders is consistent with a model developed using an empirical approach and literature review. Feedback loops are identified for the ecological (e.g. climate and water, mangrove and salinity) and social (e.g. shrimp farming and mangrove, agricultural (e.g. crops) production and subsidy) sub-systems in the Bangladesh delta. The biophysical thresholds that impact social conditions include river water discharge (1500 to 2000 m3 s−1), climate (28 °C) and soil salinity (~4 to ~10 dS m−1). Exceeding these thresholds suggests that SES may lose resilience in the near future and increase the likelihood of regime shifts. Findings of this study contribute to the management of the deltaic ecosystem and provide specific policy recommendations for improving environmental sustainability and human well-being in the Bangladesh delta and can be further used as inputs into system dynamic modelling to simulate changes in this SES. © 2020, Springer-Verlag GmbH Germany, part of Springer Nature.",feedbacks; participatory approach; regime shifts; social-ecological systems; thresholds,,"M.S. Hossain; Institute of Geography, University of Bern, Bern, Switzerland; email: Sarwar.Sohel@giub.unibe.ch",,Springer,,,,,,14363798,,,,English,Reg. Environ. Change,Article,Final,,Scopus,2-s2.0-85079627413 Fauzi A.; Sakti A.; Yayusman L.; Harto A.; Prasetyo L.; Irawan B.; Kamal M.; Wikantika K.,"Fauzi, Adam (57211918751); Sakti, Anjar (56943543400); Yayusman, Lissa (57188875506); Harto, Agung (6701644989); Prasetyo, Lilik (35762297500); Irawan, Bambang (6508239454); Kamal, Muhammad (55266523600); Wikantika, Ketut (6603393238)",57211918751; 56943543400; 57188875506; 6701644989; 35762297500; 6508239454; 55266523600; 6603393238,Contextualizing mangrove forest deforestation in southeast asia using environmental and socio-economic data products,2019,Forests,10,11,952,,,,26,10.3390/f10110952,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85075333520&doi=10.3390%2ff10110952&partnerID=40&md5=026384d4360ffacc295c6340505a5d69,"Department of Geodesy and Geomatics, Remote Sensing and Geographic Information Science Research Group, Faculty of Earth Science and Technology, Institut Teknologi Bandung, Bandung, 40132, Indonesia; Center for Remote Sensing, Institut Teknologi Bandung, Bandung, 40132, Indonesia; Geomatics Engineering, Department of Regional and Infrastructure Technology, Institut Teknologi Sumatera, Lampung Selatan, 35365, Indonesia; Department of Natural Resource Conservation and Ecotourism, Faculty of Forestry, IPB University, Bogor, 16680, Indonesia; Department of Biology, Universitas Airlangga, Surabaya, 60286, Indonesia; Department of Geographic Information Science, Faculty of Geography, Universitas Gadjah Mada, Yogyakarta, 55281, Indonesia","Fauzi A., Department of Geodesy and Geomatics, Remote Sensing and Geographic Information Science Research Group, Faculty of Earth Science and Technology, Institut Teknologi Bandung, Bandung, 40132, Indonesia, Center for Remote Sensing, Institut Teknologi Bandung, Bandung, 40132, Indonesia, Geomatics Engineering, Department of Regional and Infrastructure Technology, Institut Teknologi Sumatera, Lampung Selatan, 35365, Indonesia; Sakti A., Department of Geodesy and Geomatics, Remote Sensing and Geographic Information Science Research Group, Faculty of Earth Science and Technology, Institut Teknologi Bandung, Bandung, 40132, Indonesia, Center for Remote Sensing, Institut Teknologi Bandung, Bandung, 40132, Indonesia; Yayusman L., Center for Remote Sensing, Institut Teknologi Bandung, Bandung, 40132, Indonesia; Harto A., Department of Geodesy and Geomatics, Remote Sensing and Geographic Information Science Research Group, Faculty of Earth Science and Technology, Institut Teknologi Bandung, Bandung, 40132, Indonesia, Center for Remote Sensing, Institut Teknologi Bandung, Bandung, 40132, Indonesia; Prasetyo L., Department of Natural Resource Conservation and Ecotourism, Faculty of Forestry, IPB University, Bogor, 16680, Indonesia; Irawan B., Department of Biology, Universitas Airlangga, Surabaya, 60286, Indonesia; Kamal M., Department of Geographic Information Science, Faculty of Geography, Universitas Gadjah Mada, Yogyakarta, 55281, Indonesia; Wikantika K., Department of Geodesy and Geomatics, Remote Sensing and Geographic Information Science Research Group, Faculty of Earth Science and Technology, Institut Teknologi Bandung, Bandung, 40132, Indonesia, Center for Remote Sensing, Institut Teknologi Bandung, Bandung, 40132, Indonesia","Research Highlights: This paper provides an alternative approach to contextualize mangrove forest loss by integrating available environmental and socio-economic data sets and products. Background and Objectives: Mangrove forest ecosystems grow in brackish water especially in areas exposed to accumulation of organic matter and tides. This forest type is widely distributed in tropical and subtropical coastal areas. Recent studies have revealed that the mangrove forest ecosystem had significantly degraded due to Land Use and Cover Changes (LUCC) in the recent past. Therefore, contribution of mangrove deforestation drivers has to be assessed to ensure a comprehensive analysis for ecosystem conservation and restoration and facilitate decision making. Materials and Methods: Firstly, a correlation analysis was conducted between individual data products and mangrove deforestation. Each data product was associated with the Dominant Land Use of Deforested Mangrove Patches data for 2012. Next, calculations were performed for specific data combinations to estimate the contributions of anthropogenic factors to mangrove deforestation. Results: In general, our study revealed that 22.64% of the total deforested area was converted into agriculture, 5.85% was converted into aquaculture, 0.69% was converted into infrastructure, and 16.35% was not converted into any specific land use class but was still affected by other human activities. Conclusions: We discovered that the percentage of land affected by these anthropogenic factors varied between countries and regions. This research can facilitate trade-off analysis for natural resources and environmental sustainability policy studies. Diverse management strategies can be evaluated to assess the trade-offs between preserving mangrove forests for climate change mitigation and transforming them for economic purposes. © 2019 by the authors.",deforestation; ecosystem services; gis; land use land cover change; mangrove; southeast asia; wetlands,Decision Making; Deforestation; Economics; GIS; Land Use; Tropics; Southeast Asia; Climate change; Decision making; Deforestation; Economic and social effects; Economics; Geographic information systems; Land use; Sustainable development; Tropics; Wetlands; Climate change mitigation; Comprehensive analysis; Environmental sustainability; Land use and cover change; Land use land cover change; Management strategies; Mangrove; Southeast Asia; conservation management; deforestation; ecosystem management; GIS; land cover; land use; mangrove; satellite data; satellite imagery; wetland; Ecosystems,"A. Fauzi; Department of Geodesy and Geomatics, Remote Sensing and Geographic Information Science Research Group, Faculty of Earth Science and Technology, Institut Teknologi Bandung, Bandung, 40132, Indonesia; email: adam.fauzi@gt.itera.ac.id",,MDPI AG,,,,,,19994907,,,,English,Forests,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85075333520 Subekti P.; Setianti Y.; Hafiar H.; Bakti I.; Yusup P.M.,"Subekti, Priyo (57205064894); Setianti, Yanti (57204126561); Hafiar, Hanny (57204043402); Bakti, Iriana (57204100917); Yusup, Pawit Muhammad (57210283959)",57205064894; 57204126561; 57204043402; 57204100917; 57210283959,"Environmental entrepreneurship education: Case study of community empowerment programs in Bandung Barat district, Indonesia",2019,International Journal of Entrepreneurship,23,2,,,,,6,,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85070238351&partnerID=40&md5=9af6040eec31dfa30e35c752a5552fa6,"Padjadjaran University, Indonesia","Subekti P., Padjadjaran University, Indonesia; Setianti Y., Padjadjaran University, Indonesia; Hafiar H., Padjadjaran University, Indonesia; Bakti I., Padjadjaran University, Indonesia; Yusup P.M., Padjadjaran University, Indonesia","Purpose: Community empowerment through environment-based entrepreneurship training by utilizing environmental potential is an empowerment program that is in line with the Indonesian government's program on Micro, Small and Medium Enterprises (MSMEs). The purpose of this article is to find out how economically powerful the utilization of the environmental potential of Margalaksana Village is, including bamboo forests, fish potential, ponds in Cirata Reservoir, water hyacinth waste, and culinary tourism. Methodology: This research employed descriptive method with qualitative data retrieval that was obtained by in-depth interviews with respondents and direct observation of community empowerment activities in Margalaksana Village, West Bandung Regency. Respondents were selected through purposive sampling. The respondents consisted of activist and founder of working groups in Margalaksana Village; Opinion Leader (religious leader, social figure, organizational figure); Working group (Cirata Caring Society, Cirata Love, Floating Nets Pool). Findings: Some important potentials in entrepreneurial activities are physical capital, human capital and social capital. Physical capital is in the form of facilities and infrastructure support from the government. Human capital is characterized by a level of education that can provide motivation so that it can develop its empowerment and will have a significant impact on community independence. Social capital can be seen from the high community participation in social activities and empowerment activities. An environment-based entrepreneurship training activity is a strategy that allows people to improve their welfare. The role of the leader who is able to motivate its members to continue to be passionate in entrepreneurship. Significance: The contribution of this study makes an initial map of environmental conditions, socio-economic conditions, government policies, responses and community needs related to environmental entrepreneurship education. The mapping data will later become the basis for designing the community-based community empowerment model. © 2019, Allied Business Academies. All rights reserved.",cirata reservoir; community empowerment; fish farming; non-formal education; training,,,,Allied Business Academies,,,,,,10999264,,,,English,Int. J. Enterp.,Article,Final,,Scopus,2-s2.0-85070238351 van den Burg S.W.K.; Schupp M.F.; Depellegrin D.; Barbanti A.; Kerr S.,"van den Burg, S.W.K. (6505922945); Schupp, Maximilian Felix (57196449538); Depellegrin, Daniel (36682343400); Barbanti, Andrea (6701554111); Kerr, Sandy (8532549900)",6505922945; 57196449538; 36682343400; 6701554111; 8532549900,Development of multi-use platforms at sea: Barriers to realising Blue Growth,2020,Ocean Engineering,217,,107983,,,,23,10.1016/j.oceaneng.2020.107983,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85089948903&doi=10.1016%2fj.oceaneng.2020.107983&partnerID=40&md5=50ad544beb8fc54a05fbdf359d36706e,"Wageningen University & Research, Wageningen, Netherlands; Alfred Wegener Institute, Helmholtz Centre for Polar and Marine Research, Bremerhaven, Germany; University of Dundee, School of Social Sciences, Dundee, Scotland, United Kingdom; CNR - National Research Council of Italy, ISMAR - Institute of Marine Sciences, Venice, Italy; Renewable Energy Group, College of Engineering, Mathematics and Physical Sciences, University of Exeter, Cornwall Campus, Penryn, United Kingdom; International Centre for Island Technology, Heriot-Watt University, Stromness, Scotland, United Kingdom","van den Burg S.W.K., Wageningen University & Research, Wageningen, Netherlands; Schupp M.F., Alfred Wegener Institute, Helmholtz Centre for Polar and Marine Research, Bremerhaven, Germany, University of Dundee, School of Social Sciences, Dundee, Scotland, United Kingdom; Depellegrin D., CNR - National Research Council of Italy, ISMAR - Institute of Marine Sciences, Venice, Italy, Renewable Energy Group, College of Engineering, Mathematics and Physical Sciences, University of Exeter, Cornwall Campus, Penryn, United Kingdom; Barbanti A., CNR - National Research Council of Italy, ISMAR - Institute of Marine Sciences, Venice, Italy; Kerr S., International Centre for Island Technology, Heriot-Watt University, Stromness, Scotland, United Kingdom","The recent H2020 Blue Growth projects MARIBE and MUSES investigated the potential of a variety of different combinations of economic activities in co-location or integrated in multi-use platforms. Both projects identified barriers - including regulatory, financing, liability and insurance issues; environmental concerns; stakeholder perceptions; and lack of appropriate skills – that hamper the development of multi-use platforms. The H2020 MARIBE project concluded that further funding for multi-use demonstrations should be provided to increase investor confidence and bring multi-use through the so-called Valley of Death. The H2020 MUSES project concluded that multi-use needs to be proactively facilitated and incentivised through public regulatory bodies and respective support programmes. This paper combines and analyses results from both projects in order to identify key research gaps and actions required for the continued development of multi-use platforms, based on a structured critical review of available peer-reviewed literature on the topic as well as reports of both the MUSES and MARIBE projects. Research gaps and actions are analysed based on a multi-use platform typology to inform developers, policy makers, academia and investors for future development of multi-use at sea. © 2020 The Authors",aquaculture; barriers; blue growth; multi-use platforms; offshore energy; typology,Economic and social effects; Investments; Critical review; Economic activities; Environmental concerns; Insurance issues; Policy makers; Regulatory bodies; Research gaps; Stakeholder perception; economic activity; offshore engineering; offshore structure; project management; Economics,"S.W.K. van den Burg; Wageningen University & Research, Wageningen, Netherlands; email: sander.vandenburg@wur.nl",,Elsevier Ltd,,,,,,00298018,,,,English,Ocean Eng.,Article,Final,All Open Access; Green Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85089948903 Little D.C.; Young J.A.; Zhang W.; Newton R.W.; Al Mamun A.; Murray F.J.,"Little, David C. (7202966368); Young, James A. (8427055300); Zhang, Wenbo (55558164400); Newton, Richard W. (55932814200); Al Mamun, Abdullah (57197568567); Murray, Francis J. (57188857651)",7202966368; 8427055300; 55558164400; 55932814200; 57197568567; 57188857651,Sustainable intensification of aquaculture value chains between Asia and Europe: A framework for understanding impacts and challenges,2018,Aquaculture,493,,,338,354,16,98,10.1016/j.aquaculture.2017.12.033,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85042127809&doi=10.1016%2fj.aquaculture.2017.12.033&partnerID=40&md5=4e0f93edf1db1c155014987c88b6772c,"Institute of Aquaculture, University of Stirling, Stirling, United Kingdom; Key Laboratory of Freshwater Fishery Germplasm Resources, Ministry of Agriculture, Shanghai Ocean University, Shanghai, China; Department of Fisheries and Marine Science, Noakhali Science and Technology University, Bangladesh","Little D.C., Institute of Aquaculture, University of Stirling, Stirling, United Kingdom; Young J.A., Institute of Aquaculture, University of Stirling, Stirling, United Kingdom; Zhang W., Institute of Aquaculture, University of Stirling, Stirling, United Kingdom, Key Laboratory of Freshwater Fishery Germplasm Resources, Ministry of Agriculture, Shanghai Ocean University, Shanghai, China; Newton R.W., Institute of Aquaculture, University of Stirling, Stirling, United Kingdom; Al Mamun A., Institute of Aquaculture, University of Stirling, Stirling, United Kingdom, Department of Fisheries and Marine Science, Noakhali Science and Technology University, Bangladesh; Murray F.J., Institute of Aquaculture, University of Stirling, Stirling, United Kingdom","Sustainable intensification (SI) is defined and interpreted in terms of a framework to support production of farmed aquatic animals in Asia and their trade with Europe. A novel holistic perspective to value chain analysis, informed by a range of sustainability tools, is used to explain the dynamic in the trade that is having significant impacts on livelihoods in both regions. The origins of SI in agriculture are first described and their congruence with aquaculture clarified. Asian aquaculture systems, based on their emergent properties, are then located within a SI framework considering possible boundaries (enterprise, zone or whole value chain). The implications of conventional intensification, and alternatives are explored with reference to specific examples and impacts on the local and global environment, human and aquatic animal health and welfare. The challenges to sustainability of such value chains and implications for their governance, food culture and consumer habits are considered. Local consumption of seafood in Asia is found to be a major driver of growth and alternative markets for exports regionally and in Low and Medium income countries (LMIC) are likely to impact on employment and power in the value chain between Europe and Asia. The benefits of viewing farmed seafood as part of broader food landscapes are identified in the analysis, as is a shift in the focus from volume to value in terms of goal setting. More holistic perspectives of sustainability also emerge as necessary to describe and interpret global value chains rather than limited reductionist, production- orientated views. A diversity of trends in the development of farmed seafood is identified in contrast to any simplistic move to intensification, likely informed by economic, environmental and social factors in producer and consumer countries. Statement of relevance: Global imbalances in production and consumption of farmed seafood are stimulating trade between Asia and Europe. The dynamic of global value chains around this emergent trade and their alignment with broader sustainability criteria, as applied to sustainable intensification of food production, are highly relevant to global food security. © 2017 Elsevier B.V.",asia; europe; gvcs; seafood; sustainability; trade,Asia; Europe; Animalia; aquaculture; employment; food security; food supply; seafood; supply chain management; sustainability,"D.C. Little; Institute of Aquaculture, University of Stirling, Stirling, United Kingdom; email: d.c.little@stir.ac.uk",,Elsevier B.V.,,,,,,00448486,,AQCLA,,English,Aquaculture,Article,Final,All Open Access; Green Open Access,Scopus,2-s2.0-85042127809 Holden J.J.; Collicutt B.; Covernton G.; Cox K.D.; Lancaster D.; Dudas S.E.; Ban N.C.; Jacob A.L.,"Holden, Jessica J. (57191193428); Collicutt, Brenna (57191043206); Covernton, Garth (57205348988); Cox, Kieran D. (57194499435); Lancaster, Darienne (56888492600); Dudas, Sarah E. (14826598300); Ban, Natalie C. (8268547200); Jacob, Aerin L. (26655526100)",57191193428; 57191043206; 57205348988; 57194499435; 56888492600; 14826598300; 8268547200; 26655526100,Synergies on the coast: Challenges facing shellfish aquaculture development on the central and north coast of British Columbia,2019,Marine Policy,101,,,108,117,9,20,10.1016/j.marpol.2019.01.001,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85059659738&doi=10.1016%2fj.marpol.2019.01.001&partnerID=40&md5=9fd45a64468133824dbb01a0a7d5dd91,"Department of Biology, University of Victoria, Victoria, British Columbia, Canada; School of Environmental Studies, University of Victoria, Victoria, British Columbia, Canada; Centre for Shellfish Research and Department of Biology, Vancouver Island University, Nanaimo, British Columbia, Canada; Hakai Institute, Calvert Island, British Columbia, Canada; Yellowstone to Yukon Conservation Initiative, Canmore, Alberta, Canada","Holden J.J., Department of Biology, University of Victoria, Victoria, British Columbia, Canada; Collicutt B., Department of Biology, University of Victoria, Victoria, British Columbia, Canada, Centre for Shellfish Research and Department of Biology, Vancouver Island University, Nanaimo, British Columbia, Canada, Hakai Institute, Calvert Island, British Columbia, Canada; Covernton G., Department of Biology, University of Victoria, Victoria, British Columbia, Canada; Cox K.D., Department of Biology, University of Victoria, Victoria, British Columbia, Canada, Hakai Institute, Calvert Island, British Columbia, Canada; Lancaster D., School of Environmental Studies, University of Victoria, Victoria, British Columbia, Canada; Dudas S.E., Department of Biology, University of Victoria, Victoria, British Columbia, Canada, Centre for Shellfish Research and Department of Biology, Vancouver Island University, Nanaimo, British Columbia, Canada, Hakai Institute, Calvert Island, British Columbia, Canada; Ban N.C., School of Environmental Studies, University of Victoria, Victoria, British Columbia, Canada; Jacob A.L., School of Environmental Studies, University of Victoria, Victoria, British Columbia, Canada, Yellowstone to Yukon Conservation Initiative, Canmore, Alberta, Canada","The rise in global demand for seafood has led many people to view shellfish aquaculture as an economically and ecologically viable source of seafood. However, interactions with the environment, existing industry, and societal values must be considered to ensure sustainability of this industry. Shellfish aquaculture in British Columbia (BC), Canada, showcases many of these issues. This review explores key socio-economic and ecological considerations for future growth of shellfish aquaculture on the central and north coast of BC, with implications for the continuing global expansion of the industry. Interactions among shellfish aquaculture, coastal groups, existing industries, and First Nations, as well as considerations under changing oceanic conditions are investigated. Expansion of shellfish aquaculture on the central and north coast of BC will need to be socially, environmentally, and economically sustainable. The results of this review strongly indicate that shellfish aquaculture should be incorporated in marine planning initiatives and developed in consideration of local ecological, environmental, economic, and social context. © 2019 Elsevier Ltd",ecological mangrove restoration; marine planning; northeast pacific; ocean space; resource management; sustainability,British Columbia; Canada; Pacific Ocean; Pacific Ocean (Northeast); coastal zone; environmental planning; marine resource; resource development; resource management; seafood; shellfish culture; sustainability,"J.J. Holden; Department of Biology, University of Victoria, Victoria, Canada; email: jjholden@uvic.ca",,Elsevier Ltd,,,,,,0308597X,,,,English,Mar. Policy,Article,Final,,Scopus,2-s2.0-85059659738 Le Gouvello R.; Hochart L.-E.; Laffoley D.; Simard F.; Andrade C.; Angel D.; Callier M.; De Monbrison D.; Fezzardi D.; Haroun R.; Harris A.; Hughes A.; Massa F.; Roque E.; Soto D.; Stead S.; Marino G.,"Le Gouvello, Raphaëla (6507233677); Hochart, Laure-Elise (57195597195); Laffoley, Dan (6506225161); Simard, François (56432493500); Andrade, Carlos (14035132200); Angel, Dror (7004118719); Callier, Myriam (15041657800); De Monbrison, David (7801377570); Fezzardi, Davide (57044780100); Haroun, Ricardo (6603827643); Harris, Alasdair (24476973200); Hughes, Adam (36834624800); Massa, Fabio (23489583900); Roque, Emmanuelle (57195597863); Soto, Doris (57195216901); Stead, Selina (7003698248); Marino, Giovanna (57203073494)",6507233677; 57195597195; 6506225161; 56432493500; 14035132200; 7004118719; 15041657800; 7801377570; 57044780100; 6603827643; 24476973200; 36834624800; 23489583900; 57195597863; 57195216901; 7003698248; 57203073494,Aquaculture and marine protected areas: Potential opportunities and synergies,2017,Aquatic Conservation: Marine and Freshwater Ecosystems,27,,,138,150,12,48,10.1002/aqc.2821,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85029097431&doi=10.1002%2faqc.2821&partnerID=40&md5=d7ff4a3a460c87e2a7c1319d853afc09,"STERMOR (IUCN expert) and AMURE-UBO, France; IUCN, Global Marine and Polar Programme, Gland, Switzerland; IUCN, World Commission on Protected Areas, Gland, Switzerland; Centro de Maricultura da Calheta, Madeira, Portugal; University of Haifa, Haifa, Israel; IFREMER, UMR MARBEC, Palavas les flots, F-34250, France; BRL Ingenierie, Nîmes, France; Aquaculture Consultant, Food and Agriculture Organization of the United Nations, Rome, Italy; IU-ECOAQUA, Universidad de Las Palmas de Gran Canaria, Spain; Blue Ventures, London, United Kingdom; SAMS, United Kingdom; General Fisheries Commission for the Mediterranean, Food and Agriculture Organization of the United Nations, Rome, Italy; INCAR, Chile; Newcastle University, Newcastle upon Tyne, United Kingdom; ISPRA, Rome, Italy","Le Gouvello R., STERMOR (IUCN expert) and AMURE-UBO, France, IUCN, Global Marine and Polar Programme, Gland, Switzerland; Hochart L.-E., IUCN, Global Marine and Polar Programme, Gland, Switzerland; Laffoley D., IUCN, World Commission on Protected Areas, Gland, Switzerland; Simard F., IUCN, Global Marine and Polar Programme, Gland, Switzerland; Andrade C., Centro de Maricultura da Calheta, Madeira, Portugal; Angel D., University of Haifa, Haifa, Israel; Callier M., IFREMER, UMR MARBEC, Palavas les flots, F-34250, France; De Monbrison D., BRL Ingenierie, Nîmes, France; Fezzardi D., Aquaculture Consultant, Food and Agriculture Organization of the United Nations, Rome, Italy; Haroun R., IU-ECOAQUA, Universidad de Las Palmas de Gran Canaria, Spain; Harris A., Blue Ventures, London, United Kingdom; Hughes A., SAMS, United Kingdom; Massa F., General Fisheries Commission for the Mediterranean, Food and Agriculture Organization of the United Nations, Rome, Italy; Roque E., IFREMER, UMR MARBEC, Palavas les flots, F-34250, France; Soto D., INCAR, Chile; Stead S., Newcastle University, Newcastle upon Tyne, United Kingdom; Marino G., ISPRA, Rome, Italy","To meet the Convention on Biological Diversity's Aichi Target 11 on marine biodiversity protection and Aichi Target 6 on sustainable fisheries by 2020, as well as the Sustainable Development Goal (SDG) 2 on food security and SDG 14 on oceans by 2030, there is an urgent need to rethink how best to reconcile nature conservation and sustainable development. This paper argues for effective governance to support processes that apply principles of sustainable development and an ecosystem approach to decide about economic activities at sea such as aquaculture. It describes opportunities, benefits and synergies between aquaculture and MPAs as a basis for wider debate. The scope is not a comprehensive analysis of aquaculture and MPAs, but rather to present examples of positive interactions between aquaculture activities and MPAs. The unintended negative consequences are also discussed to present balanced arguments. This work draws from four workshops held in 2015 and 2016 and used to collect information from about 100 experts representing various sectors and perspectives. It is recognized that aquaculture is an important activity in terms of sustainable development. It can play a role in providing food security, poverty alleviation and economic resilience, in particular for MPA local communities, and contribute to wild stock enhancement, as an alternative to overfishing and for providing services to the ecosystem. This study showed that there is a need from both aquaculture and MPA sides for clarity of objectives and willingness for open and extensive dialogue. The paper concludes by describing a number of tools and methods for supporting greater synergies between aquaculture and MPAs. The results from this work have already helped to build a common understanding between conservation and aquaculture and initiate a rapprochement for increasing synergies. Copyright © 2017 John Wiley & Sons, Ltd.",aquaculture; ecosystem services; environmental sustainability; littoral; marine protected area; ocean; sublittoral,aquaculture system; economic activity; ecosystem management; ecosystem service; environmental impact assessment; environmental protection; food security; global ocean; governance approach; littoral environment; marine ecosystem; nature conservation; protected area; sustainable development,"R. Le Gouvello; STERMOR (IUCN expert) and AMURE-UBO, France; email: raphaela.legouvello@wanadoo.fr",,John Wiley and Sons Ltd,,,,,,10527613,,AQCOE,,English,Aquatic Conserv. Mar. Freshw. Ecosyst.,Article,Final,All Open Access; Bronze Open Access; Green Open Access,Scopus,2-s2.0-85029097431 Kasnir M.; Harlina; Rustam; Jayadi; Jabbar F.B.A.,"Kasnir, Muhammad (56447141800); Harlina (57223706006); Rustam (57211300672); Jayadi (57191346370); Jabbar, Firmansyah B. A. (57210895677)",56447141800; 57223706006; 57211300672; 57191346370; 57210895677,"Sustainability index of the shrimp farming in takalar regency, Indonesia",2020,AACL Bioflux,13,2,,481,495,14,1,,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85081250224&partnerID=40&md5=52efe674bedd5c35d61b8cbeaf184df3,"Universitas Muslim Indonesia, Faculty of Fisheries and Marine Science, Department of Aquaculture, Jl. UripSumoharjo Km 05 Makassar, Makassar, 9023, Indonesia; Universitas Sulawesi Barat, Faculty of Animal Husbandry and Fisheries, Majene, Indonesia","Kasnir M., Universitas Muslim Indonesia, Faculty of Fisheries and Marine Science, Department of Aquaculture, Jl. UripSumoharjo Km 05 Makassar, Makassar, 9023, Indonesia; Harlina, Universitas Muslim Indonesia, Faculty of Fisheries and Marine Science, Department of Aquaculture, Jl. UripSumoharjo Km 05 Makassar, Makassar, 9023, Indonesia; Rustam, Universitas Muslim Indonesia, Faculty of Fisheries and Marine Science, Department of Aquaculture, Jl. UripSumoharjo Km 05 Makassar, Makassar, 9023, Indonesia; Jayadi, Universitas Muslim Indonesia, Faculty of Fisheries and Marine Science, Department of Aquaculture, Jl. UripSumoharjo Km 05 Makassar, Makassar, 9023, Indonesia; Jabbar F.B.A., Universitas Sulawesi Barat, Faculty of Animal Husbandry and Fisheries, Majene, Indonesia","This study aimed to determine the sustainability index in the development of shrimp culture in Takalar Regency, South Sulawesi, Indonesia. The indicators of the sustainability index were based on the ecological aspects (the suitability and environmental carrying capacity), economic aspects (levels of production and income), social aspects (labor absorption rate), as well as legal and institutional aspects. An analytical method was applied for measuring the sustainability Index of shrimp farming. The results showed that the sustainability index of each categories; the ecological aspects were in a fair sustainable category (69.26), with the traditional farming support as the contributing variable; the economic aspects were in a fair sustainable category (67.16) with a labor absorption rate in the traditional farming technology as the contributing variable; social and cultural aspects were in a fair sustainable category (65.10), with the number of households working in the cultivation using traditional technology as the contributing variable; as well as legal and institutional aspects were in a less sustainable category (42.75), with the availability of farm management rules as the contributing variable. © 2020, BIOFLUX SRL. All rights reserved.",aspects; development; environmental sustainability; region; technology,,,,BIOFLUX SRL,,,,,,18448143,,,,English,AACL Bioflux,Article,Final,,Scopus,2-s2.0-85081250224 Maxwell R.J.; Filgueira R.,"Maxwell, R.J. (57212680734); Filgueira, R. (16549712900)",57212680734; 16549712900,Key players in the Grieg NL Placentia Bay Atlantic Salmon Aquaculture Project: A social network analysis,2020,Marine Policy,113,,103800,,,,15,10.1016/j.marpol.2019.103800,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85077313312&doi=10.1016%2fj.marpol.2019.103800&partnerID=40&md5=030aa7c09b0638935051ac270009e13e,"Marine Affairs Program, Dalhousie University, 1355 Oxford Street, Halifax, B3H 4R2, NS, Canada","Maxwell R.J., Marine Affairs Program, Dalhousie University, 1355 Oxford Street, Halifax, B3H 4R2, NS, Canada; Filgueira R., Marine Affairs Program, Dalhousie University, 1355 Oxford Street, Halifax, B3H 4R2, NS, Canada","Global aquaculture is one of the fastest growing food industries, accounting for approximately half of all finfish and invertebrate production as of 2016. In Canada, provincial governments are pushing strongly for the development of the industry, which creates a problem in that governments are both regulators and promoters of the industry. In Newfoundland (NL), a recent aquaculture development, the Grieg NL Placentia Bay Atlantic Salmon Aquaculture Project, was controversial due to the waiving of an environmental assessment (EA) by the NL Government, resulting in a court case. This study analyzed the Grieg NL case to understand how stakeholders operate in salmon aquaculture developments, specifically when governments waive procedures such as EAs. Semi-structured interviews were completed, identifying the linkages among players associated with the Project using social network analysis, and their underlying motivations. The results indicated that ENGOs and aquaculture industry were the two key stakeholder groups with opposing views on the Project, the former in opposition and the latter supportive. The opposing views were articulated around four underlying themes. The potential social and economic benefits were highlighted by those supportive of the Project while those opposed highlighted farmed salmon as unhealthy food, the potential environmental concerns associated with aquaculture, and the controversial role of the government regulating the aquaculture industry. The dual role of the government is central to this research, and thus further efforts on identifying this potential conflicting role could improve structural roadblocks in regulations that may threaten the industry's social acceptability. © 2019 Elsevier Ltd",environmental sustainability; government; newfoundland; salmon aquaculture; social licence; social network analysis,Canada; Newfoundland; Newfoundland and Labrador; Placentia Bay; Invertebrata; Salmo salar; environmental assessment; governance approach; network analysis; regulatory framework; resource development; salmonid culture; social network,"R.J. Maxwell; Marine Affairs Program, Dalhousie University, Halifax, 1355 Oxford Street, B3H 4R2, Canada; email: ryan.maxwell@dal.ca",,Elsevier Ltd,,,,,,0308597X,,,,English,Mar. Policy,Article,Final,All Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85077313312 Cowx I.G.; Ogutu-Owhayo R.,"Cowx, Ian G. (56284380100); Ogutu-Owhayo, Richard (57211341590)",56284380100; 57211341590,Towards sustainable fisheries and aquaculture management in the African Great Lakes,2019,Fisheries Management and Ecology,26,5,,397,405,8,27,10.1111/fme.12391,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85073574610&doi=10.1111%2ffme.12391&partnerID=40&md5=34487b1ec6e85b30991d96b17a8d95ce,"Hull International Fisheries Institute, University of Hull, Hull, United Kingdom; National Fisheries Resources Research Institute, Jinja, Uganda","Cowx I.G., Hull International Fisheries Institute, University of Hull, Hull, United Kingdom; Ogutu-Owhayo R., National Fisheries Resources Research Institute, Jinja, Uganda","Inland fisheries play important roles in food and economic security in the riparian countries surrounding the Great Lakes of Africa. However, the lakes are being systematically degraded by anthropogenic pressures, in combination with the huge population growth prevalent in the region. This paper summarises the outcomes of an international conference to develop a ‘Strategy for Conservation and Sustainable Development of the African Great Lakes Region in a Changing Climate’, held in Uganda in 2017, with particular attention on the potential for fisheries and aquaculture. The paper highlights options for addressing the problems facing the aquatic resources and specifically the importance of effective management of the fisheries and ecosystems of the Great Lakes to achieving the UN Sustainable Development Goals to ensure food and nutritional security and sustainable livelihoods. There is need to improve fisheries assessment and determine the value of the fisheries (and aquaculture). Fisheries legislation, regulation and enforcement need revision and co-management mechanisms require rethinking. There is considerable potential for aquaculture, and especially cage culture, to increase fish production, but there is an urgent need to address technical, social, environmental and input requirements. It is also imperative that best practices guidelines are developed that will support cage culture production practices. © 2019 John Wiley & Sons Ltd",cage culture; fisheries harvest; gender; lake fisheries; livelihoods; sustainability,East African Lakes; aquaculture; cage culture; fishery management; gender; harvesting; lacustrine environment; livelihood; sustainable development,"I.G. Cowx; Hull International Fisheries Institute, University of Hull, Hull, United Kingdom; email: i.g.cowx@hull.ac.uk",,Blackwell Publishing Ltd,,,,,,0969997X,,,,English,Fish. Manage. Ecol.,Article,Final,,Scopus,2-s2.0-85073574610 Lillebø A.I.; Pita C.; Garcia Rodrigues J.; Ramos S.; Villasante S.,"Lillebø, A.I. (6602780143); Pita, C. (36832195100); Garcia Rodrigues, J. (56888795800); Ramos, S. (57200000331); Villasante, S. (24176215600)",6602780143; 36832195100; 56888795800; 57200000331; 24176215600,How can marine ecosystem services support the Blue Growth agenda?,2017,Marine Policy,81,,,132,142,10,76,10.1016/j.marpol.2017.03.008,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85016141252&doi=10.1016%2fj.marpol.2017.03.008&partnerID=40&md5=ede1a2f0c71e7a2487c3e0009a239bd0,"Department of Biology & Centre for Environmental and Marine Studies (CESAM), University of Aveiro, Campus Universitário de Santiago, Aveiro, 3810-193, Portugal; Department of Environment and Planning & Centre for Environmental and Marine Studies (CESAM), University of Aveiro, Campus Universitário de Santiago, Aveiro, 3810-193, Portugal; Faculty of Political Sciences, University of Santiago de Compostela, Santiago de Compostela, Coruña, 15782, Spain; Campus Do Mar, International Campus of Excellence, Spain; Interdisciplinary Centre of Marine and Environmental Research (CIIMAR), Rua dos Bragas 289, Porto, 4050-123, Portugal; Institute of Estuarine and Coastal Studies, University of Hull, Hull, HU6 7RX, United Kingdom","Lillebø A.I., Department of Biology & Centre for Environmental and Marine Studies (CESAM), University of Aveiro, Campus Universitário de Santiago, Aveiro, 3810-193, Portugal; Pita C., Department of Environment and Planning & Centre for Environmental and Marine Studies (CESAM), University of Aveiro, Campus Universitário de Santiago, Aveiro, 3810-193, Portugal; Garcia Rodrigues J., Faculty of Political Sciences, University of Santiago de Compostela, Santiago de Compostela, Coruña, 15782, Spain, Campus Do Mar, International Campus of Excellence, Spain; Ramos S., Interdisciplinary Centre of Marine and Environmental Research (CIIMAR), Rua dos Bragas 289, Porto, 4050-123, Portugal, Institute of Estuarine and Coastal Studies, University of Hull, Hull, HU6 7RX, United Kingdom; Villasante S., Faculty of Political Sciences, University of Santiago de Compostela, Santiago de Compostela, Coruña, 15782, Spain, Campus Do Mar, International Campus of Excellence, Spain","The EU Blue Growth Agenda targets maritime economic activities that have the sea and the coasts as drivers. These activities are supported by marine Ecosystem Services (ES) in combination, or not, with abiotic outputs from the marine natural capital. This paper analyses Blue Growth activities with regards to the demand and supply of marine ES and Good Environmental Status (GES). The results show that marine provisioning ES support aquaculture and blue biotechnology, while blue energy is supported by marine provisioning ES and by abiotic provisioning, and abiotic provisioning supports extraction of marine mineral resources. Maritime, coastal and cruise tourism is supported by cultural marine ES and cultural settings dependent on marine abiotic structures. All these multi-sectoral economic activities depend on healthy marine and coastal ecosystems that are provided by regulating and maintenance ES combined with the abiotic regulation and maintenance by natural marine physical structures and processes. In order to balance concurrent sectoral interests and achieve sustainable use of marine resources there is the need to consider indicators for demand for ES, which are social and economically driven, and for the supply, which are dependent on ecosystems capacity to provide the required marine ES. Some of the actions foreseeing GES are already anticipated in legislation that underpin Blue Growth, whilst others could benefit from additional regulation, particularly in what concern the exploration and exploitation of marine mineral and biological resources. Blue Growth options require navigating trade-offs between economic, social and environmental aspects. © 2017 Elsevier Ltd",abiotic outputs; common international classification of ecosystem services (cices); eu marine-related policies; good environmental status (ges); natural capital,abiotic factor; economic activity; ecosystem service; environmental legislation; European Union; marine ecosystem; marine policy; marine resource; trade-off,"A.I. Lillebø; Department of Biology & Centre for Environmental and Marine Studies (CESAM), University of Aveiro, Aveiro, Campus Universitário de Santiago, 3810-193, Portugal; email: lillebo@ua.pt",,Elsevier Ltd,,,,,,0308597X,,,,English,Mar. Policy,Article,Final,All Open Access; Bronze Open Access,Scopus,2-s2.0-85016141252 Thirumurthy S.; Jayanthi M.; Samynathan M.; Duraisamy M.; Nagaraj G.; Anbazhahan N.,"Thirumurthy, Selvasekar (57200139614); Jayanthi, Marappan (56432773300); Samynathan, Muthusamy (57200139234); Duraisamy, Muthusamy (57200140084); Nagaraj, Ganesan (57214483468); Anbazhahan, Nadesan (57218268265)",57200139614; 56432773300; 57200139234; 57200140084; 57214483468; 57218268265,Land and human resources vulnerability to the impact of climate change in ecologically important coastal regions,2020,Journal of Coastal Conservation,24,4,48,,,,3,10.1007/s11852-020-00766-4,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85088506862&doi=10.1007%2fs11852-020-00766-4&partnerID=40&md5=152540903afca1e18094bd848f7af13d,"ICAR- Central Institute of Brackishwater Aquaculture, Chennai, 600 028, India; Forest Survey of India, Ministry of Environment and Forest and Climate Change, Chennai, India; Department of Geography, Presidency College (Auto), University of Madras, Chennai, India","Thirumurthy S., ICAR- Central Institute of Brackishwater Aquaculture, Chennai, 600 028, India; Jayanthi M., ICAR- Central Institute of Brackishwater Aquaculture, Chennai, 600 028, India; Samynathan M., ICAR- Central Institute of Brackishwater Aquaculture, Chennai, 600 028, India; Duraisamy M., ICAR- Central Institute of Brackishwater Aquaculture, Chennai, 600 028, India; Nagaraj G., Forest Survey of India, Ministry of Environment and Forest and Climate Change, Chennai, India; Anbazhahan N., Department of Geography, Presidency College (Auto), University of Madras, Chennai, India","Climate change induced coastline changes and rising sea levels are likely to create vulnerable impacts on ecosystems, infrastructure, and associated populations the world over. The assessment of long term coastline changes in the past, coupled with the expected changes due to rising sea levels in the future, would aid in comprehending the response of the coastal processes to climate change so as to develop management measures. The coastline variations were delineated by multi dated Landsat satellite images of 45 years using spatial analysis and Digital Shoreline Analysis System. Submergence due to projected sea-level elevation of 50 cm and 100 cm was assessed using Shuttle Radar Topography Mission topographical data using geospatial techniques. The results revealed that the major shore is in the process of erosion at varying rates as well as periods. The highest mean erosion was observed at −6.76 m/yr in 89% of the coast between 1973 and 1988. The mean weighted linear regression rate of shoreline change was −2.39 + 7.05 m /yr from 1973 to 2018, the erosion being 83%. Besides, the sea level rise of 0.6 cm/year is expected to submerge 6983 ha of coastal resources, which includes mangroves, agriculture land, salt pans, and aquaculture farms from 82 villages in 2100. The expected inundation is likely to displace 20% of the human population in the region, including about 50,000 fishers. Government policies need to be developed in a people participatory and transparent mode to protect resources as well as livelihoods of the coastal communities. © 2020, Springer Nature B.V.",coastline change; digital shoreline analysis system (dsas); fisheries; geospatial; sea-level increase; vulnerability,Rhizophoraceae; climate change; climate effect; coastal erosion; coastal zone management; ecological impact; erosion control; governance approach; human resource; land management; Landsat; policy approach; satellite imagery; sea level change; shoreline change; Shuttle Radar Topography Mission; vulnerability,"M. Jayanthi; ICAR- Central Institute of Brackishwater Aquaculture, Chennai, 600 028, India; email: m.jayanthi@icar.gov.in",,Springer,,,,,,14000350,,,,English,J. Coast. Conserv.,Article,Final,,Scopus,2-s2.0-85088506862 Mantri V.A.; Ashok K.S.; Musamil T.M.; Gobalakrishnan M.; Saminathan K.R.; Behera D.P.; Veeragurunathan V.; Eswaran K.; Thiruppathi S.; Pothal J.K.; Ghosh P.K.,"Mantri, Vaibhav A. (12138763800); Ashok, K.S. (56414529500); Musamil, T. Mohammad (57194063030); Gobalakrishnan, M. (57201672779); Saminathan, K.R. (56414716500); Behera, Durga Prasad (26639044900); Veeragurunathan, V. (15119303400); Eswaran, K. (6603842306); Thiruppathi, S. (58579734400); Pothal, J.K. (35753496600); Ghosh, P.K. (35515524800)",12138763800; 56414529500; 57194063030; 57201672779; 56414716500; 26639044900; 15119303400; 6603842306; 58579734400; 35753496600; 35515524800,Tube-net farming and device for efficient tissue segregation for industrially important agarophyte Gracilaria edulis (Rhodophyta),2017,Aquacultural Engineering,77,,,132,135,3,13,10.1016/j.aquaeng.2017.04.003,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85018515333&doi=10.1016%2fj.aquaeng.2017.04.003&partnerID=40&md5=fb2ad6a77bbbd1934ec10af00f6ce15a,"Marine Algal Research Station, CSIR-Central Salt & Marine Chemicals Research Institute, Mandpam Camp, 623 519, India; Division of Marine Biotechnology and Ecology, CSIR-Central Salt & Marine Chemicals Research Institute, Gijubhai Badheka Road, Bhavnagar, 364002, India; Academy of Scientific and Innovative Research (AcSIR), CSIR-Central Salt & Marine Chemicals Research Institute, Gijubhai Badheka Road, Bhavnagar, 364002, India","Mantri V.A., Marine Algal Research Station, CSIR-Central Salt & Marine Chemicals Research Institute, Mandpam Camp, 623 519, India, Division of Marine Biotechnology and Ecology, CSIR-Central Salt & Marine Chemicals Research Institute, Gijubhai Badheka Road, Bhavnagar, 364002, India, Academy of Scientific and Innovative Research (AcSIR), CSIR-Central Salt & Marine Chemicals Research Institute, Gijubhai Badheka Road, Bhavnagar, 364002, India; Ashok K.S., Marine Algal Research Station, CSIR-Central Salt & Marine Chemicals Research Institute, Mandpam Camp, 623 519, India; Musamil T.M., Marine Algal Research Station, CSIR-Central Salt & Marine Chemicals Research Institute, Mandpam Camp, 623 519, India; Gobalakrishnan M., Marine Algal Research Station, CSIR-Central Salt & Marine Chemicals Research Institute, Mandpam Camp, 623 519, India; Saminathan K.R., Marine Algal Research Station, CSIR-Central Salt & Marine Chemicals Research Institute, Mandpam Camp, 623 519, India; Behera D.P., Marine Algal Research Station, CSIR-Central Salt & Marine Chemicals Research Institute, Mandpam Camp, 623 519, India; Veeragurunathan V., Marine Algal Research Station, CSIR-Central Salt & Marine Chemicals Research Institute, Mandpam Camp, 623 519, India, Academy of Scientific and Innovative Research (AcSIR), CSIR-Central Salt & Marine Chemicals Research Institute, Gijubhai Badheka Road, Bhavnagar, 364002, India; Eswaran K., Marine Algal Research Station, CSIR-Central Salt & Marine Chemicals Research Institute, Mandpam Camp, 623 519, India, Academy of Scientific and Innovative Research (AcSIR), CSIR-Central Salt & Marine Chemicals Research Institute, Gijubhai Badheka Road, Bhavnagar, 364002, India; Thiruppathi S., Marine Algal Research Station, CSIR-Central Salt & Marine Chemicals Research Institute, Mandpam Camp, 623 519, India, Division of Marine Biotechnology and Ecology, CSIR-Central Salt & Marine Chemicals Research Institute, Gijubhai Badheka Road, Bhavnagar, 364002, India, Academy of Scientific and Innovative Research (AcSIR), CSIR-Central Salt & Marine Chemicals Research Institute, Gijubhai Badheka Road, Bhavnagar, 364002, India; Pothal J.K., Division of Marine Biotechnology and Ecology, CSIR-Central Salt & Marine Chemicals Research Institute, Gijubhai Badheka Road, Bhavnagar, 364002, India; Ghosh P.K., Division of Marine Biotechnology and Ecology, CSIR-Central Salt & Marine Chemicals Research Institute, Gijubhai Badheka Road, Bhavnagar, 364002, India, Academy of Scientific and Innovative Research (AcSIR), CSIR-Central Salt & Marine Chemicals Research Institute, Gijubhai Badheka Road, Bhavnagar, 364002, India","According to the Food and Agricultural Organisation of United Nations seaweeds are being increasingly farmed rather than gathered. It is evident that, seaweed mariculture holds considerable promise for diversifying the livelihood of low-income, artisanal fishermen. Nevertheless, increased labour constraints have been realised as a bottleneck for the sustainability of farming in developing countries, where spending on infrastructure cost is meager. We herein report a tube-net farming for industrially important red alga Gracilaria edulis and also a new design for a harvester. The average biomass yield reported for the tube-net method over a 45 day growth cycle was 11.93 ± 2.55 kg fr wt raft−1; while the average daily growth rate was 3.40 ± 0.57% day−1. Harvesting is a critical step which determines the quality of a product. However, traditional methods do not allow segregation of product-rich (SAP and hydrocolloid) older thallus, from the growing apical tips. A two stage harvesting operation successfully achieved segregation of 33.87–55.56% of the clean apical biomass and 35.95–65.02% of the basal portion of the alga, leaving behind an empty tube for re-stocking. The tube-net farming method, coupled with an improved harvesting efficiency was aimed at developing appropriate management strategies for commercial farming of seaweeds. © 2017 Elsevier B.V.",agar; gracilarioid alga; harvesting; palk bay; socioeconomic; tube net farming,Northern Province [Sri Lanka]; Palk Bay; Sri Lanka; algae; Gracilaria edulis; Rhodophyta; Developing countries; Ecology; Fisheries; Gallium alloys; Harvesting; Marine biology; Seaweed; Agar; Critical steps; Harvesting operations; Infrastructure costs; Management strategies; Palk bays; Socio-economics; Sustainability of farmings; algal culture; biomass; fishing community; growth rate; harvesting; industrial practice; low income population; mariculture; red alga; socioeconomic status; yield response; Tubes (components),"V.A. Mantri; Division of Marine Biotechnology and Ecology, CSIR-Central Salt & Marine Chemicals Research Institute, Bhavnagar, Gijubhai Badheka Road, 364002, India; email: vaibhav@csmcri.res.in",,Elsevier B.V.,,,,,,01448609,,AQEND,,English,Aquac. Eng.,Article,Final,,Scopus,2-s2.0-85018515333 Pita P.; Artetxe I.; Diogo H.; Gomes P.; Gordoa A.; Hyder K.; Pereira J.; Pita C.; Rangel M.; Garcia-Rodrigues J.; Sagué O.; Veiga P.; Vingada J.; Villasante S.,"Pita, Pablo (36337336600); Artetxe, Iñaqui (18133315400); Diogo, Hugo (54787599300); Gomes, Pedro (35858566900); Gordoa, Ana (55952473700); Hyder, Kieran (14627633000); Pereira, João (7401895411); Pita, Cristina (36832195100); Rangel, Mafalda (21733786700); Garcia-Rodrigues, João (56888795800); Sagué, Oscar (55440866700); Veiga, Pedro (36875409700); Vingada, José (14036573500); Villasante, Sebastián (24176215600)",36337336600; 18133315400; 54787599300; 35858566900; 55952473700; 14627633000; 7401895411; 36832195100; 21733786700; 56888795800; 55440866700; 36875409700; 14036573500; 24176215600,Research and management priorities for Atlantic marine recreational fisheries in Southern Europe,2017,Marine Policy,86,,,1,8,7,31,10.1016/j.marpol.2017.08.030,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85033385733&doi=10.1016%2fj.marpol.2017.08.030&partnerID=40&md5=fac2864a60fc22e91209cc1d12a93946,"University of Santiago de Compostela, Faculty of Political Sciences, Department of Applied Economics, Av Angel Echevarry s/n, Santiago de Compostela, 15782, Spain; Campus Do⁎Mar, International Campus of Excellence, Spain; Marine Research Division, AZTI, Txatxarramendi ugartea z/g, Sukarrieta, E-48395, Bizkaia, Spain; University of Açores, Marine and Environmental Sciences Centre, Departamento de Oceanografia e Pescas, Horta, 9901-862, Azores, Portugal; University of Minho, CBMA-Molecular and Environmental Biology Centre, Campus de Gualtar, Braga, 4710-074, Portugal; Centro de Estudios Avanzados de Blanes (CEAB, CSIC), Accés a la Cala S. Francesc 14, Blanes, 17300, Spain; Centre for Environment, Fisheries & Aquaculture Science, Pakefield Road, Lowestoft, NR33 0HT, Suffolk, United Kingdom; Direcção Geral de Recursos Naturais, Segurança e Serviços Marítimos, Av. Brasilia, Lisboa, 1449-030, Portugal; Instituto Português do Mar e da Atmosfera, Av. Brasília, s/n, Lisboa, 1400-038, Portugal; Department of Environment and Planning & Centre for Environmental and Marine Studies (CESAM), University of Aveiro, Portugal; Centre of Marine Sciences (CCMAR), University of Algarve, FCT-7, Campus de Gambelas, Faro, 8005-139, Portugal; International Forum for Sustainable Underwater Activities, C/ Valencia 231, Bajos, Apartado de Correos 36003, Barcelona, 08007, Spain","Pita P., University of Santiago de Compostela, Faculty of Political Sciences, Department of Applied Economics, Av Angel Echevarry s/n, Santiago de Compostela, 15782, Spain, Campus Do⁎Mar, International Campus of Excellence, Spain; Artetxe I., Marine Research Division, AZTI, Txatxarramendi ugartea z/g, Sukarrieta, E-48395, Bizkaia, Spain; Diogo H., University of Açores, Marine and Environmental Sciences Centre, Departamento de Oceanografia e Pescas, Horta, 9901-862, Azores, Portugal; Gomes P., University of Minho, CBMA-Molecular and Environmental Biology Centre, Campus de Gualtar, Braga, 4710-074, Portugal; Gordoa A., Centro de Estudios Avanzados de Blanes (CEAB, CSIC), Accés a la Cala S. Francesc 14, Blanes, 17300, Spain; Hyder K., Centre for Environment, Fisheries & Aquaculture Science, Pakefield Road, Lowestoft, NR33 0HT, Suffolk, United Kingdom; Pereira J., Direcção Geral de Recursos Naturais, Segurança e Serviços Marítimos, Av. Brasilia, Lisboa, 1449-030, Portugal, Instituto Português do Mar e da Atmosfera, Av. Brasília, s/n, Lisboa, 1400-038, Portugal; Pita C., Department of Environment and Planning & Centre for Environmental and Marine Studies (CESAM), University of Aveiro, Portugal; Rangel M., Centre of Marine Sciences (CCMAR), University of Algarve, FCT-7, Campus de Gambelas, Faro, 8005-139, Portugal; Garcia-Rodrigues J., University of Santiago de Compostela, Faculty of Political Sciences, Department of Applied Economics, Av Angel Echevarry s/n, Santiago de Compostela, 15782, Spain, Campus Do⁎Mar, International Campus of Excellence, Spain; Sagué O., International Forum for Sustainable Underwater Activities, C/ Valencia 231, Bajos, Apartado de Correos 36003, Barcelona, 08007, Spain; Veiga P., Centre of Marine Sciences (CCMAR), University of Algarve, FCT-7, Campus de Gambelas, Faro, 8005-139, Portugal; Vingada J., University of Minho, CBMA-Molecular and Environmental Biology Centre, Campus de Gualtar, Braga, 4710-074, Portugal, Department of Environment and Planning & Centre for Environmental and Marine Studies (CESAM), University of Aveiro, Portugal; Villasante S., University of Santiago de Compostela, Faculty of Political Sciences, Department of Applied Economics, Av Angel Echevarry s/n, Santiago de Compostela, 15782, Spain, Campus Do⁎Mar, International Campus of Excellence, Spain","Marine Recreational Fishing (MRF) is an important activity in Europe, with 9 million fishers and generating annually € 6 billion in direct expenditures. However, there is a lack of data and understanding of MRF in Europe, particularly in Southern countries, which prevents a number of fish stocks from being effectively assessed and managed. In November 2016, a participatory workshop on MRF was held in Vigo (Spain) to identify challenges and opportunities for data collection, and to diagnose key research gaps and management issues for MRF in the Southern European Atlantic. Experts from a wide range of disciplines (researchers, policy makers, fisheries managers and commercial and recreational fishers) highlighted that the management of MRF is a challenge due to complex and dispersed legal frameworks, with multiple administrations involved, and overlapping uses of space with commercial fishing, aquaculture, navigation and tourism, among others. The lack of strong and representative fishing associations hampers research and management initiatives. Effective communication between recreational fishers, researchers and fisheries managers is also lacking. Despite the ecological, social and economic relevance of MRF, there is no systematic and comprehensive collection of information on fishing effort, recreational catches, expenses, social profile and access conditions of European recreational fishers. These data would be useful to avoid biases in the assessment of recreational fisheries due to the great diversity of ecosystems, species and typologies of users. Strategic recommendations and research priorities were also identified to address knowledge gaps and are discussed in the context of the management of MRF across Europe. © 2017 Elsevier Ltd",assessment; atlantic ocean; management; marine recreational fisheries; participatory approach,Atlantic Ocean; Southern Europe; ecosystem management; environmental research; fishing effort; marine environment; participatory approach; recreational activity; socioeconomic impact; stock assessment; strategic approach,"P. Pita; University of Santiago de Compostela, Faculty of Political Sciences, Department of Applied Economics, Santiago de Compostela, Av Angel Echevarry s/n, 15782, Spain; email: pablo.pita@usc.es",,Elsevier Ltd,,,,,,0308597X,,,,English,Mar. Policy,Article,Final,,Scopus,2-s2.0-85033385733 Kluger L.C.; Kochalski S.; Aguirre-Velarde A.; Vivar I.; Wolff M.,"Kluger, Lotta Clara (56862169000); Kochalski, Sophia (57201280195); Aguirre-Velarde, Arturo (56565486300); Vivar, Ivonne (57209716090); Wolff, Matthias (7403304576)",56862169000; 57201280195; 56565486300; 57209716090; 7403304576,Coping with abrupt environmental change: The impact of the coastal El Niño 2017 on artisanal fisheries and mariculture in North Peru,2019,ICES Journal of Marine Science,76,4,fsy171,1122,1130,8,30,10.1093/icesjms/fsy171,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85068517514&doi=10.1093%2ficesjms%2ffsy171&partnerID=40&md5=75d3a02767dacfec322e24614e0ee832,"Leibniz Center for Tropical Marine Research (ZMT), Fahrenheitstr. 6, Bremen, Germany; Leibniz Institute of Freshwater Ecology and Inland Fisheries (IGB), Müggelseedamm 310, Berlin, Germany; Laboratorio de Ecofisiología Acuática, El Instituto Del Mar Del Perú, Esquina Gamarra y General Valle S/N Chucuito Callao, Peru; University of Bremen, Bibliothekstraße 1, Bremen, Germany","Kluger L.C., Leibniz Center for Tropical Marine Research (ZMT), Fahrenheitstr. 6, Bremen, Germany; Kochalski S., Leibniz Institute of Freshwater Ecology and Inland Fisheries (IGB), Müggelseedamm 310, Berlin, Germany; Aguirre-Velarde A., Laboratorio de Ecofisiología Acuática, El Instituto Del Mar Del Perú, Esquina Gamarra y General Valle S/N Chucuito Callao, Peru; Vivar I., University of Bremen, Bibliothekstraße 1, Bremen, Germany; Wolff M., Leibniz Center for Tropical Marine Research (ZMT), Fahrenheitstr. 6, Bremen, Germany","In February and March 2017, a coastal El Niño caused extraordinary heavy rains and a rise in water temperatures along the coast of northern Peru. In this work, we document the impacts of this phenomenon on the artisanal fisheries and the scallop aquaculture sector, both of which represent important socio-economic activities for the province of Sechura. Despite the perceived absence of effective disaster management and rehabilitation policies, resource users opted for a wide range of different adaptation strategies and are currently striving towards recovery. One year after the event, the artisanal fisheries fleet has returned to operating almost on a normal scale, while the aquaculture sector is still drastically impacted, with many people continuing to work in different economic sectors and even in other regions of the country. Recovery of the social-ecological system of Sechura likely depends on the occurrence of scallop seed and the financial capacity of small-scale producers to reinitiate scallop cultures. Long-Term consequences of this coastal El Niño are yet to be studied, though the need to develop trans-local and trans-sectoral management strategies for coping with disturbance events of this scale is emphasized. © 2018 International Council for the Exploration of the Sea 2018.",artisanal fisheries; el niño; environmental sustainability; peru; post-disaster reconstruction; scallop aquaculture; social-ecological systems,,"L.C. Kluger; Leibniz Center for Tropical Marine Research (ZMT), Bremen, Fahrenheitstr. 6, Germany; email: lottakluger@gmail.com",,Oxford University Press,,,,,,10543139,,ICESE,,English,ICES J. Mar. Sci.,Article,Final,All Open Access; Green Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85068517514 Partelow S.; Senff P.; Buhari N.; Schlüter A.,"Partelow, Stefan (56415115600); Senff, Paula (57193434575); Buhari, Nurliah (55977938700); Schlüter, Achim (56240507200)",56415115600; 57193434575; 55977938700; 56240507200,Operationalizing the social-ecological systems framework in pond aquaculture,2018,International Journal of the Commons,12,1,,485,518,33,34,10.18352/ijc.834,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85045890786&doi=10.18352%2fijc.834&partnerID=40&md5=9e3c422afec5e844fd74ac412aa17ad7,"Jacobs University, Leibniz Centre for Tropical Marine Research (ZMT), Germany; University of Bremen, Leibniz Centre for Tropical Marine Research (ZMT), Germany; University of Mataram, Indonesia","Partelow S., Jacobs University, Leibniz Centre for Tropical Marine Research (ZMT), Germany; Senff P., University of Bremen, Leibniz Centre for Tropical Marine Research (ZMT), Germany; Buhari N., University of Mataram, Indonesia; Schlüter A., Jacobs University, Leibniz Centre for Tropical Marine Research (ZMT), Germany","This study develops and applies an interdisciplinary and mixed method approach to operationalize the social-ecological systems (SES) framework in the context of aquaculture, the fastest growing food production sector worldwide. We apply this methodology to conduct a case study of community-based pond aquaculture on the island of Lombok, West Nusa Tenggara, Indonesia. This diagnostic approach demonstrates how sustainability challenges are interrelated at multiple levels through an analysis applying common-pool resource (CPR) and collective action theories. At the community level, qualitative data show how pond aquaculture systems can have CPR dilemmas, requiring communities to work together to solve them. We show how a provision dilemma manifests from the need to maintain common canal infrastructure to distribute water to private ponds. Asymmetric incentives to contribute exist because there are up and downstream users in the pond network, similar to some irrigation systems. Second, at the level of individual ponds, we developed indicators for the Resource System, Resource Unit, Governance and Actor tiers of the SES framework. Indicator data for each pond was measured and transformed into normalized quantitative scores to examine the relationships between social and ecological outcomes within and between ponds. We combine the results of our multi-level analysis to discuss the broader social-ecological relationships which link collective action challenges in managing common canal infrastructure with pond level outcomes and current government policies for advancing community development. We emphasize the need for increased knowledge and training on effective aquaculture practice as an underlying driver of current system conditions. This study raises many methodological challenges associated with designing empirically based SES research and building SES theory. We discuss challenges with integrating diverse data types, indicator selection and making normative assumptions about sustainability. © 2018, Igitur, Utrecht Publishing and Archiving Services. All rights reserved.",collective action; indonesia; interdisciplinary; livelihoods; lombok; mixed-methods; sustainability,,,,"Igitur, Utrecht Publishing and Archiving Services",,,,,,18750281,,,,English,Int. J. Common,Article,Final,All Open Access; Gold Open Access; Green Open Access,Scopus,2-s2.0-85045890786 Castaño-Barreto A.C.; Jaramillo-Cruz C.A.; Molina Benavides R.A.; Atzori A.S.,"Castaño-Barreto, Andres Camilo (57217044885); Jaramillo-Cruz, Carlos Alberto (57203418257); Molina Benavides, Raul Andres (57189005568); Atzori, Alberto Stanislao (12804978000)",57217044885; 57203418257; 57189005568; 12804978000,Scenarios of sustainable fishing in the Zapatosa marsh (Colombia) simulated with a system dynamics model,2020,Sustainability (Switzerland),12,8,3458,,,,6,10.3390/SU12083458,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85085916703&doi=10.3390%2fSU12083458&partnerID=40&md5=580b7c0a5d4104f0100ebe0df18b572b,"Grupo de investigación ICTIAP Ciencia, tecnología e Innovación en Acuicultura y Pesca, Facultad de Ciencias Agropecuarias, Universidad Nacional de Colombia, Palmira, 763537, Colombia; Grupo de investigación Conservación, Mejoramiento y Utilización del Ganado Criollo Hartón del Valle y otros Recursos Genéticos Animales en el Sur-Occidente colombiano, Universidad Nacional de Colombia, Palmira, 763531, Colombia; Section of Animal Science, Department of Agriculture, Università degli Studi di Sassari, Sassari, 07100, Italy","Castaño-Barreto A.C., Grupo de investigación ICTIAP Ciencia, tecnología e Innovación en Acuicultura y Pesca, Facultad de Ciencias Agropecuarias, Universidad Nacional de Colombia, Palmira, 763537, Colombia; Jaramillo-Cruz C.A., Grupo de investigación ICTIAP Ciencia, tecnología e Innovación en Acuicultura y Pesca, Facultad de Ciencias Agropecuarias, Universidad Nacional de Colombia, Palmira, 763537, Colombia; Molina Benavides R.A., Grupo de investigación Conservación, Mejoramiento y Utilización del Ganado Criollo Hartón del Valle y otros Recursos Genéticos Animales en el Sur-Occidente colombiano, Universidad Nacional de Colombia, Palmira, 763531, Colombia; Atzori A.S., Section of Animal Science, Department of Agriculture, Università degli Studi di Sassari, Sassari, 07100, Italy","The Zapatosa marsh (cienaga de la Zapatosa) is located in the Department of Cesar in Colombia. In 2018, the muddy complex of Zapatosa was declared a Ramsar wetland, for this reason, it is necessary to develop management strategies for the marsh that allow not only the conservation of the ecosystem. The objective of this work is to use System Dynamics as an evaluation tool for three possible management scenarios of artisanal fishing in the Zapatosa marsh. A qualitative causal diagram and a quantitative Stock and Flow diagrams were designed to describe the dynamics of fish and fishermen populations in the marsh. The initial model setting and parametrization derived from values gathered from different sources of information. The calibration of the model was carried out with reference data on total catch of kilograms of fish and population data from the Department of Cesar. The data obtained through the ""Aquaculture and artisanal fisheries survey of the Department of El Cesar"" in 2018 were reproduced in the model and then compared with 3 alternative management scenarios. Scenario 1 included strictly applying of the fishing stopover for the species Prochilodus magdalenae and for catfish (Pseudoplatystoma magdaleniatum, Pimelodus blochii y Sorubim cuspicaudus). Scenario 2 considered to apply the same prohibitions, but with a payment to fishermen for the care of the swamp at the time of prohibition. In Scenario 3 the fishermen under fishing stop will receive an income of a legal Colombian minimum monthly salary and will be engaged in practices of ecosystem services. Results showed that in some scenarios the economic situation of the fishermen is unable to meet the monthly family expenses in different periods of the year. On the other hand, there is greater economic stability and fish populations when adopting Scenario 3, but it is difficult to achieve in the short or medium term. Scenario 2 shows little recoveries in fish populations and a higher money availability to the local community than in Scenario 3, in certain months, presenting the best short-term management option. The presented model encourages further simulation scenarios of the Zapatosa Marsh. © 2020 by the authors.",fisheries management; ramsar wetland; simulation modeling,Colombia; Pimelodus blochii; Prochilodus magdalenae; Pseudoplatystoma; Sorubim; calibration; economic conditions; ecosystem service; fish; simulation; stopover; sustainability; swamp,"A.C. Castaño-Barreto; Grupo de investigación ICTIAP Ciencia, tecnología e Innovación en Acuicultura y Pesca, Facultad de Ciencias Agropecuarias, Universidad Nacional de Colombia, Palmira, 763537, Colombia; email: accastanob@unal.edu.co",,MDPI,,,,,,20711050,,,,English,Sustainability,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85085916703 Estoque R.C.; Myint S.W.; Wang C.; Ishtiaque A.; Aung T.T.; Emerton L.; Ooba M.; Hijioka Y.; Mon M.S.; Wang Z.; Fan C.,"Estoque, Ronald C. (36502012400); Myint, Soe W. (7006694494); Wang, Chuyuan (56197504900); Ishtiaque, Asif (55940407200); Aung, Toe T. (57213047656); Emerton, Lucy (23501291900); Ooba, Makoto (14623239000); Hijioka, Yasuaki (23993507900); Mon, Myat S. (54879604800); Wang, Zhe (57203617698); Fan, Chao (55935224100)",36502012400; 7006694494; 56197504900; 55940407200; 57213047656; 23501291900; 14623239000; 23993507900; 54879604800; 57203617698; 55935224100,Assessing environmental impacts and change in Myanmar's mangrove ecosystem service value due to deforestation (2000–2014),2018,Global Change Biology,24,11,,5391,5410,19,90,10.1111/gcb.14409,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85052454475&doi=10.1111%2fgcb.14409&partnerID=40&md5=8f145793e30d4c011221a6d3d65de40c,"Center for Social and Environmental Systems Research, National Institute for Environmental Studies, Tsukuba City, Ibaraki, Japan; School of Geographical Sciences and Urban Planning, Arizona State University, Tempe, AZ, United States; Mangrove Conservation Unit, Forest Department, Ministry of Environmental Conservation and Forestry, Naypyidaw, Myanmar; Environment Management Group, Colombo, Sri Lanka; Fukushima Branch, National Institute for Environmental Studies, Tamura District, Fukushima, Japan; Remote Sensing and GIS Division, Forest Department, Ministry of Environmental Conservation and Forestry, Naypyidaw, Myanmar; Department of Geography, University of Idaho, Moscow, ID, United States","Estoque R.C., Center for Social and Environmental Systems Research, National Institute for Environmental Studies, Tsukuba City, Ibaraki, Japan; Myint S.W., School of Geographical Sciences and Urban Planning, Arizona State University, Tempe, AZ, United States; Wang C., School of Geographical Sciences and Urban Planning, Arizona State University, Tempe, AZ, United States; Ishtiaque A., School of Geographical Sciences and Urban Planning, Arizona State University, Tempe, AZ, United States; Aung T.T., Mangrove Conservation Unit, Forest Department, Ministry of Environmental Conservation and Forestry, Naypyidaw, Myanmar; Emerton L., Environment Management Group, Colombo, Sri Lanka; Ooba M., Fukushima Branch, National Institute for Environmental Studies, Tamura District, Fukushima, Japan; Hijioka Y., Center for Social and Environmental Systems Research, National Institute for Environmental Studies, Tsukuba City, Ibaraki, Japan; Mon M.S., Remote Sensing and GIS Division, Forest Department, Ministry of Environmental Conservation and Forestry, Naypyidaw, Myanmar; Wang Z., School of Geographical Sciences and Urban Planning, Arizona State University, Tempe, AZ, United States; Fan C., Department of Geography, University of Idaho, Moscow, ID, United States","Myanmar is one of the mangrove-richest countries in the world, providing valuable ecosystem services to people. However, due to deforestation driven primarily by agricultural expansion, Myanmar's mangrove forest cover has declined dramatically over the past few decades, while what remains is still under pressure. To support management planning, accurate quantification of mangrove forest cover changes on a national scale is needed. In this study, we quantified Myanmar's mangrove forest cover changes between 2000 and 2014 using remotely sensed data, examined the environmental impacts of such changes, and estimated the changes in the economic values of mangrove ecosystem services in the country. Results indicate that Myanmar had a net mangrove loss of 191,122 ha over the study period. Since 2000, Myanmar has been losing mangrove forest cover at an alarming rate of 14,619 ha/year (2.2%/year). The loss was predominant in Rakhine and Ayeyarwady. The observed mangrove forest cover loss has resulted in decreased evapotranspiration, carbon stock, and tree cover percentage. Due to deforestation, Myanmar also suffered a net loss of 2,397 million US$/year in its mangrove ecosystem service value (i.e. 28.7% decrease from 2000), in which maintenance of fisheries nursery populations and habitat and coastal protection were among those services that were greatly affected. We suggest that intensive reforestation and mangrove protection programs be implemented immediately. Agroforestry and community forestry programs are encouraged in areas that are under immense pressure from paddy field expansion, fuelwood extraction, charcoal production, and fish and shrimp farming activities. Potential alternative sustainable solutions should include intensive government-led private forest plantations or community-owned forest plantations to be developed with care by local farmers, nongovernmental organizations, and business owners. © 2018 John Wiley & Sons Ltd",deforestation; ecosystem services; landsat; mangrove; moderate resolution imaging spectroradiometer; myanmar; remote sensing,Agriculture; Conservation of Natural Resources; Ecosystem; Forestry; Forests; Trees; Wetlands; Myanmar; Decapoda (Crustacea); deforestation; ecosystem service; environmental assessment; environmental change; environmental impact; Landsat; mangrove; MODIS; sustainability; agriculture; ecosystem; environmental protection; forest; forestry; tree; wetland,"R.C. Estoque; Center for Social and Environmental Systems Research, National Institute for Environmental Studies, Tsukuba City, Japan; email: estoque.ronaldcanero@nies.go.jp",,Blackwell Publishing Ltd,,,,,,13541013,,,30053344,English,Global Change Biol.,Article,Final,,Scopus,2-s2.0-85052454475 Aanesen M.; Falk-Andersson J.; Vondolia G.K.; Borch T.; Navrud S.; Tinch D.,"Aanesen, Margrethe (13606427900); Falk-Andersson, Jannike (56708889100); Vondolia, Godwin Kofi (34973499100); Borch, Trude (35263572200); Navrud, Ståle (6603500707); Tinch, Dugald (12797560900)",13606427900; 56708889100; 34973499100; 35263572200; 6603500707; 12797560900,Valuing coastal recreation and the visual intrusion from commercial activities in Arctic Norway,2018,Ocean and Coastal Management,153,,,157,167,10,35,10.1016/j.ocecoaman.2017.12.017,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85039416986&doi=10.1016%2fj.ocecoaman.2017.12.017&partnerID=40&md5=50d244e42f2f31e42d7a2b72fc9076ec,"UiT-Arctic University of Norway, PO Box 6050, Langnes, Tromsø, 9037, Norway; Norut Northern Research Institute, PO Box 6434, Tromsø, 9294, Norway; Akvaplan-Niva, Framsenteret, PO Box 6606, Langnes, Tromsø, 9296, Norway; Norwegian University of Life Sciences, PO Box 5003, Ås, 1432, Norway; University of Tasmania, Private Bag 84, Hobart, TAS 7001, Tasmania, Australia","Aanesen M., UiT-Arctic University of Norway, PO Box 6050, Langnes, Tromsø, 9037, Norway; Falk-Andersson J., Norut Northern Research Institute, PO Box 6434, Tromsø, 9294, Norway; Vondolia G.K., UiT-Arctic University of Norway, PO Box 6050, Langnes, Tromsø, 9037, Norway; Borch T., Akvaplan-Niva, Framsenteret, PO Box 6606, Langnes, Tromsø, 9296, Norway; Navrud S., Norwegian University of Life Sciences, PO Box 5003, Ås, 1432, Norway; Tinch D., University of Tasmania, Private Bag 84, Hobart, TAS 7001, Tasmania, Australia","The coastal zone in the Arctic is being extensively used for recreational activities. Simultaneously, there is an increasing pressure from commercial activities. We present results from a discrete choice experiment implemented in Arctic Norway, revealing how households in this region make trade-offs between recreational activities and commercial developments in the coastal zone. Our results show that, although people prefer stricter regulation of commercial activities, they welcome expansion in marine industries like aquaculture and marine fishing tourism. We also find evidence of high willingness-to-pay for new jobs; and this may partly explain the preferences for the commercial facilities in spite of the visual intrusion they create. On the other hand people expressed a clear dislike for littering of the beaches. Hence, the message to policy makers is to allow for commercial development in the coastal zone, but only under strict regulations, especially related to measures reducing the amount of marine debris. © 2017",aquaculture; arctic coastal zone; discrete choice experiment; environmental sustainability; marine fishing tourism; recreation,Arctic; Norway; Economic and social effects; Fisheries; Arctic coastal zone; Commercial development; Commercial facilities; Discrete choice experiments; Environmental quality; Marine fishing tourism; Recreation; Recreational activities; Trade off; Willingness to pay; aquaculture; coastal zone management; commercial activity; discrete choice analysis; environmental quality; recreational management; regulatory framework; trade-off; visual analysis; willingness to pay; Coastal zones,"M. Aanesen; UiT-Arctic University of Norway, Tromsø, PO Box 6050, Langnes, 9037, Norway; email: margrethe.aanesen@uit.no",,Elsevier Ltd,,,,,,09645691,,OCMAE,,English,Ocean Coast. Manage.,Article,Final,All Open Access; Green Open Access,Scopus,2-s2.0-85039416986 Senff P.; Partelow S.; Indriana L.F.; Buhari N.; Kunzmann A.,"Senff, Paula (57193434575); Partelow, Stefan (56415115600); Indriana, Lisa Fajar (57039105300); Buhari, Nurliah (55977938700); Kunzmann, Andreas (6701754462)",57193434575; 56415115600; 57039105300; 55977938700; 6701754462,"Improving pond aquaculture production on Lombok, Indonesia",2018,Aquaculture,497,,,64,73,9,24,10.1016/j.aquaculture.2018.07.027,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85050611919&doi=10.1016%2fj.aquaculture.2018.07.027&partnerID=40&md5=63400b999a0731f172e2b231f47934a1,"Leibniz Centre for Tropical Marine Research (ZMT), Fahrenheitstraße 6, Bremen, 28359, Germany; Jacobs University, Bremen, Germany, Campus Ring 1, Bremen, 28759, Germany; Marine Bio Industry, Research Center for Oceanography LIPI, Indonesia, Teluk Kodek, Malaka, Pemenang, Lombok Utara, West Nusa Tenggara, 83352, Indonesia; University of Mataram, Lombok, Indonesia, Jalan Majapahit No. 62, Gomong, Selaparang, Dasan Agung Maru, Selaparang, Kota, Mataram, West Nusa Tenggara, 83115, Indonesia","Senff P., Leibniz Centre for Tropical Marine Research (ZMT), Fahrenheitstraße 6, Bremen, 28359, Germany; Partelow S., Leibniz Centre for Tropical Marine Research (ZMT), Fahrenheitstraße 6, Bremen, 28359, Germany, Jacobs University, Bremen, Germany, Campus Ring 1, Bremen, 28759, Germany; Indriana L.F., Marine Bio Industry, Research Center for Oceanography LIPI, Indonesia, Teluk Kodek, Malaka, Pemenang, Lombok Utara, West Nusa Tenggara, 83352, Indonesia; Buhari N., University of Mataram, Lombok, Indonesia, Jalan Majapahit No. 62, Gomong, Selaparang, Dasan Agung Maru, Selaparang, Kota, Mataram, West Nusa Tenggara, 83115, Indonesia; Kunzmann A., Leibniz Centre for Tropical Marine Research (ZMT), Fahrenheitstraße 6, Bremen, 28359, Germany","Marine resources play an important role for the economy of Indonesia and the country is among the major aquaculture producers worldwide. This article presents the applicable conclusions of a study conducted in three communities in Sekotong, Lombok, which practice semi-intensive methods of pond-based aquaculture in a coastal mangrove estuary. The Indonesian government is supporting the local communities through subsidy programs with the aim to increase production and to enhance aquaculture as a viable livelihood opportunity. From our assessment we attempt to draw conclusions on ways to improve aquaculture as a sustainable livelihood, considering the social, economic and ecological settings. Key findings are a lack of knowledge coupled with problem-recognition on inefficient system conditions, which are limiting the ability to increase production. Poor pond quality in addition to the heavy degradation of the mangrove ecosystem leaves the pond system with unstable and seasonally fluctuating conditions. This hinders the potential for economic gains and the effectivity of government subsidy programs, which provide fish fry, seed and equipment. Stakeholder organizations are encouraged through government support, however, these efforts are not addressing or directed towards the underlying problem of pond-canal infrastructure, which is in part related to the poor pond conditions. We provide two recommendations, which our analysis demonstrates as potential mechanisms to improve social-ecological aquaculture development. (1) Government support should be tailored more carefully to local conditions prioritizing capacity building on good aquaculture practice as well as maintaining and monitoring pond conditions and in part by (2) focusing on the need for cooperation to develop and maintain pond and canal infrastructure. While this is a local case study, the examined system is likely similar to many other areas of pond aquaculture across the region, which have either failed in the development of shrimp farming or intend to further develop pond aquaculture in general. © 2018",collective action; government; mangrove aquaculture; milkfish; pond maintenance; production efficiency; self-organization; social licence,Indonesia; Lesser Sunda Islands; Lombok; Sekotong Tengah; West Nusa Tenggara; Decapoda (Crustacea); aquaculture production; capacity building; collective action; finfish; governance approach; habitat fragmentation; livelihood; mangrove; marine resource; subsidy system; sustainability,"P. Senff; Leibniz Centre for Tropical Marine Research (ZMT), Bremen, Fahrenheitstraße 6, 28359, Germany; email: paula.senff@leibniz-zmt.de",,Elsevier B.V.,,,,,,00448486,,AQCLA,,English,Aquaculture,Article,Final,,Scopus,2-s2.0-85050611919 Craig R.K.,"Craig, Robin Kundis (35078394700)",35078394700,Fostering adaptive marine aquaculture through procedural innovation in marine spatial planning,2019,Marine Policy,110,,103555,,,,21,10.1016/j.marpol.2019.103555,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85066404285&doi=10.1016%2fj.marpol.2019.103555&partnerID=40&md5=0b670c019f6725d3bede5596c7c43616,"University of Utah S.J. Quinney College of Law, 383 South University St., Salt Lake City, 84112, UT, United States","Craig R.K., University of Utah S.J. Quinney College of Law, 383 South University St., Salt Lake City, 84112, UT, United States","Worldwide, as wild-caught commercial fisheries plateau and human demands for protein increase, marine aquaculture is expanding. Much marine aquaculture is inherently adaptable to changing climatic and chemical conditions. Nevertheless, siting of marine aquaculture operations is subject to competing environmental, economic, and social demands upon and priorities for ocean space, while some forms of marine aquaculture can also impose other externalities on marine systems, such as pollution from wastes (nutrients) and antibiotics, consumption of wild fish as food, and introduction of non-native or genetically modified species. As a result, governmental policy decisions to promote both marine aquaculture that can adapt to a changing ocean and adaptive governance for that aquaculture can become contested, requiring attention to their social legitimacy. This article explores how the law can promote the adaptability of marine aquaculture to climate change and ocean acidification—adaptive marine aquaculture—while still preserving key rule-of-law values, such as public participation and accountability. Perhaps most obviously, law can establish substantive requirements for marine aquaculture that minimize its impacts, promoting marine resilience overall. However, to foster truly adaptive marine aquaculture, including adaptive governance institutions, coastal nations should also procedurally reform their marine spatial planning efforts to legally connect the procedures for aquaculture permitting, marine spatial planning (MSP), and adaptive management. The goals for such connections, moreover, should be to mandate new forums for public participation and creative collaboration, promote experimentation with accountability that leads to increased knowledge, and foster the emergence of adaptive governance regarding the use of marine space. © 2019 Elsevier Ltd",,aquaculture; commercial species; fishery management; innovation; marine environment; spatial planning,,,Elsevier Ltd,,,,,,0308597X,,,,English,Mar. Policy,Article,Final,,Scopus,2-s2.0-85066404285 Romulo C.L.; Basher Z.; Lynch A.J.; Kao Y.-C.; Taylor W.W.,"Romulo, Chelsie L. (57193343752); Basher, Zeenatul (55370807000); Lynch, Abigail J. (7102636889); Kao, Yu-Chun (55655833700); Taylor, William W. (7402890793)",57193343752; 55370807000; 7102636889; 55655833700; 7402890793,Assessing the global distribution of river fisheries harvest: A systematic map protocol,2017,Environmental Evidence,6,1,29,,,,8,10.1186/s13750-017-0107-x,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85036541133&doi=10.1186%2fs13750-017-0107-x&partnerID=40&md5=13026ae601773d819b79df73ab8b155e,"Department of Environmental Science and Policy, George Mason University, 4400 University Dr., Fairfax, 22033, VA, United States; US Geological Survey, National Climate Change and Wildlife Science Center, MS-516, 12201 Sunrise Valley Drive, Reston, 20192, VA, United States; Environmental and Sustainability Studies Program, University of Northern Colorado, 501 20th St., Greeley, 80639, CO, United States; Department of Fisheries and Wildlife, Center for Systems Integration and Sustainability, Michigan State University, 1405 South Harrison Rd., East Lansing, 48823, MI, United States; US Geological Survey, Great Lakes Science Center, 1451 Green Rd, Ann Arbor, 48105, MI, United States","Romulo C.L., Department of Environmental Science and Policy, George Mason University, 4400 University Dr., Fairfax, 22033, VA, United States, US Geological Survey, National Climate Change and Wildlife Science Center, MS-516, 12201 Sunrise Valley Drive, Reston, 20192, VA, United States, Environmental and Sustainability Studies Program, University of Northern Colorado, 501 20th St., Greeley, 80639, CO, United States; Basher Z., US Geological Survey, National Climate Change and Wildlife Science Center, MS-516, 12201 Sunrise Valley Drive, Reston, 20192, VA, United States, Department of Fisheries and Wildlife, Center for Systems Integration and Sustainability, Michigan State University, 1405 South Harrison Rd., East Lansing, 48823, MI, United States; Lynch A.J., US Geological Survey, National Climate Change and Wildlife Science Center, MS-516, 12201 Sunrise Valley Drive, Reston, 20192, VA, United States; Kao Y.-C., Department of Fisheries and Wildlife, Center for Systems Integration and Sustainability, Michigan State University, 1405 South Harrison Rd., East Lansing, 48823, MI, United States, US Geological Survey, Great Lakes Science Center, 1451 Green Rd, Ann Arbor, 48105, MI, United States; Taylor W.W., Department of Fisheries and Wildlife, Center for Systems Integration and Sustainability, Michigan State University, 1405 South Harrison Rd., East Lansing, 48823, MI, United States","Background: Although surface freshwater comprises < 0.01% of the total water volume of earth, freshwater inland capture fisheries and aquaculture represent 40% of the global reported finfish harvest. While the social, economic, and ecological importance of inland fish and fisheries is difficult to overstate, they are often undervalued and underappreciated. Accurate information about these highly dispersed fisheries is inherently difficult to acquire, often unreported, and not collected in a standardized format globally. A standardized river fishery database is needed for managing aquatic systems as well as for defining relevant development policies. Here, we describe our methodology to search, identify, and describe available river fisheries information to create a harmonized global database of river fisheries harvest. This database will provide the first global database of spatially and temporally explicit river fisheries data. The database can be used to identify locations, hotspots of data collection, and gaps in existing knowledge and will be especially important to inform studies and management at larger spatial scales (i.e., watershed, regional, or global scales). This database will also be critical for developing fish biomass models for rivers, which can provide managers with information critical for decision-making, such as improved valuation methods for river fish and fisheries. Methods: This systematic map protocol describes the methodology to search, identify, and describe available information on river fish and fisheries across the globe. We define river fisheries as ""both capture and aquaculture of river finfish species for food, income, or recreation"". River fish species are those finfish that live part, or all of their lives in rivers. The searches will be conducted for the period from 1950 to present using bibliographic databases and grey literature sources. To identify relevant evidence, pre-defined inclusion and exclusion criteria will be used to screen articles at title, abstract, and full text. A searchable database containing extracted meta-data from relevant included studies will be developed and presented as a geodatabase. The final systematic map will consist of a descriptive narrative report of the distribution and content of river fish literature including a geodatabase of available information. © 2017 The Author(s).",aquatic ecosystems; fresh water; global; inland fish; limnology; map; river basin; spatial distribution; watersheds,,"C.L. Romulo; Department of Environmental Science and Policy, George Mason University, Fairfax, 4400 University Dr., 22033, United States; email: cromulo@masonlive.gmu.edu",,BioMed Central Ltd.,,,,,,20472382,,,,English,Environ. Evid.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85036541133 Hoque S.F.; Quinn C.; Sallu S.,"Hoque, Sonia Ferdous (55824258700); Quinn, Claire (8202525200); Sallu, Susannah (26026483100)",55824258700; 8202525200; 26026483100,Differential livelihood adaptation to social-ecological change in coastal Bangladesh,2018,Regional Environmental Change,18,2,,451,463,12,39,10.1007/s10113-017-1213-6,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85027679742&doi=10.1007%2fs10113-017-1213-6&partnerID=40&md5=b08f980319ef6dcd4e870e95e192e020,"Sustainability Research Institute, School of Earth and Environment, University of Leeds, Leeds, United Kingdom","Hoque S.F., Sustainability Research Institute, School of Earth and Environment, University of Leeds, Leeds, United Kingdom; Quinn C., Sustainability Research Institute, School of Earth and Environment, University of Leeds, Leeds, United Kingdom; Sallu S., Sustainability Research Institute, School of Earth and Environment, University of Leeds, Leeds, United Kingdom","Social-ecological changes, brought about by the rapid growth of the aquaculture industry and the increased occurrence of climatic stressors, have significantly affected the livelihoods of coastal communities in Asian mega-deltas. This paper explores the livelihood adaptation responses of households of different wealth classes, the heterogeneous adaptation opportunities, barriers and limits (OBLs) faced by these households and the dynamic ways in which these factors interact to enhance or impede adaptive capacities. A mixed methods approach was used to collect empirical evidence from two villages in coastal Bangladesh. Findings reveal that households’ adaptive capacities largely depend on their wealth status, which not only determine their availability of productive resources, but also empower them to navigate social-ecological change in desirable ways. Households operate within a shared response space, which is shaped by the broader socio-economic and political landscape, as well as their previous decisions that can lock them in to particular pathways. While an adaptive response may be effective for one social group, it may cause negative externalities that can undermine the adaptation options and outcomes of another group. Adaptation OBLs interact in complex ways; the extent to which these OBLs affect different households depend on the specific livelihood activities being considered and the differential values and interests they hold. To ensure more equitable and environmentally sustainable livelihoods in future, policies and programs should aim to expand households’ adaptation space by accounting for the heterogeneous needs and complex interdependencies between response processes of different groups. © 2017, The Author(s).",divergent adaptation; livelihood trajectories; opportunities and barriers; shrimp aquaculture,,"S.F. Hoque; Sustainability Research Institute, School of Earth and Environment, University of Leeds, Leeds, United Kingdom; email: soniahoque@gmail.com",,Springer Verlag,,,,,,14363798,,,,English,Reg. Environ. Change,Article,Final,All Open Access; Green Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85027679742 Rahman M.M.; Haque S.M.; Galib S.M.; Islam M.A.; Parvez M.T.; Hoque M.N.; Wahab M.A.; Egna H.; Brown C.,"Rahman, M. Mojibar (57217464362); Haque, Shahroz Mahean (7102339127); Galib, Shams M. (57118040600); Islam, M. Ashraful (57209188177); Parvez, Md. Taskin (57215060705); Hoque, Md. Nazmul (56202487900); Wahab, M. Abdul (23983832000); Egna, Hillary (6507631239); Brown, Christopher (57201579578)",57217464362; 7102339127; 57118040600; 57209188177; 57215060705; 56202487900; 23983832000; 6507631239; 57201579578,Mud crab fishery in climate vulnerable coastal Bangladesh: an analysis towards sustainable development,2020,Aquaculture International,28,3,,1243,1268,25,30,10.1007/s10499-020-00523-2,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85079813611&doi=10.1007%2fs10499-020-00523-2&partnerID=40&md5=3d59ba1c6afb862e18090eaee2466673,"Department of Fisheries Management, Bangladesh Agricultural University, Mymensingh, 2202, Bangladesh; Department of Fisheries, University of Rajshahi, Rajshahi, 6205, Bangladesh; Department of Biosciences, University of Durham, Durham, DH1 3LE, United Kingdom; Department of Fisheries Management, Hajee Mohammad Danesh Science and Technology University, Dinajpur, Bangladesh; Department of Sociology, University of Rajshahi, Rajshahi, 6205, Bangladesh; Department of Geography and Planning, University of New England, Armidale, 2351, NSW, Australia; Department of Fisheries and Wildlife, Oregon State University, Corvallis, 97331, OR, United States; World Fisheries University, UN Affiliated, Pukyong National University, Nam-gu, Busan, South Korea","Rahman M.M., Department of Fisheries Management, Bangladesh Agricultural University, Mymensingh, 2202, Bangladesh; Haque S.M., Department of Fisheries Management, Bangladesh Agricultural University, Mymensingh, 2202, Bangladesh; Galib S.M., Department of Fisheries, University of Rajshahi, Rajshahi, 6205, Bangladesh, Department of Biosciences, University of Durham, Durham, DH1 3LE, United Kingdom; Islam M.A., Department of Fisheries Management, Hajee Mohammad Danesh Science and Technology University, Dinajpur, Bangladesh; Parvez M.T., Department of Fisheries, University of Rajshahi, Rajshahi, 6205, Bangladesh; Hoque M.N., Department of Sociology, University of Rajshahi, Rajshahi, 6205, Bangladesh, Department of Geography and Planning, University of New England, Armidale, 2351, NSW, Australia; Wahab M.A., Department of Fisheries Management, Bangladesh Agricultural University, Mymensingh, 2202, Bangladesh; Egna H., Department of Fisheries and Wildlife, Oregon State University, Corvallis, 97331, OR, United States; Brown C., World Fisheries University, UN Affiliated, Pukyong National University, Nam-gu, Busan, South Korea","Developing countries are far more vulnerable to climate change impacts than industrialised countries. Most of the world’s poor live in South Asia where they have limited livelihood options that have become even narrower in recent years, indicating a need for alternative income-generating options. Mud crabs (Scylla spp.) are considered to have promising prospects in different parts of the world including Bangladesh, a well-known region for its vulnerability to climate change. At present, this fishery has become a growing venture in coastal Bangladesh, primarily due to the potential of the export market and availability of seed locally. This study included a calculation of the Human Development Index linked to mud crab fishery (HDIMCF) and a strengths, weaknesses, opportunities and threats (SWOT) analysis to clarify the present status of and strategic directions for the mud crab fishery, for the first time. Results revealed an intermediate level of development of mud crab aquaculture, indicating potential alternative livelihood opportunities for vulnerable coastal communities. The SWOT analysis revealed that positive factors, both internal (strengths) and external (opportunities), predominate over negative factors (weaknesses and threats) and that the fishery can be an alternative livelihood option for vulnerable coastal communities. Despite noticeable diversification of the mud crab fishery, dependence on wild seedstock and possible over-exploitation in the wild appear to constrain sustainable development of the fishery. This study’s findings suggest undertaking immediate wild crab stock assessment for determining current status of wild populations. Moreover, modification of the Government of Bangladesh’s existing mud crab policy is needed to better meet growing demand and sustainability of the fishery. Recommendations of this study may be of help in guiding responsible integrated coastal fisheries management and policy. © 2020, Springer Nature Switzerland AG.",climate change; coastal bangladesh; coastal management; conservation; hdi; hdimcf; mud crab aquaculture; scylla spp; swot,Bangladesh; Decapoda (Crustacea); Scylla; climate change; climate effect; coastal fishery; crab fishery; developing world; human development index; stock assessment; sustainability; sustainable development,"S.M. Galib; Department of Biosciences, University of Durham, Durham, DH1 3LE, United Kingdom; email: thegalib@gmail.com",,Springer,,,,,,09676120,,,,English,Aquac. Int.,Article,Final,,Scopus,2-s2.0-85079813611 Winterwerp J.C.; Albers T.; Anthony E.J.; Friess D.A.; Mancheño A.G.; Moseley K.; Muhari A.; Naipal S.; Noordermeer J.; Oost A.; Saengsupavanich C.; Tas S.A.J.; Tonneijck F.H.; Wilms T.; Van Bijsterveldt C.; Van Eijk P.; Van Lavieren E.; Van Wesenbeeck B.K.,"Winterwerp, Johan C. (6701804198); Albers, Thorsten (18633677700); Anthony, Edward J. (36184444700); Friess, Daniel A. (52263575800); Mancheño, Alejandra Gijón (57208318370); Moseley, Kene (57212537603); Muhari, Abdul (36656169800); Naipal, Sieuwnath (13403702300); Noordermeer, Joost (57220051082); Oost, Albert (6505949742); Saengsupavanich, Cherdvong (23104351600); Tas, Silke A.J. (57220051274); Tonneijck, Femke H. (16308114400); Wilms, Tom (57204292364); Van Bijsterveldt, Celine (57213827096); Van Eijk, Pieter (12140059900); Van Lavieren, Els (36060527300); Van Wesenbeeck, Bregje K. (23029219900)",6701804198; 18633677700; 36184444700; 52263575800; 57208318370; 57212537603; 36656169800; 13403702300; 57220051082; 6505949742; 23104351600; 57220051274; 16308114400; 57204292364; 57213827096; 12140059900; 36060527300; 23029219900,Managing erosion of mangrove-mud coasts with permeable dams – lessons learned,2020,Ecological Engineering,158,,106078,,,,97,10.1016/j.ecoleng.2020.106078,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85096678931&doi=10.1016%2fj.ecoleng.2020.106078&partnerID=40&md5=2b30005962671f00903edfad74bac927,"Wetlands International, PO Box 471, Wageningen, 6700 AL, Netherlands; Delft University of Technology, CiTG, Environmental Fluid Mechanics, Delft, Netherlands; Ostfalia University of Applied Sciences, Campus Suderburg, Germany; Aix Marseille University, CNRS, IRD, INRA, Coll France, CEREGE, Aix-en-Provence, France; Department of Geography, National University of Singapore, Singapore; Mangrove Restoration and Management Department, National Agriculture Research & Extension Institute, Georgetown, Guyana; Indonesian Ministry of Marine Affairs and Fisheries, Jakarta, Indonesia; Anton de Kom University, Paramaribo, Suriname; Witteveen + Bos Raadgevende Ingenieurs, Deventer, Netherlands; Deltares, Delft, Netherlands; Faculty of International Maritime Studies, Kasetsart University, Sri Racha Campus, Chonburi, Thailand; NIOZ, Yerseke, Netherlands; Conservation International Suriname","Winterwerp J.C., Wetlands International, PO Box 471, Wageningen, 6700 AL, Netherlands, Delft University of Technology, CiTG, Environmental Fluid Mechanics, Delft, Netherlands; Albers T., Ostfalia University of Applied Sciences, Campus Suderburg, Germany; Anthony E.J., Aix Marseille University, CNRS, IRD, INRA, Coll France, CEREGE, Aix-en-Provence, France; Friess D.A., Department of Geography, National University of Singapore, Singapore; Mancheño A.G., Delft University of Technology, CiTG, Environmental Fluid Mechanics, Delft, Netherlands; Moseley K., Mangrove Restoration and Management Department, National Agriculture Research & Extension Institute, Georgetown, Guyana; Muhari A., Indonesian Ministry of Marine Affairs and Fisheries, Jakarta, Indonesia; Naipal S., Anton de Kom University, Paramaribo, Suriname; Noordermeer J., Witteveen + Bos Raadgevende Ingenieurs, Deventer, Netherlands; Oost A., Deltares, Delft, Netherlands; Saengsupavanich C., Faculty of International Maritime Studies, Kasetsart University, Sri Racha Campus, Chonburi, Thailand; Tas S.A.J., Delft University of Technology, CiTG, Environmental Fluid Mechanics, Delft, Netherlands; Tonneijck F.H., Wetlands International, PO Box 471, Wageningen, 6700 AL, Netherlands; Wilms T., Witteveen + Bos Raadgevende Ingenieurs, Deventer, Netherlands; Van Bijsterveldt C., NIOZ, Yerseke, Netherlands; Van Eijk P., Wetlands International, PO Box 471, Wageningen, 6700 AL, Netherlands; Van Lavieren E., Conservation International Suriname; Van Wesenbeeck B.K., Deltares, Delft, Netherlands","Mangrove-mud coasts across the world erode because of uninformed management, conversion of mangrove forests into aquaculture ponds, development of infrastructure and urbanization, and/or extraction of groundwater inducing land subsidence. The accompanied loss of ecosystem values, amongst which safety against flooding, has far reaching consequences for coastal communities, exacerbated by sea-level rise. To halt erosion various nature-based solutions have been implemented as an alternative to hard infrastructure sea defenses, including mangrove planting and erection of low-tech structures such as bamboo fences, permeable brushwood dams, etc. These structures have been designed on the basis of best-engineering practice, lacking sufficient scientific background. This paper investigates the use and success of permeable dams over a period of about 15 years, describing their application in Guyana, Indonesia, Suriname, Thailand and Vietnam, summarizing the lessons-learned, and analyzing their functioning in relation to the physical-biological coastal system. Also an overview of relevant costs is given. The basic philosophy behind the construction of permeable dams is the rehabilitation of mangrove habitat through re-establishment of the (fine) sediment dynamics – we refer to Building with Nature as the overarching principle of this approach. Our main conclusions are that a successful functioning of permeable dams requires (1) a thorough understanding of the physical-biological system and analysis of the relevant processes, (2) patience and persistence, including maintenance, as the natural time scales to rehabilitate mangrove green belts take years to decades, and (3) intensive stakeholder involvement. We give a list of conditions under which permeable dams may be successful, but in qualitative terms, as local site conditions largely govern their success or failure. © 2020 The Authors",bamboo fence; building with nature; chenier; coastal erosion; ecological mangrove restoration; mangrove molluscs; mud streaming; nature based solutions; permeable dam,Guyana; Indonesia; Suriname; Thailand; Viet Nam; Economic and social effects; Erosion; Groundwater; Sea level; Time measurement; Aquaculture ponds; Building with natures; Coastal communities; Engineering practices; Local site condition; Mangrove habitats; Sediment dynamic; Stakeholder involvement; coastal erosion; dam; erosion control; flooding; greenbelt; habitat restoration; infrastructural development; mangrove; mud; nature conservation; restoration ecology; sea level change; stakeholder; timescale; urbanization; Dams,"J.C. Winterwerp; Wetlands International, Wageningen, PO Box 471, 6700 AL, Netherlands; email: j.c.winterwerp@tudelft.nl",,Elsevier B.V.,,,,,,09258574,,ECENE,,English,Ecol. Eng.,Article,Final,All Open Access; Green Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85096678931 Warassih E.; Sulaiman; Rahayu D.P.,"Warassih, Esmi (57202733434); Sulaiman (57216709331); Rahayu, Derita Prapti (57202727220)",57202733434; 57216709331; 57202727220,"Sustainable fishery campaign by small-scale fishers: A case study on law protection on small-scale fishers in Morodemak Village, Demak District, Central Java Province, Indonesia",2018,Environmental Justice,11,3,,114,117,3,1,10.1089/env.2017.0036,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85049131192&doi=10.1089%2fenv.2017.0036&partnerID=40&md5=3fcee6cd27c80d54d81da59420bf8ba3,"Department of Law and Society, Faculty of Law, Diponegoro University, Semarang, 50275, Indonesia; Department of Law and Society, Faculty of Law, Syiah Kuala University, Banda Aceh, Indonesia; Department of Private Law, Faculty of Law, University of Bangka Belitung, Bangka, Indonesia","Warassih E., Department of Law and Society, Faculty of Law, Diponegoro University, Semarang, 50275, Indonesia; Sulaiman, Department of Law and Society, Faculty of Law, Syiah Kuala University, Banda Aceh, Indonesia; Rahayu D.P., Department of Private Law, Faculty of Law, University of Bangka Belitung, Bangka, Indonesia","There is a spirited commitment of sustainability among small-scale fishers and fisheries. This commitment is visible through the pattern and process of utilization of environmentally friendly fishery gear and through campaigns by fishers to encourage each other to always use environmentally friendly fishing gear. For many small-scale fishers, their low fishing income is not a problem, as they include in their accounting the value of fishery resources for future generations. This research wants to answer how legal protection is related to small-scale fishers' commitments to sustainability in the local context. With qualitative analysis, disclosed legal protection is not only examined from the perspective of legislation alone, but also considers the economic, political, and social relationships. The case study was conducted in Morodemak Vilage, Bonang Subdistrict, Demak District. The study examines local practices by small-scale fishers in the utilization of fishery resources. The study found that small-scale fishers are not always concerned with income alone, they also value fishery resources for future generations, often by way of practicing sustainable fishing methods. The awareness of sustainability of fisheries was determined by fishers' exclusive use of ecofriendly fishing gear and their campaigns to encourage other small-scale fishers to abandon the use of unfriendly fishing nets. © 2018 Mary Ann Liebert, Inc.",law protection; small-scale fisheries; sustainability,Central Java; Indonesia; accountability; aquaculture industry; environmental legislation; fishery management; fishing gear; future prospect; legal system; low income population; small scale industry; sustainability,"E. Warassih; Department of Law and Society, Faculty of Law, Diponegoro University, Semarang, 50275, Indonesia; email: esmiwp@yahoo.com",,Mary Ann Liebert Inc.,,,,,,19394071,,,,English,Environ. Justice,Article,Final,,Scopus,2-s2.0-85049131192 Roy R.; Gain A.K.; Samat N.; Hurlbert M.; Tan M.L.; Chan N.W.,"Roy, Ranjan (36940158100); Gain, Animesh K. (26028824100); Samat, Narimah (15053728000); Hurlbert, Margot (35098978100); Tan, Mou Leong (56203508900); Chan, Ngai Weng (7101677593)",36940158100; 26028824100; 15053728000; 35098978100; 56203508900; 7101677593,Resilience of coastal agricultural systems in Bangladesh: Assessment for agroecosystem stewardship strategies,2019,Ecological Indicators,106,,105525,,,,28,10.1016/j.ecolind.2019.105525,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85068054218&doi=10.1016%2fj.ecolind.2019.105525&partnerID=40&md5=413c26c4913e8058ad269880b5ee50bc,"School of Humanities, Universiti Sains Malaysia, Pulau Pinang, 11800, Penang, Malaysia; Johnson Shoyama Graduate School of Public Policy, University of Regina, Regina, S4P 4V5, SK, Canada; Dept. of Agricultural Extension & Information System, Sher-e-Bangla Agricultural University, Dhaka, 1207, Bangladesh; Christian-Albrechts University of Kiel, Institute of Geography, Ludewig-Meyn-Str. 14, Kiel, 24098, Germany","Roy R., School of Humanities, Universiti Sains Malaysia, Pulau Pinang, 11800, Penang, Malaysia, Johnson Shoyama Graduate School of Public Policy, University of Regina, Regina, S4P 4V5, SK, Canada, Dept. of Agricultural Extension & Information System, Sher-e-Bangla Agricultural University, Dhaka, 1207, Bangladesh; Gain A.K., Christian-Albrechts University of Kiel, Institute of Geography, Ludewig-Meyn-Str. 14, Kiel, 24098, Germany; Samat N., School of Humanities, Universiti Sains Malaysia, Pulau Pinang, 11800, Penang, Malaysia; Hurlbert M., Johnson Shoyama Graduate School of Public Policy, University of Regina, Regina, S4P 4V5, SK, Canada; Tan M.L., School of Humanities, Universiti Sains Malaysia, Pulau Pinang, 11800, Penang, Malaysia; Chan N.W., School of Humanities, Universiti Sains Malaysia, Pulau Pinang, 11800, Penang, Malaysia","Assessments of “resilience” are becoming a priority across multiple sectors. Specifically, the coastal agricultural system in Bangladesh faces a multitude of problems such as sea level rise. Building resilience for this system is thus important in accelerating the country's socio-economic development. Therefore, the objectives of this study are (a) to assess resilience of coastal agricultural systems and (b) to develop coastal agroecosystem stewardship strategies in Bangladesh. Resilience was assessed quantitatively, based on an established framework that includes three capacities (i.e., absorptive, adaptive and transformative) and five dimensions, namely, social, economic, ecological, physical and institutional. Fifteen indicators were developed by applying an assemblage of top-down and bottom-up approaches. A structured questionnaire was used to survey 330 households from 15 villages in five coastal sub-districts. The percentile value of composite resilience indices revealed that one-fifths of the coastal farmers (or households) had a mixed ability (e.g., fish farming skills) and capacity (e.g., better decision-making) to recover, reorganise and evolve following shocks (e.g., flash flood) and stresses (e.g., water logging). Following resilience assessment, five coastal agroecosystem stewardship strategies (facilitating adaptive agricultural governance; promoting economic and ecological diversity; fostering social learning; investing in coastal infrastructure; and increasing agricultural productivity) are developed based on principal component analysis. The methods of objectively developing stewardship strategies can be replicable to other coastal areas. The findings of this study are intended to be used for contributing to coastal adaptation planning in Bangladesh, especially for the Delta Plan 2100. © 2019",adaptive agricultural governance; bangladesh; composite resilience indicator; economic development; ecosystem services; resilience-based management,Bangladesh; Agriculture; Decision making; Economic and social effects; Economics; Principal component analysis; Productivity; Sea level; Surveys; Adaptive agricultural governance; Agricultural productivity; Agricultural system; Bangladesh; Coastal infrastructure; Ecological diversity; Economic diversity; Socio-economic development; agricultural ecosystem; bioindicator; coastal zone management; ecosystem resilience; farmers knowledge; farming system; sea level change; socioeconomic conditions; training; Ecosystems,"R. Roy; School of Humanities, Universiti Sains Malaysia, Pulau Pinang, 11800, Malaysia; email: ranjan@usm.my",,Elsevier B.V.,,,,,,1470160X,,,,English,Ecol. Indic.,Article,Final,,Scopus,2-s2.0-85068054218 Nguyen V.K.; Pittock J.; Connell D.,"Nguyen, Van Kien (57074389500); Pittock, Jamie (35293344900); Connell, Daniel (26637664700)",57074389500; 35293344900; 26637664700,"Dikes, rice, and fish: how rapid changes in land use and hydrology have transformed agriculture and subsistence living in the Mekong Delta",2019,Regional Environmental Change,19,7,,2069,2077,8,34,10.1007/s10113-019-01548-x,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85069894214&doi=10.1007%2fs10113-019-01548-x&partnerID=40&md5=6ff83db14b3dfa64e98992bbae3c2fc6,"Fenner School of Environment and Society, The Australian National University, 48 Linnaeus Way, Acton ACT, Canberra, 2600, Australia; Research Center for Rural Development, An Giang University, 18 Ung Van Khiem St., Long Xuyen City, An Giang Province, Viet Nam; Environment and Development Program, Crawford School of Public Policy, ANU College of Asia & the Pacific, The Australian National University, Acton ACT, Canberra, 2600, Australia","Nguyen V.K., Fenner School of Environment and Society, The Australian National University, 48 Linnaeus Way, Acton ACT, Canberra, 2600, Australia, Research Center for Rural Development, An Giang University, 18 Ung Van Khiem St., Long Xuyen City, An Giang Province, Viet Nam; Pittock J., Fenner School of Environment and Society, The Australian National University, 48 Linnaeus Way, Acton ACT, Canberra, 2600, Australia; Connell D., Environment and Development Program, Crawford School of Public Policy, ANU College of Asia & the Pacific, The Australian National University, Acton ACT, Canberra, 2600, Australia","The recent development of high dikes to support rice production, upland crops, cattle rearing, and commercial aquaculture in the Vietnamese Mekong Delta has significantly diminished wild fish catch and aquatic animals that are important food sources for the poor. Changes to agro-ecological systems in An Giang Province during three periods are reviewed: before 1975, when a network of canals was established; during the Doi Moi policy reforms of the 1980s, when a rice-based farming system based on low or August dikes was introduced; and more recently, when a new farming system based on high dikes replaced the low dike system. This most recent transition occurred in parallel with the introduction of large-scale commercial aquaculture and the market economy. Under pressure from government targets and market forces, most farmers are now using the high dikes, fertilizers, pesticides, and pumping technology to produce three rice crops each year. However, the new production systems have severely reduced the habitat available to inland freshwater wild fish and other aquatic food resources. This has negatively impacted nutrition for many poor families who had depended on wild fish caught in the commons for much of their food and offers lessons for development of other tropical delta regions. This paper proposes a research agenda that would investigate the socioeconomic, nutritional, and water and energy use impacts of the changes in production systems that have occurred in rural communities in the Mekong Delta. © 2019, Springer-Verlag GmbH Germany, part of Springer Nature.",agriculture; flood management; impacts of dikes; inland fisheries; mekong delta; nutrition,,"V.K. Nguyen; Research Center for Rural Development, An Giang University, Long Xuyen City, 18 Ung Van Khiem St., Viet Nam; email: nv.kien@anu.edu.au",,Springer Verlag,,,,,,14363798,,,,English,Reg. Environ. Change,Article,Final,,Scopus,2-s2.0-85069894214 Eddiwan; Sukendi; Siregar Y.I.; Saam Z.; Yusuf M.; Sabiq M.,"Eddiwan (57210192401); Sukendi (57200092633); Siregar, Yusni Ikhwan (57203513934); Saam, Zulfan (57211292783); Yusuf, Muhammad (58556401900); Sabiq, Muhammad (57224167323)",57210192401; 57200092633; 57203513934; 57211292783; 58556401900; 57224167323,"Designing management of sustainable shrimp cultivation area in east lingga, lingga district",2021,AACL Bioflux,14,3,,1317,1325,8,3,,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85107133414&partnerID=40&md5=56c4278c42c8dbbc9187087003ef8f51,"Faculty of Fisheries and Marine Science, Riau University, St. HR Subrantas, KM 12.5 Panam Pekanbaru, Riau, Indonesia; Postgraduate of Riau University, Gobah UNRI Campus. St. Pattimua 9, Pekanbaru, Riau, 28125, Indonesia; Department of Agribusiness, Faculty of Fisheries, Cokroaminoto University of Makassar, St. Tamalanrea KM 11, Makassar, Indonesia; Department of Agribusiness, Faculty of Fisheries, Cokroaminoto University of Makassar, St. Tamalanrea KM 11, Makassar, Indonesia","Eddiwan, Faculty of Fisheries and Marine Science, Riau University, St. HR Subrantas, KM 12.5 Panam Pekanbaru, Riau, Indonesia; Sukendi, Postgraduate of Riau University, Gobah UNRI Campus. St. Pattimua 9, Pekanbaru, Riau, 28125, Indonesia; Siregar Y.I., Postgraduate of Riau University, Gobah UNRI Campus. St. Pattimua 9, Pekanbaru, Riau, 28125, Indonesia; Saam Z., Postgraduate of Riau University, Gobah UNRI Campus. St. Pattimua 9, Pekanbaru, Riau, 28125, Indonesia; Yusuf M., Department of Agribusiness, Faculty of Fisheries, Cokroaminoto University of Makassar, St. Tamalanrea KM 11, Makassar, Indonesia; Sabiq M., Department of Agribusiness, Faculty of Fisheries, Cokroaminoto University of Makassar, St. Tamalanrea KM 11, Makassar, Indonesia","Shrimp production has decreased in the coastal area of East Lingga District for 20 years, and this is an indicator of environmental biophysical degradation and of coastal natural resources. High population growth with limited natural resources, results in a shift in land use that leads to environmental degradation, including ecological, social, and economic aspects, which ultimately impact shrimp farming. Various efforts need to be made to increase shrimp production on the one hand and to preserve the environment on the other. For this reason, this research is important in order to obtain the best scenario in the design of sustainable shrimp farming in East Lingga, Lingga District. The research took place from May to June 2020 in East Lingga, Lingga District. The research was conducted with a dynamic systems approach. The research results were categorized as the pessimistic scenario, where it is found that there is an increase in production of 582.83 tons per year, the moderate scenario which can increase shrimp production by 941.86 tons per year and the optimistic scenario which can increase shrimp production to 1,560.40 tons per year. However, a 70% increase in effort in the optimistic scenario will result in high environmental impacts, especially pond waste. © 2021, BIOFLUX SRL. All rights reserved.",causal loop; dynamic; modeling; scenario,,,,BIOFLUX SRL,,,,,,18448143,,,,English,AACL Bioflux,Article,Final,,Scopus,2-s2.0-85107133414 Schernewski G.; Friedland R.; Buer A.-L.; Dahlke S.; Drews B.; Höft S.; Klumpe T.; Schadach M.; Schumacher J.; Zaiko A.,"Schernewski, Gerald (55907106400); Friedland, Rene (7005771523); Buer, Anna-Lucia (57203536364); Dahlke, Sven (7004647442); Drews, Birte (57203908006); Höft, Svenja (57203916518); Klumpe, Tobias (57203907432); Schadach, Mareike (57203919289); Schumacher, Johanna (57195291860); Zaiko, Anastasija (12902550200)",55907106400; 7005771523; 57203536364; 7004647442; 57203908006; 57203916518; 57203907432; 57203919289; 57195291860; 12902550200,Ecological-social-economic assessment of zebra-mussel cultivation scenarios for the Oder (Szczecin) Lagoon,2019,Journal of Coastal Conservation,23,5,,913,929,16,21,10.1007/s11852-018-0649-2,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85053526835&doi=10.1007%2fs11852-018-0649-2&partnerID=40&md5=f440c9f45a50c7590aca7b6c8c4c5ec3,"Coastal Research and Management Group, Leibniz-Institute for Baltic Sea Research, Seestrasse 15, Rostock, D-18119, Germany; Marine Research Institute, Klaipeda University, Herkus Mantas str. 84, Klaipeda, LT-92294, Lithuania; Biological Station Hiddensee, Greifswald University, Biologenweg 15, Kloster, D-18565, Germany; Distance Learning Center - Environmental Protection, University of Rostock, Ulmenstrasse 69, Rostock, 18057, Germany; Zoological Garden Osnabrück, Klaus-Strick-Weg 12, Osnabrück, D-49082, Germany; Coastal and Freshwater Group, Cawthron Institute, Private Bag 2, Nelson, 7042, New Zealand","Schernewski G., Coastal Research and Management Group, Leibniz-Institute for Baltic Sea Research, Seestrasse 15, Rostock, D-18119, Germany, Marine Research Institute, Klaipeda University, Herkus Mantas str. 84, Klaipeda, LT-92294, Lithuania; Friedland R., Coastal Research and Management Group, Leibniz-Institute for Baltic Sea Research, Seestrasse 15, Rostock, D-18119, Germany; Buer A.-L., Coastal Research and Management Group, Leibniz-Institute for Baltic Sea Research, Seestrasse 15, Rostock, D-18119, Germany; Dahlke S., Biological Station Hiddensee, Greifswald University, Biologenweg 15, Kloster, D-18565, Germany; Drews B., Coastal Research and Management Group, Leibniz-Institute for Baltic Sea Research, Seestrasse 15, Rostock, D-18119, Germany, Distance Learning Center - Environmental Protection, University of Rostock, Ulmenstrasse 69, Rostock, 18057, Germany; Höft S., Coastal Research and Management Group, Leibniz-Institute for Baltic Sea Research, Seestrasse 15, Rostock, D-18119, Germany; Klumpe T., Distance Learning Center - Environmental Protection, University of Rostock, Ulmenstrasse 69, Rostock, 18057, Germany, Zoological Garden Osnabrück, Klaus-Strick-Weg 12, Osnabrück, D-49082, Germany; Schadach M., Coastal Research and Management Group, Leibniz-Institute for Baltic Sea Research, Seestrasse 15, Rostock, D-18119, Germany, Distance Learning Center - Environmental Protection, University of Rostock, Ulmenstrasse 69, Rostock, 18057, Germany; Schumacher J., Coastal Research and Management Group, Leibniz-Institute for Baltic Sea Research, Seestrasse 15, Rostock, D-18119, Germany; Zaiko A., Marine Research Institute, Klaipeda University, Herkus Mantas str. 84, Klaipeda, LT-92294, Lithuania, Coastal and Freshwater Group, Cawthron Institute, Private Bag 2, Nelson, 7042, New Zealand","The Systems Approach Framework with an integrated Ecological-Social-Economic assessment was applied to address the issue of zebra mussel (Dreissena polymorpha) farming in the large Oder (Szczecin) Lagoon, southern Baltic Sea. Heavy eutrophication hampers the use of the lagoon and zebra mussel farming is considered as new use and potential measure to improve water quality. Three alternative scenarios were developed in interaction with local stakeholders: 1) the production of mussels as fresh feed and meal on a commercial basis seemed not profitable, because of a limited market for fresh mussels (zoos, aquaculture) and low prices for organic feed. 2) Mussel cultivation to improve transparency and attractiveness of bathing waters near beaches had only a limited potential (0.2 m improvement of Secchi depth). A higher mussel biomass would increase the risk of temporary hypoxia. 3) Mussels farms for improving the environmental status (according to EU Water Framework Directive) by supporting macrophyte restoration were considered as the most promising scenario. Our model simulations suggested that as soon as a compensation for nutrient removal is considered, all mussel farm scenarios could cover the costs. Experiments and literature confirm that the conditions for an environmental friendly farming approach in the lagoon are suitable. Steps towards and problems associated with an implementation, e.g. invasion of Dreissena bugensis (quagga mussel), are discussed. Each step of the Ecological-Social-Economic assessment and major lessons learnt are documented in detail. Altogether, the approach turned out to be very suitable for this issue. © 2018, The Author(s).",baltic sea; bathing water; beach management; dreissena polymorpha; ecosystem services; iczm; macrophytes; systems approach framework,Atlantic Ocean; Baltic Sea; Poland [Central Europe]; Szczecin Lagoon; Zachodniopomorskie; Dreissena bugensis; Dreissena polymorpha; bathing water; beach; bivalve; conservation management; ecological approach; ecosystem management; eutrophication; habitat conservation; macrophyte; mussel culture; water quality,"G. Schernewski; Coastal Research and Management Group, Leibniz-Institute for Baltic Sea Research, Rostock, Seestrasse 15, D-18119, Germany; email: gerald.schernewski@io-warnemuende.de",,Springer Netherlands,,,,,,14000350,,,,English,J. Coast. Conserv.,Article,Final,All Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85053526835 Sivaraman I.; Krishnan M.; Radhakrishnan K.,"Sivaraman, Iyemperumal (57189944484); Krishnan, M. (59097064300); Radhakrishnan, Kalidoss (57195740036)",57189944484; 59097064300; 57195740036,Better Management Practices for sustainable small-scale shrimp farming,2019,Journal of Cleaner Production,214,,,559,572,13,44,10.1016/j.jclepro.2018.12.172,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85060029972&doi=10.1016%2fj.jclepro.2018.12.172&partnerID=40&md5=15aa9144b54fb2cfe5628419599d4810,"ICAR-Central Institute of Fisheries Education, Mumbai, 400 061, India","Sivaraman I., ICAR-Central Institute of Fisheries Education, Mumbai, 400 061, India; Krishnan M., ICAR-Central Institute of Fisheries Education, Mumbai, 400 061, India; Radhakrishnan K., ICAR-Central Institute of Fisheries Education, Mumbai, 400 061, India","Better management practices (BMPs) for shrimp farming are a standardized set of farming practices to ensure the environmental and financial sustainability of shrimp farming systems. Uniform implementation of the BMPs poses a challenge if most of the shrimp farms in a given region are small (<2 ha). The adoption of BMPs and the associated economics were studied in two districts of Andhra Pradesh, the state that leads India's shrimp production. The overall rate of adoption was approximately 73%. Using factor analysis, all the partly adopted BMPs were categorized into six thematic factors: optimized input supply, improved management practices, routine maintenance, social responsibility, group approach, and culture-system-related and other practices. The ordinary least square regression model explained the factors that influenced the decision to adopt a given practice. These factors included key socio-economic variables such as age, education, and membership of farmers associations. Partial budget analysis revealed that adopting all the recommended BMPs in full would decrease the net returns from each crop by 16.6%. Although adopting the BMPs is voluntary, the practices crucial to the success of a crop were adopted by all the farmers (almost as if it were mandatory to adopt them), whereas those that involved significant costs were left out. Although small farmers can be persuaded to adopt the BMPs through awareness programmes, upgrading their holdings to a size at which a standardized farming system is feasible needs substantial investment. The governments of shrimp-exporting nations should improve their regulatory structure to embrace an inclusive governance model involving all the key actors in the value chain to make the small scale shrimp farming sustainable. © 2018 Elsevier Ltd",aquaculture; bmps; shrimp farming; sustainability,Budget control; Crops; Economics; Regression analysis; Sustainable development; Awareness programmes; BMPs; Financial sustainability; Management practices; Ordinary least squares; Shrimp farming; Social responsibilities; Substantial investments; Shellfish,"I. Sivaraman; ICAR-Central Institute of Fisheries Education, Mumbai, 400 061, India; email: fishiva26@gmail.com",,Elsevier Ltd,,,,,,09596526,,JCROE,,English,J. Clean. Prod.,Article,Final,,Scopus,2-s2.0-85060029972 Secchi S.; Banerjee S.,"Secchi, Silvia (6602177564); Banerjee, Simanti (55386134700)",6602177564; 55386134700,A dynamic semester-long social dilemma game for economic and interdisciplinary courses,2019,Journal of Economic Education,50,1,,70,85,15,5,10.1080/00220485.2018.1551097,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85060045005&doi=10.1080%2f00220485.2018.1551097&partnerID=40&md5=7c8e3a119625a066f6c35709108668f5,"Department of Geographical and Sustainability Sciences, University of Iowa, Iowa City, IA, United States; Department of Agricultural Economics, University of Nebraska-Lincoln, Lincoln, NE, United States","Secchi S., Department of Geographical and Sustainability Sciences, University of Iowa, Iowa City, IA, United States; Banerjee S., Department of Agricultural Economics, University of Nebraska-Lincoln, Lincoln, NE, United States","The authors present a semester-long game to teach the role of economics in natural resources management. The game is framed within a fisheries context: multiple student fisheries harvest fish to maximize yield/profit, which is measured using a piecewise linear function. There are prizes for both the student and the group with the highest semester-long catch, which brings forth the social dilemma associated with dynamic stock externalities in fisheries. The game can be played in large classes, is robust to student attrition, and requires 5–10 minutes per class period. Given its features, it can be used to teach behavioral economic principles in resource management, incentives versus command-and-control regulations, role of cheap talk, social preferences, punishment, and community management as well as solutions such as aquaculture. © 2018, © 2018 Taylor & Francis Group, LLC.",classroom game; common pool resource; economic development; fisheries; interdisciplinary; renewable resource management,,"S. Secchi; Department of Geographical and Sustainability Sciences, University of Iowa, Iowa City, 310 Jessup Hall, 52242, United States; email: silvia-secchi@uiowa.edu",,Routledge,,,,,,00220485,,,,English,J. Econ. Educ.,Article,Final,,Scopus,2-s2.0-85060045005 Chakrabarti P.P.; Ghosh A.; Mohapatra B.C.; Barik N.K.; Das A.; Kumar K.; Mondal S.C.; Majhi D.; Mistry A.; Jayasankar P.,"Chakrabarti, P.P. (57210841400); Ghosh, A. (59079537200); Mohapatra, B.C. (15752978800); Barik, N.K. (57205012040); Das, A. (57210844771); Kumar, K. (56896291000); Mondal, S.C. (59096052900); Majhi, D. (55272592300); Mistry, A. (57201480649); Jayasankar, P. (6507152982)",57210841400; 59079537200; 15752978800; 57205012040; 57210844771; 56896291000; 59096052900; 55272592300; 57201480649; 6507152982,"Alternate livelihood development for ‘aila’ affected tribal people through aquaculture in bali island of the sunderban, West Bengal, India",2017,Indian Journal of Fisheries,64,,,14,21,7,5,10.21077/ijf.2017.64.special-issue.76186-03,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85045066665&doi=10.21077%2fijf.2017.64.special-issue.76186-03&partnerID=40&md5=9e6db1e5f1c62a246c6e3a4e251a809b,"ICAR-Central Institute of Freshwater Aquaculture, Kausalyaganga, Bhubaneswar, 751 002, Odisha, India","Chakrabarti P.P., ICAR-Central Institute of Freshwater Aquaculture, Kausalyaganga, Bhubaneswar, 751 002, Odisha, India; Ghosh A., ICAR-Central Institute of Freshwater Aquaculture, Kausalyaganga, Bhubaneswar, 751 002, Odisha, India; Mohapatra B.C., ICAR-Central Institute of Freshwater Aquaculture, Kausalyaganga, Bhubaneswar, 751 002, Odisha, India; Barik N.K., ICAR-Central Institute of Freshwater Aquaculture, Kausalyaganga, Bhubaneswar, 751 002, Odisha, India; Das A., ICAR-Central Institute of Freshwater Aquaculture, Kausalyaganga, Bhubaneswar, 751 002, Odisha, India; Kumar K., ICAR-Central Institute of Freshwater Aquaculture, Kausalyaganga, Bhubaneswar, 751 002, Odisha, India; Mondal S.C., ICAR-Central Institute of Freshwater Aquaculture, Kausalyaganga, Bhubaneswar, 751 002, Odisha, India; Majhi D., ICAR-Central Institute of Freshwater Aquaculture, Kausalyaganga, Bhubaneswar, 751 002, Odisha, India; Mistry A., ICAR-Central Institute of Freshwater Aquaculture, Kausalyaganga, Bhubaneswar, 751 002, Odisha, India; Jayasankar P., ICAR-Central Institute of Freshwater Aquaculture, Kausalyaganga, Bhubaneswar, 751 002, Odisha, India","Bali Island is one of the mangrove reclaimed zone of Sunderban, West Bengal, inhabited mostly by tribal communities. Lack of employment opportunities and limited access to market as well as urban areas are characteristic features of livelihood of the people. The devastating cyclone “Aila” which hit the island during 2009, resulted in ingress of saline water, degradation of land and water resources, loss of biodiversity, destruction of animal and farm infrastructure which further led to major loss to the livelihood system. Aimed at restoring livelihood of these tribal people, aquaculture based interventions were initiated by the ICAR-Central Institute of Freshwater Aquaculture (ICAR-CIFA), Bhubaneswar, during the period 2013-14 among 51 tribal families in Bali Island. The interventions were effected by creation of alternative livelihood options through composite fish culture (single component), fish-cum-duck culture (multi-component) and hatchery production of fish seed (single component). Scientific management of the aquaculture ponds helped to achieve an average fish production of 4 - 6 t ha-1 yr-1 from a benchmark of around 1 t ha-1 yr-1. One lakh fingerlings of Labeo rohita and L. bata were also produced through FRP carp hatchery. In addition, fish-cum-duck farming trials also created nutritional security through egg, duck meat and fish production. The economic impact assessment revealed that investment of `11.05 lakhs by ICAR-CIFA, resulted in a net incremental wealth generation of `20.67 lakhs. For a typical tribal family of average 5 members, 67% alternative livelihood support was achieved through duck-cum-fish farming. © 2017, Indian Council of Agricultural Research. All rights reserved.",aquaculture; bali island; carps; livelihood; sunderban,,,,Indian Council of Agricultural Research,,,,,,09706011,,,,English,Indian J. Fish.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85045066665 Lobo R.; Jacques P.J.,"Lobo, Rafaella (57192928128); Jacques, Peter J. (11939927800)",57192928128; 11939927800,"SOFIA'S choices: Discourses, values, and norms of the World Ocean Regime",2017,Marine Policy,78,,,26,33,7,15,10.1016/j.marpol.2016.12.023,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85009227354&doi=10.1016%2fj.marpol.2016.12.023&partnerID=40&md5=59dcfb87ac7e93b5be5893186bc0e03e,"Department of Political Science, University of Central Florida, United States","Lobo R., Department of Political Science, University of Central Florida, United States; Jacques P.J., Department of Political Science, University of Central Florida, United States","Some scholars have thought the United Nations Convention on the Law of the Sea would transform marine politics and policy by incorporating social values of equity and justice via the Common Heritage of Mankind and authentic conservation of an essential part of the biosphere, displacing the dominant commodification of the ocean. Likewise, the United Nations Food and Agricultural Organization has claimed that the “productivity paradigm” of growth in fishery catch has been replaced by balanced norms of sustainability. This article tests these claims by asking “What is the ‘generative grammar’, or value-based blueprints, of governance for the World Ocean?” using a quantitative content analysis of all extant State of the World Fisheries and Aquaculture (SOFIA) reports (1995–2016). Not only does the analysis disprove the FAO's assertions, this research reveals an otherwise invisible, non-codified economistic regime governing the World Ocean that is guided by the norms of sheer volume production, named here simply the “World Ocean Regime.” This partially explains why the marine world is experiencing structural ecological changes, including massive biodiversity loss partly driven by overfishing. The analysis finds that overfishing, ecological life support, moral aesthetic values, social equity, and science are very minor concerns for the World Ocean Regime. Governance is the second-most important set of discourses, but this governance is clearly driven by economic values and norms. The World Ocean Regime has critical implications not only for the sustainability of the World Ocean, but the planetary system that depends on the World Ocean. © 2017 Elsevier Ltd",fisheries; marine affairs; quantitative content analysis; sustainability; world ocean regime,biodiversity; fishery; global ocean; governance approach; Law of the Sea; quantitative analysis; sustainability; United Nations,"P.J. Jacques; Department of Political Science, University of Central Florida, United States; email: Peter.Jacques@ucf.edu",,Elsevier Ltd,,,,,,0308597X,,,,English,Mar. Policy,Article,Final,,Scopus,2-s2.0-85009227354 Akuffo A.S.; Quagrainie K.K.,"Akuffo, Akua S. (57209270827); Quagrainie, Kwamena K. (6602283352)",57209270827; 6602283352,Assessment of household food security in fish farming communities in Ghana,2019,Sustainability (Switzerland),11,10,2807,,,,13,10.3390/su11102807,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85067094212&doi=10.3390%2fsu11102807&partnerID=40&md5=0fcf0c498d8aea543a85c111e8f714c4,"Department of Agricultural Economics, Purdue University, 403 W. State Street, West Lafayette, 47907, IN, United States","Akuffo A.S., Department of Agricultural Economics, Purdue University, 403 W. State Street, West Lafayette, 47907, IN, United States; Quagrainie K.K., Department of Agricultural Economics, Purdue University, 403 W. State Street, West Lafayette, 47907, IN, United States","The Government of Ghana and international NGOs have been encouraging the adoption of fish farming to alleviate poverty and food insecurity through training workshops, financial contributions and creation of a fisheries ministry. Nevertheless, there is no study on how these efforts have influenced the household's welfare, particularly their nutritional quality. Based on this, our objective is to identify the ways through which fish farming impacts the household's nutritional quality. We hypothesize that engaging in fish farming will increase steady income flow and access to fish for the household's direct consumption. We adopted the Propensity Score Matching (PSM) approach in a logit framework to achieve this objective and address the endogeneity from the bias of self -selection by creating a statistically similar-looking control group. The results suggest that fish farming households have higher nutritional quality and frequency of food consumed than the non-fish farming households through direct consumption. The probability of adopting fish farming increases with wealth, location, ecological zone and household size but decreases with household income per capita. The average effect of adopting fish farming on household nutritional quality is 15.5 Food Consumption Score points. Policies that encourage women to engage in not only fish processing, but production as well are advised. © 2019 by the authors.",fish farming; food consumption score (fcs); food security; ghana; propensity score matching,Ghana; consumption behavior; fishing community; fishing industry; food security; household income; nongovernmental organization; nutritional status; poverty alleviation; probability,"A.S. Akuffo; Department of Agricultural Economics, Purdue University, West Lafayette, 403 W. State Street, 47907, United States; email: asakuffo@gmail.com",,MDPI,,,,,,20711050,,,,English,Sustainability,Article,Final,All Open Access; Gold Open Access; Green Open Access,Scopus,2-s2.0-85067094212 Mussells C.; Stephenson R.L.,"Mussells, Claire (57203634066); Stephenson, Robert L. (57211465543)",57203634066; 57211465543,"A comparison of sustainability objectives: How well does the canadian fisheries research network framework compare with fisheries, forestry, and aquaculture certification schemes?",2020,Ecology and Society,25,1,17,,,,4,10.5751/ES-11368-250117,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85083225886&doi=10.5751%2fES-11368-250117&partnerID=40&md5=a050b2e360f87a8ce821a85aaa2f8e5d,"Canadian Fisheries Research Network, Fisheries and Oceans Canada, St Andrews Biological Station, St Andrews, NB, Canada; Faculty of Forestry and Environmental Management, University of New Brunswick, Canada; Canadian Fisheries Research Network, Department of Biology, University of New Brunswick, Canada","Mussells C., Canadian Fisheries Research Network, Fisheries and Oceans Canada, St Andrews Biological Station, St Andrews, NB, Canada, Faculty of Forestry and Environmental Management, University of New Brunswick, Canada; Stephenson R.L., Canadian Fisheries Research Network, Fisheries and Oceans Canada, St Andrews Biological Station, St Andrews, NB, Canada, Canadian Fisheries Research Network, Department of Biology, University of New Brunswick, Canada","It is increasingly recognized that fisheries management should take a more holistic approach toward full spectrum sustainability that includes ecological, social, and economic considerations. The Canadian Fisheries Research Network (CFRN) has developed an evaluation framework for comprehensive fisheries management, derived from Canadian policy and international commitments. In the changing landscape of resource management, third party market certification has grown where there are perceived management gaps and increasingly exerts pressure on management considerations. Increasingly, there is a need to integrate coastal management and to consider consistent management objectives across sectors. In this study, the CFRN framework is used as a lens with which to compare certification schemes (fisheries, aquaculture, and forestry) of relevance to activities in southwest New Brunswick. This analysis reveals (1) that the three certification schemes differ in the scope of their objectives; (2) that a number of CFRN framework elements are not addressed in the certification schemes; and (3) that the certification scheme that most closely matches the CFRN framework is from the forestry sector and that the Marine Stewardship Council certifications scheme for fisheries is most different from the CFRN because it lacks consideration of social and economic aspects. We are thus challenged to consider why fisheries management and certification continue to fall behind in the consideration of a broad spectrum of management objectives and we are provided with an opportunity to learn from the strengths of other sectors. © 2020 by the author(s).",ecosystem services; management; social-ecological systems; sustainability; third party market certification,Canada; New Brunswick; aquaculture; certification; comparative study; conceptual framework; fishery management; forestry; holistic approach; socioeconomic impact; sustainability,,,Resilience Alliance,,,,,,17083087,,,,English,Ecol. Soc.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85083225886 Katz J.; Pietrobelli C.,"Katz, Jorge (7403969274); Pietrobelli, Carlo (6603426104)",7403969274; 6603426104,"Natural resource based growth, global value chains and domestic capabilities in the mining industry",2018,Resources Policy,58,,,11,20,9,54,10.1016/j.resourpol.2018.02.001,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85041943379&doi=10.1016%2fj.resourpol.2018.02.001&partnerID=40&md5=9a08e1fabac85b18f56c7144e3dd1bfd,"FEN, University of Chile, Chile; University Roma Tre and UNU-MERIT, Italy; UNU-MERIT, Maastricht, Netherlands","Katz J., FEN, University of Chile, Chile; Pietrobelli C., University Roma Tre and UNU-MERIT, Italy, UNU-MERIT, Maastricht, Netherlands","Received theory of production is not very useful if we try to understand what the ‘sources’ of growth are when we deal with natural resource-based sectors of economic activity. In these industries, a complex set of interactions and co-evolution prevails between firms producing the commodity and leading the value chain, subcontractors supplying them with machinery, equipment, services and process engineering knowhow, public sector agencies monitoring their environmental impact and local communities engaged in the exploitation of the resource. These agents interact on a daily basis giving rise to a complex set of ‘sector specific’ rules of governance which vary from country to country and from sector to sector. In this paper we look at the mining industry, that has experienced a very rapid process of change due to the dramatic expansion of demand from China, India and other economies, and to major changes in the international knowledge frontier in many different scientific and technological disciplines (e.g. geology, biotechnologies, digital and computer sciences, health sciences and engineering). These developments have induced dramatic changes in the industry and most notably in the patterns of interaction among the various agents mentioned above. A similar process of sector-specific dynamic interdependencies seems to prevail in other natural resource based sectors, such as aquaculture, forestry products and others. In this paper we present a model of these interactions and sketch out an analytical view as to how production organization takes place in the mining sector, and how these location-specific forces induce change in the industry over time. Our way of looking at these issues has strong policy implications which we briefly examine in the final pages of the paper. © 2018 Elsevier Ltd",global value chains; governance; innovation and learning; local communities; mining; natural resource management; o13; o32; o43; regulatory agencies,China; India; Chains; Environmental impact; Mining; Natural resources; Public policy; Technology transfer; Economic activities; Global value chain; Governance; Local community; Policy implications; Production organizations; Public sector agencies; Regulatory agencies; economic growth; governance approach; innovation; learning; mining industry; natural resource; Industrial economics,"C. Pietrobelli; University Roma Tre and UNU-MERIT, Italy; email: pietrobelli@merit.unu.edu",,Elsevier Ltd,,,,,,03014207,,,,English,Resour. Policy,Article,Final,,Scopus,2-s2.0-85041943379 Gopi M.; Pravin Kumar M.; Joyson Joe Jeevamani J.; Raja S.; Muruganandam R.; Deepak Samuel V.; Simon N.T.; Viswanathan C.; Abhilash K.R.; Krishnan P.; Purvaja R.; Ramesh R.,"Gopi, M. (47661118800); Pravin Kumar, M. (57211378012); Joyson Joe Jeevamani, J. (55553432400); Raja, S. (58513497900); Muruganandam, R. (57200101117); Deepak Samuel, V. (57193528913); Simon, Nina Tabitha (57211377970); Viswanathan, C. (55579330000); Abhilash, K.R. (57196482931); Krishnan, P. (34872500300); Purvaja, R. (14122450900); Ramesh, R. (7201897782)",47661118800; 57211378012; 55553432400; 58513497900; 57200101117; 57193528913; 57211377970; 55579330000; 57196482931; 34872500300; 14122450900; 7201897782,"Distribution and biodiversity of tropical saltmarshes: Tamil Nadu and Puducherry, Southeast coast of India",2019,"Estuarine, Coastal and Shelf Science",229,,106393,,,,15,10.1016/j.ecss.2019.106393,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85073697287&doi=10.1016%2fj.ecss.2019.106393&partnerID=40&md5=cddf1d7c7b1a409fa4bd4b975cc8ec80,"National Centre for Sustainable Coastal Management, Ministry of Environment, Forest and Climate Change, Anna University Campus, Chennai, 600 025, India","Gopi M., National Centre for Sustainable Coastal Management, Ministry of Environment, Forest and Climate Change, Anna University Campus, Chennai, 600 025, India; Pravin Kumar M., National Centre for Sustainable Coastal Management, Ministry of Environment, Forest and Climate Change, Anna University Campus, Chennai, 600 025, India; Joyson Joe Jeevamani J., National Centre for Sustainable Coastal Management, Ministry of Environment, Forest and Climate Change, Anna University Campus, Chennai, 600 025, India; Raja S., National Centre for Sustainable Coastal Management, Ministry of Environment, Forest and Climate Change, Anna University Campus, Chennai, 600 025, India; Muruganandam R., National Centre for Sustainable Coastal Management, Ministry of Environment, Forest and Climate Change, Anna University Campus, Chennai, 600 025, India; Deepak Samuel V., National Centre for Sustainable Coastal Management, Ministry of Environment, Forest and Climate Change, Anna University Campus, Chennai, 600 025, India; Simon N.T., National Centre for Sustainable Coastal Management, Ministry of Environment, Forest and Climate Change, Anna University Campus, Chennai, 600 025, India; Viswanathan C., National Centre for Sustainable Coastal Management, Ministry of Environment, Forest and Climate Change, Anna University Campus, Chennai, 600 025, India; Abhilash K.R., National Centre for Sustainable Coastal Management, Ministry of Environment, Forest and Climate Change, Anna University Campus, Chennai, 600 025, India; Krishnan P., National Centre for Sustainable Coastal Management, Ministry of Environment, Forest and Climate Change, Anna University Campus, Chennai, 600 025, India; Purvaja R., National Centre for Sustainable Coastal Management, Ministry of Environment, Forest and Climate Change, Anna University Campus, Chennai, 600 025, India; Ramesh R., National Centre for Sustainable Coastal Management, Ministry of Environment, Forest and Climate Change, Anna University Campus, Chennai, 600 025, India","Saltmarshes are an important marginal coastal ecosystem influenced by tidal movement and are created by the interaction of the halophytic vegetation and sediment trapped from inundating water. This study gives the baseline information on saltmarsh distribution and diversity along the Southeast coast of India. Saltmarsh locations were identified and mapped using satellite images of 2010 of IRS P6 LISS III (23.5 m resolution) & LISS IV (5.8 m) and LandSAT 8 OLI (30.0 m resolution). A total of 37 saltmarsh vegetation sites were identified along Tamil Nadu and one in Puducherry Union Territory. Seven species of saltmarsh flora are reported under four genera and three families: Arthrocnemum indicum (Willd.) Moq., Salicornia brachiata (Roxb), Sesuvium portulacastrum (L.), Suaeda fruticosa (Forssk), S. maritima (L.) Dumort, S. monoica (Forssk) and S. nudiflora (Moquin). The maximum benthic coverage by the saltmarsh community observed at Arucottuthurai was 93.3% and a minimum percentage cover of 28% was observed at Pazhaiyar. The biodiversity indices calculated for all study sites displayed maximum saltmarsh diversity (Shannon-Wiener H’ = 2.295 ± 0.001) at Vedaranyam and a minimum diversity (H’ = 0.759 ± 0.001) at Thirukazhipalai. A total of 23 species representing 16 fauna and seven flora were observed as associates from the saltmarsh ecosystem. Saltmarsh ecosystem provides unique breeding sites for macro fauna and roosting ground for avifauna, provide livelihood options for coastal communities and protects the integrity of coast. Rapid coastal development and aquaculture pose a major threat to this ecosystem. This study helps to protect, conserve and sustainably use this ecologically important coastal ecosystem and prepare specific management strategies by stakeholders. © 2019 Elsevier Ltd",biodeposition; density; ecological mangrove restoration; salt marsh; sesuvium portulacastrum,India; Puducherry; Arthrocnemum indicum; Salicornia brachiata; Sesuvium portulacastrum; Suaeda fruticosa; baseline conditions; biodiversity; breeding site; coastal development; Landsat; LISS; population density; saltmarsh; stakeholder; vegetation structure,"R. Ramesh; National Centre for Sustainable Coastal Management, Ministry of Environment, Forest and Climate Change, Anna University Campus, Chennai, 600 025, India; email: rramesh_au@yahoo.com",,Academic Press,,,,,,02727714,,ECSSD,,English,Estuar. Coast. Shelf Sci.,Article,Final,,Scopus,2-s2.0-85073697287 Beckensteiner J.; Kaplan D.M.; Scheld A.M.,"Beckensteiner, Jennifer (55635922900); Kaplan, David M. (7402904686); Scheld, Andrew M. (56566691000)",55635922900; 7402904686; 56566691000,Barriers to Eastern Oyster Aquaculture Expansion in Virginia,2020,Frontiers in Marine Science,7,,53,,,,17,10.3389/fmars.2020.00053,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85082721022&doi=10.3389%2ffmars.2020.00053&partnerID=40&md5=e0009792de1965ccdc63e530a91c4200,"Department of Fisheries Science, Virginia Institute of Marine Science (VIMS), William Mary, Gloucester Point, VA, United States; MARBEC, Univ. Montpellier, CNRS, IFREMER, Séte, IRD, France; Institut de Recherche pour le Développement, UMR MARBEC, Avenue Jean Monnet, Séte, France","Beckensteiner J., Department of Fisheries Science, Virginia Institute of Marine Science (VIMS), William Mary, Gloucester Point, VA, United States; Kaplan D.M., MARBEC, Univ. Montpellier, CNRS, IFREMER, Séte, IRD, France, Institut de Recherche pour le Développement, UMR MARBEC, Avenue Jean Monnet, Séte, France; Scheld A.M., Department of Fisheries Science, Virginia Institute of Marine Science (VIMS), William Mary, Gloucester Point, VA, United States","The eastern oyster once provided major societal and ecosystem benefits, but these benefits have been threatened in recent decades by large declines in oyster harvests. In many areas, recovery of oyster aquaculture faces significant societal opposition and spatial constraints limiting its ability to meet expectations regarding future food needs and provision of ecosystem services. In Virginia, oyster aquaculture has begun to expand, concurrent with an increase in subaqueous leased areas (over 130,000 acres of grounds are currently leased). Though private leases must in theory be used for oyster production, in practice, they can be held for other reasons, such as speculation or intentional exclusion of others. These factors have led to large variation over time and space in the use of leases in lower Chesapeake Bay; and privately leased grounds are now thought to be underutilized for oyster production. This research examined potential barriers to expansion of oyster aquaculture in Virginia. We first evaluated if a lack of space was limiting industry expansion and quantified temporal and spatial trends in the use and productivity of leases. Then, differences in used and non-used leases were investigated in relation to variables thought to be related to “not in my backyard” attitudes, congestion, speculation, local economic and environmental conditions. Finally, the performance of the Virginia leasing system was compared with those in other states along the U.S. East and Gulf Coasts. We found limited evidence for spatial constraints on aquaculture leasing, but strong evidence for social and regulatory inefficiencies. Although rates of lease use increased from 2006 to 2016, only 33% of leases were ever used for oyster production and about 63% of leaseholders reported no commercial harvests. Non-used leases tended to be smaller, and were found in more populated, high-income regions, consistent with both speculative and exclusionary uses. Virginia had the second lowest level of total production of cultured oysters per leased acre among the states on the East and Gulf Coasts of the United States. These results indicate that there is room for oyster aquaculture expansion in Virginia if societal, regulatory, and economic barriers can be reduced or if existing leased areas are used more efficiently. © Copyright © 2020 Beckensteiner, Kaplan and Scheld.",chesapeake bay; crassostrea virginica; oyster aquaculture; spatial management; user conflicts,,"J. Beckensteiner; Department of Fisheries Science, Virginia Institute of Marine Science (VIMS), William Mary, Gloucester Point, United States; email: jennifer.beckensteiner@gmail.com",,Frontiers Media S.A.,,,,,,22967745,,,,English,Front. Mar. Sci.,Article,Final,All Open Access; Gold Open Access; Green Open Access,Scopus,2-s2.0-85082721022 Ruiz-Salmón I.; Margallo M.; Laso J.; Villanueva-Rey P.; Mariño D.; Quinteiro P.; Dias A.C.; Nunes M.L.; Marques A.; Feijoo G.; Moreira M.T.; Loubet P.; Sonnemann G.; Morse A.; Cooney R.; Clifford E.; Rowan N.; Méndez-Paz D.; Iglesias-Parga X.; Anglada C.; Martin J.-C.; Irabien Á.; Aldaco R.,"Ruiz-Salmón, Israel (57192558311); Margallo, María (36680290500); Laso, Jara (55502006900); Villanueva-Rey, Pedro (54894377200); Mariño, Dolores (57215188828); Quinteiro, Paula (53980437300); Dias, Ana Cláudia (36190593500); Nunes, Maria Leonor (7102001997); Marques, António (7202134386); Feijoo, Gumersindo (7003967670); Moreira, María Teresa (26424779900); Loubet, Philippe (55970576400); Sonnemann, Guido (7003498715); Morse, Andy (57193065464); Cooney, Ronan (57221583513); Clifford, Eoghan (7007184321); Rowan, Neil (7003359895); Méndez-Paz, Diego (24468642100); Iglesias-Parga, Xesús (57215201159); Anglada, Clémentine (57215194522); Martin, Jean-Christophe (56909155200); Irabien, Ángel (7003361364); Aldaco, Rubén (8855450500)",57192558311; 36680290500; 55502006900; 54894377200; 57215188828; 53980437300; 36190593500; 7102001997; 7202134386; 7003967670; 26424779900; 55970576400; 7003498715; 57193065464; 57221583513; 7007184321; 7003359895; 24468642100; 57215201159; 57215194522; 56909155200; 7003361364; 8855450500,Addressing challenges and opportunities of the European seafood sector under a circular economy framework,2020,Current Opinion in Environmental Science and Health,13,,,101,106,5,58,10.1016/j.coesh.2020.01.004,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85080052853&doi=10.1016%2fj.coesh.2020.01.004&partnerID=40&md5=b5ed1daf5791974c4ecc95dd4b062995,"Departamento de Ingenierías Química y Biomolecular, Universidad de Cantabria, Avda. de Los Castros, s.n., Santander, 39005, Spain; EnergyLab, Fonte das Abelleiras s/n, Campus Universidad de Vigo, Vigo, 36310, Galicia, Spain; Centre for Environmental and Marine Studies (CESAM), Department of Environment and Planning, University of Aveiro, Campus Universitário de Santiago, Aveiro, 3810-193, Portugal; Centro Interdisciplinar de Investigação Marinha e Ambiental, Terminal de Cruzeiros do Porto de Leixões, Avenida General Norton de Matos, S/N, Matosinhos, 4450-208, Portugal; Instituto Português do Mar e da Atmosfera (IPMA), Divisão de Aquacultura, Valorização e Bioprospeção, Avenida Doutor Alfredo Magalhães Ramalho 6, Lisboa, 1495-165, Portugal; Department of Chemical Engineering, Institute of Technology, Universidade de Santiago de Compostela, Santiago de Compostela, 15782, Galicia, Spain; Univ. Bordeaux, CNRS, Bordeaux INP, ISM, UMR 5255, Talence, F-33400, France; Department of Geography and Planning, School of Environmental Sciences, University of Liverpool, Liverpool, United Kingdom; College of Engineering and Science, National University of Ireland, Galway, H91 HX31, Ireland; Ryan Institute, NUI Galway, Ireland; Bioscience Research Institute, Athlone Institute of Technology, Ireland; ANFACO-CECOPESCA, Ctra. Colexio Universitario, 16. 36310, Vigo, Spain; VertigoLab, Darwin Ecosystème, 87 Quai de Queyries, Bordeaux, 33100, France","Ruiz-Salmón I., Departamento de Ingenierías Química y Biomolecular, Universidad de Cantabria, Avda. de Los Castros, s.n., Santander, 39005, Spain; Margallo M., Departamento de Ingenierías Química y Biomolecular, Universidad de Cantabria, Avda. de Los Castros, s.n., Santander, 39005, Spain; Laso J., Departamento de Ingenierías Química y Biomolecular, Universidad de Cantabria, Avda. de Los Castros, s.n., Santander, 39005, Spain; Villanueva-Rey P., EnergyLab, Fonte das Abelleiras s/n, Campus Universidad de Vigo, Vigo, 36310, Galicia, Spain; Mariño D., EnergyLab, Fonte das Abelleiras s/n, Campus Universidad de Vigo, Vigo, 36310, Galicia, Spain; Quinteiro P., Centre for Environmental and Marine Studies (CESAM), Department of Environment and Planning, University of Aveiro, Campus Universitário de Santiago, Aveiro, 3810-193, Portugal; Dias A.C., Centre for Environmental and Marine Studies (CESAM), Department of Environment and Planning, University of Aveiro, Campus Universitário de Santiago, Aveiro, 3810-193, Portugal; Nunes M.L., Centro Interdisciplinar de Investigação Marinha e Ambiental, Terminal de Cruzeiros do Porto de Leixões, Avenida General Norton de Matos, S/N, Matosinhos, 4450-208, Portugal; Marques A., Centro Interdisciplinar de Investigação Marinha e Ambiental, Terminal de Cruzeiros do Porto de Leixões, Avenida General Norton de Matos, S/N, Matosinhos, 4450-208, Portugal, Instituto Português do Mar e da Atmosfera (IPMA), Divisão de Aquacultura, Valorização e Bioprospeção, Avenida Doutor Alfredo Magalhães Ramalho 6, Lisboa, 1495-165, Portugal; Feijoo G., Department of Chemical Engineering, Institute of Technology, Universidade de Santiago de Compostela, Santiago de Compostela, 15782, Galicia, Spain; Moreira M.T., Department of Chemical Engineering, Institute of Technology, Universidade de Santiago de Compostela, Santiago de Compostela, 15782, Galicia, Spain; Loubet P., Univ. Bordeaux, CNRS, Bordeaux INP, ISM, UMR 5255, Talence, F-33400, France; Sonnemann G., Univ. Bordeaux, CNRS, Bordeaux INP, ISM, UMR 5255, Talence, F-33400, France; Morse A., Department of Geography and Planning, School of Environmental Sciences, University of Liverpool, Liverpool, United Kingdom; Cooney R., College of Engineering and Science, National University of Ireland, Galway, H91 HX31, Ireland, Ryan Institute, NUI Galway, Ireland; Clifford E., College of Engineering and Science, National University of Ireland, Galway, H91 HX31, Ireland, Ryan Institute, NUI Galway, Ireland; Rowan N., Bioscience Research Institute, Athlone Institute of Technology, Ireland; Méndez-Paz D., ANFACO-CECOPESCA, Ctra. Colexio Universitario, 16. 36310, Vigo, Spain; Iglesias-Parga X., ANFACO-CECOPESCA, Ctra. Colexio Universitario, 16. 36310, Vigo, Spain; Anglada C., VertigoLab, Darwin Ecosystème, 87 Quai de Queyries, Bordeaux, 33100, France; Martin J.-C., VertigoLab, Darwin Ecosystème, 87 Quai de Queyries, Bordeaux, 33100, France; Irabien Á., Departamento de Ingenierías Química y Biomolecular, Universidad de Cantabria, Avda. de Los Castros, s.n., Santander, 39005, Spain; Aldaco R., Departamento de Ingenierías Química y Biomolecular, Universidad de Cantabria, Avda. de Los Castros, s.n., Santander, 39005, Spain","The European seafood and aquaculture sectors are facing important challenges in terms of environmental threats (climate change, marine debris, resources depletion), social development (worker rights, consumer's awareness) or economic growth (market and nonmarket goods and services, global competitiveness). These issues are forcing all stakeholders, from policy-makers to citizens and industries, to move to more sustainable policies, practices and processes. Consequently, an improvement in collaborations among different parties and beyond borders is required to create more efficient networks along the supply chain of seafood and aquaculture sectors. To achieve this, a “nexus thinking” approach (i.e. the analysis of actions in connected systems) combined with a life cycle thinking appears as an excellent opportunity to facilitate the transition to a circular economy. © 2020 Elsevier B.V.",aquaculture; circular economy; climate change; lca; seafood,,"I. Ruiz-Salmón; Departamento de Ingenierías Química y Biomolecular, Universidad de Cantabria, Santander, Avda. de Los Castros, s.n., 39005, Spain; email: israel.ruizsalmon@unican.es",,Elsevier B.V.,,,,,,24685844,,,,English,Curr. Opin. Environ. Sci. Health,Article,Final,All Open Access; Green Open Access,Scopus,2-s2.0-85080052853 Cameron C.; Hutley L.B.; Friess D.A.; Brown B.,"Cameron, Clint (57195461517); Hutley, Lindsay B. (6603665346); Friess, Daniel A. (52263575800); Brown, Benjamin (56420364800)",57195461517; 6603665346; 52263575800; 56420364800,"Community structure dynamics and carbon stock change of rehabilitated mangrove forests in Sulawesi, Indonesia",2019,Ecological Applications,29,1,e01810,,,,59,10.1002/eap.1810,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85059343584&doi=10.1002%2feap.1810&partnerID=40&md5=89640490b1f137a2c551cb8fc0b621e0,"Research Institute for the Environment and Livelihoods, Charles Darwin University, Darwin, NT, Australia; Department of Geography, National University of Singapore, 1 Arts Link, Singapore, 117570, Singapore; Yayasan Hutan Biru (Blue Forests), Makassar, Indonesia","Cameron C., Research Institute for the Environment and Livelihoods, Charles Darwin University, Darwin, NT, Australia; Hutley L.B., Research Institute for the Environment and Livelihoods, Charles Darwin University, Darwin, NT, Australia; Friess D.A., Department of Geography, National University of Singapore, 1 Arts Link, Singapore, 117570, Singapore; Brown B., Research Institute for the Environment and Livelihoods, Charles Darwin University, Darwin, NT, Australia, Yayasan Hutan Biru (Blue Forests), Makassar, Indonesia","To date, discourse associated with the potential application of “blue carbon” within real-world carbon markets has focused on blue carbon as a mitigation strategy in the context of avoided deforestation (e.g., REDD+). Here, we report structural dynamics and carbon storage gains from mangrove sites that have undergone rehabilitation to ascertain whether reforestation can complement conservation activities and warrant project investment. Replicated sites at two locations with contrasting geomorphic conditions were selected, Tiwoho and Tanakeke on the island of Sulawesi, Indonesia. These locations are representative of high (Tiwoho, deep muds and silty substrates) and low (Tanakeke, shallow, coralline sands) productivity mangrove ecosystems. They share a similar management history of clearing and conversion for aquaculture before restorative activities were undertaken using the practice of Ecological Mangrove Rehabilitation (EMR). Species diversity and mean biomass carbon storage gains after 10 yr of regrowth from the high productivity sites of Tiwoho (49.2 ± 9.1 Mg C·ha −1 ·yr −1 ) are already almost of one-third of mean biomass stocks exhibited by mature forests (167.8 ± 30.3 Mg C·ha −1 ·yr −1 ). Tiwoho's EMR sites, on average, will have offset all biomass C that was initially lost through conversion within the next 11 yr, a finding in marked contrast to the minimal carbon gains observed on the low productivity, low diversity, coral atoll EMR sites of Tanakeke (1.1 ± 0.4 Mg C·ha −1 ·yr −1 ). These findings highlight the importance of geomorphic and biophysical site selection if the primary purpose of EMR is intended to maximize carbon sequestration gains. © 2018 by the Ecological Society of America",aquaculture; carbon sequestration; geomorphology; land use and land cover change; mangroves; rehabilitation,Biomass; Carbon; Conservation of Natural Resources; Ecosystem; Forests; Indonesia; Wetlands; Greater Sunda Islands; Sulawesi; Sunda Isles; Anthozoa; Rhizophoraceae; carbon; aquaculture; biomass; carbon emission; community dynamics; community structure; conservation management; deforestation; emission control; environmental economics; geomorphology; investment; land cover; land use change; mangrove; mitigation; pond; restoration ecology; species diversity; biomass; ecosystem; environmental protection; forest; Indonesia; wetland,"C. Cameron; Research Institute for the Environment and Livelihoods, Charles Darwin University, Darwin, Australia; email: clint.cameron@cdu.edu.au",,Ecological Society of America,,,,,,19395582,,ECAPE,30475412,English,Ecol. Appl.,Article,Final,,Scopus,2-s2.0-85059343584 Fatimah I.N.; Iskandar J.; Partasasmita R.,"Fatimah, Iik Nurul (57218893325); Iskandar, Johan (56445737300); Partasasmita, Ruhyat (57151396600)",57218893325; 56445737300; 57151396600,"Ethnoecology of paddy-fish integrative farming (Minapadi) in lampegan village, west java, indonesia",2020,Biodiversitas,21,9,,4419,4432,13,9,10.13057/biodiv/d210961,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85090626882&doi=10.13057%2fbiodiv%2fd210961&partnerID=40&md5=6b35736f4feb077705759ae621a15912,"Biology Graduate Program, Faculty of Mathematics and Natural Sciences, Universitas Padjajaran, Jl. Raya Bandung-Sumedang Km 21, Jatinangor, Sumedang, 45363, West Java, Indonesia; Department of Biology, Faculty of Mathematics and Natural Sciences, Universitas Padjajaran, Jl. Raya Bandung-Sumedang Km 21, Jatinangor, Sumedang, 45363, West Java, Indonesia","Fatimah I.N., Biology Graduate Program, Faculty of Mathematics and Natural Sciences, Universitas Padjajaran, Jl. Raya Bandung-Sumedang Km 21, Jatinangor, Sumedang, 45363, West Java, Indonesia; Iskandar J., Department of Biology, Faculty of Mathematics and Natural Sciences, Universitas Padjajaran, Jl. Raya Bandung-Sumedang Km 21, Jatinangor, Sumedang, 45363, West Java, Indonesia; Partasasmita R., Department of Biology, Faculty of Mathematics and Natural Sciences, Universitas Padjajaran, Jl. Raya Bandung-Sumedang Km 21, Jatinangor, Sumedang, 45363, West Java, Indonesia","In the past, the traditional paddy-fish integrative farming (minapadi) was predominantly undertaken by rice farmers in West Java, particularly in the water abundant areas. Currently, however, the practice of the rice-fish system has been dramatically reduced due to the Green Revolution programs, including water pollution that may have affected fish farming in paddy fields. Although the rice-fish systems have rarely been practiced in West Java villages, some farmer groups of Lampegan Village, Ibun Sub-district, Bandung District are still practicing the rice-fish farming system. The purpose of this study is to collect and document the traditional ecological knowledge (TEK) of Lampegan Village about the rice-fish system farming managements, including data on various fish species that are widely cultivated in the community, cultural practices of the rice-fish farming management, and benefits of the rice-fish farming system. A combination of qualitative and quantitative methods was used, with an ethnoecological approach. Techniques of data collection, such as observation, semi-structured interviews, or deep interviews, and structured interviews were employed in this study. The results of the study show that the farmers of the rice-fish farming in Lampegan Village, Bandung District own rich and deep knowledge of fish species and practice of the minapadi system. The TEK of the rice-fish farming management system has been inherited from ancestors and is mixed with western scientific knowledge. The rice-fish farming systems have provided some ecological and socio-economic benefits for village people. © 2020, Society for Indonesian Biodiversity. All rights reserved.",ethnoecology; fish species; rice-fish farming management; tek; west java,,"R. Partasasmita; Department of Biology, Faculty of Mathematics and Natural Sciences, Universitas Padjajaran, Sumedang, Jl. Raya Bandung-Sumedang Km 21, Jatinangor, 45363, Indonesia; email: ruhyat.partasasmita@unpad.ac.id",,Society for Indonesian Biodiversity,,,,,,1412033X,,,,English,Biodiversitas,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85090626882 Keiner C.,"Keiner, Christine (8755437000)",8755437000,"The maryland oyster aquaculture transition: Balancing economics, ecology, and equity",2019,Southeastern Geographer,59,1,,40,51,11,0,10.1353/sgo.2019.0004,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85062822517&doi=10.1353%2fsgo.2019.0004&partnerID=40&md5=d94329aefaf79c0958b3d3c56391d674,"Science, Technology, and Society Department, Rochester Institute of Technology, United States","Keiner C., Science, Technology, and Society Department, Rochester Institute of Technology, United States","During the past decade, policies designed to maximize human control over the production of oysters have led to a paradigm shift in the Maryland Chesapeake oyster fishery. Maryland has a long history of resisting corporate and scientific calls to privatize its oyster beds for capital-intensive, science-based aquaculture. Instead, it dealt with declining yields by developing publicly-funded replenishment activities and county-based commons regimes that enabled many watermen to maintain their livelihood for eight decades. However, the changes of 2009-10 have challenged that system by incentivizing entrepreneurial aquafarming and closing more of the bay’s remaining oyster bars to harvesting. This essay reviews some aspects of the current debate over managing Chesapeake oysters for economic versus ecological purposes in Maryland as well as its southern neighbor. While Virginia possesses a much longer tradition of cultivating shellfish on a private basis, it too is under pressure to complete the transition away from “wild oysters,” a problematic concept and process. This so-called inevitable transformation merits deeper historical contextualization and attention to issues of socioeconomic and racial equity. © 2019, University of North Carolina Press. All rights reserved.",chesapeake bay; cultural heritage; social-ecological systems; sustainability; watermen,Chesapeake Bay; Maryland; United States; Ostreidae; cultural heritage; food production; livelihood; oyster culture; sustainability,"C. Keiner; Science, Technology, and Society Department, Rochester Institute of Technology, United States; email: cmkgsh@rit.edu",,University of North Carolina Press,,,,,,0038366X,,,,English,Southeast. Geogr.,Article,Final,,Scopus,2-s2.0-85062822517 Babar A.G.; Jayawant M.S.; Pawar S.P.,"Babar, Atul Govardhan (55353855300); Jayawant, Madhura Shirish (57203112807); Pawar, Satish Prakash (57203119694)",55353855300; 57203112807; 57203119694,"Nutritional profile of the freshwater edible Bivalve Lamellidens corrianus (Lea 1834) and its relation to water quality in the Bhatsa River, India",2017,Asian Fisheries Science,30,2,,52,69,17,4,,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85050570481&partnerID=40&md5=0ada6051afc62fbdae55324b3edba9b5,"Department of Zoology, Institute of Science, 15 Madam Cama Road, Mumbai, Maharashtra, India; Department of Environmental Science, Institute of Science, Mumbai, Maharashtra, India; Society for Health of Ocean Resources and Environment, Thane, Vasind, Maharashtra, India; Department of Zoology, Veer Wajekar Arts, Science and Commerce College, Phunde, Raigad, Uran, Maharashtra, India","Babar A.G., Department of Zoology, Institute of Science, 15 Madam Cama Road, Mumbai, Maharashtra, India, Society for Health of Ocean Resources and Environment, Thane, Vasind, Maharashtra, India, Department of Zoology, Veer Wajekar Arts, Science and Commerce College, Phunde, Raigad, Uran, Maharashtra, India; Jayawant M.S., Department of Environmental Science, Institute of Science, Mumbai, Maharashtra, India; Pawar S.P., Department of Environmental Science, Institute of Science, Mumbai, Maharashtra, India","Freshwater bivalve aquaculture is promoted by many fisheries management agencies as an alternative livelihood option for rural fishing communities in tropical developing countries. This study examined the nutritional profile of an edible bivalve Lamellidens corrianus (Lea 1834) and the water quality of its habitat in the Bhatsa River at sampling sites in Vasind and Koshimbi villages. Total length-wet weight and total length-dry weight data of animals collected from Koshimbi showed strong positive allometric relationships. The average moisture content of L. corrianus from Vasind and Koshimbi was estimated as 75.6±7.6 % and 77.7±4.7 %, meat yield 26.5±3.1 % and 24.9±0.5 % and condition index 8±3.5 and 5.7±2.2, respectively. Condition index of L. corrianus revealed significant positive correlation with dissolved oxygen and pH and negative correlation with conductivity, nitrate content, turbidity and total dissolved solids. Nutritional analysis of dry tissues (foot, gill and adductor muscle) of two different size groups (3.0–6.0 cm and 6.1–9.0 cm) showed they contain a high percentage of proteins followed by carbohydrates and lipids. Caloric content was found to be high in gills (2.31–4.43 Kcal.g-1). Thus, aquaculture of L. corrianus can be promoted in Bhatsa River as a good alternate food source to fulfill the nutritional needs of local communities. © Asian Fisheries Society.",bivalve; caloric content; condition index; length weight relationship; nutritional contents,India; bivalve; freshwater ecosystem; nutrition; shellfish culture; water quality; body condition; edible species; length-weight relationship; nutritive value,"A.G. Babar; Department of Zoology, Institute of Science, Mumbai, 15 Madam Cama Road, India; email: babaratul_g@yahoo.co.in","Gopal N.; Central Institute of Fisheries Technology (CIFT), Matsyapuri P.O., Cochin, Kerala; Williams M.J.; 17 Agnew Street, Aspley, QLD; Porter M.; Kusakabe K.; Asian Institute of Technology, School of Environment, Resources and Development, P.O. Box 4, Klong Luang, Pathumthani; Choo P.S.; 147 Cangkat Delima Satu, Island Glades, Penang",Asian Fisheries Society,,,,,,01166514,,,,English,Asian Fish. Sci.,Article,Final,,Scopus,2-s2.0-85050570481 Andréfouët S.; Van Wynsberge S.; Kabbadj L.; Wabnitz C.C.C.; Menkes C.; Tamata T.; Pahuatini M.; Tetairekie I.; Teaka I.; Scha T.A.; Teaka T.; Remoissenet G.,"Andréfouët, Serge (57204298997); Van Wynsberge, Simon (55316943200); Kabbadj, Lina (57193933360); Wabnitz, Colette C.C. (6506527945); Menkes, Christophe (7102890924); Tamata, Thierry (57193930318); Pahuatini, Michel (57193931919); Tetairekie, Iotefa (57193924997); Teaka, Iosua (57193931819); Scha, Teiki Ah (57193933413); Teaka, Taihopu (57193933634); Remoissenet, Georges (9734099600)",57204298997; 55316943200; 57193933360; 6506527945; 7102890924; 57193930318; 57193931919; 57193924997; 57193931819; 57193933413; 57193933634; 9734099600,Adaptive management for the sustainable exploitation of lagoon resources in remote islands: Lessons from a massive El Niño-induced giant clam bleaching event in the Tuamotu atolls (French Polynesia),2018,Environmental Conservation,45,1,,30,40,10,27,10.1017/S0376892917000212,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85017547262&doi=10.1017%2fS0376892917000212&partnerID=40&md5=9bd367ec3fb0d4d1e05eb0ad35c278f9,"Institut de Recherche pour le Développement, UMR 9220 ENTROPIE, Université de la Réunion, Centre National de la Recherche Scientifique, B.P.A5, Nouméa, 98848, New Caledonia; Institut de Recherche pour le Développement, UMR 9220 ENTROPIE, Université de la Réunion, Centre National de la Recherche Scientifique, BP529 Arue, Papeete, Tahiti, 98713, French Polynesia; Changing Ocean Research Unit, Institute for the Oceans and Fisheries, University of British Columbia, AERL, 2202 Main Mall, Vancouver, V6T 1Z4, BC, Canada; Pacific Community (SPC), 95 Promenade Roger Laroque, Nouméa, 98848, New Caledonia; Laboratoire d'Oceanographie et du Climat: Experimentations et Approches Numeriques, Sorbonne Universités, UPMC Université Paris 06, IPSL, UMR CNRS/IRD/MNHN, B.P.A5, Nouméa, 98848, New Caledonia; Direction des Ressources Marines et Minières, Fare Ute, BP 20, Papeete, Tahiti, 98713, French Polynesia; Fishery and Aquaculture of Giant Clams, Management Committee of Giant Clams, Reao, 98779, French Polynesia; Town, Management Committee of Giant Clams, Reao, 98779, French Polynesia","Andréfouët S., Institut de Recherche pour le Développement, UMR 9220 ENTROPIE, Université de la Réunion, Centre National de la Recherche Scientifique, B.P.A5, Nouméa, 98848, New Caledonia; Van Wynsberge S., Institut de Recherche pour le Développement, UMR 9220 ENTROPIE, Université de la Réunion, Centre National de la Recherche Scientifique, BP529 Arue, Papeete, Tahiti, 98713, French Polynesia; Kabbadj L., Institut de Recherche pour le Développement, UMR 9220 ENTROPIE, Université de la Réunion, Centre National de la Recherche Scientifique, BP529 Arue, Papeete, Tahiti, 98713, French Polynesia; Wabnitz C.C.C., Changing Ocean Research Unit, Institute for the Oceans and Fisheries, University of British Columbia, AERL, 2202 Main Mall, Vancouver, V6T 1Z4, BC, Canada, Pacific Community (SPC), 95 Promenade Roger Laroque, Nouméa, 98848, New Caledonia; Menkes C., Laboratoire d'Oceanographie et du Climat: Experimentations et Approches Numeriques, Sorbonne Universités, UPMC Université Paris 06, IPSL, UMR CNRS/IRD/MNHN, B.P.A5, Nouméa, 98848, New Caledonia; Tamata T., Direction des Ressources Marines et Minières, Fare Ute, BP 20, Papeete, Tahiti, 98713, French Polynesia; Pahuatini M., Fishery and Aquaculture of Giant Clams, Management Committee of Giant Clams, Reao, 98779, French Polynesia; Tetairekie I., Fishery and Aquaculture of Giant Clams, Management Committee of Giant Clams, Reao, 98779, French Polynesia; Teaka I., Fishery and Aquaculture of Giant Clams, Management Committee of Giant Clams, Reao, 98779, French Polynesia; Scha T.A., Town, Management Committee of Giant Clams, Reao, 98779, French Polynesia; Teaka T., Town, Management Committee of Giant Clams, Reao, 98779, French Polynesia; Remoissenet G., Direction des Ressources Marines et Minières, Fare Ute, BP 20, Papeete, Tahiti, 98713, French Polynesia","Small-scale mariculture of high-value species for trade in remote islands can offer valuable alternative livelihoods to local communities. The endangered giant clam species Tridacna maxima is naturally abundant in some atolls in French Polynesia (FP) and has been the focus of commercial mariculture activities since 2012. Shortly after spat collectors became operational in two atoll lagoons, FP rose to become one of the main exporters of giant clams for the aquarium trade. However, this activity has been threatened recently by a mass clam-bleaching event triggered by the 2015-2016 El Niño. This study reviews the roles that international (Convention on International Trade in Endangered Species of Wild Fauna and Flora) and national regulatory frameworks play in the development of this activity in a small island context, and how they can indirectly promote better science and monitoring in order to inform adaptive management strategies. The links between the nine main groups of stakeholders show the necessary adaptation measures required to mitigate climate-driven mortalities. While this case study remains specific to giant clam farming in FP, general lessons are provided that could help in mitigating economic impacts from climate-related events on other islands. Copyright © Foundation for Environmental Conservation 2017.",cites; climate change; coral reef; mariculture; marine policy; tridacna maxima,Tuamotu Archipelago; Anthozoa; Bivalvia; Tridacna maxima; Bleaching; Cleaning; Climate change; Commerce; Conservation; International trade; Marine biology; Nickel; Shellfish; CITES; Coral reef; mariculture; Marine policy; Tridacna; adaptive management; bivalve; bleaching; conservation management; El Nino; exploitation; human activity; induced response; island biogeography; lagoon; regulatory approach; stakeholder; sustainability; Molluscs,"S. Andréfouët; Institut de Recherche pour le Développement, UMR 9220 ENTROPIE, Université de la Réunion, Centre National de la Recherche Scientifique, Nouméa, B.P.A5, 98848, New Caledonia; email: serge.andrefouet@ird.fr",,Cambridge University Press,,,,,,03768929,,EVCNA,,English,Environ. Conserv.,Article,Final,,Scopus,2-s2.0-85017547262 Gephart J.A.; Deutsch L.; Pace M.L.; Troell M.; Seekell D.A.,"Gephart, Jessica A. (55811795300); Deutsch, Lisa (36872981000); Pace, Michael L. (57203077274); Troell, Max (6701524165); Seekell, David A. (36671917300)",55811795300; 36872981000; 57203077274; 6701524165; 36671917300,"Shocks to fish production: Identification, trends, and consequences",2017,Global Environmental Change,42,,,24,32,8,83,10.1016/j.gloenvcha.2016.11.003,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84998977760&doi=10.1016%2fj.gloenvcha.2016.11.003&partnerID=40&md5=f1fff2361106fbe428f1477a8908e90e,"Department of Environmental Sciences, University of Virginia, Charlottesville, VA, United States; Stockholm Resilience Centre, Stockholm University, Stockholm, Sweden; Beijer Institute for Ecological Economics, Royal Swedish Academy of Sciences, Stockholm, Sweden; Department of Ecology and Environmental Science, Umeå University, Umeå, Sweden; Climate Impacts Research Centre, Umeå University, Abisko, Sweden; Arctic Research Centre, Umeå University, Umeå, Sweden","Gephart J.A., Department of Environmental Sciences, University of Virginia, Charlottesville, VA, United States; Deutsch L., Stockholm Resilience Centre, Stockholm University, Stockholm, Sweden; Pace M.L., Department of Environmental Sciences, University of Virginia, Charlottesville, VA, United States; Troell M., Stockholm Resilience Centre, Stockholm University, Stockholm, Sweden, Beijer Institute for Ecological Economics, Royal Swedish Academy of Sciences, Stockholm, Sweden; Seekell D.A., Department of Ecology and Environmental Science, Umeå University, Umeå, Sweden, Climate Impacts Research Centre, Umeå University, Abisko, Sweden, Arctic Research Centre, Umeå University, Umeå, Sweden","Sudden disruptions, or shocks, to food production can adversely impact access to and trade of food commodities. Seafood is the most traded food commodity and is globally important to human nutrition. The seafood production and trade system is exposed to a variety of disruptions including fishery collapses, natural disasters, oil spills, policy changes, and aquaculture disease outbreaks, aquafeed resource access and price spikes. The patterns and trends of these shocks to fisheries and aquaculture are poorly characterized and this limits the ability to generalize or predict responses to political, economic, and environmental changes. We applied a statistical shock detection approach to historic fisheries and aquaculture data to identify shocks over the period 1976–2011. A complementary case study approach was used to identify possible key social and political dynamics related to these shocks. The lack of a trend in the frequency or magnitude of the identified shocks and the range of identified causes suggest shocks are a common feature of these systems which occur due to a variety, and often multiple and simultaneous, causes. Shocks occurred most frequently in the Caribbean and Central America, the Middle East and North Africa, and South America, while the largest magnitude shocks occurred in Asia, Europe, and Africa. Shocks also occurred more frequently in aquaculture systems than in capture systems, particularly in recent years. In response to shocks, countries tend to increase imports and experience decreases in supply. The specific combination of changes in trade and supply are context specific, which is highlighted through four case studies. Historical examples of shocks considered in this study can inform policy for responding to shocks and identify potential risks and opportunities to build resilience in the global food system. © 2016 The Authors",fisheries; food security; food system; resilience; shocks; trade,Asia; Central America; Europe; Middle East; North Africa; South America; commodity market; ecosystem resilience; fishery production; food market; food production; food security; identification key; integrated approach; seafood; trade organization; trend analysis,"J.A. Gephart; National Socio-Environmental Synthesis Center, Annapolis, 1 Park Pl Suite 300, 21401, United States; email: jgephart@sesync.org",,Elsevier Ltd,,,,,,09593780,,GECHE,,English,Global Environ. Change,Article,Final,All Open Access; Green Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-84998977760 San Martin V.A.; Vasquez Lavín F.; Ponce Oliva R.D.; Lerdón X.P.; Rivera A.; Sarramalera L.; Gelcich S.,"San Martin, Valeska A. (36987633600); Vasquez Lavín, Felipe (47161763000); Ponce Oliva, Roberto D. (57190574379); Lerdón, Ximena Paz (57213187831); Rivera, Antonella (56028545900); Sarramalera, Leticia (57213190829); Gelcich, Stefan (8563637100)",36987633600; 47161763000; 57190574379; 57213187831; 56028545900; 57213190829; 8563637100,Exploring the adaptive capacity of the mussel mariculture industry in Chile,2020,Aquaculture,519,,734856,,,,7,10.1016/j.aquaculture.2019.734856,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85077701705&doi=10.1016%2fj.aquaculture.2019.734856&partnerID=40&md5=97661dfe3326f338502bd9dbaf303449,"Department of Economics, Universidad de Concepcion, Concepcion, Chile; School of Economics and Business, Universidad del Desarrollo, Concepcion, Chile; Center for the Study of Multiple-Drivers on Marine Socio-Ecological Systems (MUSELS), Universidad de Concepción, Concepción, Chile; Center of Applied Ecology and Sustainability (CAPES), Pontificia Universidad Católica de Chile, Santiago, Chile; Millennium Nucleus Center for the Socioeconomic Impact of Environmental Policies (CESIEP), Chile; Department of Economic and Finance, School of Business Sciences, Bío-Bío University, Concepción, Chile; The Coral Reef Alliance, 1330 Broadway, Suite 600, Oakland, 94612, CA, United States","San Martin V.A., Department of Economics, Universidad de Concepcion, Concepcion, Chile, Center for the Study of Multiple-Drivers on Marine Socio-Ecological Systems (MUSELS), Universidad de Concepción, Concepción, Chile; Vasquez Lavín F., School of Economics and Business, Universidad del Desarrollo, Concepcion, Chile, Center for the Study of Multiple-Drivers on Marine Socio-Ecological Systems (MUSELS), Universidad de Concepción, Concepción, Chile, Center of Applied Ecology and Sustainability (CAPES), Pontificia Universidad Católica de Chile, Santiago, Chile, Millennium Nucleus Center for the Socioeconomic Impact of Environmental Policies (CESIEP), Chile; Ponce Oliva R.D., School of Economics and Business, Universidad del Desarrollo, Concepcion, Chile, Center for the Study of Multiple-Drivers on Marine Socio-Ecological Systems (MUSELS), Universidad de Concepción, Concepción, Chile, Center of Applied Ecology and Sustainability (CAPES), Pontificia Universidad Católica de Chile, Santiago, Chile; Lerdón X.P., Department of Economic and Finance, School of Business Sciences, Bío-Bío University, Concepción, Chile; Rivera A., Center of Applied Ecology and Sustainability (CAPES), Pontificia Universidad Católica de Chile, Santiago, Chile, The Coral Reef Alliance, 1330 Broadway, Suite 600, Oakland, 94612, CA, United States; Sarramalera L., Center for the Study of Multiple-Drivers on Marine Socio-Ecological Systems (MUSELS), Universidad de Concepción, Concepción, Chile, Center of Applied Ecology and Sustainability (CAPES), Pontificia Universidad Católica de Chile, Santiago, Chile; Gelcich S., Center for the Study of Multiple-Drivers on Marine Socio-Ecological Systems (MUSELS), Universidad de Concepción, Concepción, Chile, Center of Applied Ecology and Sustainability (CAPES), Pontificia Universidad Católica de Chile, Santiago, Chile, Millennium Nucleus Center for the Socioeconomic Impact of Environmental Policies (CESIEP), Chile","Societies have adapted to climate and environmental variability throughout history. However, projected climate change poses multiple risks to mariculture because of the increased frequency of environmental threats that lie outside the realm of present day experience. Adaptive capacity evaluated in this study is a characteristic that would reflect mariculture industries ability to anticipate and respond to these changes, and to minimize, cope with, and recover from the consequences and take advantage of new opportunities arising from change. Drawing on a survey to 90 mussel mariculture companies in Chiloe-Chile, we have characterized the way the industry has adapted and recovered from specific stressors in productive capacity, namely; reduced mussel growth rates and reduced larval supply. We additionally assess determinants of the mussel industry's willingness to invest in building capacity to anticipate changes through analysing mussel aquaculture companies' assets to draw upon in times of need (capital; access to credit), the flexibility to change strategies, the companies' perception of the industry's social organization to act collectively (social capital), and their response to hypothetical scenarios regarding shocks in productive capacity. Results show heterogeneity in production decisions when facing environmental stressors. Results also show that the industry adapts in heterogeneous ways and that financial assets and social capital drive willingness to invest in adaptive capacity. Understanding past adaptation strategies and the willingness of the industry to invest in anticipating stressors allows us to begin exploring the consequences of new stressors. Importantly, as Chile and other countries are developing adaptation plans to face the multiple stressors of climate change, information about stakeholders' existing adaptation strategies and their determinants is becoming a critical bottleneck to inform these processes and assure they are in line with stakeholder needs and interest. While we use the Chilean mussel industry as a working example, the approach presented can inform other countries/regions wishing to explore the adaptive capacity of their aquaculture sectors. © 2019 Elsevier B.V.",aquaculture; climate change; contingent behaviour; environmental sustainability; human dimension; vulnerability,Chile; adaptive management; aquaculture production; climate change; contingent valuation; mariculture; mussel culture; social capital; social organization; stakeholder; vulnerability,"V.A. San Martin; Department of Economics, Universidad de Concepcion, Concepcion, Chile; email: valezkasanmartin@gmail.com",,Elsevier B.V.,,,,,,00448486,,AQCLA,,English,Aquaculture,Article,Final,,Scopus,2-s2.0-85077701705 Guyondet T.; Patanasatienkul T.; Comeau L.A.; Landry T.; Davidson J.,"Guyondet, Thomas (8981261800); Patanasatienkul, Thitiwan (55848596900); Comeau, Luc A. (7003370849); Landry, Thomas (7003318128); Davidson, Jeff (7403933125)",8981261800; 55848596900; 7003370849; 7003318128; 7403933125,Preliminary model of tunicate infestation impacts on seston availability and organic sedimentation in longline mussel farms,2016,Aquaculture,465,,,387,394,7,7,10.1016/j.aquaculture.2016.09.026,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84988515816&doi=10.1016%2fj.aquaculture.2016.09.026&partnerID=40&md5=d84f35157c4f3fbde81b2c974a1691c7,"Department of Fisheries and Oceans, Gulf Fisheries Centre, Science Branch, 343 Université Avenue, P.O. Box 5030, Moncton, E1C 9B6, New Brunswick, Canada; Department of Health Management, Atlantic Veterinary College, University of Prince Edward Island, 550 University Avenue, Charlottetown, C1A 4P3, Prince Edward Island, Canada","Guyondet T., Department of Fisheries and Oceans, Gulf Fisheries Centre, Science Branch, 343 Université Avenue, P.O. Box 5030, Moncton, E1C 9B6, New Brunswick, Canada; Patanasatienkul T., Department of Health Management, Atlantic Veterinary College, University of Prince Edward Island, 550 University Avenue, Charlottetown, C1A 4P3, Prince Edward Island, Canada; Comeau L.A., Department of Fisheries and Oceans, Gulf Fisheries Centre, Science Branch, 343 Université Avenue, P.O. Box 5030, Moncton, E1C 9B6, New Brunswick, Canada; Landry T., Department of Fisheries and Oceans, Gulf Fisheries Centre, Science Branch, 343 Université Avenue, P.O. Box 5030, Moncton, E1C 9B6, New Brunswick, Canada; Davidson J., Department of Health Management, Atlantic Veterinary College, University of Prince Edward Island, 550 University Avenue, Charlottetown, C1A 4P3, Prince Edward Island, Canada","The productivity of a bivalve farm is largely determined by the availability of organic seston and the level of competition for that naturally limited resource. Farm production may also be curtailed by regulatory or certification frameworks concerned with controlling biodeposition, i.e. the sedimentation of organic material. Fouling communities dominated by filter-feeding tunicates which both compete for food resources and increase biodeposition levels thus have the potential to further limit bivalve farm productivity. In the present study a farm-scale modelling approach was used to quantify the effects of the tunicate Ciona intestinalis on longline mussel farms. Both cultured and fouling species were simulated using physiological modules that took into account their interactions with organic seston dynamics in terms of filtration and biodeposition, and also predicted their growth over a typical growing season. Various treatment scenarios for reducing C. intestinalis infestation levels were also analyzed. Model results showed that C. intestinalis populations can rapidly dominate mussel sleeves in terms of their overall biomass and contribution to organic sedimentation. Early treatments during the tunicate reproductive season were the most effective at controlling the level of infestation and its impacts on sestonic food availability, mussel production and organic sedimentation. The proposed generic modelling approach could potentially become an essential aquaculture management tool, especially in the context of biological invasions. Statement of relevance The growing importance of bivalve aquaculture combined with its vulnerability to environmental conditions compels to ensure its sustainable development and management. Biofouling can potentially disrupt farm productivity and become a nuisance with profound socio-economic consequences. The numerical tool developed in this study provides valuable information for the management and mitigation of fouling by filter-feeding species on mussel farms. © 2016",biodeposition; mussel aquaculture; numerical modelling; tunicate fouling,Bivalvia; Ciona intestinalis; Urochordata; bioactivity; biofouling; biological production; biomass allocation; competition (ecology); filter feeding; infectivity; invertebrate; longlining; mussel culture; numerical model; sedimentation; seston; sustainable development,"T. Guyondet; Department of Fisheries and Oceans, Gulf Fisheries Centre, Science Branch, Moncton, 343 Université Avenue, P.O. Box 5030, E1C 9B6, Canada; email: thomas.guyondet@dfo-mpo.gc.ca",,Elsevier B.V.,,,,,,00448486,,AQCLA,,English,Aquaculture,Article,Final,,Scopus,2-s2.0-84988515816 Yu L.Q.J.; Mu Y.; Zhao Z.; Lam V.W.Y.; Sumaila U.R.,"Yu, Lance Q.J. (57193071242); Mu, Yongtong (16550436000); Zhao, Zhuming (57193070749); Lam, Vicky W.Y. (24833227500); Sumaila, U. Rashid (6701840163)",57193071242; 16550436000; 57193070749; 24833227500; 6701840163,"Economic challenges to the generalization of integrated multi-trophic aquaculture: An empirical comparative study on kelp monoculture and kelp-mollusk polyculture in Weihai, China",2017,Aquaculture,471,,,130,139,9,19,10.1016/j.aquaculture.2017.01.015,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85010375347&doi=10.1016%2fj.aquaculture.2017.01.015&partnerID=40&md5=384bc221d7eaf8c1671beedbd986dcd4,"Fisheries College, Ocean University of China, Qingdao, 26600, China; Yellow Sea Fisheries Research Institute, Chinese Academy of Fishery Sciences, Qingdao, 266000, China; Institute for Oceans and Fisheries, University of British Columbia, Vancouver, V6T 1Z4, Canada","Yu L.Q.J., Fisheries College, Ocean University of China, Qingdao, 26600, China, Institute for Oceans and Fisheries, University of British Columbia, Vancouver, V6T 1Z4, Canada; Mu Y., Fisheries College, Ocean University of China, Qingdao, 26600, China; Zhao Z., Yellow Sea Fisheries Research Institute, Chinese Academy of Fishery Sciences, Qingdao, 266000, China; Lam V.W.Y., Institute for Oceans and Fisheries, University of British Columbia, Vancouver, V6T 1Z4, Canada; Sumaila U.R., Institute for Oceans and Fisheries, University of British Columbia, Vancouver, V6T 1Z4, Canada","With the rapid growth of aquaculture, some negative factors of extensive monoculture accumulated, causing integrated multi-trophic aquaculture (IMTA) to draw increasing attention worldwide for its ecological and economic advantages. However, the development of IMTA in open water systems may not go as smoothly as anticipated—at least in Weihai, China, some producers who have adopted it would prefer to return to monoculture. This paper explores the problem from the angle of the economic performance by providing an in-depth analysis of costs and revenues generated by kelp monoculture and kelp-mollusk polyculture (IMTA). We find that the monoculture generates higher profits during the same production cycle. Besides inherent defects in system design, the rapidly growing labor cost and depressing selling price of the mollusk conspire to aggravate the economic failure of IMTA. Due to positive environmental externalities, the social benefits associated with IMTA are higher than the private benefits. This implies that there is a role for the government to generalize IMTA to achieve more total benefits. But single policy such as subsidies may backfire, a combination of policies designed to promote IMTA could be effective. Statement of relevance To study practical problems in aquaculture. © 2017 Elsevier B.V.",economic benefits; externalities; generalization; integrated management,China; Shandong; Weihai; aquaculture system; comparative study; cost-benefit analysis; empirical analysis; governance approach; growth response; integrated approach; mollusc culture; monoculture; open water; polyculture; price dynamics; seaweed; subsidy system; trophic environment,"L.Q.J. Yu; Fisheries College, Ocean University of China, Qingdao, 26600, China; email: lance@ouc.edu.cn",,Elsevier B.V.,,,,,,00448486,,AQCLA,,English,Aquaculture,Article,Final,,Scopus,2-s2.0-85010375347 Elwin A.; Jintana V.; Feola G.,"Elwin, Angie (57211941155); Jintana, Vipak (6506419209); Feola, Giuseppe (35271484400)",57211941155; 6506419209; 35271484400,Characterizing shrimp-farm production intensity in Thailand: Beyond technical indices,2020,Ocean and Coastal Management,185,,105019,,,,14,10.1016/j.ocecoaman.2019.105019,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85075432384&doi=10.1016%2fj.ocecoaman.2019.105019&partnerID=40&md5=17ee9201fbba53801cbbccce632ae63d,"Department of Geography and Environmental Science, University of Reading, Whiteknights - PO Box 227, Reading, RG66AB, United Kingdom; Department of Forest Management, Faculty of Forestry, Kasetsart University, Bangkok, 10900, Thailand; Copernicus Institute of Sustainable Development, Utrecht University, Section of Environmental Governance, Princetonlaan 8, PO Box 80115, 3508, TC Utrecht, Utrecht, 3584, CB, Netherlands","Elwin A., Department of Geography and Environmental Science, University of Reading, Whiteknights - PO Box 227, Reading, RG66AB, United Kingdom; Jintana V., Department of Forest Management, Faculty of Forestry, Kasetsart University, Bangkok, 10900, Thailand; Feola G., Copernicus Institute of Sustainable Development, Utrecht University, Section of Environmental Governance, Princetonlaan 8, PO Box 80115, 3508, TC Utrecht, Utrecht, 3584, CB, Netherlands","This study examines shrimp farmer behaviour in relation to production intensity along the eastern coast of the Gulf of Thailand, and its embeddedness in the wider socio-economic context of shrimp farming households. The integrative agent-centred (IAC) framework was used as a basis for designing a structured survey to collect semi-quantitative data for a range of explanatory variables that potentially drive shrimp farmer behaviour. The results show that shrimp farming intensity is associated with a combination of technical (e.g. farm area, pond size, stocking density and production), economic (shrimp selling price, production costs and farm revenue), social (e.g. farm operating years, the use of family labour, engagement in shrimp farming and with other shrimp farmers), and ecological factors (e.g. farmer reliance on natural pond productivity, and constraints brought about by environmental change and fluctuations in productive areas). In addition, the results indicate that a number of external and internal socio-economic factors are related to the decision to adopt a certain level of production intensity, including training received on farming practices, access to technical equipment, proportion of total income from shrimp farming, season-specific changes in production, risk perception, and subjective culture (social norms and roles). This study therefore illustrates that levels of shrimp farming intensity are in fact an indicator of a diversity of socio-economic conditions and behavioural choices, which need to be targeted by sustainability policies differentially and beyond the technical sphere. In showing this, we conclude that national standards aimed at achieving aquaculture sustainability should be designed to reflect the diversity needed to support such a diverse sector, and should be adjustable to better represent different socio-economic contexts. © 2019 Elsevier Ltd",farmer behaviour; farming intensity; shrimp aquaculture; sustainability,Gulf of Thailand; Pacific Ocean; South China Sea; Decapoda (Crustacea); Agriculture; Aquaculture; Costs; Digital storage; Economic analysis; Lakes; Risk perception; Sustainable development; Environmental change; Explanatory variables; Farmer behaviour; Farming intensity; Shrimp aquaculture; Socio-economic conditions; Socio-economic factor; Sustainability policy; aquaculture; behavioral response; environmental change; environmental factor; farming system; shrimp culture; stocking density; sustainability; Shellfish,"A. Elwin; Department of Geography and Environmental Science, University of Reading, Reading, Whiteknights - PO Box 227, RG66AB, United Kingdom; email: angie.elwin@reading.ac.uk",,Elsevier Ltd,,,,,,09645691,,OCMAE,,English,Ocean Coast. Manage.,Article,Final,All Open Access; Green Open Access,Scopus,2-s2.0-85075432384 Rhodes E.R.; Atewamba C.,"Rhodes, Edward R. (7103399590); Atewamba, Calvin (55820774700)",7103399590; 55820774700,Climate change impact chain factors in ECOWAS,2019,Journal of Agriculture and Environment for International Development,113,1,,35,78,43,7,10.12895/jaeid.20191.916,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85083581636&doi=10.12895%2fjaeid.20191.916&partnerID=40&md5=6c48690292ff165bc1d99f336846f182,"Njala University, PMB., Freetown, Sierra Leone; United Nations University Institute for Natural Resources in Africa, Toronto, Canada","Rhodes E.R., Njala University, PMB., Freetown, Sierra Leone; Atewamba C., United Nations University Institute for Natural Resources in Africa, Toronto, Canada","Appropriate responses to climate change in the agriculture sector are dependent on knowledge of the status and trends of the factors of the climate change impact chain in the sector. The objective of the study was to broadly assess key human, environmental, and biophysical factors in the Economic Community of West African States (ECOWAS), mainly within the decade following the launching of the Comprehensive Africa Agricultural Development Programme (CAADP). This was done through a review of literature and analysis of data mainly from World Bank and FAO sources. The status of and changes in these factors were generally unsatisfactory. Population growth rate was high. Average daily maximum temperatures were projected to rise by up to 3.50C by 2050. Up to 35% of the lands were estimated to be severely to very severely degraded. Total Internal Renewable Water resources per capita were below international requirements in many countries of ECOWAS. Total Renewable Water resources per capita were more abundant but decreased over years. The substantial arable land and renewable water resources and carbon stored in soil (23.5 Gt) and forest biomass (6.3 Gt) are attributes of ECOWAS. Agricultural production was higher in the Gulf of Guinea Zone compared to the Sudano-Sahelian Zone but yields of rice, maize and yam were higher in the Sudano-Sahelian Zone. Food security status was unsatisfactory across ECOWAS although the production of rice, maize, cassava, yam, groundnut, cocoa, and palm oil (in most cases), and livestock, fisheries and aquaculture increased. The increase between 2003 and 2013 for aquaculture was dramatic (847%). Overall increases in the production of rice, maize, sorghum, cassava, yam and groundnut and cattle, sheep and goats were mainly due to increased crop area harvested (42%) and livestock numbers (44%). Policies should be revisited, institutions strengthened and financial investments made for ECOWAS to realize its potential to significantly contribute to food security and carbon storage. © 2019 Istituto Agronomico per l'Oltremare di Firenze. All rights reserved.",agriculture; caadp; climate change; ecowas,,"E.R. Rhodes; Njala University, PMB., Freetown, Sierra Leone; email: errhodes2009@gmail.com",,Istituto Agronomico per l'Oltremare di Firenze,,,,,,22402802,,,,English,J. Agric. Environ. Int. Dev.,Article,Final,,Scopus,2-s2.0-85083581636 Cottrell R.S.; Nash K.L.; Halpern B.S.; Remenyi T.A.; Corney S.P.; Fleming A.; Fulton E.A.; Hornborg S.; Johne A.; Watson R.A.; Blanchard J.L.,"Cottrell, Richard S. (57196122128); Nash, Kirsty L. (38862474300); Halpern, Benjamin S. (7103099423); Remenyi, Tomas A. (16246379900); Corney, Stuart P. (6603060867); Fleming, Aysha (56108561200); Fulton, Elizabeth A. (6701680888); Hornborg, Sara (55214007500); Johne, Alexandra (57205618236); Watson, Reg A. (7403653519); Blanchard, Julia L. (55432900800)",57196122128; 38862474300; 7103099423; 16246379900; 6603060867; 56108561200; 6701680888; 55214007500; 57205618236; 7403653519; 55432900800,Food production shocks across land and sea,2019,Nature Sustainability,2,2,,130,137,7,232,10.1038/s41893-018-0210-1,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85060777051&doi=10.1038%2fs41893-018-0210-1&partnerID=40&md5=b7410c119ed4c065038d1a4589758eac,"Centre for Marine Socioecology, University of Tasmania, Hobart, Australia; Institute for Marine and Antarctic Studies, University of Tasmania, Hobart, Australia; National Centre for Ecological Analysis and Synthesis, University of California, Santa Barbara, CA, United States; Bren School of Environmental Science and Management, University of California, Santa Barbara, CA, United States; Imperial College London, Ascot, United Kingdom; Antarctic Climate and Ecosystems Cooperative Research Centre, University of Tasmania, Hobart, Australia; CSIRO Land and Water, Hobart, Australia; CSIRO Oceans and Atmosphere, Hobart, Australia; Agrifood and Bioscience, RISE Research Institutes of Sweden, Gothenburg, Sweden","Cottrell R.S., Centre for Marine Socioecology, University of Tasmania, Hobart, Australia, Institute for Marine and Antarctic Studies, University of Tasmania, Hobart, Australia; Nash K.L., Centre for Marine Socioecology, University of Tasmania, Hobart, Australia, Institute for Marine and Antarctic Studies, University of Tasmania, Hobart, Australia; Halpern B.S., National Centre for Ecological Analysis and Synthesis, University of California, Santa Barbara, CA, United States, Bren School of Environmental Science and Management, University of California, Santa Barbara, CA, United States, Imperial College London, Ascot, United Kingdom; Remenyi T.A., Antarctic Climate and Ecosystems Cooperative Research Centre, University of Tasmania, Hobart, Australia; Corney S.P., Institute for Marine and Antarctic Studies, University of Tasmania, Hobart, Australia; Fleming A., Centre for Marine Socioecology, University of Tasmania, Hobart, Australia, CSIRO Land and Water, Hobart, Australia; Fulton E.A., Centre for Marine Socioecology, University of Tasmania, Hobart, Australia, CSIRO Oceans and Atmosphere, Hobart, Australia; Hornborg S., Centre for Marine Socioecology, University of Tasmania, Hobart, Australia, Institute for Marine and Antarctic Studies, University of Tasmania, Hobart, Australia, CSIRO Oceans and Atmosphere, Hobart, Australia, Agrifood and Bioscience, RISE Research Institutes of Sweden, Gothenburg, Sweden; Johne A., Institute for Marine and Antarctic Studies, University of Tasmania, Hobart, Australia; Watson R.A., Centre for Marine Socioecology, University of Tasmania, Hobart, Australia, Institute for Marine and Antarctic Studies, University of Tasmania, Hobart, Australia; Blanchard J.L., Centre for Marine Socioecology, University of Tasmania, Hobart, Australia, Institute for Marine and Antarctic Studies, University of Tasmania, Hobart, Australia","Sudden losses to food production (that is, shocks) and their consequences across land and sea pose cumulative threats to global sustainability. We conducted an integrated assessment of global production data from crop, livestock, aquaculture and fisheries sectors over 53 years to understand how shocks occurring in one food sector can create diverse and linked challenges among others. We show that some regions are shock hotspots, exposed frequently to shocks across multiple sectors. Critically, shock frequency has increased through time on land and sea at a global scale. Geopolitical and extreme-weather events were the main shock drivers identified, but with considerable differences across sectors. We illustrate how social and ecological drivers, influenced by the dynamics of the food system, can spill over multiple food sectors and create synchronous challenges or trade-offs among terrestrial and aquatic systems. In a more shock-prone and interconnected world, bold food policy and social protection mechanisms that help people anticipate, cope with and recover from losses will be central to sustainability. © 2019, The Author(s), under exclusive licence to Springer Nature Limited.",,Economic and social effects; Sustainable development; Aquatic system; Extreme weather events; Fisheries sector; Food production; Global production; Global sustainability; Integrated assessment; Protection mechanisms; Agriculture,"R.S. Cottrell; Centre for Marine Socioecology, University of Tasmania, Hobart, Australia; email: richardstuart.cottrell@utas.edu.au",,Nature Publishing Group,,,,,,23989629,,,,English,Nature Sustain.,Article,Final,All Open Access; Green Open Access,Scopus,2-s2.0-85060777051 Nicholls R.J.; Hutton C.W.; Lázár A.N.; Allan A.; Adger W.N.; Adams H.; Wolf J.; Rahman M.; Salehin M.,"Nicholls, R.J. (35502560300); Hutton, C.W. (16039377300); Lázár, A.N. (25936484200); Allan, A. (35816441800); Adger, W.N. (7004013611); Adams, H. (55650758600); Wolf, J. (57198672021); Rahman, M. (59278372300); Salehin, M. (7801555589)",35502560300; 16039377300; 25936484200; 35816441800; 7004013611; 55650758600; 57198672021; 59278372300; 7801555589,"Integrated assessment of social and environmental sustainability dynamics in the Ganges-Brahmaputra-Meghna delta, Bangladesh",2016,"Estuarine, Coastal and Shelf Science",183,,,370,381,11,102,10.1016/j.ecss.2016.08.017,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84995395676&doi=10.1016%2fj.ecss.2016.08.017&partnerID=40&md5=3f6dc3fb9e34f6a6304b96524cb110f1,"Faculty of Engineering and the Environment, University of Southampton, Southampton, SO17 1BJ, United Kingdom; Geography and Environment, University of Southampton, Southampton, SO17 1BJ, United Kingdom; Centre for Water Law Policy and Science, University of Dundee, Perth Road, Dundee, DD1 4HN, United Kingdom; Geography, College of Life and Environmental Sciences, University of Exeter, Rennes Drive, Exeter, EX4 4RJ, United Kingdom; Department of Geography, King's College London, Strand, London, WC2R 2LS, United Kingdom; National Oceanography Centre, Joseph Proudman Building, 6 Brownlow Street, Liverpool, L3 5DA, United Kingdom; Institute of Water and Flood Management (IWFM), BUET, Dhaka, 1000, Bangladesh","Nicholls R.J., Faculty of Engineering and the Environment, University of Southampton, Southampton, SO17 1BJ, United Kingdom; Hutton C.W., Geography and Environment, University of Southampton, Southampton, SO17 1BJ, United Kingdom; Lázár A.N., Faculty of Engineering and the Environment, University of Southampton, Southampton, SO17 1BJ, United Kingdom; Allan A., Centre for Water Law Policy and Science, University of Dundee, Perth Road, Dundee, DD1 4HN, United Kingdom; Adger W.N., Geography, College of Life and Environmental Sciences, University of Exeter, Rennes Drive, Exeter, EX4 4RJ, United Kingdom; Adams H., Department of Geography, King's College London, Strand, London, WC2R 2LS, United Kingdom; Wolf J., National Oceanography Centre, Joseph Proudman Building, 6 Brownlow Street, Liverpool, L3 5DA, United Kingdom; Rahman M., Institute of Water and Flood Management (IWFM), BUET, Dhaka, 1000, Bangladesh; Salehin M., Institute of Water and Flood Management (IWFM), BUET, Dhaka, 1000, Bangladesh","Deltas provide diverse ecosystem services and benefits for their populations. At the same time, deltas are also recognised as one of the most vulnerable coastal environments, with a range of drivers operating at multiple scales, from global climate change and sea-level rise to deltaic-scale subsidence and land cover change. These drivers threaten these ecosystem services, which often provide livelihoods for the poorest communities in these regions. The imperative to maintain ecosystem services presents a development challenge: how to develop deltaic areas in ways that are sustainable and benefit all residents including the most vulnerable. Here we present an integrated framework to analyse changing ecosystem services in deltas and the implications for human well-being, focussing in particular on the provisioning ecosystem services of agriculture, inland and offshore capture fisheries, aquaculture and mangroves that directly support livelihoods. The framework is applied to the world's most populated delta, the Ganges-Brahmaputra-Meghna Delta within Bangladesh. The framework adopts a systemic perspective to represent the principal biophysical and socio-ecological components and their interaction. A range of methods are integrated within a quantitative framework, including biophysical and socio-economic modelling and analyses of governance through scenario development. The approach is iterative, with learning both within the project team and with national policy-making stakeholders. The analysis is used to explore physical and social outcomes for the delta under different scenarios and policy choices. We consider how the approach is transferable to other deltas and potentially other coastal areas. © 2016 Elsevier Ltd",,Bangladesh; Ganges Delta; Rhizophoraceae; climate change; coastal zone; ecosystem service; environmental assessment; governance approach; integrated approach; livelihood; policy making; regulatory framework; stakeholder; sustainability; sustainable development,,,Academic Press,,,,,,02727714,,ECSSD,,English,Estuar. Coast. Shelf Sci.,Article,Final,All Open Access; Green Open Access,Scopus,2-s2.0-84995395676 Safford T.G.; Vieira P.F.; Polette M.,"Safford, Thomas G. (35729398300); Vieira, Paulo Freire (23013658800); Polette, Marcus (56577928400)",35729398300; 23013658800; 56577928400,"Scientific engagement and the development of marine aquaculture in Santa Catarina, southern Brazil",2019,Ocean and Coastal Management,178,,104840,,,,5,10.1016/j.ocecoaman.2019.104840,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85066833849&doi=10.1016%2fj.ocecoaman.2019.104840&partnerID=40&md5=e775f5f89af56bcc695bf0116ae347ba,"Department of Sociology, University of New Hampshire, 15 Academic Way, Durham, 03824, NH, United States; Núcleo Transdisciplinar de Meio Ambiente e Desenvolvimento, Programa de Pós-Graduação em Sociologia Política, Universidade Federal de Santa Catarina, Centro de Filosofia e Ciências Humanas, Bloco D - Sala 303, Caixa Postal 476, Florianópolis, Santa Catarina, Brazil; Escola do Mar, Ciência e Tecnologia Ambiental - Laboratório de Conservação e Gerenciamento Costeiro, Universidade do Vale do Itajaí – UNIVALI, Rua Uruguai 458 Bloco D8 Sala104, Itajaí, Santa Catarina, Brazil","Safford T.G., Department of Sociology, University of New Hampshire, 15 Academic Way, Durham, 03824, NH, United States; Vieira P.F., Núcleo Transdisciplinar de Meio Ambiente e Desenvolvimento, Programa de Pós-Graduação em Sociologia Política, Universidade Federal de Santa Catarina, Centro de Filosofia e Ciências Humanas, Bloco D - Sala 303, Caixa Postal 476, Florianópolis, Santa Catarina, Brazil; Polette M., Escola do Mar, Ciência e Tecnologia Ambiental - Laboratório de Conservação e Gerenciamento Costeiro, Universidade do Vale do Itajaí – UNIVALI, Rua Uruguai 458 Bloco D8 Sala104, Itajaí, Santa Catarina, Brazil","Science-based marine aquaculture, or mariculture, is expanding around the world. Nonetheless, how scientists engage in mariculture planning, and why particular types of data are used to inform development decision-making, is less clear. In the southern Brazilian state of Santa Catarina, coastal managers and scientists embarked on an ambitious effort to establish shellfish farming and created a thriving mariculture industry. This study draws upon in-depth interviews with scientists, government officials, and shellfish growers to better understand the social forces that affected scientific engagement in mariculture planning in Santa Catarina. From agronomic insights about shellfish growth to microbiological understanding of pathogenic threats to seafood, wide-ranging types of science could inform mariculture planning. Our data show marked differences in 1) the involvement of scientists based on their disciplinary expertise and 2) the use of production versus impact or risk-related data to support decision-making. Utilizing conceptual insights from sociological study of science and institutions, we show how normative, cultural-cognitive, and regulative forces influence both scientists’ involvement in planning and the use of scientific data to inform mariculture-related decisions. Most notably, asymmetries appear in the effects of norms related to methodological practices among scientists focused on enhancing shellfish production versus those investigating potential health and environmental concerns. Cultural differences among scientists from different disciplines also affected their inclination to collaborate with government officials and growers. Finally, ambiguities in mariculture-related regulations led to the differential involvement of scientists, in particular hindering investigations focused on seafood safety and public health. These results illustrate that social forces influence how science is practiced and that this, in turn, shapes the course of science-based mariculture development. Given their key social role, broader sociological investigation of scientists as social actors could provide valuable insights to those seeking to ensure coastal development is both socially and ecologically sustainable. © 2019",applied sociology; coastal development planning; mariculture; science-based management; scientists,Brazil; Santa Catarina; Aquaculture; Coastal engineering; Decision making; Marine biology; Shellfish; Applied sociology; Coastal development; Mariculture; Science-based management; Scientists; coastal development; decision making; environmental planning; mariculture; resource development; shellfish culture; Economic and social effects,"T.G. Safford; Department of Sociology, University of New Hampshire, Durham, 15 Academic Way, 03824, United States; email: Tom.Safford@unh.edu",,Elsevier Ltd,,,,,,09645691,,OCMAE,,English,Ocean Coast. Manage.,Article,Final,,Scopus,2-s2.0-85066833849 Anderson C.M.; Krigbaum M.J.; Arostegui M.C.; Feddern M.L.; Koehn J.Z.; Kuriyama P.T.; Morrisett C.; Allen Akselrud C.I.; Davis M.J.; Fiamengo C.; Fuller A.; Lee Q.; McElroy K.N.; Pons M.; Sanders J.,"Anderson, Christopher M. (55319582900); Krigbaum, Melissa J. (57200421519); Arostegui, Martin C. (57191504233); Feddern, Megan L. (57204942235); Koehn, John Zachary (55613414800); Kuriyama, Peter T. (56495570300); Morrisett, Christina (57204938749); Allen Akselrud, Caitlin I. (57192894284); Davis, Melanie J. (57125250600); Fiamengo, Courtney (57204937511); Fuller, Ava (57359491800); Lee, Qi (57194615893); McElroy, Katherine N. (57200752846); Pons, Maite (57212542475); Sanders, Jessica (36708446600)",55319582900; 57200421519; 57191504233; 57204942235; 55613414800; 56495570300; 57204938749; 57192894284; 57125250600; 57204937511; 57359491800; 57194615893; 57200752846; 57212542475; 36708446600,How commercial fishing effort is managed,2019,Fish and Fisheries,20,2,,268,285,17,57,10.1111/faf.12339,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85058057522&doi=10.1111%2ffaf.12339&partnerID=40&md5=0d25b39b16d7edb037cd4bda7a3560ab,"School of Aquatic and Fishery Sciences, University of Washington, Seattle, WA, United States; Food and Agriculture Organization of the United Nations, FAO Sub-Regional Office for the Pacific Islands, Apia, Samoa","Anderson C.M., School of Aquatic and Fishery Sciences, University of Washington, Seattle, WA, United States; Krigbaum M.J., School of Aquatic and Fishery Sciences, University of Washington, Seattle, WA, United States; Arostegui M.C., School of Aquatic and Fishery Sciences, University of Washington, Seattle, WA, United States; Feddern M.L., School of Aquatic and Fishery Sciences, University of Washington, Seattle, WA, United States; Koehn J.Z., School of Aquatic and Fishery Sciences, University of Washington, Seattle, WA, United States; Kuriyama P.T., School of Aquatic and Fishery Sciences, University of Washington, Seattle, WA, United States; Morrisett C., School of Aquatic and Fishery Sciences, University of Washington, Seattle, WA, United States; Allen Akselrud C.I., School of Aquatic and Fishery Sciences, University of Washington, Seattle, WA, United States; Davis M.J., School of Aquatic and Fishery Sciences, University of Washington, Seattle, WA, United States; Fiamengo C., School of Aquatic and Fishery Sciences, University of Washington, Seattle, WA, United States; Fuller A., School of Aquatic and Fishery Sciences, University of Washington, Seattle, WA, United States; Lee Q., School of Aquatic and Fishery Sciences, University of Washington, Seattle, WA, United States; McElroy K.N., School of Aquatic and Fishery Sciences, University of Washington, Seattle, WA, United States; Pons M., School of Aquatic and Fishery Sciences, University of Washington, Seattle, WA, United States; Sanders J., School of Aquatic and Fishery Sciences, University of Washington, Seattle, WA, United States, Food and Agriculture Organization of the United Nations, FAO Sub-Regional Office for the Pacific Islands, Apia, Samoa","Wild capture fisheries produce 90 million tonnes of food each year and have the potential to provide sustainable livelihoods for nearly 40 million people around the world (http://www.fao.org/3/a-i5555e.pdf). After decades of overfishing since industrialization, many global fish stocks have recovered, a change brought about through effective management. We provide a synthetic overview of three approaches that managers use to sustain stocks: regulating catch and fishing mortality, regulating effort and regulating spatial access. Within each of these approaches, we describe common restrictions, how they alter incentives to change fishing behaviour, and the resultant ecological, economic and community-level outcomes. For each approach, we present prominent case-studies that illustrate behaviour and the corresponding performance. These case-studies show that sustaining target stocks requires a hard limit on fishing mortality under most conditions, but that additional measures are required to generate economic benefits. Different systems for allocation allow stakeholder communities to strike a locally acceptable balance between profitability and employment. © 2018 John Wiley & Sons Ltd",catch management; effort management; fishery management; spatial management; triple bottom line outcomes,aquaculture industry; fish; fishery management; fishing effort; fishing mortality; overfishing; stakeholder,"C.M. Anderson; School of Aquatic and Fishery Sciences, University of Washington, Seattle, United States; email: cmand@uw.edu",,Blackwell Publishing Ltd,,,,,,14672960,,FFIIA,,English,Fish Fish.,Article,Final,,Scopus,2-s2.0-85058057522 Nugrohoseno D.; Rahmadyanti E.; Yulianingsih W.; Dani H.,"Nugrohoseno, Dwiarko (57194452122); Rahmadyanti, Erina (55916671700); Yulianingsih, Wiwin (57203759309); Dani, Hasan (57196042609)",57194452122; 55916671700; 57203759309; 57196042609,Coastal village empowerment model for the fishermen economic strength in Pasuruan,2019,"Ecology, Environment and Conservation",25,2,,831,836,5,0,,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85085100102&partnerID=40&md5=7eaa7f57198e9f285dc937ab393bf624,"Departement of Management, Faculty of Economics, Universitas Negeri Surabaya, Indonesia; Departement of Civil Engineering, Faculty of Engineering, Universitas Negeri Surabaya, Indonesia; Departement of Non-Formal Education, Faculty of Education, Universitas Negeri Surabaya, Indonesia","Nugrohoseno D., Departement of Management, Faculty of Economics, Universitas Negeri Surabaya, Indonesia; Rahmadyanti E., Departement of Civil Engineering, Faculty of Engineering, Universitas Negeri Surabaya, Indonesia; Yulianingsih W., Departement of Non-Formal Education, Faculty of Education, Universitas Negeri Surabaya, Indonesia; Dani H., Departement of Civil Engineering, Faculty of Engineering, Universitas Negeri Surabaya, Indonesia","Pasuruan is one of the coastal areas in East Java Province, where having the biggest problem in mangrove habitat damages. The damages are mostly caused by land clearing for settlements, industrial locations, fish-farming, and others which indirectly impact on the decrease of fishery sectors products. This study aims to model the business diversification of coastal communities in Pasuruan from fisheries, animal husbandry, to coastal environment exploitation to create competitiveness and integration from local to regional, national, and global economic systems. The population was 75 fishermen from the area of Kraton, Lekok, and Nguling Pasuruan. The sampling used cluster purposive sampling by employing primary data and secondary data. Model testing used Partial Least Square (PLS) 1.0. The results indicated that the level of community welfare and sustainability of coastal environment was largely determined by fishing, livestock, and environmental exploitation. In addition, the follow-up analysis indicated that only environment exploitation affected welfare, while coastal environmental sustainability was influenced by fishing, livestock business, environmental exploitation, and community welfare. In conclusion, coastal resources was not optimally utilized. Therefore, diversification model was possibly implemented as an alternative management of the coastal area of Pasuruan. © 2019, EM International. All rights reserved.",business diversification; coastal communities; environmental sustainability; management; sustainability,East Java; Indonesia; Animalia; coastal zone; competitiveness; economic activity; empowerment; exploitation; fishing community; livestock; mangrove; sustainability,"E. Rahmadyanti; Departement of Civil Engineering, Faculty of Engineering, Universitas Negeri Surabaya, Indonesia; email: erinarahmadyanti@unesa.ac.id",,EM International,,,,,,0971765X,,EECOF,,English,Ecol. Environ. Conserv.,Article,Final,,Scopus,2-s2.0-85085100102 Cabral R.B.; Geronimo R.C.,"Cabral, Reniel B. (35338938000); Geronimo, Rollan C. (25936062900)",35338938000; 25936062900,How important are coral reefs to food security in the Philippines? Diving deeper than national aggregates and averages,2018,Marine Policy,91,,,136,141,5,37,10.1016/j.marpol.2018.02.007,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85042445611&doi=10.1016%2fj.marpol.2018.02.007&partnerID=40&md5=fca99e7d4fad74d80d20730adc995bff,"Sustainable Fisheries Group, Bren School of Environmental Science and Management and Marine Science Institute, University of California, Santa Barbara, 93106, CA, United States; Department of Geography, University of Hawai'i at Mānoa, Honolulu, 96822, HI, United States","Cabral R.B., Sustainable Fisheries Group, Bren School of Environmental Science and Management and Marine Science Institute, University of California, Santa Barbara, 93106, CA, United States; Geronimo R.C., Department of Geography, University of Hawai'i at Mānoa, Honolulu, 96822, HI, United States","How important are coral reefs for food security and to what extent does coral reef conservation contribute to the food security of the coastal communities in the Coral Triangle? Based on the national fish production and consumption data from the Philippines and some data from Indonesia, Clifton and Foale (2017) [12] argued that the pelagic fisheries are far more important than coral reef fisheries for the food security of the Philippines and Indonesia. While it is true that, in totality, populations in both the Philippines and Indonesia rely heavily on pelagic fisheries for animal protein, this commentary demonstrates that coral reef fisheries contribute substantially to the food and livelihood security of coastal communities, which make up the poorest and most food insecure sector of the economy. There is also significant growth potential in nearshore fisheries that can be captured by working to recover currently degraded coral reef ecosystems. Nonetheless, research and institutional reforms in all sources of fish protein (pelagic, demersal, and aquaculture) are urgently needed to improve not only food security but also the lives and livelihoods of coastal fishing households in the Coral Triangle. © 2018 Elsevier Ltd",coral reefs; coral triangle; food security; pelagic fisheries; philippines; small-scale fisheries,Coral Triangle; Indonesia; Pacific Ocean; Philippines; Animalia; Anthozoa; conservation management; coral reef; fishery economics; fishery production; fishing community; food security; institutional reform; pelagic fishery,"R.B. Cabral; Sustainable Fisheries Group, Bren School of Environmental Science and Management and Marine Science Institute, University of California, Santa Barbara, 93106, United States; email: rcabral@ucsb.edu",,Elsevier Ltd,,,,,,0308597X,,,,English,Mar. Policy,Article,Final,,Scopus,2-s2.0-85042445611 Arafeh-Dalmau N.; Torres-Moye G.; Seingier G.; Montaño-Moctezuma G.; Micheli F.,"Arafeh-Dalmau, Nur (57190889964); Torres-Moye, Guillermo (6508272053); Seingier, Georges (26028139900); Montaño-Moctezuma, Gabriela (16312908100); Micheli, Fiorenza (7101777512)",57190889964; 6508272053; 26028139900; 16312908100; 7101777512,Marine spatial planning in a transboundary context: Linking baja California with California's network of marine protected areas,2017,Frontiers in Marine Science,4,MAY,150,,,,27,10.3389/fmars.2017.00150,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85020211864&doi=10.3389%2ffmars.2017.00150&partnerID=40&md5=e536fe220080a46e650ccbfe47fc2c12,"Marine Ecology, Conservation, and Resource Management Lab, Department of Biology, Facultad de Ciencias Marinas, Universidad Autónoma de Baja California, Ensenada, Mexico; Marine Ecology, Conservation, and Resource Management Lab, Department of Biological Oceanography, Instituto de Investigaciones Oceanológicas, Universidad Autónoma de Baja California, Ensenada, Mexico; Environmental Sciences, Facultad de Ciencias Marinas, Universidad Autónoma de Baja California, Ensenada, Mexico; Micheli Lab, Hopkins Marine Station, Department of Biology, Stanford University, Pacific Grove, CA, United States","Arafeh-Dalmau N., Marine Ecology, Conservation, and Resource Management Lab, Department of Biology, Facultad de Ciencias Marinas, Universidad Autónoma de Baja California, Ensenada, Mexico, Marine Ecology, Conservation, and Resource Management Lab, Department of Biological Oceanography, Instituto de Investigaciones Oceanológicas, Universidad Autónoma de Baja California, Ensenada, Mexico; Torres-Moye G., Marine Ecology, Conservation, and Resource Management Lab, Department of Biology, Facultad de Ciencias Marinas, Universidad Autónoma de Baja California, Ensenada, Mexico; Seingier G., Environmental Sciences, Facultad de Ciencias Marinas, Universidad Autónoma de Baja California, Ensenada, Mexico; Montaño-Moctezuma G., Marine Ecology, Conservation, and Resource Management Lab, Department of Biological Oceanography, Instituto de Investigaciones Oceanológicas, Universidad Autónoma de Baja California, Ensenada, Mexico; Micheli F., Micheli Lab, Hopkins Marine Station, Department of Biology, Stanford University, Pacific Grove, CA, United States","It is acknowledged that an effective path to globally protect marine ecosystems is through the establishment of eco-regional scale networks of MPAs spanning across national frontiers. In this work we aimed to plan for regionally feasible networks of MPAs that can be ecologically linked with an existing one in a transboundary context. We illustrate our exercise in the Ensenadian eco-region, a shared marine ecosystem between the south of California, United States of America (USA), and the north of Baja California, Mexico; where conservation actions differ across the border. In the USA, California recently established a network of MPAs through the Marine Life Protection Act (MLPA), while in Mexico: Baja California lacks a network of MPAs or a marine spatial planning effort to establish it. We generated four different scenarios with Marxan by integrating different ecological, social, and management considerations (habitat representation, opportunity costs, habitat condition, and enforcement costs). To do so, we characterized and collected biophysical and socio-economic information for Baja California and developed novel approaches to quantify and incorporate some of these considerations. We were able to design feasible networks of MPAs in Baja California that are ecologically linked with California's network (met between 78.5 and 84.4% of the MLPA guidelines) and that would represent a low cost for fishers and aquaculture investors. We found that when multiple considerations are integrated more priority areas for conservation emerge. For our region, human distribution presents a strong gradient from north to south and resulted to be an important factor for the spatial arrangement of the priority areas. This work shows how, despite the constraints of a data-poor area, the available conservation principles, mapping, and planning tools can still be used to generate spatial conservation plans in a transboundary context. © 2017 Arafeh-Dalmau, Torres-Moye, Seingier, Montaño-Moctezuma and Micheli.",data-poor; eco-regional conservation; marine protected area; marine spatial planning; transboundary,,"G. Seingier; Environmental Sciences, Facultad de Ciencias Marinas, Universidad Autónoma de Baja California, Ensenada, Mexico; email: georges@uabc.edu.mx",,Frontiers Media S. A,,,,,,22967745,,,,English,Front. Mar. Sci.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85020211864 Andriyono S.; Fitrani M.,"Andriyono, Sapto (57193704905); Fitrani, Mirna (57205027040)",57193704905; 57205027040,"Non-native species existence and its potency to be invasive species on freshwater ecosystem in East Java province, Indonesia",2021,Egyptian Journal of Aquatic Biology and Fisheries,25,2,,1013,1024,11,11,10.21608/EJABF.2021.170621,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85107775761&doi=10.21608%2fEJABF.2021.170621&partnerID=40&md5=6fba710ad350671f421fc74657d5b636,"Department of Marine, Fisheries and Marine Faculty, Universitas Airlangga, C Campus Jl. Mulyorejo, Surabaya East Java, 60115, Indonesia; Department of Aquaculture, Faculty of Agriculture, Sriwijaya University, Indralaya Campus Jl. Palembang-Prabumulih Km.32 Ogan Ilir, South Sumatera, Indonesia","Andriyono S., Department of Marine, Fisheries and Marine Faculty, Universitas Airlangga, C Campus Jl. Mulyorejo, Surabaya East Java, 60115, Indonesia; Fitrani M., Department of Aquaculture, Faculty of Agriculture, Sriwijaya University, Indralaya Campus Jl. Palembang-Prabumulih Km.32 Ogan Ilir, South Sumatera, Indonesia","The introduction of non-native species that have been carried out so far has raised several diverse opinions about the resulting impacts, either positive or negative. As one of the leading commodities in aquaculture, the significant impact of the culture of common carp species (Cyprinus carpio) has been felt by the community. That kind of fish has dominated for both consumption and ornamental fish production in East Java. This type of fish is considered equivalent to other native fish in this region, such as tawes (Puntius javanicus), catfish (Clarias batracus), and gourami (Ospronemus gouramy). However, the problem is if the non-native fish become invasive species in the open waters. When the spread of the non-native fish is out of control, it is feared will break down the food chain and community structure of other native fishes. As Arapaima gigas, the carnivore fish that are not native fish of Indonesia, which have found along the Brantas River, East Java, Indonesia. Rigorous precautions and regulations are needed so that introduced species become species that do not endanger their new habitat by considering ecological, economic, and other impacts. The study of genetic diversity and native species is essential to be done so that the database baseline is accurate and valid. © 2021, Egyptian Society for the Development of Fisheries and Human Health. All rights reserved.",diversity; ecological mangrove restoration; fresh water; invasive species; java province; non-native,,"S. Andriyono; Department of Marine, Fisheries and Marine Faculty, Universitas Airlangga, Surabaya East Java, C Campus Jl. Mulyorejo, 60115, Indonesia; email: sapto.andriyono@fpk.unair.ac.id",,Egyptian Society for the Development of Fisheries and Human Health,,,,,,11106131,,,,English,Egypt. J. Aquat. Biol. Fish.,Article,Final,All Open Access; Bronze Open Access; Green Open Access,Scopus,2-s2.0-85107775761 Pohlner H.,"Pohlner, Huw (57188755071)",57188755071,Compensating for the socioeconomic costs of catchment protection: The case of China's South-North Water Transfer,2019,Water Security,6,,100023,,,,4,10.1016/j.wasec.2019.100023,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85061563493&doi=10.1016%2fj.wasec.2019.100023&partnerID=40&md5=7f798a3af165b0a497f1a616d806c9ac,"Research Completed While Resident at School of Geography and the Environment, University of Oxford, United Kingdom","Pohlner H., Research Completed While Resident at School of Geography and the Environment, University of Oxford, United Kingdom","China's government has launched a number of policies over recent years to tackle the country's worsening water pollution crisis. Implementation of pollution control policies can have deleterious effects on the livelihoods of upstream communities, often poorer and less resilient to change than downstream beneficiaries. The distinctive Chinese concept of ‘ecological compensation’ – a blend of payments for ecosystem services and the polluter pays principle – has been developed to enable compensation for the direct and indirect costs associated with pollution reduction. This paper examines the distribution of indirect socioeconomic costs associated with protecting the Danjiangkou reservoir catchment, which provides water for 50 million people – mostly, city dwellers – in North China via the South-North Water Transfer (Middle Route). Mass closures of turmeric processing plants and a ban on cage aquaculture in the catchment have generated considerable indirect costs for individuals, communities and local upstream governments. © 2019 Elsevier B.V.",catchment protection; china; ecological mangrove restoration; ecosystem services; interbasin water transfer; water quality,China; Danjiangkou Reservoir; catchment; compensation system; policy implementation; pollution control; state role; water pollution,"H. Pohlner; School of Geography and the Environment, Oxford University Centre for the Environment, University of Oxford, Oxford, South Parks Road, OX1 3QY, United Kingdom; email: huw.pohlner@aither.com.au",,Elsevier B.V.,,,,,,24683124,,,,English,Water Secur.,Article,Final,,Scopus,2-s2.0-85061563493 Mialhe F.; Morales E.; Dubuisson-Quellier S.; Vagneron I.; Dabbadie L.; Little D.C.,"Mialhe, F. (24437266800); Morales, E. (34870217500); Dubuisson-Quellier, S. (6507482055); Vagneron, I. (16025821900); Dabbadie, L. (35108854000); Little, D.C. (7202966368)",24437266800; 34870217500; 6507482055; 16025821900; 35108854000; 7202966368,"Global standardization and local complexity. A case study of an aquaculture system in Pampanga delta, Philippines",2018,Aquaculture,493,,,365,375,10,10,10.1016/j.aquaculture.2017.09.043,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85031706957&doi=10.1016%2fj.aquaculture.2017.09.043&partnerID=40&md5=1a16a110cb70088dbf854e0435d6e488,"Univ Lyon, University Lumière Lyon 2, Department of Geography, CNRS UMR 5600 EVS, Lyon, F-69635, France; SFP, 4348 Waialae Ave. #692, Honolulu, 96816, HI, United States; Sciences Po, Center for the Sociology of Organizations (CSO), CNRS, Paris, France; CIRAD, UMR MOISA, France / MOISA, Univ Montpellier, CIRAD, Montpellier, F-34398, France; CIRAD, Univ Montpellier, CIRAD, UMR 116, France / UMR 116, Montpellier, F-34398, France; Institute of Aquaculture, University of Stirling, Stirlingshire, FK9 4LA, Stirling, United Kingdom","Mialhe F., Univ Lyon, University Lumière Lyon 2, Department of Geography, CNRS UMR 5600 EVS, Lyon, F-69635, France; Morales E., SFP, 4348 Waialae Ave. #692, Honolulu, 96816, HI, United States; Dubuisson-Quellier S., Sciences Po, Center for the Sociology of Organizations (CSO), CNRS, Paris, France; Vagneron I., CIRAD, UMR MOISA, France / MOISA, Univ Montpellier, CIRAD, Montpellier, F-34398, France; Dabbadie L., CIRAD, Univ Montpellier, CIRAD, UMR 116, France / UMR 116, Montpellier, F-34398, France; Little D.C., Institute of Aquaculture, University of Stirling, Stirlingshire, FK9 4LA, Stirling, United Kingdom","International standards result from global policies formulated primarily to address issues on food safety, traceability, environmental impact as well as social accountability. As in other agro-food industries, these rules increasingly regulate aquaculture, especially since it has started to be the object of many criticisms. The standards are generally designed in a top-down way and do not always consider the local specificities of production systems. Such implementation favors the emergence of similar patterns of production and trade across different locations. Based on a case study, this paper aims to highlight the gap between the vision conveyed by expert-based, simple and replicable policies of standardization, versus the real complexity and uniqueness of local aquaculture systems. The assumption is that the lack of recognition of this complexity leads de facto to the reproduction of dominant modes of production based on standards, ignoring some local actors with a capacity for innovation, while favoring a few larger stakeholders. To reveal the gap, the study looks at some agents of an extensive aquaculture system in the Philippines and at their interaction, focusing on gleaning and trading activities. It then reveals the changes that followed the local implementation of an International food safety standard. It finally discusses (i) the links between the global and normative point of view, and the local and unique dynamics and (ii) some bridges able to reconcile both. © 2017 Elsevier B.V.",aquaculture; commodity chain; gleaning; international food standards; livelihoods; pampanga (philippines); social-ecological systems,Central Luzon; Pampanga; Philippines; agroindustry; aquaculture system; commodity; complexity; environmental impact; food industry; food safety; livelihood; policy implementation; stakeholder; top-down approach,"L. Dabbadie; CIRAD, Univ Montpellier, CIRAD, Montpellier, UMR 116, France / UMR 116, F-34398, France; email: lionel.dabbadie@cirad.fr",,Elsevier B.V.,,,,,,00448486,,AQCLA,,English,Aquaculture,Article,Final,All Open Access; Green Open Access,Scopus,2-s2.0-85031706957 Siddiki S.; Goel S.,"Siddiki, Saba (37007150800); Goel, Shilpi (56589502600)",37007150800; 56589502600,Assessing Collaborative Policymaking Outcomes: An Analysis of U.S. Marine Aquaculture Partnerships,2017,American Review of Public Administration,47,2,,253,271,18,15,10.1177/0275074015599603,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85007087099&doi=10.1177%2f0275074015599603&partnerID=40&md5=df5d137ca0c69199e0564856a5659a47,"Indiana University–Purdue University Indianapolis, IN, United States","Siddiki S., Indiana University–Purdue University Indianapolis, IN, United States; Goel S., Indiana University–Purdue University Indianapolis, IN, United States","Administrators and policymakers increasingly rely on collaborative policymaking groups to inform policy development. While this trend is observed in a wide array of policy domains, it is particularly common in the regulation of natural resource-based industries which requires the simultaneous consideration of an interrelated set of economic, technical, and social factors. In this article, we examine outcomes associated with collaborative policymaking groups involved in informing state aquaculture policy, referred to herein as aquaculture partnerships. We define outcomes here as consequences on relevant contextual conditions (social, political, and environmental) that follow from the work or design of collaborative processes. Using data collected through an online survey of partnership participants (n = 123), we examine individual and procedural factors that significantly associate with partnerships’ positive or negative influence on a set of policy and social outcomes, as perceived by their participants. Overall, we find that participants’ ability to mobilize scientific and technical resources to achieve group objectives, perceptions of procedural fairness, and individual-level learning are all positively associated with partnership influence on policy and/or social outcomes. We conclude our article by highlighting the value of this research for both scholars and practitioners interested in better understanding collaborative group dynamics and outcomes relating thereto. © 2015, © The Author(s) 2015.",learning; outcomes; process; technical expertise,,"S. Siddiki; School of Public and Environmental Affairs, Indiana University–Purdue University Indianapolis, Indianapolis, 801 W. Michigan Street, BS 4072, 46202, United States; email: ssiddiki@iupui.edu",,SAGE Publications Inc.,,,,,,02750740,,,,English,Am. Rev. Public Adm.,Article,Final,,Scopus,2-s2.0-85007087099 Sanon V.-P.; Toé P.; Revenga J.C.; El Bilali H.; Hundscheid L.J.; Kulakowska M.; Magnuszewski P.; Meulenbroek P.; Paillaugue J.; Sendzimir J.; Slezak G.; Vogel S.; Melcher A.H.,"Sanon, Vincent-Paul (57217728509); Toé, Patrice (25822873100); Revenga, Jaime Caballer (57217729247); El Bilali, Hamid (37058684500); Hundscheid, Laura Janine (57217729657); Kulakowska, Michalina (57203963503); Magnuszewski, Piotr (6507067300); Meulenbroek, Paul (57200854427); Paillaugue, Julie (57217728995); Sendzimir, Jan (55992753100); Slezak, Gabriele (55490056500); Vogel, Stefan (55415652700); Melcher, Andreas H. (12788603700)",57217728509; 25822873100; 57217729247; 37058684500; 57217729657; 57203963503; 6507067300; 57200854427; 57217728995; 55992753100; 55490056500; 55415652700; 12788603700,Multiple-line identification of socio-ecological stressors affecting aquatic ecosystems in semi-arid countries: Implications for sustainable management of fisheries in Sub-Saharan Africa,2020,Water (Switzerland),12,6,1518,,,,12,10.3390/w12061518,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85087542031&doi=10.3390%2fw12061518&partnerID=40&md5=feedbc10f4affd3ce8d1279e01d36e8b,"Institute for Development Research, BOKU-University of Natural Resources and Life Sciences, Peter-Jordan-Strasse 76/I, Vienna, 1190, Austria; Institute for Rural Development, University Nazi BONI, Bobo-Dioulasso, 01 BP 1091 Bobo 01, Burkina Faso; International Centre for Advanced Mediterranean Agronomic Studies, via Ceglie 9, Valenzano (Bari), 70010, Italy; Centre for Systems Solutions, Stefana Jaracza 80b/10, Wrocław, 50-305, Poland; International Institute for Applied Systems Analysis, Schlossplatz 1, Laxenburg, A-2361, Austria; Institute of Hydrobiology and Aquatic Ecosystem Management, BOKU-University of Natural Resources and Life Sciences, Gregor-Mendel-Strasse 33, Vienna, 1180, Austria; Institute for African Studies, University of Vienna, Spitalgasse 2, Vienna, 1090, Austria; Institute for Sustainable Economic Development, BOKU-University of Natural Resources and Life Sciences, Feistmantelstraße 4, Vienna, 1180, Austria","Sanon V.-P., Institute for Development Research, BOKU-University of Natural Resources and Life Sciences, Peter-Jordan-Strasse 76/I, Vienna, 1190, Austria, Institute for Rural Development, University Nazi BONI, Bobo-Dioulasso, 01 BP 1091 Bobo 01, Burkina Faso; Toé P., Institute for Rural Development, University Nazi BONI, Bobo-Dioulasso, 01 BP 1091 Bobo 01, Burkina Faso; Revenga J.C., Institute for Development Research, BOKU-University of Natural Resources and Life Sciences, Peter-Jordan-Strasse 76/I, Vienna, 1190, Austria; El Bilali H., International Centre for Advanced Mediterranean Agronomic Studies, via Ceglie 9, Valenzano (Bari), 70010, Italy; Hundscheid L.J., Institute for Development Research, BOKU-University of Natural Resources and Life Sciences, Peter-Jordan-Strasse 76/I, Vienna, 1190, Austria; Kulakowska M., Centre for Systems Solutions, Stefana Jaracza 80b/10, Wrocław, 50-305, Poland; Magnuszewski P., Centre for Systems Solutions, Stefana Jaracza 80b/10, Wrocław, 50-305, Poland, International Institute for Applied Systems Analysis, Schlossplatz 1, Laxenburg, A-2361, Austria; Meulenbroek P., Institute of Hydrobiology and Aquatic Ecosystem Management, BOKU-University of Natural Resources and Life Sciences, Gregor-Mendel-Strasse 33, Vienna, 1180, Austria; Paillaugue J., Institute for Development Research, BOKU-University of Natural Resources and Life Sciences, Peter-Jordan-Strasse 76/I, Vienna, 1190, Austria; Sendzimir J., Institute for Development Research, BOKU-University of Natural Resources and Life Sciences, Peter-Jordan-Strasse 76/I, Vienna, 1190, Austria, Institute of Hydrobiology and Aquatic Ecosystem Management, BOKU-University of Natural Resources and Life Sciences, Gregor-Mendel-Strasse 33, Vienna, 1180, Austria; Slezak G., Institute for African Studies, University of Vienna, Spitalgasse 2, Vienna, 1090, Austria; Vogel S., Institute for Sustainable Economic Development, BOKU-University of Natural Resources and Life Sciences, Feistmantelstraße 4, Vienna, 1180, Austria; Melcher A.H., Institute for Development Research, BOKU-University of Natural Resources and Life Sciences, Peter-Jordan-Strasse 76/I, Vienna, 1190, Austria","Water resources are among the fundamental resources that are the most threatened worldwide by various pressures. This study applied the Driver-Pressure-State-Impact-Response (DPSIR) framework as an innovative tool to better understand the dynamic interlinkages between the different sources of multiple stressors on aquatic ecosystems in Burkina Faso. The triangulation of evidences from interviews, literature reviews, and strategic simulations shows that several human impacts as well as climate change and its effects (such as the decrease of the water level, and the increase of the surface water temperature) are detrimental to fish productivity, abundance, and average size. Furthermore, the ongoing demographic and nutritional transition is driving cumulative pressures on water and fish resources. In this context, the development of aquaculture could offer alternative livelihoods and help fish stocks in natural ecosystems to recover, thereby reducing fishermen's vulnerability and easing overfishing pressures. Further, the empowerment of the actors and their participation to reinforce fisheries regulation are required to escape the current ""regeneration trap"" and to achieve a sustainable management of aquatic ecosystems in Burkina Faso. © 2020 by the authors. Licensee MDPI, Basel, Switzerland.",anthropogenic activities; burkina faso; climate change; dpsir; fisheries management; interviews; multiple correspondence analysis; river systems; strategic simulations; stressors interaction,Burkina Faso; Sub-Saharan Africa; Climate change; Fish; Fisheries; Surface waters; Sustainable development; Water levels; Alternative livelihoods; Fisheries regulations; Line identifications; Literature reviews; Multiple stressors; Strategic simulations; Surface water temperature; Sustainable management; aquatic ecosystem; climate effect; environmental stress; fishery management; human activity; identification method; livelihood; overfishing; resource development; semiarid region; sustainability; Aquatic ecosystems,"A.H. Melcher; Institute for Development Research, BOKU-University of Natural Resources and Life Sciences, Vienna, Peter-Jordan-Strasse 76/I, 1190, Austria; email: andreas.melcher@boku.ac.at",,MDPI AG,,,,,,20734441,,,,English,Water,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85087542031 Porobic J.; Fulton E.A.; Frusher S.; Parada C.; Haward M.; Ernst B.; Stram D.,"Porobic, Javier (55607386500); Fulton, Elizabeth A. (6701680888); Frusher, Stewart (6602861497); Parada, Carolina (7004061349); Haward, Marcus (6603547819); Ernst, Billy (8525095800); Stram, Diana (8540587400)",55607386500; 6701680888; 6602861497; 7004061349; 6603547819; 8525095800; 8540587400,Implementing Ecosystem-based Fisheries Management: Lessons from Chile's experience,2018,Marine Policy,97,,,82,90,8,14,10.1016/j.marpol.2018.08.037,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85053053877&doi=10.1016%2fj.marpol.2018.08.037&partnerID=40&md5=238c09ccfd4d9dd8cfffcca9cb074af4,"Quantitative Marine Science Program, Institute for Marine and Antarctic Studies (IMAS), Hobart, Tasmania, Australia; CSIRO Oceans and Atmosphere, Hobart, Australia; Centre for Marine Socioecology, University of Tasmania, Australia; Institute for Marine and Antarctic Studies, University of Tasmania, Australia; Departamento de Geofísica, Universidad de Concepción, Casilla 160-C, Concepción, Chile; Departamento de Oceanografía, Universidad de Concepción, Casilla 160-C, Concepción, Chile; Núcleo Milenio INVASAL, Concepción, Chile; North Pacific Fishery Management Council, 605 West 4th, Suite 306, Anchorage, 99501, AK, United States","Porobic J., Quantitative Marine Science Program, Institute for Marine and Antarctic Studies (IMAS), Hobart, Tasmania, Australia, CSIRO Oceans and Atmosphere, Hobart, Australia, Institute for Marine and Antarctic Studies, University of Tasmania, Australia; Fulton E.A., CSIRO Oceans and Atmosphere, Hobart, Australia, Centre for Marine Socioecology, University of Tasmania, Australia; Frusher S., Centre for Marine Socioecology, University of Tasmania, Australia, Institute for Marine and Antarctic Studies, University of Tasmania, Australia; Parada C., Departamento de Geofísica, Universidad de Concepción, Casilla 160-C, Concepción, Chile; Haward M., Centre for Marine Socioecology, University of Tasmania, Australia, Institute for Marine and Antarctic Studies, University of Tasmania, Australia; Ernst B., Departamento de Oceanografía, Universidad de Concepción, Casilla 160-C, Concepción, Chile, Núcleo Milenio INVASAL, Concepción, Chile; Stram D., North Pacific Fishery Management Council, 605 West 4th, Suite 306, Anchorage, 99501, AK, United States","The Ecosystem-based Fisheries Management (EBFM) paradigm has been incorporated in the new Chilean Fisheries Act, requiring Chile to transition into EBFM. Chile is a major fishing nation and has substantial industrial and artisanal fleets that provide significant social and economic benefits to Chile and its coastal communities. With Chile facing global challenges, such as food security and climate change, transitioning to EBFM is seen as a mechanism for improved management of Chile's marine resources. Using Chile as an example to review coherence, strategies and implication of policies for transitioning toward EBFM. In Chile, the implementation of EBFM, in general, appears to be making progress and should be able to be applied for all fisheries (and aquaculture). Despite positive outcomes, there are weaknesses that can harm the successful implementation of EBFM. Changes such as management councils and scientific committees structured around ecosystems rather than single species, the engagement of broader types of stakeholders, and the use of appropriate reference points are necessary for a strong implementation of EBFM. Incorporating these modifications under the current management framework would enable Chile to improve its implementation of EBFM and prepare its fisheries to address future management challenges under scenarios of change. © 2018 Elsevier Ltd",chilean ecosystems; eaf; ebfm; fisheries policy; policy coherence; small-scale fisheries,Chile; aquaculture; community structure; fishery management; fishery policy; marine resource; policy implementation; small scale industry; socioeconomic impact,"J. Porobic; CSIRO Marine and Atmospheric Research, Hobart, Australia; email: javier.porobicgarate@csiro.au",,Elsevier Ltd,,,,,,0308597X,,,,English,Mar. Policy,Article,Final,,Scopus,2-s2.0-85053053877 Plieninger T.; Rana H.Á.A.; Fagerholm N.; Ellingsgaard G.F.; Magnussen E.; Raymond C.M.; Olafsson A.S.; Verbrugge L.N.H.,"Plieninger, Tobias (6603486401); Rana, Halla Áargarð av (57203011098); Fagerholm, Nora (35182832700); Ellingsgaard, Gunnvá Fossaberg (57203011529); Magnussen, Eyðfinn (17346271200); Raymond, Christopher M. (59307251100); Olafsson, Anton Stahl (16043030700); Verbrugge, Laura N.H. (55216634200)",6603486401; 57203011098; 35182832700; 57203011529; 17346271200; 59307251100; 16043030700; 55216634200,Identifying and assessing the potential for conflict between landscape values and development preferences on the Faroe Islands,2018,Global Environmental Change,52,,,162,180,18,53,10.1016/j.gloenvcha.2018.07.006,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85050189530&doi=10.1016%2fj.gloenvcha.2018.07.006&partnerID=40&md5=f7969a6a2e606cf6de2c7fe63ef345e0,"Social-Ecological Interactions in Agricultural Systems, University of Kassel and University of Göttingen, Witzenhausen, 37213, Germany; Department of Geosciences and Natural Resource Management, University of Copenhagen, Frederiksberg C, 1958, Denmark; Department of Geography and Geology, University of Turku, Turku, 20014, Finland; Faculty of Science and Technology, University of the Faroe Islands, Tórshavn, 100, Faroe Islands; Department of Landscape Architecture, Planning and Management, Swedish University of Agricultural Sciences, Alnarp, 230 53, Sweden; Department of Water Engineering and Management, University of Twente, Enschede, 7500, AE, Netherlands","Plieninger T., Social-Ecological Interactions in Agricultural Systems, University of Kassel and University of Göttingen, Witzenhausen, 37213, Germany; Rana H.Á.A., Department of Geosciences and Natural Resource Management, University of Copenhagen, Frederiksberg C, 1958, Denmark; Fagerholm N., Department of Geosciences and Natural Resource Management, University of Copenhagen, Frederiksberg C, 1958, Denmark, Department of Geography and Geology, University of Turku, Turku, 20014, Finland; Ellingsgaard G.F., Department of Geosciences and Natural Resource Management, University of Copenhagen, Frederiksberg C, 1958, Denmark; Magnussen E., Faculty of Science and Technology, University of the Faroe Islands, Tórshavn, 100, Faroe Islands; Raymond C.M., Department of Landscape Architecture, Planning and Management, Swedish University of Agricultural Sciences, Alnarp, 230 53, Sweden; Olafsson A.S., Department of Geosciences and Natural Resource Management, University of Copenhagen, Frederiksberg C, 1958, Denmark; Verbrugge L.N.H., Department of Water Engineering and Management, University of Twente, Enschede, 7500, AE, Netherlands","Small islands are characterised by geographic isolation, strong place attachment, and vulnerabilities to social, economic, and ecological changes. They are often subject to development activities that raise concerns about impacts on multiple land- and seascape values. This study elicits a range of land- and seascape values, development preferences, and land-use conflicts in a Northern Atlantic islands setting. We do so by linking participatory mapping with narrative analysis techniques to elicit landscape values and development preferences and to identify the potential for land-use conflicts. Four narratives were illustrative of human-nature relationships in the North Atlantic, revealing a great appreciation for wildlife and landforms, for peaceful and undisturbed ecosystems, for open access to land and sea, and for people being part of nature as major themes. The overlay of mapped landscape values and development preferences identified areas with a high potential for future land-use conflicts. Tourism development had a particularly high potential for conflicts. The local narratives on development activities – tourism, renewable energy, and fish farming/processing – confirmed diverging viewpoints. Respondents acknowledged the need for new economic opportunities that may create employment and wealth, but were concerned about negative effects for nature and society and the perceived inability to govern these developments. We argue that planning for multiple landscape values and preferences is crucial to manage the potential for trade-offs in land- and seascape development that is influenced by a range of pressures and drivers of change. © 2018 Elsevier Ltd",cultural values; faroe islands; land-use change; narratives; ppgis; social-ecological systems,Atlantic islands; Faroe Islands; conflict management; culture; economic development; environmental values; identification method; land use conflict; nature-society relations; tourism development,"T. Plieninger; Social-Ecological Interactions in Agricultural Systems, University of Kassel and University of Göttingen, Witzenhausen, 37213, Germany; email: plieninger@uni-kassel.de",,Elsevier Ltd,,,,,,09593780,,GECHE,,English,Global Environ. Change,Article,Final,All Open Access; Green Open Access,Scopus,2-s2.0-85050189530 Yan F.; Wang X.; Su F.,"Yan, Fengqin (56235779400); Wang, Xuege (57218518579); Su, Fenzhen (57210948280)",56235779400; 57218518579; 57210948280,"Ecosystem service changes in response to mainland coastline movements in China: Process, pattern, and trade-off",2020,Ecological Indicators,116,,106337,,,,15,10.1016/j.ecolind.2020.106337,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85084941012&doi=10.1016%2fj.ecolind.2020.106337&partnerID=40&md5=50706d4b993536b68aa639e5ac94d904,"State Key Laboratory of Resources and Environmental Information System, Institute of Geographic Sciences and Natural Resources Research, Chinese Academy of Sciences, Beijing, 100101, China; School of Geography and Ocean Sciences, Nanjing University, Nanjing, 210023, China; Collaborative Innovation Center for the South China Sea Studies, Nanjing University, Nanjing, 210023, China","Yan F., State Key Laboratory of Resources and Environmental Information System, Institute of Geographic Sciences and Natural Resources Research, Chinese Academy of Sciences, Beijing, 100101, China; Wang X., State Key Laboratory of Resources and Environmental Information System, Institute of Geographic Sciences and Natural Resources Research, Chinese Academy of Sciences, Beijing, 100101, China, School of Geography and Ocean Sciences, Nanjing University, Nanjing, 210023, China, Collaborative Innovation Center for the South China Sea Studies, Nanjing University, Nanjing, 210023, China; Su F., State Key Laboratory of Resources and Environmental Information System, Institute of Geographic Sciences and Natural Resources Research, Chinese Academy of Sciences, Beijing, 100101, China, School of Geography and Ocean Sciences, Nanjing University, Nanjing, 210023, China, Collaborative Innovation Center for the South China Sea Studies, Nanjing University, Nanjing, 210023, China","The coastal zone is one of the most valuable ecosystems worldwide because of the diverse and significant ecosystem services (ESs) it provides for human survival and development. Changes in land-use including coastal reclamation and erosion have altered the distribution of coastline and caused substantial changes in the structure and value of coastal ESs. In the past four decades, the mainland coastline in China has undergone extensive changes primarily due to coastal reclamation. This study investigated changes in land-use and spatiotemporal variations in ESs in response to coastline movements in China over the last four decades. The results indicate that land area increased by 1.10 million ha in response to coastline movements in this time period, primarily due to reclamation for aquaculture pond, port, construction land and the development of tied islands. Coastline movements have decreased ecosystem service values (ESVs) by $6.83 billion over the past four decades. Additionally, coastline movements have affected the ESV structure, decreasing the ESVs of erosion prevention and waste treatment functions while increasing the ESV functions of gas regulation and moderation of disturbance. Greater attentions should be paid to the protection and restoration of natural coastal land in China. By assessing the loss of ESVs quantitatively in response to coastline movements, this study provides some suggestions for ecosystem-based management of coastal land in China. © 2020 Elsevier Ltd",china; coastal erosion; coastal erosion; coastline movement; ecosystem services; land-use change,China; Economic and social effects; Erosion; Land reclamation; Land use; Landforms; Reclamation; Waste treatment; Aquaculture ponds; Construction land; Ecosystem service values; Ecosystem services; Ecosystem-based management; Erosion prevention; Protection and restoration; Spatio-temporal variation; coast; coastal erosion; coastal zone; coastal zone management; ecosystem response; ecosystem service; land reclamation; land use change; spatiotemporal analysis; trade-off; Ecosystems,"F. Su; State Key Laboratory of Resources and Environmental Information System, Institute of Geographic Sciences and Natural Resources Research, Chinese Academy of Sciences, Beijing, 100101, China; email: sufz@lreis.ac.cn",,Elsevier B.V.,,,,,,1470160X,,,,English,Ecol. Indic.,Article,Final,All Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85084941012 Becker A.; Taylor M.D.; Folpp H.; Lowry M.B.,"Becker, Alistair (8700998600); Taylor, Matthew D. (55675015500); Folpp, Heath (12143113900); Lowry, Michael B. (7102089730)",8700998600; 55675015500; 12143113900; 7102089730,Managing the development of artificial reef systems: The need for quantitative goals,2018,Fish and Fisheries,19,4,,740,752,12,87,10.1111/faf.12288,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85045906929&doi=10.1111%2ffaf.12288&partnerID=40&md5=edd520ae7721d2c67a123187f6ee59f5,"Port Stephens Fisheries Institute, NSW Department of Primary Industries, Taylors Beach, NSW, Australia; Recreational and Aboriginal Fisheries, NSW Department of Primary Industries, Coffs Harbour Jetty, NSW, Australia","Becker A., Port Stephens Fisheries Institute, NSW Department of Primary Industries, Taylors Beach, NSW, Australia; Taylor M.D., Port Stephens Fisheries Institute, NSW Department of Primary Industries, Taylors Beach, NSW, Australia; Folpp H., Recreational and Aboriginal Fisheries, NSW Department of Primary Industries, Coffs Harbour Jetty, NSW, Australia; Lowry M.B., Port Stephens Fisheries Institute, NSW Department of Primary Industries, Taylors Beach, NSW, Australia","Fisheries enhancement initiatives are a potentially useful tool for managers to supplement traditional approaches. Habitat-based enhancements often deploy artificial reefs with the aim to increase the available structure to augment local production, yet current assessment approaches make it difficult to assess whether these reefs achieve pre-deployment goals. This makes it hard for managers to determine whether artificial reefs could improve their fishery outputs, potentially leading to missed opportunities and reduced production. We reviewed 270 research articles to determine whether existing monitoring studies identify whether artificial reefs meet their pre-deployment goals, thereby providing some evidence of their suitability for certain fisheries. We found only 62% of these studies clearly articulated the original goals of the reef. Goals were qualitative, and most studies were conducted over insufficient time frames to allow for ecological communities to stabilize and mature. It is therefore difficult to determine the success or failure of many artificial reefs in addressing the management issues for which they were deployed. In the light of these findings, we think the setting of explicit quantitative goals (which may be biological, social or economic), and monitoring the performance of reefs against these goals, could stimulate the broader application of artificial reefs in fisheries management strategies. Such an approach has been successfully adopted in aquaculture-based fisheries enhancement, and we explain how current evaluation methods such as harvest strategies can be easily adapted to quantitatively monitor artificial reef performance. © 2018 John Wiley & Sons Ltd",artificial creeks; fisheries enhancement; fisheries management; harvest strategy; recreational fisheries,artificial reef; fishery management; harvesting; literature review; management practice; monitoring; performance assessment; recreational activity,"A. Becker; Port Stephens Fisheries Institute, NSW Department of Primary Industries, Taylors Beach, Australia; email: alistair.becker@dpi.nsw.gov.au",,Blackwell Publishing Ltd,,,,,,14672960,,FFIIA,,English,Fish Fish.,Article,Final,,Scopus,2-s2.0-85045906929 Quinn C.H.; Stringer L.C.; Berman R.J.; Le H.T.V.; Msuya F.E.; Pezzuti J.C.B.; Orchard S.E.,"Quinn, Claire H. (8202525200); Stringer, Lindsay C. (14018839600); Berman, Rachel J. (55216694500); Le, Hue T.V. (57220950733); Msuya, Flower E. (6602330271); Pezzuti, Juarez C.B. (29567529100); Orchard, Steven E. (56641026400)",8202525200; 14018839600; 55216694500; 57220950733; 6602330271; 29567529100; 56641026400,"Unpacking changes in mangrove social-ecological systems: Lessons from Brazil, Zanzibar, and Vietnam",2017,Resources,6,1,14,,,,26,10.3390/resources6010014,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85018917936&doi=10.3390%2fresources6010014&partnerID=40&md5=d601f2630ecec5ae637995ccaab09297,"Sustainability Research Institute, School of Earth and Environment, University of Leeds, Leeds, LS2 9JT, United Kingdom; Centre for Natural Resources and Environmental Studies, Vietnam National University, Hanoi, 100000, Viet Nam; Institute of Marine Sciences, University of Dar es Salaam, Zanzibar, 00255, Tanzania; Centre for Advanced Amazonian Studies, Federal University of Parà, Belem, 66075-110, Brazil","Quinn C.H., Sustainability Research Institute, School of Earth and Environment, University of Leeds, Leeds, LS2 9JT, United Kingdom; Stringer L.C., Sustainability Research Institute, School of Earth and Environment, University of Leeds, Leeds, LS2 9JT, United Kingdom; Berman R.J., Sustainability Research Institute, School of Earth and Environment, University of Leeds, Leeds, LS2 9JT, United Kingdom; Le H.T.V., Centre for Natural Resources and Environmental Studies, Vietnam National University, Hanoi, 100000, Viet Nam; Msuya F.E., Institute of Marine Sciences, University of Dar es Salaam, Zanzibar, 00255, Tanzania; Pezzuti J.C.B., Centre for Advanced Amazonian Studies, Federal University of Parà, Belem, 66075-110, Brazil; Orchard S.E., Sustainability Research Institute, School of Earth and Environment, University of Leeds, Leeds, LS2 9JT, United Kingdom","Mangroves provide multiple benefits, from carbon storage and shoreline protection to food and energy for natural resource-dependent coastal communities. However, they are coming under increasing pressure from climate change, coastal development, and aquaculture. There is increasing need to better understand the changes mangroves face and whether these changes differ or are similar in different parts of the world. Using a multiple case study approach, focused on Vietnam, Zanzibar, and Brazil, this research analyzed the drivers, pressures, states, impacts, and responses (DPSIR) of mangrove systems. A qualitative content analysis was used on a purposively sampled document set for each country to identify and collate evidence under each of the DPSIR categories. Population growth and changing political and economic processes were key drivers across the three countries, leading to land use change and declining states of mangroves. This had an impact on the delivery of regulatory and provisioning ecosystem services from mangroves and on the welfare of coastal communities. Responses have been predominantly regulatory and aim to improve mangrove states, but without always considering ecosystem services or the consequences for welfare. The issue of scale emerged as a critical factor with drivers, pressures, impacts, and responses operating at different levels (from international to local), with consequences for response effectiveness. © 2016 by the authors.",coastal management; complex systems; environmental sustainability; forests; livelihoods; welfare,,"C.H. Quinn; Sustainability Research Institute, School of Earth and Environment, University of Leeds, Leeds, LS2 9JT, United Kingdom; email: c.h.quinn@leeds.ac.uk",,Molecular Diversity Preservation International Publishing (MDPI),,,,,,20799276,,,,English,Resources,Article,Final,All Open Access; Gold Open Access; Green Open Access,Scopus,2-s2.0-85018917936 Broitman B.R.; Halpern B.S.; Gelcich S.; Lardies M.A.; Vargas C.A.; Vásquez-Lavín F.; Widdicombe S.; Birchenough S.N.R.,"Broitman, Bernardo R. (6508052011); Halpern, Benjamin S. (7103099423); Gelcich, Stefan (8563637100); Lardies, Marco A. (6701859841); Vargas, Cristian A. (55597089579); Vásquez-Lavín, Felipe (47161763000); Widdicombe, Stephen (6701786626); Birchenough, Silvana N.R. (11439625500)",6508052011; 7103099423; 8563637100; 6701859841; 55597089579; 47161763000; 6701786626; 11439625500,Dynamic interactions among boundaries and the expansion of sustainable aquaculture,2017,Frontiers in Marine Science,4,JAN,15,,,,15,10.3389/fmars.2017.00015,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85017225219&doi=10.3389%2ffmars.2017.00015&partnerID=40&md5=9ce7215f464ea98ca4ba1b0b33b7c65c,"Centro de Estudios Avanzados en Zonas áridas, Facultad de Ciencias del Mar, Universidad Católica del Norte, Coquimbo, Chile; Bren School of Environmental Science and Management, University of California, Santa Barbara, CA, United States; Departamento de Ecología, Pontificia Universidad Católica de Chile, Alameda, Chile; Facultad de Ingeniería y Ciencias and Facultad de Artes Liberales, Universidad Adolfo Ibáñez, Santiago, Chile; Laboratorio de Funcionamiento de Ecosistemas Acuáticos, Departamento de Sistemas Acuáticos, Facultad de Ciencias Ambientales, Universidad de Concepción, Concepcion, Chile; Universidad del Desarrollo and Universidad de Concepción, Concepción, Chile; Plymouth Marine Laboratory, Plymouth, United Kingdom; CEFAS Lowestoft Laboratory, Suffolk, United Kingdom","Broitman B.R., Centro de Estudios Avanzados en Zonas áridas, Facultad de Ciencias del Mar, Universidad Católica del Norte, Coquimbo, Chile; Halpern B.S., Bren School of Environmental Science and Management, University of California, Santa Barbara, CA, United States; Gelcich S., Departamento de Ecología, Pontificia Universidad Católica de Chile, Alameda, Chile; Lardies M.A., Facultad de Ingeniería y Ciencias and Facultad de Artes Liberales, Universidad Adolfo Ibáñez, Santiago, Chile; Vargas C.A., Laboratorio de Funcionamiento de Ecosistemas Acuáticos, Departamento de Sistemas Acuáticos, Facultad de Ciencias Ambientales, Universidad de Concepción, Concepcion, Chile; Vásquez-Lavín F., Universidad del Desarrollo and Universidad de Concepción, Concepción, Chile; Widdicombe S., Plymouth Marine Laboratory, Plymouth, United Kingdom; Birchenough S.N.R., CEFAS Lowestoft Laboratory, Suffolk, United Kingdom","Aquaculture is the fastest growing food production system in the world, generating more than half of the global seafood harvested today. These type of activities are crucial to provide key nutritional components for humanity in the future as populations worldwide are increasing and the demands for securing food resources are imperative. Multiple socio-ecological factors such as weak regulations and focus on maximizing production limit production and threaten the sustainable growth of aquaculture. We present a novel policy framework to evaluate and pursue growth in aquaculture considering four boundaries: biological productivity, environmental constraints to that productivity, policy that inhibits or promotes different kinds of aquaculture, and social preferences that determine aquaculture markets. Using a range of scenarios, we have shown that sustainable growth in aquaculture requires simultaneous consideration of all four boundaries and the potential interactions between all of these options. Our proposed conceptual framework shows that to further expand the boundaries of aquaculture production, the policy focus must remain flexible to enable the adaptation of from single-boundary approaches. Our approach takes account of the current boundaries, helping to consider the adaptive policy, which is deemed as a necessary tool for considering the dynamic interactions among boundaries, thus addressing the problem of defining the evolving limits of sustainable aquaculture. © 2017 Broitman, Halpern, Gelcich, Lardies, Vargas, Vásquez-Lavín, Widdicombe and Birchenough.",aquaculture; fishes; mollusks; socioecology; sustainability,,"B.R. Broitman; Centro de Estudios Avanzados en Zonas áridas, Facultad de Ciencias del Mar, Universidad Católica del Norte, Coquimbo, Chile; email: bernardo.broitman@ceaza.cl",,Frontiers Media S. A,,,,,,22967745,,,,English,Front. Mar. Sci.,Article,Final,All Open Access; Gold Open Access; Green Open Access,Scopus,2-s2.0-85017225219 Cavraro F.; Zucchetta M.; Malavasi S.; Franzoi P.,"Cavraro, Francesco (36156059000); Zucchetta, Matteo (6504587922); Malavasi, Stefano (55259059300); Franzoi, Piero (6603643643)",36156059000; 6504587922; 55259059300; 6603643643,Small creeks in a big lagoon: The importance of marginal habitats for fish populations,2017,Ecological Engineering,99,,,228,237,9,16,10.1016/j.ecoleng.2016.11.045,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84996837292&doi=10.1016%2fj.ecoleng.2016.11.045&partnerID=40&md5=455e774dec26c71c2853d28464ed36e6,"Department of Environmental Sciences, Informatics and Statistics, Ca’ Foscari University Venice, Via Torino, Venice, 155-30172, Italy","Cavraro F., Department of Environmental Sciences, Informatics and Statistics, Ca’ Foscari University Venice, Via Torino, Venice, 155-30172, Italy; Zucchetta M., Department of Environmental Sciences, Informatics and Statistics, Ca’ Foscari University Venice, Via Torino, Venice, 155-30172, Italy; Malavasi S., Department of Environmental Sciences, Informatics and Statistics, Ca’ Foscari University Venice, Via Torino, Venice, 155-30172, Italy; Franzoi P., Department of Environmental Sciences, Informatics and Statistics, Ca’ Foscari University Venice, Via Torino, Venice, 155-30172, Italy","Temperate transitional water systems, as in the case of the Venice Lagoon, are characterised by many different shallow-water habitats. The availability of trophic resources and the low predator pressure make salt marshes one of the most important habitats for many fish species, both resident and marine migrant, but several anthropogenic pressures, erosion and relative sea level rise in particular, are causing a significant loss of this habitat. A part from natural habitats, in many small islands of the Venice lagoon, artificial creeks of different size and morphology are present, once used in traditional aquaculture activities or built up as defence lines. Aims of this study is to analyse and compare the structure and composition of fish communities inhabiting small-sized creeks, considering both the natural and artificial ones, in order to evaluate the ecological importance of these marginal habitats for fish populations. A particular attention was given to artificial sites, assessing their ecological value as alternative refuge habitats to natural salt marsh creeks. One year samplings conducted in four sites (two natural salt marshes and two artificial creeks) allowed to describe the local fish communities, which comprised 20 species overall. The analysis of how water parameters and habitat structure influenced the fish communities showed the importance of the connection between small creeks and the open lagoon, but also the refuge function offered by confined systems. High abundances of resident fish species listed in the Annex II of the Habitat Directive were observed and juveniles of eight species of marine migrant fish were found, some of which are of economic importance. This study underlined the presence of significant densities of juvenile marine migrant and lagoon resident fish species in the two artificial habitats. Actually, species richness and density resulted to be, in some cases, higher than in natural salt marsh systems. Results of this study emphasize the ecological importance of these marginal habitats for many fish species, of both conservation and economic importance Thus a proper management and restoration strategy of these sites is needed to maintain their functionality and to buffer the disappearance of natural salt marshes. © 2016 Elsevier B.V.",artificial creeks; fish; lagoon; salt marsh; tidal creeks,Italy; Veneto; Venezia [Veneto]; Venice Lagoon; Conservation; Ecology; Fish; Fisheries; Forestry; Lakes; Sea level; Wetlands; Anthropogenic pressures; Artificial creeks; Economic importance; Lagoon; Relative sea level rise; Restoration strategies; Salt marshes; Tidal creeks; anthropogenic effect; artificial ecosystem; coastal erosion; fish; habitat fragmentation; habitat structure; juvenile; lagoon; resource availability; saltmarsh; sea level change; species richness; Ecosystems,"F. Cavraro; Department of Environmental Sciences, Informatics and Statistics, Ca’ Foscari University Venice, Venice, Via Torino, 155-30172, Italy; email: cavraro@unive.it",,Elsevier B.V.,,,,,,09258574,,ECENE,,English,Ecol. Eng.,Article,Final,All Open Access; Green Open Access,Scopus,2-s2.0-84996837292 Said A.; MacMillan D.,"Said, Alicia (57190489013); MacMillan, Douglas (7102853588)",57190489013; 7102853588,‘Re-grabbing’ marine resources: a blue degrowth agenda for the resurgence of small-scale fisheries in Malta,2020,Sustainability Science,15,1,,91,102,11,37,10.1007/s11625-019-00769-7,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85077149085&doi=10.1007%2fs11625-019-00769-7&partnerID=40&md5=db04dfde67529183a69cca86c63bf6bd,"IFREMER, Centre for Law and Economics of the Sea, IUEM-AMURE, Brest, France; School of Anthropology and Conservation, University of Kent, Canterbury, United Kingdom","Said A., IFREMER, Centre for Law and Economics of the Sea, IUEM-AMURE, Brest, France, School of Anthropology and Conservation, University of Kent, Canterbury, United Kingdom; MacMillan D., School of Anthropology and Conservation, University of Kent, Canterbury, United Kingdom","The era of blue growth, underpinned by neoliberal policy discourses, has been pervasive in the promulgation of European marine governance and policies in the past decade, with little or no regard for the sustainability of small-scale fisheries. In this paper, we engage with theoretical and empirical observations to reflect on how the promise of sustainable economic growth arising from the convergence of international conservation policies and the blue growth paradigm, has failed to materialise and caused huge social and economic inequities among local fishing communities and the catastrophic disruption of the socio-ecological system of fisheries. Drawing on various interventions in Malta, we illustrate how neoliberal policies, lauded and promoted as part of a national blue growth strategy, are suffocating and marginalising small-scale fishingcommunities by concentrating fishing opportunities into fewer, larger corporate hands, and by a hegemonic anti-small scale fishing narrative that seeks to replace traditional fishing with the ‘darlings of the new blue economy’, aquaculture and coastal tourism. With artisanal-commercial fishing in Malta on the verge of extinction, we call for reversal of neo-liberal policy measures to re-create a more resilient and stable fisheries economy through specific blue degrowth measures including improved access to fisheries resources and markets, and the establishment of marine protected areas that recognize the value of small-scale fisheries to conservation. This could be achieved through equity-based governance systems, including improved profit distribution systems within community economies, that grant small-scale fisheries the possibility of re-institutionalizing their sector and promoting their existence and viability into the future. Ultimately, we demonstrate that through a blue economy roadmap for small-scale fisheries, small-islands states like Malta, can rescue an important component of their maritime traditions, and be better placed to reach the obligations set out within the United Nations sustainable development goals. © 2019, Springer Japan KK, part of Springer Nature.",community economies; conservation; neoliberalism; redistribution; sustainability; tuna,,"A. Said; IFREMER, Centre for Law and Economics of the Sea, IUEM-AMURE, Brest, France; email: alicia.said@ifremer.fr",,Springer,,,,,,18624065,,,,English,Sustainability Sci.,Article,Final,,Scopus,2-s2.0-85077149085 Scales I.R.; Friess D.A.,"Scales, Ivan R. (43861808600); Friess, Daniel A. (52263575800)",43861808600; 52263575800,Patterns of mangrove forest disturbance and biomass removal due to small-scale harvesting in southwestern Madagascar,2019,Wetlands Ecology and Management,27,5-6,,609,625,16,48,10.1007/s11273-019-09680-5,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85069496297&doi=10.1007%2fs11273-019-09680-5&partnerID=40&md5=712b8f4a84fb2b6d11d849adf48dc61e,"St Catharine’s College, Trumpington Street, Cambridge, CB2 1RL, United Kingdom; Department of Geography, National University of Singapore, 1 Arts Link, Singapore, 117570, Singapore","Scales I.R., St Catharine’s College, Trumpington Street, Cambridge, CB2 1RL, United Kingdom; Friess D.A., Department of Geography, National University of Singapore, 1 Arts Link, Singapore, 117570, Singapore","Informal small-scale mangrove wood harvesting has received limited attention, though it is a widespread threat to mangroves in many parts of the tropics. We investigated wood use and the impacts of harvesting on mangrove forests in the Bay of Assassins in southwest Madagascar. We measured forest structure, composition, and harvesting across 60 vegetation plots and investigated human uses of the mangroves through Rapid Rural Appraisal techniques. We found that unlike other mangroves in the region, those in the Bay of Assassins are dominated by Ceriops tagal. Tree harvesting rates are high, with a mean of 28.7% (SD 19.4) of trees harvested per plot. This is similar to heavily harvested mangroves in other parts of the tropics. A comparison of tree versus sapling importance of the different mangrove tree species indicates that the composition of the mangrove forest is changing, with C. tagal becoming more important. Livelihood activities drive the harvesting of certain species and size classes. Mangrove wood is used mainly for the construction of traditional housing and fencing. There are also emerging uses of mangrove wood, including seaweed (Kappaphycus alvarezii) aquaculture and the production of ‘sokay’, a lime render made by burning sea shells in mangrove wood kilns and used to improve the durability of houses. Small-scale selective harvesting of mangrove wood is important for local livelihoods but may have wide-ranging impacts on forest composition and structure. Demand for mangrove wood has grown in relation to new commodity chains for marine products, demonstrating the need for integrated landscape management that considers wetland, terrestrial and marine resources together. © 2019, The Author(s).",anthropogenic activities; deforestation; degradation; forest–poverty linkages; provisioning ecosystem services,Madagascar; Ceriops tagal; Kappaphycus alvarezii; Rhizophoraceae; anthropogenic effect; biomass; community composition; deforestation; degradation; disturbance; ecosystem service; forest ecosystem; harvesting; mangrove; poverty; rapid rural appraisal; stand structure,"I.R. Scales; St Catharine’s College, Cambridge, Trumpington Street, CB2 1RL, United Kingdom; email: irs28@cam.ac.uk",,Springer Netherlands,,,,,,09234861,,WEMAE,,English,Wetlands Ecol. Manage.,Article,Final,All Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85069496297 Blasco G.D.; Ferraro D.M.; Cottrell R.S.; Halpern B.S.; Froehlich H.E.,"Blasco, Gordon D. (57221263747); Ferraro, Danielle M. (57221264557); Cottrell, Richard S. (57196122128); Halpern, Benjamin S. (7103099423); Froehlich, Halley E. (55818148100)",57221263747; 57221264557; 57196122128; 7103099423; 55818148100,Substantial Gaps in the Current Fisheries Data Landscape,2020,Frontiers in Marine Science,7,,612831,,,,22,10.3389/fmars.2020.612831,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85098644316&doi=10.3389%2ffmars.2020.612831&partnerID=40&md5=a0a9c8152c5a51b57fcddf6abd3f4c7d,"National Center for Ecological Analysis and Synthesis, University of California, Santa Barbara, Santa Barbara, CA, United States; Bren School of Environmental Science and Management, University of California, Santa Barbara, Santa Barbara, CA, United States; Environmental Market Solutions Lab, University of California, Santa Barbara, Santa Barbara, CA, United States; Marine Science Institute, University of California, Santa Barbara, Santa Barbara, CA, United States; Ecology, Evolution, and Marine Biology, University of California, Santa Barbara, Santa Barbara, CA, United States; Environmental Studies, University of California, Santa Barbara, Santa Barbara, CA, United States","Blasco G.D., National Center for Ecological Analysis and Synthesis, University of California, Santa Barbara, Santa Barbara, CA, United States; Ferraro D.M., National Center for Ecological Analysis and Synthesis, University of California, Santa Barbara, Santa Barbara, CA, United States, Bren School of Environmental Science and Management, University of California, Santa Barbara, Santa Barbara, CA, United States, Environmental Market Solutions Lab, University of California, Santa Barbara, Santa Barbara, CA, United States, Marine Science Institute, University of California, Santa Barbara, Santa Barbara, CA, United States; Cottrell R.S., National Center for Ecological Analysis and Synthesis, University of California, Santa Barbara, Santa Barbara, CA, United States; Halpern B.S., National Center for Ecological Analysis and Synthesis, University of California, Santa Barbara, Santa Barbara, CA, United States, Bren School of Environmental Science and Management, University of California, Santa Barbara, Santa Barbara, CA, United States; Froehlich H.E., Ecology, Evolution, and Marine Biology, University of California, Santa Barbara, Santa Barbara, CA, United States, Environmental Studies, University of California, Santa Barbara, Santa Barbara, CA, United States","Effective management of aquatic resources, wild and farmed, has implications for the livelihoods of dependent communities, food security, and ecosystem health. Good management requires information on the status of harvested species, yet many gaps remain in our understanding of these species and systems, in particular the lack of taxonomic resolution of harvested species. To assess these gaps we compared the occurrence of landed species (freshwater and marine) from the United Nations Food and Agriculture Organization (FAO) global fisheries production database to those in the International Union for Conservation of Nature (IUCN) Red List and the RAM Legacy Stock Assessment Database, some of the largest and most comprehensive global datasets of consumed aquatic species. We also quantified the level of resolution and trends in taxonomic reporting for all landed taxa in the FAO database. Of the 1,695 consumed aquatic species or groups in the FAO database considered in this analysis, a large portion (35%) are missing from both of the other two global datasets, either IUCN or RAM, used to monitor, manage, and protect aquatic resources. Only a small number of all fished taxa reported in FAO data (150 out of 1,695; 9%) have both a stock assessment in RAM and a conservation assessment in IUCN. Furthermore, 40% of wild caught landings are not reported to the species level, limiting our ability to effectively account for the environmental impacts of wild harvest. Landings of invertebrates (44%) and landings in Asia (>75%) accounted for the majority of harvest without species specific information in 2018. Assessing the overlap of species which are both farmed and fished to broadly map possible interactions – which can help or hinder wild populations - we found 296 species, accounting for 12% of total wild landings globally, and 103 countries and territories that have overlap in the species caught in the wild and produced through aquaculture. In all, our work highlights that while fisheries management is improving in many areas there remain key gaps in data resolution that are critical for fisheries assessments and conservation of aquatic systems into the future. © Copyright © 2020 Blasco, Ferraro, Cottrell, Halpern and Froehlich.",data uncertainty; global oceans; knowledge gaps; overexploitation; seafood; wild capture,,"G.D. Blasco; National Center for Ecological Analysis and Synthesis, University of California, Santa Barbara, Santa Barbara, United States; email: blasco@nceas.ucsb.edu",,Frontiers Media S.A.,,,,,,22967745,,,,English,Front. Mar. Sci.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85098644316 Akber M.A.; Aziz A.A.; Lovelock C.,"Akber, Md. Ali (55779146100); Aziz, Ammar Abdul (57191076222); Lovelock, Catherine (7003761121)",55779146100; 57191076222; 7003761121,Major drivers of coastal aquaculture expansion in Southeast Asia,2020,Ocean and Coastal Management,198,,105364,,,,41,10.1016/j.ocecoaman.2020.105364,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85090350173&doi=10.1016%2fj.ocecoaman.2020.105364&partnerID=40&md5=1f2df6418aa8804fb64c5a322474df1a,"School of Agriculture and Food Sciences, The University of Queensland, Australia; School of Biological Sciences, The University of Queensland, Australia; Environmental Science Discipline, Khulna University, Bangladesh","Akber M.A., School of Agriculture and Food Sciences, The University of Queensland, Australia, Environmental Science Discipline, Khulna University, Bangladesh; Aziz A.A., School of Agriculture and Food Sciences, The University of Queensland, Australia; Lovelock C., School of Biological Sciences, The University of Queensland, Australia","Coastal aquaculture is socially, culturally and economically important in Southeast Asia, but its expansion in the last fifty years has had negative environmental and social consequences. Through analyses of detailed accounts of the expansion of coastal aquaculture, we aimed to increase knowledge of the factors underlying this expansion to guide future policies for sustainable management of the coastal zone. Using a systematic review of ninety studies, we found that increased aquaculture development and economic opportunities were the most frequently identified proximate drivers of coastal aquaculture expansion, while factors associated with location (e.g. availability of mangrove land), institutional policies and economy (e.g. capital investment and market demand) had lesser influence. However, complex combinations of the underlying factors were also important. For example, the influence of policies that stimulated aquaculture development was often associated with combinations of locational, institutional, economic, technological and social factors. Strategies aimed at enhancing expansion of sustainable coastal aquaculture and mangrove conservation should focus on government policy interventions, including those that support mangrove silvo-aquaculture. © 2020 Elsevier Ltd",coastal area; commercial aquaculture; land-use change; mangrove deforestation; shrimp farming,Southeast Asia; Decapoda (Crustacea); Aquaculture; Economics; Expansion; Investments; Sustainable development; Capital investment; Coastal aquaculture; Economic opportunities; Institutional policies; Policy intervention; Social consequences; Sustainable management; Underlying factors; aquaculture system; coastal zone; coastal zone management; economic conditions; resource development; sustainability; Economic and social effects,"M.A. Akber; School of Agriculture and Food Sciences, The University of Queensland, Australia; email: m.akber@uq.net.au",,Elsevier Ltd,,,,,,09645691,,OCMAE,,English,Ocean Coast. Manage.,Article,Final,,Scopus,2-s2.0-85090350173 Daly P.; Halim A.; Nizamuddin; Ardiansyah; Hundlani D.; Ho E.; Mahdi S.,"Daly, Patrick (7101813771); Halim, Agus (56522595800); Nizamuddin (57193440051); Ardiansyah (58462660900); Hundlani, Divya (57225267236); Ho, Ezra (56781040000); Mahdi, Saiful (57193885090)",7101813771; 56522595800; 57193440051; 58462660900; 57225267236; 56781040000; 57193885090,"Rehabilitating coastal agriculture and aquaculture after inundation events: Spatial analysis of livelihood recovery in post-tsunami Aceh, Indonesia",2017,Ocean and Coastal Management,142,,,218,232,14,28,10.1016/j.ocecoaman.2017.03.027,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85017336790&doi=10.1016%2fj.ocecoaman.2017.03.027&partnerID=40&md5=27cae034ed7f9fee390da82ed1b28bd4,"Earth Observatory of Singapore, Nanyang Technological University, 50 Nanyang Ave, N2-01b-19, 639798, Singapore; Department of Agriculture, Syiah Kuala University, Jl. Teuku Nyak Arief, Kopelma Darussalam, Aceh, Indonesia; Geographic Information Systems Lab, Syiah Kuala University, Jl. Teuku Nyak Arief, Kopelma Darussalam, Aceh, Indonesia; Department of Statistics, Syiah Kuala University, Jl. Teuku Nyak Arief, Kopelma Darussalam, Aceh, Indonesia","Daly P., Earth Observatory of Singapore, Nanyang Technological University, 50 Nanyang Ave, N2-01b-19, 639798, Singapore; Halim A., Department of Agriculture, Syiah Kuala University, Jl. Teuku Nyak Arief, Kopelma Darussalam, Aceh, Indonesia; Nizamuddin, Geographic Information Systems Lab, Syiah Kuala University, Jl. Teuku Nyak Arief, Kopelma Darussalam, Aceh, Indonesia; Ardiansyah, Geographic Information Systems Lab, Syiah Kuala University, Jl. Teuku Nyak Arief, Kopelma Darussalam, Aceh, Indonesia; Hundlani D., Earth Observatory of Singapore, Nanyang Technological University, 50 Nanyang Ave, N2-01b-19, 639798, Singapore; Ho E., Earth Observatory of Singapore, Nanyang Technological University, 50 Nanyang Ave, N2-01b-19, 639798, Singapore; Mahdi S., Department of Statistics, Syiah Kuala University, Jl. Teuku Nyak Arief, Kopelma Darussalam, Aceh, Indonesia","This paper presents GIS time-series land-use analysis of satellite images to quantify the recovery of rice cultivation and aquaculture following the 2004 Indian Ocean tsunami in coastal communities in Aceh, Indonesia. We supplement this with qualitative data to illustrate the post-disaster challenges faced by residents, and the extent to which coastal communities have adapted to post-tsunami realities. Our analysis shows that the rehabilitation of rice cultivation and aquaculture in areas inundated by the tsunami has been limited by extensive degradation of land, diversion of labor by tsunami mortality and transition to alternative livelihoods, and re-purposing of rice fields for residential use during the reconstruction phase. This is especially prominent in areas where subsistence activities are not the primary source of livelihood. The Aceh case study shows that social, economic, and environmental factors can be stronger determinants of how coastal livelihoods rebound and change following destructive inundation events than livelihood rehabilitation aid. Additionally, our case study suggests the human impact of coastal hazards can be felt outside the physical extent of inundation. © 2017 The Authors",agriculture; aquaculture; coastal livelihoods; post-disaster reconstruction; tsunami,Aceh; Indonesia; Agriculture; Aquaculture; Cultivation; Disasters; Floods; Geographic information systems; Land use; Time series analysis; Alternative livelihoods; Coastal communities; Coastal livelihoods; Environmental factors; Indian Ocean Tsunami; Land-use analysis; Post-disaster reconstruction; Rehabilitation aids; agricultural change; anthropogenic effect; aquaculture; coastal zone management; GIS; hazard assessment; Indian Ocean tsunami 2004; land degradation; livelihood; mortality; nature-society relations; reconstruction; satellite imagery; spatial analysis; Tsunamis,"P. Daly; Earth Observatory of Singapore, Nanyang Technological University, 50 Nanyang Ave, N2-01b-19, 639798, Singapore; email: patrickdaly@ntu.edu.sg",,Elsevier Ltd,,,,,,09645691,,OCMAE,,English,Ocean Coast. Manage.,Article,Final,All Open Access; Green Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85017336790 Hoerterer C.; Schupp M.F.; Benkens A.; Nickiewicz D.; Krause G.; Buck B.H.,"Hoerterer, Christina (57214444613); Schupp, Maximilian F. (57196449538); Benkens, Andreas (57214464081); Nickiewicz, Dustin (57214463979); Krause, Gesche (7202049424); Buck, Bela H. (7006705765)",57214444613; 57196449538; 57214464081; 57214463979; 7202049424; 7006705765,Stakeholder Perspectives on Opportunities and Challenges in Achieving Sustainable Growth of the Blue Economy in a Changing Climate,2020,Frontiers in Marine Science,6,,795,,,,27,10.3389/fmars.2019.00795,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85078802708&doi=10.3389%2ffmars.2019.00795&partnerID=40&md5=e6cfffdfac645695a48693dab3b3e21b,"Alfred Wegener Institute, Helmholtz Centre for Polar and Marine Research, Bremerhaven, Germany; School of Social Sciences, University of Dundee, Dundee, United Kingdom; Faculty 1, Applied Marine Biology and Aquaculture, University of Applied Sciences Bremerhaven, Bremerhaven, Germany","Hoerterer C., Alfred Wegener Institute, Helmholtz Centre for Polar and Marine Research, Bremerhaven, Germany; Schupp M.F., Alfred Wegener Institute, Helmholtz Centre for Polar and Marine Research, Bremerhaven, Germany, School of Social Sciences, University of Dundee, Dundee, United Kingdom; Benkens A., Alfred Wegener Institute, Helmholtz Centre for Polar and Marine Research, Bremerhaven, Germany; Nickiewicz D., Alfred Wegener Institute, Helmholtz Centre for Polar and Marine Research, Bremerhaven, Germany; Krause G., Alfred Wegener Institute, Helmholtz Centre for Polar and Marine Research, Bremerhaven, Germany; Buck B.H., Alfred Wegener Institute, Helmholtz Centre for Polar and Marine Research, Bremerhaven, Germany, Faculty 1, Applied Marine Biology and Aquaculture, University of Applied Sciences Bremerhaven, Bremerhaven, Germany","Coastal marine environments provide livelihoods as billions of people around the world depend greatly on sustainability efforts in the Blue Economy. In this study, we investigated how stakeholders from important Blue Economy sectors along the German North Sea coast perceive the impacts of climate change on their daily work life and the growth of the Blue Economy. In a two-stage approach we first conducted two stakeholder workshops with representatives from the regional sea food sector, science, NGOs and local authorities, in order to identify important issues linked to climate change affecting environment, society, economy and policy. In the second stage, we conducted semi-structured interviews with key knowledge holders from the Blue Economy, to evaluate and validate the most important issues identified during the first stage, and the impacts on the respective sectors. The workshop participants identified perceptible effects of climate change on their marine environment. Early career scientists showed that they possess a clear focus on measures for climate change adaptation, transdisciplinary approaches and knowledge transfer. The interviews revealed that the climate change effects could be perceived as both negative and positive, depending on the sector. Other issues, especially political decisions and developments are perceived to have a greater immediate impact on the Blue Economy than the slow progress of climate change effects. Additionally, increased human activities, in the form of new or intensified uses like marine renewable energy generation, have a greater influence and lead to conflicts between the Blue Economy sectors. Our study showed that economic and societal stakeholders in Germanys North Sea region are aware of climate change and already perceive its effects on their businesses. Synergies and conflicts between the sectors and political decisions might influence sustainable growth of the Blue Economy in highly contested regions, such as the North Sea basin, much stronger than the effects of climate change. This calls for a more flexible and adaptive approach to policymaking, taking into account the changing environmental, social and economic realities. © Copyright © 2020 Hoerterer, Schupp, Benkens, Nickiewicz, Krause and Buck.",adaptation; aquaculture; blue growth; fisheries; north sea; seafood; tourism,,"C. Hoerterer; Alfred Wegener Institute, Helmholtz Centre for Polar and Marine Research, Bremerhaven, Germany; email: Christina.Hoerterer@awi.de",,Frontiers Media S.A.,,,,,,22967745,,,,English,Front. Mar. Sci.,Article,Final,All Open Access; Gold Open Access; Green Open Access,Scopus,2-s2.0-85078802708 Ateweberhan M.; Hudson J.; Rougier A.; Jiddawi N.S.; Msuya F.E.; Stead S.M.; Harris A.,"Ateweberhan, Mebrahtu (12140889400); Hudson, Joanna (57205302441); Rougier, Antoine (56320342700); Jiddawi, Narriman S. (6506621111); Msuya, Flower E. (6602330271); Stead, Selina M. (7003698248); Harris, Alasdair (24476973200)",12140889400; 57205302441; 56320342700; 6506621111; 6602330271; 7003698248; 24476973200,Community based aquaculture in the western indian ocean: Challenges and opportunities for developing sustainable coastal livelihoods,2018,Ecology and Society,23,4,17,,,,28,10.5751/ES-10411-230417,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85059476290&doi=10.5751%2fES-10411-230417&partnerID=40&md5=4b83172e79ce2f015cbea18b47b38986,"Blue Ventures Conservation, United Kingdom; Institute of Marine Sciences, University of Dar es Salaam, Tanzania; Zanzibar Seaweed Cluster Initiative, Tanzania; School of Natural and Environmental Sciences, Newcastle University, United Kingdom","Ateweberhan M., Blue Ventures Conservation, United Kingdom; Hudson J., Blue Ventures Conservation, United Kingdom; Rougier A., Blue Ventures Conservation, United Kingdom; Jiddawi N.S., Institute of Marine Sciences, University of Dar es Salaam, Tanzania; Msuya F.E., Institute of Marine Sciences, University of Dar es Salaam, Tanzania, Zanzibar Seaweed Cluster Initiative, Tanzania; Stead S.M., School of Natural and Environmental Sciences, Newcastle University, United Kingdom; Harris A., Blue Ventures Conservation, United Kingdom","The small-fisheries social-ecological system in the western Indian Ocean (WIO) represents a typical social-ecological trap setting where very poor natural resources dependent coastal communities face local and global threats and engage in unsustainable practices of exploiting limited resources. Community-based aquaculture (CBA) has been implemented as an important alternative or supplementary income generating activity for minimizing the overdependence on marine natural resources and promoting biodiversity conservation. Despite its proliferation throughout the WIO region in recent decades, little is known about the degree to which CBA activities have contributed to achieving the objectives of breaking the cycle of poverty and environmental degradation and promoting community development and biodiversity conservation. In order to improve understanding of common challenges and to generate recommendations for best practice, we assessed the most common CBA activities practiced in the region through literature review and workshop discussion involving practitioners and key stakeholders. Findings indicated that despite favorable environmental conditions for various CBA practices, the sector remains underdeveloped, with few activities delivering the intended benefits for coastal livelihoods or conservation. Constraints included a shortage of seed and feed supplies, low investment, limited technical capacity and skills, insufficient political support, and lack of a clear strategy for aquaculture development. These are compounded by a lack of engagement of local stakeholders, with decision making often dominated by donors, development agencies, and private sector partners. Many of the region’s CBA projects are designed along unrealistically short time frames, driven by donors rather than entrepreneurs, and so are unable to achieve financial sustainability, which limits the opportunity for capacity building and longer-term development. There is little or no monitoring on ecological and socioeconomic impacts. Except for a few isolated cases, links between CBA and marine conservation outcomes have rarely been demonstrated. Realizing the potential of CBA in contributing toward food security in the WIO will necessitate concerted investment and capacity strengthening to overcome these systemic challenges in the sector. Lessons herein offer managers, scientists, and policy advisors guidance on addressing the challenges faced in building strategic development initiatives around aquaculture in developing countries. © 2018 by the author(s).",community-based conservation; ecosystem services; marine reserve; participatory approach; private-public-partnerships; pro-poor approaches; small-scale fisheries; social-ecological systems; sustainability,coastal zone management; developing world; ecosystem approach; livelihood; local participation; participatory approach; public-private partnership; sustainable development,,,Resilience Alliance,,,,,,17083087,,,,English,Ecol. Soc.,Article,Final,All Open Access; Gold Open Access; Green Open Access,Scopus,2-s2.0-85059476290 Gentry R.R.; Froehlich H.E.; Grimm D.; Kareiva P.; Parke M.; Rust M.; Gaines S.D.; Halpern B.S.,"Gentry, Rebecca R. (55574287000); Froehlich, Halley E. (55818148100); Grimm, Dietmar (57192876111); Kareiva, Peter (7005653835); Parke, Michael (36800773700); Rust, Michael (7102246000); Gaines, Steven D. (35554794700); Halpern, Benjamin S. (7103099423)",55574287000; 55818148100; 57192876111; 7005653835; 36800773700; 7102246000; 35554794700; 7103099423,Mapping the global potential for marine aquaculture,2017,Nature Ecology and Evolution,1,9,,1317,1324,7,397,10.1038/s41559-017-0257-9,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85031930773&doi=10.1038%2fs41559-017-0257-9&partnerID=40&md5=e8d64d4987057a576f0d5a8becfd529d,"Bren School of Environmental Science and Management, University of California Santa Barbara, Santa Barbara, 93106, CA, United States; National Center for Ecological Analysis and Synthesis, University of California, 735 State Street Suite 300, Santa Barbara, 93101, CA, United States; Nature Conservancy, B4-2 Qijiayuan Diplomatic Compound, 9 Jianwai Dajie, Chaoyang District, Beijing, 100600, China; Institute of the Environment and Sustainability, University of California Los Angeles, Los Angeles, 90095, CA, United States; Pacific Islands Fisheries Science Center, National Oceanic and Atmospheric Administration, Building 176, 1845 Wasp Boulevard, Honolulu, 96818, HI, United States; Pacific Islands Fisheries Science Center, National Oceanic and Atmospheric Administration, 1315 East-West Highway, Silver Spring, 20910, MD, United States; Imperial College London, Silwood Park Campus, Buckhurst Road, Ascot, SL5 7PY, United Kingdom","Gentry R.R., Bren School of Environmental Science and Management, University of California Santa Barbara, Santa Barbara, 93106, CA, United States; Froehlich H.E., National Center for Ecological Analysis and Synthesis, University of California, 735 State Street Suite 300, Santa Barbara, 93101, CA, United States; Grimm D., Nature Conservancy, B4-2 Qijiayuan Diplomatic Compound, 9 Jianwai Dajie, Chaoyang District, Beijing, 100600, China; Kareiva P., Institute of the Environment and Sustainability, University of California Los Angeles, Los Angeles, 90095, CA, United States; Parke M., Pacific Islands Fisheries Science Center, National Oceanic and Atmospheric Administration, Building 176, 1845 Wasp Boulevard, Honolulu, 96818, HI, United States; Rust M., Pacific Islands Fisheries Science Center, National Oceanic and Atmospheric Administration, 1315 East-West Highway, Silver Spring, 20910, MD, United States; Gaines S.D., Bren School of Environmental Science and Management, University of California Santa Barbara, Santa Barbara, 93106, CA, United States; Halpern B.S., Bren School of Environmental Science and Management, University of California Santa Barbara, Santa Barbara, 93106, CA, United States, National Center for Ecological Analysis and Synthesis, University of California, 735 State Street Suite 300, Santa Barbara, 93101, CA, United States, Imperial College London, Silwood Park Campus, Buckhurst Road, Ascot, SL5 7PY, United Kingdom","Marine aquaculture presents an opportunity for increasing seafood production in the face of growing demand for marine protein and limited scope for expanding wild fishery harvests. However, the global capacity for increased aquaculture production from the ocean and the relative productivity potential across countries are unknown. Here, we map the biological production potential for marine aquaculture across the globe using an innovative approach that draws from physiology, allometry and growth theory. Even after applying substantial constraints based on existing ocean uses and limitations, we find vast areas in nearly every coastal country that are suitable for aquaculture. The development potential far exceeds the space required to meet foreseeable seafood demand; indeed, the current total landings of all wild-capture fisheries could be produced using less than 0.015% of the global ocean area. This analysis demonstrates that suitable space is unlikely to limit marine aquaculture development and highlights the role that other factors, such as economics and governance, play in shaping growth trajectories. We suggest that the vast amount of space suitable for marine aquaculture presents an opportunity for countries to develop aquaculture in a way that aligns with their economic, environmental and social objectives. © 2017 The Author(s).",,"Aquaculture; Aquatic Organisms; Seafood; aquaculture; aquatic species; growth, development and aging; sea food; statistics and numerical data; supply and distribution; trends","R.R. Gentry; Bren School of Environmental Science and Management, University of California Santa Barbara, Santa Barbara, 93106, United States; email: rgentry@bren.ucsb.edu",,Nature Publishing Group,,,,,,2397334X,,,29046547,English,Nat. Ecol. Evol.,Article,Final,,Scopus,2-s2.0-85031930773 Barnett A.J.; Wiber M.G.; Rooney M.P.; Curtis Maillet D.G.,"Barnett, Allain J. (15729350200); Wiber, Melanie G. (6506871266); Rooney, Michael P. (57191370196); Curtis Maillet, Donna G. (57191369564)",15729350200; 6506871266; 57191370196; 57191369564,"The role of public participation GIS (PPGIS) and fishermen's perceptions of risk in marine debris mitigation in the Bay of Fundy, Canada",2016,Ocean and Coastal Management,133,,,85,94,9,26,10.1016/j.ocecoaman.2016.09.002,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84989270890&doi=10.1016%2fj.ocecoaman.2016.09.002&partnerID=40&md5=e6201c243f90bde0564910a8cbc86521,"Department of Anthropology, University of New Brunswick, Canada; Interdisciplinary Studies, University of New Brunswick, Canada","Barnett A.J., Department of Anthropology, University of New Brunswick, Canada; Wiber M.G., Department of Anthropology, University of New Brunswick, Canada; Rooney M.P., Department of Anthropology, University of New Brunswick, Canada; Curtis Maillet D.G., Interdisciplinary Studies, University of New Brunswick, Canada","From nano-plastics to large sunken vessels, marine debris presents a threat to humans and ecosystems worldwide. Fishermen's knowledge of the sources of, and risks posed by medium to large debris derived from fishing, aquaculture, and other marine industries provides important context for debris mitigation. Public participation geographic information systems (PPGIS) can address these risks by integrating subjective and objective spatial data on human and environmental impacts and risks. We integrated fishermen's perceptions and experiences with marine debris with spatial data using PPGIS. We developed a georeferenced database of fishermen's experiences with marine debris, collected during focus groups and at various other meetings in Southwest New Brunswick. This layer was used to integrate baseline data with subjective perceptions of the ecological, economic, and navigational risks associated with marine debris in the Bay of Fundy, Canada. We also documented the physical, technical, political, and regulatory challenges to marine debris mitigation. These challenges highlight the social and environmental processes that complicate any projects that attempt to develop uncontested spatial representations of marine debris. Finally, we discuss the potential of PPGIS to address these challenges by fostering communication, coordinating various marine activities, helping stakeholders set priorities for clean-up, and implementing collaborative clean-up projects. © 2016 Elsevier Ltd",aquaculture; atlantic canada; fisheries; marine debris; public participation gis (ppgis),Atlantic Ocean; Bay of Fundy; Canada; New Brunswick; Aquaculture; Debris; Ecology; Environmental impact; Fisheries; Geographic information systems; Marine industry; Public risks; Risk perception; Atlantic Canada; Georeferenced database; Marine debris; Perceptions of risks; Public participation; Social and environmental; Spatial representations; Subjective perceptions; baseline survey; cleanup; database; farmers knowledge; GIS; mitigation; participatory approach; plastic; policy implementation; risk perception; stakeholder; Marine communication,"A.J. Barnett; Department of Anthropology, University of New Brunswick, Canada; email: allain.barnett@unb.ca",,Elsevier Ltd,,,,,,09645691,,OCMAE,,English,Ocean Coast. Manage.,Article,Final,,Scopus,2-s2.0-84989270890 Qin M.; Wang X.; Du Y.; Wan X.,"Qin, Man (57202397899); Wang, Xinru (58885638500); Du, Yuanwei (56331148600); Wan, Xiaole (56673451500)",57202397899; 58885638500; 56331148600; 56673451500,Influencing factors of spatial variation of national marine ranching in China,2021,Ocean and Coastal Management,199,,105407,,,,33,10.1016/j.ocecoaman.2020.105407,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85094319475&doi=10.1016%2fj.ocecoaman.2020.105407&partnerID=40&md5=7769ca247febe5679dd7dc230c374ca7,"Management College, Ocean University of China, Qingdao, 266100, China","Qin M., Management College, Ocean University of China, Qingdao, 266100, China; Wang X., Management College, Ocean University of China, Qingdao, 266100, China; Du Y., Management College, Ocean University of China, Qingdao, 266100, China; Wan X., Management College, Ocean University of China, Qingdao, 266100, China","The construction of modern marine ranching is an important way to protect coastal ecological environment and efficiently produce marine fishery resources in China. This study analyzed the scale, nature and function of national marine ranching in 11 coastal areas from 2015 to 2019, and identified the problems of quantity and area mismatch and regional development imbalance in the current layout. Then the standard deviation ellipse was used to explore the spatial variation characteristics of marine ranching in China. Geographic detector were then used to detect factors affecting spatial distribution. The results show that the spatial variation presents an obvious flattening trend through time. From 2015 to 2018, the overall center of gravity of marine ranching moved to the southwest. The X-axis first decreased and then increased, while the Y-axis showed an increasing trend from northeast to southwest. Marine ranching construction in Liaoning, Guangdong, Guangxi showed an obvious increase on the long axis. In 2019, the average center moved to the northeast due to the fact that no new national marine ranchings were added in Guangxi, Fujian and other places, while the construction momentum was strong in Shandong and Liaoning. In terms of influencing factors, resource difference, scientific and technological input and economic development levels have a significant influence on the spatial variation of marine ranching, and social factors and policy factors need to interact with other factors to play the role. The conclusions of this study can inform China Government decision making for marine ranching construction in coastal areas. © 2020 Elsevier Ltd",geographical detectors; influencing factors; marine ranching; spatial variation,China; Fujian; Guangdong; Guangxi Zhuangzu; Liaoning; Shandong; Coastal zones; Regional planning; Center of gravity; Ecological environments; Government decisions; Marine Fishery; Policy factors; Regional development; Spatial variations; Standard deviation; aquaculture production; decision making; fishery management; gravity field; ranching; regional development; spatial variation; trend analysis; Decision making,"M. Qin; Management College, Ocean University of China, Qingdao, 266100, China; email: qinman@ouc.edu.cn",,Elsevier Ltd,,,,,,09645691,,OCMAE,,English,Ocean Coast. Manage.,Article,Final,,Scopus,2-s2.0-85094319475 Adams H.; Adger W.N.; Ahmad S.; Ahmed A.; Begum D.; Matthews Z.; Rahman M.M.; Nilsen K.; Gurney G.G.; Streatfield P.K.,"Adams, Helen (55650758600); Adger, W. Neil (7004013611); Ahmad, Sate (56555720900); Ahmed, Ali (56427059100); Begum, Dilruba (55675295000); Matthews, Zoe (6601952196); Rahman, Mohammed Mofizur (57210030721); Nilsen, Kristine (57117525400); Gurney, Georgina Grace (36561564600); Streatfield, Peter Kim (6508197947)",55650758600; 7004013611; 56555720900; 56427059100; 55675295000; 6601952196; 57210030721; 57117525400; 36561564600; 6508197947,Multi-dimensional well-being associated with economic dependence on ecosystem services in deltaic social-ecological systems of Bangladesh,2020,Regional Environmental Change,20,2,42,,,,40,10.1007/s10113-020-01620-x,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85082559126&doi=10.1007%2fs10113-020-01620-x&partnerID=40&md5=a7e9bc61cac3b0f6905a4ea92913e70e,"Geography, King’s College London, London, United Kingdom; Geography, College of Life and Environmental Sciences, University of Exeter, Exeter, United Kingdom; Faculty of Agricultural & Environmental Sciences, University of Rostok, Rostock, Germany; Initiative for Climate Change and Health, International Centre for Diarrhoeal Disease Research Bangladesh, Dhaka, Bangladesh; Faculty of Economics, Ritsumeikan University, Kyoto, Japan; Social Statistics and Demography, University of Southampton, Southampton, United Kingdom; Institute for Technology and Resources Management in the Tropics and Subtropics, Cologne University of Applied Sciences, Cologne, Germany; WorldPop, Geography and Environment, University of Southampton, Southampton, United Kingdom; ARC Centre of Excellence for Coral Reef Studies, James Cook University, Townsville, Australia","Adams H., Geography, King’s College London, London, United Kingdom; Adger W.N., Geography, College of Life and Environmental Sciences, University of Exeter, Exeter, United Kingdom; Ahmad S., Faculty of Agricultural & Environmental Sciences, University of Rostok, Rostock, Germany; Ahmed A., Initiative for Climate Change and Health, International Centre for Diarrhoeal Disease Research Bangladesh, Dhaka, Bangladesh; Begum D., Faculty of Economics, Ritsumeikan University, Kyoto, Japan; Matthews Z., Social Statistics and Demography, University of Southampton, Southampton, United Kingdom; Rahman M.M., Institute for Technology and Resources Management in the Tropics and Subtropics, Cologne University of Applied Sciences, Cologne, Germany; Nilsen K., WorldPop, Geography and Environment, University of Southampton, Southampton, United Kingdom; Gurney G.G., ARC Centre of Excellence for Coral Reef Studies, James Cook University, Townsville, Australia; Streatfield P.K., Faculty of Agricultural & Environmental Sciences, University of Rostok, Rostock, Germany","While the benefits humans gain from ecosystem functions and processes are critical in natural resource-dependent societies with persistent poverty, ecosystem services as a pathway out of poverty remain an elusive goal, contingent on the ecosystem and mediated by social processes. Here, we investigate three emerging dimensions of the ecosystem service-poverty relationship: economic contribution of provisioning ecosystem services to the household livelihood mix, social-ecological systems producing different bundles of ecosystem services and material wealth versus reported life satisfaction. We analyse these relationships in Bangladesh, using data from a bespoke 1586-household survey, stratified by seven social-ecological systems in the delta coastal region. We create poverty lines to ensure comparability with traditional poverty measures that overlook environmental factors and subjective measurements of well-being. We find that any contribution of ecosystem service-based income to the livelihood mix decreases the likelihood of the incidence of poverty, and of individuals reporting dissatisfaction. We find no relationship between the incidence of material poverty and the specific social-ecological systems, from agriculture to fishery-dominated systems. However, the probability of the household head being dissatisfied was significantly associated with social-ecological system. Individuals living in areas dominated by export-oriented shrimp aquaculture reported lower levels of life satisfaction as an element of their perceived well-being. These results highlight the need for social policy on poverty that accounts for the diversity of outcomes across social-ecological systems, including subjective as well as material dimensions of well-being. National poverty reduction that degrades ecosystem services can have negative implications for the subjective well-being of local populations. © 2020, The Author(s).",agriculture; aquaculture; livelihood diversification; poverty; reported life satisfaction; subjective well-being,,"H. Adams; Geography, King’s College London, London, United Kingdom; email: helen.j.adams@kcl.ac.uk",,Springer,,,,,,14363798,,,,English,Reg. Environ. Change,Article,Final,All Open Access; Green Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-85082559126 Leslie M.; Nguyen S.T.; Nguyen T.K.D.; Pham T.T.; Cao T.T.N.; Le T.Q.; Dang T.T.; Nguyen T.H.T.; Nguyen T.B.N.; Le H.N.; Tran T.T.; Bui T.C.T.; Tran N.A.; Natascha M.-H.; Chris Y.,"Leslie, Mabon (55232476200); Nguyen, Song Tung (57193041429); Nguyen, Thi Kim Dung (57200036936); Pham, Thi Tram (57198492502); Cao, Thi Thanh Nga (57201251662); Le, Thu Quynh (57201257747); Dang, Thanh Trung (57201253694); Nguyen, Thi Huyen Thu (57225934647); Nguyen, Thi Bich Nguyet (57201250505); Le, Hong Ngoc (57197820191); Tran, Thi Tuyet (58071574600); Bui, Thi Cam Tu (57201259284); Tran, Ngoc Anh (57201259870); Natascha, Mueller-Hirth (57201254512); Chris, Yuill (57201259427)",55232476200; 57193041429; 57200036936; 57198492502; 57201251662; 57201257747; 57201253694; 57225934647; 57201250505; 57197820191; 58071574600; 57201259284; 57201259870; 57201254512; 57201259427,"Bringing social and cultural considerations into environmental management for vulnerable coastal communities: Responses to environmental change in Xuan Thuy National Park, Nam Dinh Province, Vietnam",2018,Ocean and Coastal Management,158,,,32,44,12,16,10.1016/j.ocecoaman.2018.03.022,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85044057897&doi=10.1016%2fj.ocecoaman.2018.03.022&partnerID=40&md5=e6e3cd8ca150712e8ac1580ef6f6686c,"School of Applied Social Studies, Robert Gordon University, Aberdeen, AB10 7QG, Scotland, United Kingdom; Institute of Human Geography, Vietnam Academy of Social Sciences, 1 Lieu Giai, Hanoi, Viet Nam","Leslie M., School of Applied Social Studies, Robert Gordon University, Aberdeen, AB10 7QG, Scotland, United Kingdom; Nguyen S.T., Institute of Human Geography, Vietnam Academy of Social Sciences, 1 Lieu Giai, Hanoi, Viet Nam; Nguyen T.K.D., Institute of Human Geography, Vietnam Academy of Social Sciences, 1 Lieu Giai, Hanoi, Viet Nam; Pham T.T., Institute of Human Geography, Vietnam Academy of Social Sciences, 1 Lieu Giai, Hanoi, Viet Nam; Cao T.T.N., Institute of Human Geography, Vietnam Academy of Social Sciences, 1 Lieu Giai, Hanoi, Viet Nam; Le T.Q., Institute of Human Geography, Vietnam Academy of Social Sciences, 1 Lieu Giai, Hanoi, Viet Nam; Dang T.T., Institute of Human Geography, Vietnam Academy of Social Sciences, 1 Lieu Giai, Hanoi, Viet Nam; Nguyen T.H.T., Institute of Human Geography, Vietnam Academy of Social Sciences, 1 Lieu Giai, Hanoi, Viet Nam; Nguyen T.B.N., Institute of Human Geography, Vietnam Academy of Social Sciences, 1 Lieu Giai, Hanoi, Viet Nam; Le H.N., Institute of Human Geography, Vietnam Academy of Social Sciences, 1 Lieu Giai, Hanoi, Viet Nam; Tran T.T., Institute of Human Geography, Vietnam Academy of Social Sciences, 1 Lieu Giai, Hanoi, Viet Nam; Bui T.C.T., Institute of Human Geography, Vietnam Academy of Social Sciences, 1 Lieu Giai, Hanoi, Viet Nam; Tran N.A., Institute of Human Geography, Vietnam Academy of Social Sciences, 1 Lieu Giai, Hanoi, Viet Nam; Natascha M.-H., School of Applied Social Studies, Robert Gordon University, Aberdeen, AB10 7QG, Scotland, United Kingdom; Chris Y., School of Applied Social Studies, Robert Gordon University, Aberdeen, AB10 7QG, Scotland, United Kingdom","This paper elaborates the importance of considering social and cultural factors within management responses to environmental change in coastal areas. The case study taken is Xuan Thuy National Park in Nam Dinh Province, Vietnam. This is a marginalised coastal area where rising sea levels, increasing storm surges and saltwater intrusion place pressure on coastal ecosystems, yet where communities continue to rely on these same ecosystems for agriculture- and aquaculture-related livelihoods. We interview stakeholders in Xuan Thuy National Park, connecting these with a narrative review of existing research into social and environmental change in the park to understand research gaps and challenges for vulnerable coastal areas like the Nam Dinh coast. Based on our findings, we suggest that whilst the effects of a changing environment on physical health and economic activity are increasingly well understood, effects on wellbeing and social relations can be even more immediate and profound in daily living. In turn, we argue environmental management has a crucial role to play not only for ecosystem-based adaptation, but also in sustaining wellbeing and allowing culturally meaningful practices to continue – especially in coastal regions where changes can be even more intense and immediate. However, we caution that whilst techno-scientific solutions grounded in environmental management do have significant potential in reducing impacts of extreme events and slower-onset environmental changes, they must not divert attention away from structural issues that can make some people or areas more vulnerable in the first instance. © 2018 Elsevier Ltd",climate change; ecosystem services; vulnerability; wellbeing; xuan thuy national park,Nam Dinh; Viet Nam; Xuan Thuy National Park; Climate change; Coastal zones; Economic and social effects; Economics; Ecosystems; Salt water intrusion; Sea level; Seawater; Climate change adaptation; Coastal area; Coastal communities; Ecosystem-based adaptation; Environmental change; National parks; Viet Nam; Vulnerability assessments; Wellbeing; Xuan thuy national park; adaptive management; climate change; coastal zone management; culture; ecosystem approach; environmental change; environmental management; local participation; quality of life; social characteristics; stakeholder; sustainability; vulnerability; Environmental management,"M. Leslie; School of Applied Social Studies, Robert Gordon University, Aberdeen, AB10 7QG, United Kingdom; email: l.j.mabon@rgu.ac.uk",,Elsevier Ltd,,,,,,09645691,,OCMAE,,English,Ocean Coast. Manage.,Article,Final,All Open Access; Green Open Access,Scopus,2-s2.0-85044057897 Hair C.; Foale S.; Daniels N.; Minimulu P.; Aini J.; Southgate P.C.,"Hair, Cathy (6603542147); Foale, Simon (6602104487); Daniels, Nicholas (57215872831); Minimulu, Peter (57215873637); Aini, John (55358325000); Southgate, Paul C. (7006706157)",6603542147; 6602104487; 57215872831; 57215873637; 55358325000; 7006706157,"Social and economic challenges to community-based sea cucumber mariculture development in new Ireland province, Papua New Guinea",2020,Marine Policy,117,,103940,,,,20,10.1016/j.marpol.2020.103940,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85082182821&doi=10.1016%2fj.marpol.2020.103940&partnerID=40&md5=b803f229dbd59494c0bcbe3949ebb4c9,"Australian Centre for Pacific Islands Research and School of Science and Engineering, University of the Sunshine Coast, Locked Bag 4, Maroochydore, 4556, Queensland, Australia; Centre for Sustainable Tropical Fisheries and Aquaculture, College of Science and Engineering, James Cook University, Cairns, 4870, QLD, Australia; College of Arts, Society and Education, James Cook University, Townsville, 4811, QLD, Australia; Nago Island Mariculture and Research Facility, National Fisheries Authority, PO Box 239, Kavieng, New Ireland Province, Papua New Guinea; Ailan Awareness, Kaselok, New Ireland Province, Papua New Guinea","Hair C., Australian Centre for Pacific Islands Research and School of Science and Engineering, University of the Sunshine Coast, Locked Bag 4, Maroochydore, 4556, Queensland, Australia, Centre for Sustainable Tropical Fisheries and Aquaculture, College of Science and Engineering, James Cook University, Cairns, 4870, QLD, Australia; Foale S., College of Arts, Society and Education, James Cook University, Townsville, 4811, QLD, Australia; Daniels N., Nago Island Mariculture and Research Facility, National Fisheries Authority, PO Box 239, Kavieng, New Ireland Province, Papua New Guinea; Minimulu P., Nago Island Mariculture and Research Facility, National Fisheries Authority, PO Box 239, Kavieng, New Ireland Province, Papua New Guinea; Aini J., Ailan Awareness, Kaselok, New Ireland Province, Papua New Guinea; Southgate P.C., Australian Centre for Pacific Islands Research and School of Science and Engineering, University of the Sunshine Coast, Locked Bag 4, Maroochydore, 4556, Queensland, Australia","This article describes the outcomes of research into the potential of community-based mariculture of the commercial sea cucumber, sandfish (Holothuria scabra), as a sustainable livelihood in New Ireland Province, Papua New Guinea (PNG). Around 5000 cultured juvenile sandfish were stocked in a 5-ha trial community sea ranch. The community agreed to protect the area from fishing until researchers collected technical data on sandfish performance. However, poaching of sandfish from the trial sea ranch occurred during the 2018 annual sea cucumber fishing season and no technical data were generated. Community attitudes and responses to the fishing season, the mariculture research activity and the failure of the trial sea ranch were investigated. Widespread community approval of the trial sea ranch and respect for the fishing prohibition were reported. However, it was found that poaching within the ranch escalated to extensive fishing because community-based management proved inadequate to sanction the poachers. Increased buying pressure and higher prices led to intensified fishing effort in the 2018 season. The trial sea ranch failed due to external pressures (i.e., brief, intense fishing season; limited project capacity), compounded by internal factors (i.e., weak local leadership; community disunity). It was concluded that research into and development of sandfish mariculture as a livelihood option in New Ireland Province might be impossible at this time due to the high value of sandfish, the annual sea cucumber fishing season, and ineffective governance at community, provincial and national levels. Lessons learned from this experience are presented and alternative models discussed. © 2020",bêche-de-mer; cultural barriers; livelihoods; mariculture; melanesia; socioeconomic,New Ireland [(PRV) Papua New Guinea]; Papua New Guinea; Agonidae; Holothuria scabra; Holothuroidea; barrier reef; coastal zone management; echinoderm; livelihood; research work; socioeconomic impact; sustainability,"C. Hair; Australian Centre for Pacific Islands Research and School of Science and Engineering, University of the Sunshine Coast, Maroochydore, Locked Bag 4, 4556, Australia; email: cathy.hair@my.jcu.edu.au",,Elsevier Ltd,,,,,,0308597X,,,,English,Mar. Policy,Article,Final,,Scopus,2-s2.0-85082182821 Pham V.H.T.; Febriamansyah R.; Afrizal; Tran T.A.,"Pham, Van Huynh Thanh (57204587168); Febriamansyah, Rudi (55845909600); Afrizal (55975774300); Tran, Thong Anh (57203492954)",57204587168; 55845909600; 55975774300; 57203492954,Adapting to Saline Intrusion: Empirical Insights from Two Coastal Areas in the Vietnamese Mekong Delta,2020,Pertanika Journal of Social Sciences and Humanities,28,2,,1553,1566,13,7,,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85090569921&partnerID=40&md5=0a6a6281e426826ed6b3badd1f789f95,"Graduate School, Andalas University, Padang, West Sumatra, 25163, Indonesia; Faculty of Agriculture and Natural Resources, An Giang University, VNU-HCM, 18 Ung Van Khiem, Long Xuyen City, An Giang, 90000, Viet Nam; Faculty of Agriculture, Andalas University, Padang, West Sumatra, 25163, Indonesia; Faculty of Social and Political Sciences, Andalas University, Padang, West Sumatra, 25163, Indonesia; Asia Research Institute, National University of Singapore, AS8, Level 7, 10 Kent Ridge Crescent, Singapore, 119260, Singapore; Fenner School of Environment and Society, College of Science, Australian National University, Canberra, 2600, ACT, Australia; Research Center for Rural Development, An Giang University, VNU-HCM, 18 Ung Van Khiem, Long Xuyen City, An Giang, 90000, Viet Nam","Pham V.H.T., Graduate School, Andalas University, Padang, West Sumatra, 25163, Indonesia, Faculty of Agriculture and Natural Resources, An Giang University, VNU-HCM, 18 Ung Van Khiem, Long Xuyen City, An Giang, 90000, Viet Nam; Febriamansyah R., Faculty of Agriculture, Andalas University, Padang, West Sumatra, 25163, Indonesia; Afrizal, Faculty of Social and Political Sciences, Andalas University, Padang, West Sumatra, 25163, Indonesia; Tran T.A., Asia Research Institute, National University of Singapore, AS8, Level 7, 10 Kent Ridge Crescent, Singapore, 119260, Singapore, Fenner School of Environment and Society, College of Science, Australian National University, Canberra, 2600, ACT, Australia, Research Center for Rural Development, An Giang University, VNU-HCM, 18 Ung Van Khiem, Long Xuyen City, An Giang, 90000, Viet Nam","Saline intrusion (SI) is increasing at an accelerating rate in the coastal zones of the Vietnamese Mekong Delta (VMD). This challenges various crop production practices in these areas. Using ecological and social approaches, this paper aims to explore farmers’ perceptions of SI occurring in Tra Vinh and Kien Giang provinces, and their adaptation measures to deal with the situation. A mixed-method approach was used, including in-depth interviews, focus group discussions, and household surveys. The results demonstrated that farmers have implemented various adaptation measures in tackling SI impacts. High market demand for shrimp also contributed to farmers’ decisions in shifting farming practices. The study underscores the important role of the integrated shrimp-rice system as a more comparatively sustainable model to the intensive shrimp culture in the face of SI. Qualitative analysis revealed water conflicts occurring in mixed rice and shrimp farming areas driven by the poor performance of combined irrigation and drainage systems together with the undefined water demarcation zones between rice and shrimp farmers. The paper provides better insights into how farmers’ adaptation strategies could facilitate decision-making processes with regard to water management and adaptation policies in the coastal areas. It calls for local governments’ attention to modifying water infrastructure to better address water-related issues. © Universiti Putra Malaysia Press",adaptation; climate change; farmer perception; intensive shrimp farming; saline intrusion; shrimp-rice system; vietnamese mekong delta,,"T.A. Tran; Asia Research Institute, National University of Singapore, Singapore, AS8, Level 7, 10 Kent Ridge Crescent, 119260, Singapore; email: thong.tran@nus.edu.sg",,Universiti Putra Malaysia,,,,,,01287702,,,,English,Pertanika J. Soc. Sci. Humanit.,Article,Final,,Scopus,2-s2.0-85090569921 Gustavsson M.,"Gustavsson, Madeleine (56024987200)",56024987200,Examining the ‘cultural sustainability’ of two different ways of governing fishing practices,2018,Marine Policy,97,,,262,269,7,10,10.1016/j.marpol.2018.03.017,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85044302869&doi=10.1016%2fj.marpol.2018.03.017&partnerID=40&md5=46acbc202be17c8ca297700c3f3af0e3,"European Centre for Environment and Human Health, University of Exeter Medical School, Knowledge Spa, Royal Cornwall Hospital, Truro, TR1 3HD, Cornwall, United Kingdom; Teagasc, Rural Economy and Development Programme, Mellow Campus, Athenry, Co. Galway, Ireland","Gustavsson M., European Centre for Environment and Human Health, University of Exeter Medical School, Knowledge Spa, Royal Cornwall Hospital, Truro, TR1 3HD, Cornwall, United Kingdom, Teagasc, Rural Economy and Development Programme, Mellow Campus, Athenry, Co. Galway, Ireland","Research has suggested there is a need for an increased attention to the socio-cultural lifeworlds of fishers and fisheries and its importance for fisheries management. An emerging response to this call has been to examine the social and cultural contexts of ‘good fishing’ – an idea which, drawing on the work of Pierre Bourdieu, has sought to move the discussion beyond simply the economic aspects of fishing to also understand the importance of other forms of capital. Utilising these concepts together with the conceptual idea of ‘knowledge cultures’ the following paper examines the ‘cultural sustainability’ of different ways of governing fishing practices – in particular Marine Conservation Zones and voluntary lobster v-notching using a case study approach to the small-scale fishery of Llŷn peninsula, North Wales (UK). The paper observes that those approaches that allow fishers to demonstrate skills and recognises the temporal contingency of fishing lives can be considered more culturally sustainable than others. This paper also notes that culturally acceptable changes to fishing practices can be supported by fishing regulations and, the paper suggests, such innovations are more likely to be taken up by fishers in their everyday fishing practices. The paper recommends that policies seeking to alter fishing practices consider: i) the importance fishers’ hold in demonstrating their skills; ii) how social relations are as important as economic aspects to fishers’ long-term uptake of new practices; and iii) how the past and the future (such as if a successor is present) holds significance for fishers’ actions in the present. © 2018 Elsevier Ltd",,North Wales; United Kingdom; Wales; conceptual framework; fishery management; governance approach; mariculture; marine policy; nature reserve; regulatory approach; sustainability,"M. Gustavsson; Teagasc, Rural Economy and Development Programme, Mellow Campus, Athenry, Co. Galway, Ireland; email: m.c.gustavsson@exeter.ac.uk",,Elsevier Ltd,,,,,,0308597X,,,,English,Mar. Policy,Article,Final,All Open Access; Green Open Access,Scopus,2-s2.0-85044302869 Pettit N.E.; Naiman R.J.; Fry J.M.; Roberts J.D.; Close P.G.; Pusey B.J.; Woodall G.S.; MacGregor C.J.; Speldewinde P.C.; Stewart B.; Dobbs R.J.; Paterson H.L.; Cook P.; Toussaint S.; Comer S.; Davies P.M.,"Pettit, Neil E. (6603929905); Naiman, Robert J. (7006543659); Fry, Julia M. (56888354300); Roberts, J. Dale (11939145800); Close, Paul G. (8238569800); Pusey, Bradley J. (57211346294); Woodall, Geoff S. (6603548632); MacGregor, Colin J. (56253650000); Speldewinde, Peter C. (16234880100); Stewart, Barbara (7202105898); Dobbs, Rebecca J. (56145601900); Paterson, Harriet L. (17346635500); Cook, Peter (7402056180); Toussaint, Sandy (6701416406); Comer, Sarah (55116425900); Davies, Peter M. (7403894538)",6603929905; 7006543659; 56888354300; 11939145800; 8238569800; 57211346294; 6603548632; 56253650000; 16234880100; 7202105898; 56145601900; 17346635500; 7402056180; 6701416406; 55116425900; 7403894538,Environmental change: Prospects for conservation and agriculture in a southwest Australia biodiversity hotspot,2015,Ecology and Society,20,3,10,,,,11,10.5751/ES-07727-200310,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84943182004&doi=10.5751%2fES-07727-200310&partnerID=40&md5=b22574ff88221ddf150fbf04fcc9b3e5,"Centre of Excellence in Natural Resource Management, The University of Western Australia, Australia; University of Washington, United States; College of Marine and Environmental Sciences, James Cook University, Australia; School of Social and Cultural Studies, The University of Western Australia, Australia; Department of Parks and Wildlife, Australia","Pettit N.E., Centre of Excellence in Natural Resource Management, The University of Western Australia, Australia; Naiman R.J., Centre of Excellence in Natural Resource Management, The University of Western Australia, Australia, University of Washington, United States; Fry J.M., Centre of Excellence in Natural Resource Management, The University of Western Australia, Australia; Roberts J.D., Centre of Excellence in Natural Resource Management, The University of Western Australia, Australia; Close P.G., Centre of Excellence in Natural Resource Management, The University of Western Australia, Australia; Pusey B.J., Centre of Excellence in Natural Resource Management, The University of Western Australia, Australia; Woodall G.S., Centre of Excellence in Natural Resource Management, The University of Western Australia, Australia; MacGregor C.J., College of Marine and Environmental Sciences, James Cook University, Australia; Speldewinde P.C., Centre of Excellence in Natural Resource Management, The University of Western Australia, Australia; Stewart B., Centre of Excellence in Natural Resource Management, The University of Western Australia, Australia; Dobbs R.J., Centre of Excellence in Natural Resource Management, The University of Western Australia, Australia; Paterson H.L., Centre of Excellence in Natural Resource Management, The University of Western Australia, Australia; Cook P., Centre of Excellence in Natural Resource Management, The University of Western Australia, Australia; Toussaint S., Centre of Excellence in Natural Resource Management, The University of Western Australia, Australia, School of Social and Cultural Studies, The University of Western Australia, Australia; Comer S., Centre of Excellence in Natural Resource Management, The University of Western Australia, Australia, Department of Parks and Wildlife, Australia; Davies P.M., Centre of Excellence in Natural Resource Management, The University of Western Australia, Australia","Accelerating environmental change is perhaps the greatest challenge for natural resource management; successful strategies need to be effective for decades to come. Our objective is to identify opportunities that new environmental conditions may provide for conservation, restoration, and resource use in a globally recognized biodiversity hotspot in southwestern Australia. We describe a variety of changes to key taxonomic groups and system-scale characteristics as a consequence of environmental change (climate and land use), and outline strategies for conserving and restoring important ecological and agricultural characteristics. Opportunities for conservation and economic adaptation are substantial because of gradients in rainfall, temperature, and land use, extensive areas of remnant native vegetation, the ability to reduce and ameliorate areas affected by secondary salinization, and the existence of large national parks and an extensive network of nature reserves. Opportunities presented by the predicted environmental changes encompass agricultural as well as natural ecosystems. These may include expansion of aquaculture, transformation of agricultural systems to adapt to drier autumns and winters, and potential increases in spring and summer rain, carbon-offset plantings, and improving the network of conservation reserves. A central management dilemma is whether restoration/preservation efforts should have a commercial or biodiversity focus, and how they could be integrated. Although the grand challenge is conserving, protecting, restoring, and managing for a future environment, one that balances economic, social, and environmental values, the ultimate goal is to establish a regional culture that values the unique regional environment and balances the utilization of natural resources against protecting remaining natural ecosystems. © 2015 by the author(s).",adaptive management; agriculture; biodiversity; climate change; land-use change; southwest australia,Australia; adaptive management; agriculture; biodiversity; climate change; environmental change; environmental management; land use change; natural resource; nature conservation; resource use,,,Resilience Alliance,,,,,,17083087,,,,English,Ecol. Soc.,Article,Final,All Open Access; Gold Open Access; Green Open Access,Scopus,2-s2.0-84943182004 Tidbury H.J.; Taylor N.G.H.; Copp G.H.; Garnacho E.; Stebbing P.D.,"Tidbury, Hannah J. (57190335743); Taylor, Nick G. H. (13003256000); Copp, Gordon H. (7004852027); Garnacho, Eva (56619143600); Stebbing, Paul D. (6507786129)",57190335743; 13003256000; 7004852027; 56619143600; 6507786129,Predicting and mapping the risk of introduction of marine non-indigenous species into Great Britain and Ireland,2016,Biological Invasions,18,11,,3277,3292,15,38,10.1007/s10530-016-1219-x,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84979210890&doi=10.1007%2fs10530-016-1219-x&partnerID=40&md5=5a2cf17d421850912103809095e6da53,"Centre for Environment, Fisheries and Aquaculture Science, The Nothe, Barrack Road, Weymouth, DT4 8UB, Dorset, United Kingdom; Centre for Environment, Fisheries and Aquaculture Science, Pakefield Road, Lowestoft, NR33 OHT, Suffolk, United Kingdom; Department of Life and Environmental Sciences, Faculty of Science and Technology, Bournemouth University, Poole, United Kingdom","Tidbury H.J., Centre for Environment, Fisheries and Aquaculture Science, The Nothe, Barrack Road, Weymouth, DT4 8UB, Dorset, United Kingdom; Taylor N.G.H., Centre for Environment, Fisheries and Aquaculture Science, The Nothe, Barrack Road, Weymouth, DT4 8UB, Dorset, United Kingdom; Copp G.H., Centre for Environment, Fisheries and Aquaculture Science, Pakefield Road, Lowestoft, NR33 OHT, Suffolk, United Kingdom, Department of Life and Environmental Sciences, Faculty of Science and Technology, Bournemouth University, Poole, United Kingdom; Garnacho E., Centre for Environment, Fisheries and Aquaculture Science, Pakefield Road, Lowestoft, NR33 OHT, Suffolk, United Kingdom; Stebbing P.D., Centre for Environment, Fisheries and Aquaculture Science, The Nothe, Barrack Road, Weymouth, DT4 8UB, Dorset, United Kingdom","Non-indigenous species (NIS) can have adverse environmental, economic and social impacts. Their management is now incorporated into key legislation, including the European Union (EU) Marine Strategy Framework Directive and the EU Regulation on the prevention and management of the introduction and spread of invasive alien species. Prevention of NIS introductions and the early detection of NIS following their introduction are recognised as the most effective approaches for reducing the potential impacts of NIS. This is true for most aquatic environments but especially so for the marine environment, where control and/or eradication are often not achievable. By assessing introduction vector activity, it is possible to identify coastal areas and specific locations where marine NIS may be more likely to be introduced. This study uses data relating to the activity of key introduction vectors; shipping, recreational boating and live animal aquaculture import, to estimate the relative risk of introduction of NIS around coastal regions of Great Britain and Ireland. Spatial analysis was used to create “heat” maps indicating coastal areas of increased relative risk of introduction of NIS by these vectors. The results of the present study will be crucial for the implementation of targeted vector management plans, supporting preventive strategies, and will facilitate a risk analyses of NIS threats to inform monitoring and surveillance programmes. ©2016, Crown Copyright.",hotspots; introduction vector; risk analysis; surveillance,Ireland; United Kingdom; Animalia; boating; coastal zone; European Union; introduced species; mapping method; marine environment; marine policy; prediction; risk assessment; spatial analysis; species conservation; strategic approach,"H.J. Tidbury; Centre for Environment, Fisheries and Aquaculture Science, Weymouth, The Nothe, Barrack Road, DT4 8UB, United Kingdom; email: hannah.tidbury@cefas.co.uk",,Springer International Publishing,,,,,,13873547,,BLINF,,English,Biol. Invasions,Article,Final,,Scopus,2-s2.0-84979210890 Ting K.-H.; Lin K.-L.; Jhan H.-T.; Huang T.-J.; Wang C.-M.; Liu W.-H.,"Ting, Kuo-Huan (8201673300); Lin, Kun-Lung (55466955100); Jhan, Hao-Tang (36663653200); Huang, Teng-Jeng (56484922700); Wang, Chi-Ming (56256662000); Liu, Wen-Hong (26663773800)",8201673300; 55466955100; 36663653200; 56484922700; 56256662000; 26663773800,Application of a Sustainable Fisheries Development Indicator System for Taiwan's Aquaculture Industry,2015,Aquaculture,437,,,398,407,9,13,10.1016/j.aquaculture.2014.12.030,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84921297167&doi=10.1016%2fj.aquaculture.2014.12.030&partnerID=40&md5=0b816a4caeb9d1349d2fd3adaa8f2336,"National Kaohsiung Marine University, Taiwan; Department of Fisheries Production and Management, National Kaohsiung Marine University, Taiwan; School of Earth and Ocean Science, Cardiff University, United Kingdom; National Fishermen's Association, Taiwan","Ting K.-H., National Kaohsiung Marine University, Taiwan; Lin K.-L., Department of Fisheries Production and Management, National Kaohsiung Marine University, Taiwan; Jhan H.-T., School of Earth and Ocean Science, Cardiff University, United Kingdom; Huang T.-J., National Fishermen's Association, Taiwan; Wang C.-M., Department of Fisheries Production and Management, National Kaohsiung Marine University, Taiwan; Liu W.-H., National Kaohsiung Marine University, Taiwan, Department of Fisheries Production and Management, National Kaohsiung Marine University, Taiwan","The benefits of aquaculture for humans worldwide have become increasingly important, especially in Asia. Although Taiwan does not have a high aquaculture output, the superior aquaculture techniques employed allow Taiwan to maintain competitiveness in the Asian region. The objective of this study was to evaluate the trend of sustainable aquaculture fishery development in Taiwan, and the potential problems that exist. This study used a sustainable development indicator framework with 4 dimensions to analyze the sustainable development of Taiwan's aquaculture fisheries. The results showed that between 2004 and 2009, economic indicators declined, posing substantial concerns for the sustainable management of Taiwan's aquaculture. The results for the ecological, social, and institutional dimensions demonstrated stability or slight increases. Although the indicators partially reflect the effects of government aquaculture policies, problems such as illegal aquaculture fish ponds, inaccurate sales data, and sales channels controlled by a limited number of fishmongers and middlemen remain. In summation, current aquaculture fisheries cannot achieve sustainability through production alone; instead, integrating the aquaculture fisheries with social humanities, environment and ecology, and resource management is required. © 2014 Elsevier B.V.",aquaculture; indicator system; sustainability; taiwan,Taiwan; aquaculture system; cost-benefit analysis; policy implementation; sustainable development,,,Elsevier,,,,,,00448486,,AQCLA,,English,Aquaculture,Article,Final,,Scopus,2-s2.0-84921297167 Bergleiter S.; Meisch S.,"Bergleiter, Stefan (55241213900); Meisch, Simon (56505605000)",55241213900; 56505605000,Certification Standards for Aquaculture Products: Bringing Together the Values of Producers and Consumers in Globalised Organic Food Markets,2015,Journal of Agricultural and Environmental Ethics,28,3,,553,569,16,36,10.1007/s10806-015-9531-5,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84937636929&doi=10.1007%2fs10806-015-9531-5&partnerID=40&md5=c908e315da0f8e756485390a92e355f6,"Naturland e.V., Kleinhaderner Weg 1, Gräfelfing, 82166, Germany; Junior Research Group: Ethics of Science in the Research for Sustainable Development, International Centre for Ethics in the Sciences and Humanities, University of Tuebingen, Wilhelmstr. 19, Tübingen, 72072, Germany","Bergleiter S., Naturland e.V., Kleinhaderner Weg 1, Gräfelfing, 82166, Germany; Meisch S., Junior Research Group: Ethics of Science in the Research for Sustainable Development, International Centre for Ethics in the Sciences and Humanities, University of Tuebingen, Wilhelmstr. 19, Tübingen, 72072, Germany","From a certifier’s perspective (Naturland e.V.), this paper deals with the question of how to bring together the values of producers and consumers in globalized food markets. It is argued that growth and mainstreaming of organic food production cannot be achieved solely by ethically aware consumers signalling their more sustainable purchase decision to the market. In fact, the intrinsic motivation of producers is an indispensable requisite for such a development. It is then the organic movement’s and the certifier’s (such as Naturland e.V.) task to bring together the values of consumers and producers. This challenge is explored in the following by using the example of organic aquaculture. Based on one of the author’s experience in the field of aquaculture certification since the late 1990s, in about twenty countries and with most aquaculture animal species, the paper examines critical value-based aspects that are prominent from the perspective of sustainability. These are: use of problematic substances in aquaculture production, stocking density, origin of feedstuff, certification procedure, and small-scale farming versus large aquaculture companies. On this basis, the paper describes and analyses attempts to formulate respective organic certification standards. In order to bring about organic aquaculture, it is argued that consumers’ choices alone are not sufficient and that successful transformation to sustainable aquaculture also needs to take into account values and preferences of producers. © 2015, Springer Science+Business Media Dordrecht.",certification; corporate social responsibility; global food market; organic aquaculture; values,Animalia; aquaculture; certification; corporate strategy; food market; food production; standard (regulation); sustainability,"S. Meisch; Junior Research Group: Ethics of Science in the Research for Sustainable Development, International Centre for Ethics in the Sciences and Humanities, University of Tuebingen, Tübingen, Wilhelmstr. 19, 72072, Germany; email: simon.meisch@uni-tuebingen.de",,Kluwer Academic Publishers,,,,,,11877863,,,,English,J. Agric. Environ. Ethics,Article,Final,,Scopus,2-s2.0-84937636929 Shameem M.I.M.; Momtaz S.; Kiem A.S.,"Shameem, Masud Iqbal Md (56373498600); Momtaz, Salim (6506218080); Kiem, Anthony S. (6602997612)",56373498600; 6506218080; 6602997612,Local perceptions of and adaptation to climate variability and change: the case of shrimp farming communities in the coastal region of Bangladesh,2015,Climatic Change,133,2,,253,266,13,86,10.1007/s10584-015-1470-7,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84951568965&doi=10.1007%2fs10584-015-1470-7&partnerID=40&md5=458aa64a53a8e50f840645483c7206b7,"School of Environmental and Life Sciences, University of Newcastle, Brush Road, Ourimbah, 2258, NSW, Australia","Shameem M.I.M., School of Environmental and Life Sciences, University of Newcastle, Brush Road, Ourimbah, 2258, NSW, Australia; Momtaz S., School of Environmental and Life Sciences, University of Newcastle, Brush Road, Ourimbah, 2258, NSW, Australia; Kiem A.S., School of Environmental and Life Sciences, University of Newcastle, Brush Road, Ourimbah, 2258, NSW, Australia","Shrimp aquaculture is the predominant farming practice in the southwest coastal region of Bangladesh and has been under increased pressure from environmental and climatic changes. To date, most of the studies examining farmer’s vulnerability and adaption to climate change have been agriculture-focused with little attention to the impacts on other livelihood systems. Based on a case study approach our study presents: i) how local people perceive climate change and whether it corresponds to meteorological records, ii) what climate change impacts people consider significant, and iii) what strategies the shrimp farmers employ to ameliorate perceived risks. This study was conducted using local climate data, focus groups and household survey in Mongla sub-district. This study shows that local people are aware of the changes in hydro-climatic parameters. Their accounts of climate change mostly diverge from the scientific evidence when long-term climate trends are considered, but on short-term variability, the correlation between scientific evidence and local perceptions is high. Repeated adverse impacts caused by climate stressors on livelihood activities shape people’s climate risk perceptions. In relation to perceived risks, farmers have made adjustments in their aquaculture practices. Yet, the level of responses clearly lags behind the extent to which concerns about climate disturbances are expressed. This is partly due to farmers’ efforts for managing transformation from agricultural livelihood system to aquaculture-based livelihood systems and partly associated with other social factors. This case study recommends governmental support for the shrimp aquaculture sector to facilitate the process of adaptation to changes in the hydro-climatic environment. © 2015, Springer Science+Business Media Dordrecht.",,Bangladesh; Decapoda (Crustacea); Agriculture; Aquaculture; Balloons; Coastal zones; Risk perception; Shellfish; Surveys; Case study approach; Climate change impact; Climate variability and change; Climatic parameters; Household surveys; Meteorological records; Scientific evidence; Shrimp aquaculture; adaptive management; aquaculture system; climate change; climate variation; coastal zone; environmental change; risk perception; shrimp culture; Climate change,"S. Momtaz; School of Environmental and Life Sciences, University of Newcastle, Ourimbah, Brush Road, 2258, Australia; email: salim.momtaz@newcastle.edu.au",,Springer Netherlands,,,,,,01650009,,CLCHD,,English,Clim. Change,Article,Final,All Open Access; Green Open Access,Scopus,2-s2.0-84951568965 Frisch L.C.; Mathis J.T.; Kettle N.P.; Trainor S.F.,"Frisch, L.C. (56452776200); Mathis, J.T. (9846180800); Kettle, N.P. (26435209100); Trainor, S.F. (12752258100)",56452776200; 9846180800; 26435209100; 12752258100,Gauging perceptions of ocean acidification in Alaska,2015,Marine Policy,53,,,101,110,9,22,10.1016/j.marpol.2014.11.022,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84919343919&doi=10.1016%2fj.marpol.2014.11.022&partnerID=40&md5=fde1cf40eab74bd145a4a3f1c02963e9,"University of Alaska Fairbanks, Ocean Acidification Research Center, 245 O'Neill BLDG, Fairbanks, 99775, AK, United States; NOAA-Pacific Marine Environment Laboratory, 7600 Sand Point Way, Seattle, 98115, WA, United States; University of Alaska Fairbanks, Alaska Center for Climate Assessment and Policy, 930 Koyukuk Drive, Fairbanks, 99709, AK, United States","Frisch L.C., University of Alaska Fairbanks, Ocean Acidification Research Center, 245 O'Neill BLDG, Fairbanks, 99775, AK, United States; Mathis J.T., NOAA-Pacific Marine Environment Laboratory, 7600 Sand Point Way, Seattle, 98115, WA, United States; Kettle N.P., University of Alaska Fairbanks, Alaska Center for Climate Assessment and Policy, 930 Koyukuk Drive, Fairbanks, 99709, AK, United States; Trainor S.F., University of Alaska Fairbanks, Alaska Center for Climate Assessment and Policy, 930 Koyukuk Drive, Fairbanks, 99709, AK, United States","While ocean acidification (OA) poses a significant threat to ocean-related ecosystems and communities reliant on marine fisheries, aquaculture, and coral reef systems, limited public understanding and awareness can prevent coastal regions from being able to adequately assess the need for OA adaptation or mitigation. This study assessed public understanding of OA and how social and demographic factors influence the public's concern for OA. The analysis was based on 311 questionnaires from full-time Alaska residents. The results showed that most Alaskans self-reported to have a basic awareness of OA, and subsequently were able to recognize that CO2 emissions related to human activity are the dominant driver of changing ocean conditions. However, there was a low recognition of how natural variability in the marine environment affects OA, and most respondents were not very confident in their understanding of OA-related science. Moreover, even though many communities in Alaska are reliant on commercial and subsistence fishing activities, the respondents had a low awareness of fisheries-related OA risk. Given the ongoing debate associated with climate change research, evaluating CO2 mitigation efforts through the perspective of OA could give individuals an unbiased way to assess the pros and cons of more intensive efforts to curb CO2 emissions. Furthermore, using OA communication to enhance the understanding of how natural variability influences OA around the state and the potential economic implications for Alaska fisheries would help residents and stakeholders make informed decisions when considering fisheries management plans, food security, and job diversity as OA intensifies. Solidifying the understanding that any reduction in pH and intensification of OA can have implications for marine species that are irreversible on human timescales will reinforce not only that OA is an immediate concern, but also the importance of taking action now. © 2014 The Authors.",alaska fisheries; ocean acidification; public understanding; risk perception,Alaska; United States; Anthozoa; acidification; carbon emission; coastal zone; commercial species; fishery management; mitigation; residential location; risk perception,,,Elsevier Ltd,,,,,,0308597X,,,,English,Mar. Policy,Article,Final,All Open Access; Green Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-84919343919 Ahmed N.; Diana J.S.,"Ahmed, Nesar (24331025700); Diana, James S. (7005948201)",24331025700; 7005948201,"Threatening ""white gold"": Impacts of climate change on shrimp farming in coastal Bangladesh",2015,Ocean and Coastal Management,114,,,42,52,10,81,10.1016/j.ocecoaman.2015.06.008,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84934920089&doi=10.1016%2fj.ocecoaman.2015.06.008&partnerID=40&md5=2e2743e0b1144822d0f5f44755c39be2,"School of Natural Resources and Environment, University of Michigan, Ann Arbor, 48109, MI, United States","Ahmed N., School of Natural Resources and Environment, University of Michigan, Ann Arbor, 48109, MI, United States; Diana J.S., School of Natural Resources and Environment, University of Michigan, Ann Arbor, 48109, MI, United States","In Bangladesh, tiger shrimp (. Penaeus monodon) is commercially known as ""white gold"", because of its export value. However, the production of ""white gold"" under shrimp alternate rice and shrimp-only farming systems in coastal Bangladesh has been accompanied by recent concerns over climate change. Field survey reveals that different climatic variables including coastal flooding, cyclone, sea-level rise, salinity, drought, rainfall, and sea surface temperature have had adverse effects on shrimp culture as well as socioeconomic conditions of farming households. There is also overwhelming evidence that changes in climatic variables has detrimental effects on the ecosystem of shrimp farms, and thus, severe effects on survival, growth, and production of shrimp. Considering extreme vulnerability to the effects of climate change on shrimp farming, we propose that community based adaptation strategies and integrated coastal zone management are needed to cope with the challenges. © 2015 Elsevier Ltd.",adaptation; climatic variables; coastal bangladesh; shrimp farming,Bangladesh; Decapoda (Crustacea); Penaeus monodon; Atmospheric temperature; Coastal zones; Floods; Gold; Oceanography; Regional planning; Sea level; Shellfish; Storms; Surface waters; Adaptation; Adaptation strategies; Bangladesh; Climatic variables; Integrated coastal zone management; Sea surface temperature (SST); Shrimp farming; Socio-economic conditions; adaptive management; climate change; climate effect; coastal zone management; ecosystem health; environmental factor; field survey; growth; household income; rice; shrimp culture; socioeconomic conditions; survival; Climate change,,,Elsevier Ltd,,,,,,09645691,,OCMAE,,English,Ocean Coast. Manage.,Article,Final,,Scopus,2-s2.0-84934920089 Joffre O.M.; Bosma R.H.; Bregt A.K.; van Zwieten P.A.M.; Bush S.R.; Verreth J.A.J.,"Joffre, Olivier M. (26435829400); Bosma, Roel H. (7003343886); Bregt, Arnold K. (6701856179); van Zwieten, Paul A.M. (8777953000); Bush, Simon R. (20336852300); Verreth, Johan A.J. (57207022070)",26435829400; 7003343886; 6701856179; 8777953000; 20336852300; 57207022070,What drives the adoption of integrated shrimp mangrove aquaculture in Vietnam?,2015,Ocean and Coastal Management,114,,,53,63,10,52,10.1016/j.ocecoaman.2015.06.015,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84935016350&doi=10.1016%2fj.ocecoaman.2015.06.015&partnerID=40&md5=2d996b5a02a2e344546c70c923530ba1,"Aquaculture and Fisheries Group, Wageningen University, Wageningen, 6700 AH, Netherlands; Laboratory of Geo-information Science and Remote Sensing, Wageningen University, P.O. Box 47, Wageningen, 6700 AA, Netherlands; Environmental Policy Group, Wageningen University, Hollandseweg 1, Wageningen, 6706 KN, United States","Joffre O.M., Aquaculture and Fisheries Group, Wageningen University, Wageningen, 6700 AH, Netherlands; Bosma R.H., Aquaculture and Fisheries Group, Wageningen University, Wageningen, 6700 AH, Netherlands; Bregt A.K., Laboratory of Geo-information Science and Remote Sensing, Wageningen University, P.O. Box 47, Wageningen, 6700 AA, Netherlands; van Zwieten P.A.M., Aquaculture and Fisheries Group, Wageningen University, Wageningen, 6700 AH, Netherlands; Bush S.R., Environmental Policy Group, Wageningen University, Hollandseweg 1, Wageningen, 6706 KN, United States; Verreth J.A.J., Aquaculture and Fisheries Group, Wageningen University, Wageningen, 6700 AH, Netherlands","The development of shrimp farming in Vietnam has eroded the social-ecological resilience of the coastal ecosystem. Recent literature supports the idea that integrated mangrove-shrimp production systems can contribute to rebuilding this resilience in the Mekong Delta. Two experts panels, international and Vietnamese, were consulted to validate and weight drivers identified from literature that enable or constraint farmers to shift from extensive production system to integrated mangrove-shrimp system or to continue such integrated system. Though a combination of drivers is needed to enhance changes, two sets of drivers were given the highest weight. Experts considered the ecosystem function of the mangrove an enabling driver pushing farmers to plant mangrove in order to improve the pond's water quality and limit disease outbreaks. They perceived the drivers related to the current regulatory framework as constraining because these limit the financial return associated with integrated mangrove-shrimp systems. The analysis indicates that the adoption of these integrated systems requires more equitable distribution of benefits from shrimp and timber production between farmers and other stakeholder in these value chains. We recommend to develop a regulatory framework that can optimize the financial benefits of the integrated mangrove-shrimp production systems for farmers. © 2015 Elsevier Ltd.",coastal communities; integrated management; mangrove; resilient aquaculture; shrimp aquaculture; vietnam,Mekong Delta; Viet Nam; Decapoda (Crustacea); Agriculture; Aquaculture; Ecosystems; Integrated control; Regional planning; Water quality; Coastal zone management; Mangrove; Shrimp aquaculture; Shrimp farming; Viet Nam; aquaculture; coastal zone management; ecosystem function; environmental economics; mangrove; regulatory framework; shrimp culture; sustainable development; Shellfish,,,Elsevier Ltd,,,,,,09645691,,OCMAE,,English,Ocean Coast. Manage.,Article,Final,,Scopus,2-s2.0-84935016350 Orchard S.E.; Stringer L.C.; Quinn C.H.,"Orchard, Steven Emmerson (56641026400); Stringer, Lindsay Carman (14018839600); Quinn, Claire Helen (8202525200)",56641026400; 14018839600; 8202525200,Mangrove system dynamics in Southeast Asia: linking livelihoods and ecosystem services in Vietnam,2016,Regional Environmental Change,16,3,,865,879,14,58,10.1007/s10113-015-0802-5,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84957939162&doi=10.1007%2fs10113-015-0802-5&partnerID=40&md5=652f37c417c22076f044b02581641125,"Sustainability Research Institute, School of Earth and Environment, University of Leeds, Leeds, LS2 9JT, West Yorkshire, United Kingdom","Orchard S.E., Sustainability Research Institute, School of Earth and Environment, University of Leeds, Leeds, LS2 9JT, West Yorkshire, United Kingdom; Stringer L.C., Sustainability Research Institute, School of Earth and Environment, University of Leeds, Leeds, LS2 9JT, West Yorkshire, United Kingdom; Quinn C.H., Sustainability Research Institute, School of Earth and Environment, University of Leeds, Leeds, LS2 9JT, West Yorkshire, United Kingdom","Across Southeast Asia, human activity has caused rapid mangrove system degradation and loss. In Vietnam, a country undergoing economic transition, mangrove systems are vital to the livelihoods of coastal rural communities. This paper studies three mangrove system-dependent communities on Vietnam’s northern coast. Guided by the sustainable livelihood framework, the paper adopts a mixed methods approach. It presents current uses of mangrove system goods and the factors shaping past livelihood responses to mangrove system change, using livelihood trajectory analysis. Findings demonstrate that communities depend on mangrove systems to different degrees for income, subsistence and to respond to change. However, the rapid development of aquaculture is associated with a significantly reduced and degraded mangrove system commons necessary to support the livelihoods of low-income households. Three distinct livelihood trajectories are identified: consolidator groups able to use their access to a wide range of resources, locked into resilient trajectories; accumulator groups able to use their access to limited resources to move from vulnerable to more resilient trajectories; and marginalised groups facing increasingly reduced access to resources locked into vulnerable trajectories. Vietnam faces challenges in reconciling a more market-orientated economy with the maintenance of mangrove system functions and processes that shape the vulnerability and resilience of livelihood trajectories. Policies and projects promoting the sustainable management of mangrove systems should acknowledge the substantial contribution and multiple uses of mangrove systems in livelihoods, particularly of the poor, and the impact of aquaculture on income equality and livelihood diversity that shapes household resilience and vulnerability. © 2015, The Author(s).",coastal communities; natural resource management; resilience; sustainability; vulnerability,,"S.E. Orchard; Sustainability Research Institute, School of Earth and Environment, University of Leeds, Leeds, LS2 9JT, United Kingdom; email: eeseo@leeds.ac.uk",,Springer Verlag,,,,,,14363798,,,,English,Reg. Environ. Change,Article,Final,All Open Access; Green Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-84957939162 MacDonald P.A.; Murray G.; Patterson M.,"MacDonald, Patricia A. (56450162300); Murray, Grant (23110755200); Patterson, Michele (56450090500)",56450162300; 23110755200; 56450090500,Considering social values in the seafood sector using the Q-method,2015,Marine Policy,52,,,68,76,8,25,10.1016/j.marpol.2014.10.029,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84918793671&doi=10.1016%2fj.marpol.2014.10.029&partnerID=40&md5=920c578b3473b37408e4e9898a270a18,"Institute for Coastal Research, Vancouver Island University, 900 Fifth Street, Nanaimo, V9R 5S5, BC, Canada","MacDonald P.A., Institute for Coastal Research, Vancouver Island University, 900 Fifth Street, Nanaimo, V9R 5S5, BC, Canada; Murray G., Institute for Coastal Research, Vancouver Island University, 900 Fifth Street, Nanaimo, V9R 5S5, BC, Canada; Patterson M., Institute for Coastal Research, Vancouver Island University, 900 Fifth Street, Nanaimo, V9R 5S5, BC, Canada","Ecosystem based ocean management processes seek to manage intricately linked social-ecological systems. These processes are intended to include and integrate appropriate economic, environmental, and social input into decision-making. To address identified challenges with gathering social data this study uses the Q-method to characterize different perspectives about what is valued about the ocean, seafood, and the community in the seafood sector of a single coastal community in British Columbia, Canada. Drawing on a sample of 42 people from the sector, this study identified a range of values, that group together into five distinct perspectives. These perspectives provide insight into how people value the experience versus the utility of the ocean and the different value they attribute to the outcomes of ocean management versus the process deployed. Values do not group together by seafood sub-sector, although the importance of teaching, stewardship, and conservation and respect for the ocean's resilience are common to all. On the other hand, the various perspectives most sharply diverge with respect to the role of aquaculture and special rights of access. This work demonstrates how the Q-method can help to identify, capture, and compare social values within a sector. In addition, this method can provide participants with a forum to discuss what is important and can provide a common vocabulary that cuts across existing constituencies. This has the potential to facilitate the consideration of a broad range of social values in ocean management. © 2014 Elsevier Ltd.",ecosystem services; integrated management; seafood sector; social value; stakeholder engagement,British Columbia; Canada; conservation management; decision making; ecosystem management; environmental values; food industry; marine ecosystem; seafood; stakeholder,,,Elsevier Ltd,,,,,,0308597X,,,,English,Mar. Policy,Article,Final,,Scopus,2-s2.0-84918793671 Galik A.; Haidvogl G.; Bartosiewicz L.; Guti G.; Jungwirth M.,"Galik, Alfred (16238596500); Haidvogl, Gertrud (24481008600); Bartosiewicz, Laszlo (7003328048); Guti, Gabor (6506831011); Jungwirth, Mathias (6604050890)",16238596500; 24481008600; 7003328048; 6506831011; 6604050890,Fish remains as a source to reconstruct long-term changes of fish communities in the Austrian and Hungarian Danube,2015,Aquatic Sciences,77,3,,337,354,17,18,10.1007/s00027-015-0393-8,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84937972404&doi=10.1007%2fs00027-015-0393-8&partnerID=40&md5=4464646fa9298d3293e4c9280099baee,"Institute of Anatomy, Histology and Embryology, University of Veterinary Medicine Vienna, Veterinärplatz 1, Vienna, 1210, Austria; Institute of Hydrobiology and Aquatic Ecosystem Management, University of Natural Resources and Life Sciences, Vienna, Austria; Institute of Archaeological Sciences, Eötvös Loránd University, Budapest, Hungary; School of History, Classics and Archaeology, University of Edinburgh, Edinburgh, United Kingdom; Danube Research Institute, MTA Centre for Ecological Research, Hungarian Academy of Sciences, Budapest, Hungary","Galik A., Institute of Anatomy, Histology and Embryology, University of Veterinary Medicine Vienna, Veterinärplatz 1, Vienna, 1210, Austria; Haidvogl G., Institute of Hydrobiology and Aquatic Ecosystem Management, University of Natural Resources and Life Sciences, Vienna, Austria; Bartosiewicz L., Institute of Archaeological Sciences, Eötvös Loránd University, Budapest, Hungary, School of History, Classics and Archaeology, University of Edinburgh, Edinburgh, United Kingdom; Guti G., Danube Research Institute, MTA Centre for Ecological Research, Hungarian Academy of Sciences, Budapest, Hungary; Jungwirth M., Institute of Hydrobiology and Aquatic Ecosystem Management, University of Natural Resources and Life Sciences, Vienna, Austria","The main objective of this paper is to investigate how archaeological fish remains and written historical records can contribute to the reconstruction of long-term developments of fish communities along the Austrian and Hungarian Danube. Although such approaches are sensitive to various factors, the chronological subdivision and relative quantification of proxy data demonstrate environmental and faunal changes from Prehistory onwards. Intensification of fisheries, decline of large specimens and massive exploitation of small and young fish point to increasing pressure along the chronological sequence towards Early Modern times. One result of this impact was the establishment of regulations and laws to protect such fish. At the same time, the rise of aquaculture and common carp cultivation can be viewed as another upshot of human impact on the Danube’s environment. Finally, the massive import of salted marine fish reflects a compensation for the undersupply caused by overexploitation of the Danube fish fauna and points to the growing demand for fish as food in late medieval and Early Modern times. © 2015, The Author(s).",archaeoichthyology; archaeological methods; austrian danube; fish community change; hungarian danube,Austria; Hungary; Cyprinus carpio; anthropogenic effect; aquaculture; archaeological evidence; chronology; community structure; demand analysis; economic history; exploitation; fish; historical record; ichthyofauna; long-term change; Medieval; population decline; proxy climate record; reconstruction,"A. Galik; Institute of Anatomy, Histology and Embryology, University of Veterinary Medicine Vienna, Vienna, Veterinärplatz 1, 1210, Austria; email: alfred.galik@vetmeduni.ac.at",,Birkhauser Verlag AG,,,,,,10151621,,AQSCE,,English,Aquatic Sci.,Article,Final,All Open Access; Green Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-84937972404 Bernier Q.; Sultana P.; Bell A.R.; Ringler C.,"Bernier, Quinn (57188583313); Sultana, Parvin (6603624584); Bell, Andrew Reid (18533255100); Ringler, Claudia (6603403564)",57188583313; 6603624584; 18533255100; 6603403564,Water management and livelihood choices in southwestern Bangladesh,2016,Journal of Rural Studies,45,,,134,145,11,49,10.1016/j.jrurstud.2015.12.017,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84961770652&doi=10.1016%2fj.jrurstud.2015.12.017&partnerID=40&md5=7d7c35b389dd43ddc3801deadba09df7,"Brown University, Department of Sociology, Box 1916, Providence, 02912, RI, United States; Flood Hazard Research Centre, Middlesex University, The Burroughs, Hendon, London, United Kingdom; New York University, Department of Environmental Studies, 285 Mercer St., New York, 10003, NY, United States; International Food Policy Research Institute, 2033 K St., Washington, 20006, DC, United States","Bernier Q., Brown University, Department of Sociology, Box 1916, Providence, 02912, RI, United States; Sultana P., Flood Hazard Research Centre, Middlesex University, The Burroughs, Hendon, London, United Kingdom; Bell A.R., New York University, Department of Environmental Studies, 285 Mercer St., New York, 10003, NY, United States; Ringler C., International Food Policy Research Institute, 2033 K St., Washington, 20006, DC, United States","Coastal Bangladesh faces an increasing number of challenges including cyclones, tidal surges, floods, drought, saline water intrusion, waterlogging and land subsidence, which pose substantial threats to the livelihoods of the coastal inhabitants. In addition to these threats, profound social and land-use changes are complicating the livelihoods of resource users in the region, including the introduction of aquaculture and increasing competition for ground and surface water sources. The government of Bangladesh has targeted this region for investment with irrigation expansion. This paper uses a sustainable livelihood lens to understand the role of investments in water management and irrigation in driving and shaping livelihood changes and transitions over the past ten years and offers recommendations for investments. We find that while water infrastructure development has greatly enhanced the role of agriculture in coastal livelihoods over the last 10 years, further development of irrigation infrastructure should only be prioritized after issues of water governance and inequity across agricultural and aquacultural livelihoods are addressed. © 2016 Elsevier Ltd.",bangladesh; governance; irrigation; livelihoods; water management,Bangladesh; aquaculture industry; coastal zone management; competition (economics); governance approach; investment; irrigation; sustainability; water management,"Q. Bernier; Brown University, Department of Sociology, Providence, Box 1916, 02912, United States; email: quinn_bernier@brown.edu",,Elsevier Ltd,,,,,,07430167,,JRSTF,,English,J. Rural Stud.,Article,Final,,Scopus,2-s2.0-84961770652 Lam M.E.,"Lam, Mimi E. (36193011800)",36193011800,The Ethics and Sustainability of Capture Fisheries and Aquaculture,2016,Journal of Agricultural and Environmental Ethics,29,1,,35,65,30,32,10.1007/s10806-015-9587-2,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84955695790&doi=10.1007%2fs10806-015-9587-2&partnerID=40&md5=acb38cee593f040ba985796a617fa023,"Institute for the Oceans and Fisheries, University of British Columbia, 2202 Main Mall, Vancouver, V6T 1Z4, BC, Canada; Department of Earth, Ocean and Atmospheric Sciences, University of British Columbia, 2207 Main Mall, Vancouver, V6T 1Z4, BC, Canada","Lam M.E., Institute for the Oceans and Fisheries, University of British Columbia, 2202 Main Mall, Vancouver, V6T 1Z4, BC, Canada, Department of Earth, Ocean and Atmospheric Sciences, University of British Columbia, 2207 Main Mall, Vancouver, V6T 1Z4, BC, Canada","The global seafood industry (capture fisheries and aquaculture) is a vital source of food, income, livelihoods, and culture. Seafood demand is steadily rising due to growth in the global human population, affluence, and per capita consumption. Seafood supply is also growing, despite declining wild fish stocks, with phenomenal advances in aquaculture, that is, the cultivation of aquatic organisms. Aquaculture supplied 42 % of the world’s fish in 2012 and is forecast to eclipse capture fisheries production by 2030. The balance between these two seafood production systems has profound implications for global food security, income distribution, and ecological sustainability. Here, a qualitative analysis of the ethics and sustainability of capture fisheries and aquaculture is presented. An innovative practical ethics approach is introduced which adapts the ethical matrix, a conceptual tool for analyzing the wellbeing, autonomy, and justice of different interest groups, and Rapfish, a rapid appraisal technique used to evaluate the sustainability of fisheries along six performance modalities, including ethics. Using case studies of global large- and small-scale capture fisheries and generalized carnivorous and omnivorous aquaculture systems, I show that human institutions and social actors interact in complex governance processes to influence seafood ethics and sustainability. © 2016, Springer Science+Business Media Dordrecht.",ethical matrix; food security; governance; rapfish; seafood ethics; seafood value chain analysis,,"M.E. Lam; Institute for the Oceans and Fisheries, University of British Columbia, Vancouver, 2202 Main Mall, V6T 1Z4, Canada; email: mimibethlam@gmail.com",,Springer Netherlands,,,,,,11877863,,,,English,J. Agric. Environ. Ethics,Article,Final,,Scopus,2-s2.0-84955695790 Mullon C.; Steinmetz F.; Merino G.; Fernandes J.A.; Cheung W.W.L.; Butenschön M.; Barange M.,"Mullon, C. (55572372000); Steinmetz, F. (25227735800); Merino, G. (22958160800); Fernandes, J.A. (24553992900); Cheung, W.W.L. (57201781940); Butenschön, M. (36156979600); Barange, M. (55897918000)",55572372000; 25227735800; 22958160800; 24553992900; 57201781940; 36156979600; 55897918000,"Quantitative pathways for Northeast Atlantic fisheries based on climate, ecological-economic and governance modelling scenarios",2016,Ecological Modelling,320,,,273,291,18,24,10.1016/j.ecolmodel.2015.09.027,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84946888207&doi=10.1016%2fj.ecolmodel.2015.09.027&partnerID=40&md5=7f4b0354ea884a46342dfe135ed3cbfd,"IRD, UMR 212, EME, CRH, Avenue Jean Monnet, Sète, 34200, France; AZTI-Tecnalia, Astondo Bidea, Edificio 609, Parque Tecnologico de Bizkaia, Elexalde Derio, Vizcaya, 48160, Spain; Plymouth Marine Laboratory, Prospect Place, Plymouth, PL1 3DH, United Kingdom; UBC Fisheries Centre, The University of British Columbia, Vancouver, BC, Canada","Mullon C., IRD, UMR 212, EME, CRH, Avenue Jean Monnet, Sète, 34200, France; Steinmetz F., IRD, UMR 212, EME, CRH, Avenue Jean Monnet, Sète, 34200, France; Merino G., AZTI-Tecnalia, Astondo Bidea, Edificio 609, Parque Tecnologico de Bizkaia, Elexalde Derio, Vizcaya, 48160, Spain; Fernandes J.A., Plymouth Marine Laboratory, Prospect Place, Plymouth, PL1 3DH, United Kingdom; Cheung W.W.L., UBC Fisheries Centre, The University of British Columbia, Vancouver, BC, Canada; Butenschön M., Plymouth Marine Laboratory, Prospect Place, Plymouth, PL1 3DH, United Kingdom; Barange M., Plymouth Marine Laboratory, Prospect Place, Plymouth, PL1 3DH, United Kingdom","Here we present quantitative projections of potential futures for ecosystems in the North Atlantic basin generated from coupling a climate change-driven biophysical model (representing ecosystem and fish populations under climate change) and a scenario-driven ecological-economic model (representing fleets and industries under economic globalization). Four contrasting scenarios (Baseline, Fortress, Global Commons, Free Trade) were defined from the perspective of alternative regional management and governance of the oceanic basin, providing pathways for the future of ecosystems in the Northeast Atlantic basin by 2040. Results indicate that in the time frame considered: (1) the effects of governance and trade decisions are more significant in determining outcomes than the effects of climate change alone, (2) climate change is likely to result in a poleward latitudinal shift of species ranges and thus resources, with implications for exploitation patterns, (3) the level of fisheries regulation is the most important factor in determining the long term evolution of the fisheries system, (4) coupling climate change and governance impacts demonstrates the complex interaction between different components of this social-ecological system, (5) an important driver of change for the future of the North Atlantic and the European fishing fleets appears to be the interplay between wild fisheries and aquaculture development, and finally (6) scenarios demonstrate that the viability and profit of fisheries industries is highly volatile. This study highlights the need to explore basin-scale policy that combines medium to long-term environmental and socio-economic considerations, and the importance of defining alternative sustainable pathways. © 2015 Published by Elsevier B.V.",atlantic ocean; climate change; climatic; bio-geochemical and bio-economic modelling; economic equilibrium; management scenarios; network modelling,Atlantic Ocean; Atlantic Ocean (Northeast); Europe; Climate models; Commerce; Complex networks; Ecology; Economics; Ecosystems; Fisheries; Industrial economics; International trade; Long Term Evolution (LTE); Atlantic Ocean; Bio-economic modelling; Economic equilibrium; Management scenarios; Network modelling; climate change; fishery management; fishery modeling; governance approach; latitudinal gradient; resource development; socioeconomic conditions; species diversity; Climate change,"M. Barange; Plymouth Marine Laboratory, Plymouth, Prospect Place, PL1 3DH, United Kingdom; email: m.barange@pml.ac.uk",,Elsevier,,,,,,03043800,,ECMOD,,English,Ecol. Model.,Article,Final,,Scopus,2-s2.0-84946888207 Arechavala-Lopez P.; Valero-Rodriguez J.M.; Peñalver-García J.; Izquierdo-Gomez D.; Sanchez-Jerez P.,"Arechavala-Lopez, P. (26633617400); Valero-Rodriguez, J.M. (56505481300); Peñalver-García, J. (56703469800); Izquierdo-Gomez, D. (55441290500); Sanchez-Jerez, P. (6603640199)",26633617400; 56505481300; 56703469800; 55441290500; 6603640199,Linking coastal aquaculture of meagre Argyrosomus regius and Western Mediterranean coastal fisheries through escapes incidents,2015,Fisheries Management and Ecology,22,4,,317,325,8,15,10.1111/fme.12129,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84937516544&doi=10.1111%2ffme.12129&partnerID=40&md5=d7cf5bda3fd7992841f671295fdbedf5,"Department of Marine Sciences and Applied Biology, University of Alicante, Alicante, Spain; Servicio de Pesca y Acuicultura, D. G. Ganadería y Pesca, Consejería Agricultura y Agua de la Región de Murcia, Murcia, Spain","Arechavala-Lopez P., Department of Marine Sciences and Applied Biology, University of Alicante, Alicante, Spain; Valero-Rodriguez J.M., Department of Marine Sciences and Applied Biology, University of Alicante, Alicante, Spain; Peñalver-García J., Servicio de Pesca y Acuicultura, D. G. Ganadería y Pesca, Consejería Agricultura y Agua de la Región de Murcia, Murcia, Spain; Izquierdo-Gomez D., Department of Marine Sciences and Applied Biology, University of Alicante, Alicante, Spain; Sanchez-Jerez P., Department of Marine Sciences and Applied Biology, University of Alicante, Alicante, Spain","Escape incidents in coastal aquaculture lead to economic losses for farmers and may have indirect socio-economic effects on local fisheries. In this study, the relationship of meagre, Argyrosomus regius (Asso), production in open-sea cages and coastal small-scale fisheries was analysed through captures of escapes, which are easily detected because this species is considered locally absent in native communities in Western Mediterranean regions. Scale reading showed that 100% of captured meagre were escapees. The existence of a direct relationship, in terms of biomass, between the development of meagre coastal aquaculture and the increase of captures of this species by local fisheries was demonstrated. The spatial distribution of meagre captures suggested that there is a local environmental and economic interaction between meagre aquaculture and fisheries through escapees. Monitoring the presence of locally absent species such as meagre within landings might help to assess the magnitude of escapes, the potential economic effects on local aquaculture and fishery industries, and the potential adverse ecological impacts on local ecosystems. © 2015 John Wiley & Sons Ltd.",environmental sustainability; fish farms; fisheries landings; management; scales; socioeconomic,Mediterranean Sea; Mediterranean Sea (West); Argyrosomus regius; aquaculture; coastal fishery; environmental impact; escape behavior; fishery management; perciform; socioeconomic impact,"P. Arechavala-Lopez; Department of Marine Sciences and Applied Biology, University of Alicante, Alicante, Ap. 99, E-03080, Spain; email: pablo.arechavala@ua.es",,,,,,,,0969997X,,,,English,Fish. Manage. Ecol.,Article,Final,,Scopus,2-s2.0-84937516544 Betcherman G.; Marschke M.,"Betcherman, Gordon (24474427800); Marschke, Melissa (57203129057)",24474427800; 57203129057,Coastal livelihoods in transition: How are Vietnamese households responding to changes in the fisheries and in the economy?,2016,Journal of Rural Studies,45,,,24,33,9,43,10.1016/j.jrurstud.2016.02.012,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84960106334&doi=10.1016%2fj.jrurstud.2016.02.012&partnerID=40&md5=1c41ee33d5c9ba6696bb903849bd0085,"School of International Development and Global Studies, University of Ottawa, Ottawa, ON, Canada","Betcherman G., School of International Development and Global Studies, University of Ottawa, Ottawa, ON, Canada; Marschke M., School of International Development and Global Studies, University of Ottawa, Ottawa, ON, Canada","This article is concerned with how far-reaching economic and ecological changes are affecting the livelihoods of coastal households in Vietnam. In particular, we are interested in the livelihood effects of two aspects of this changing environment: (1) the transformation of the fisheries sector, including declining stocks and species loss and the rapid expansion of aquaculture, and (2) the broader structural change in the Vietnamese economy, from household-based primary-sector activities to wage and salary employment and self-employment outside the household. Our analysis, based on a survey of 599 households in 12 coastal communes in two provinces, shows considerable changes in livelihood patterns over the decade covered by the survey. Over one-third of the responding households reported a different primary earnings source in 2012 than in 2002. Fewer relied on aquaculture as their main livelihood activity in the later year. While aquaculture, encouraged by official policy, has assumed an increasingly dominant position in fish production in Vietnam then, this is not necessarily a shift that has worked to the benefit of households in the coastal communities we studied. For most, aquaculture has not generated very high incomes so some are making it a less important aspect of their livelihood portfolio, not dropping it completely but shifting productive efforts to other livelihoods. Meanwhile, economic growth and structural change have created new opportunities for wage employment and self-employment for growing numbers of households. However, human and financial capital are necessary conditions for taking advantage of such opportunities arising from Vietnam's economic development, which raises concerns about growing economic inequality in the country's coastal communities. © 2016 Elsevier Ltd.",aquaculture; coastal livelihoods; fishing; labor; structural change; vietnam,Viet Nam; aquaculture; economic growth; fishery; fishing; income; labor relations; structural change; wage,"G. Betcherman; School of International Development and Global Studies, University of Ottawa, Ottawa, Canada; email: Gordon.Betcherman@uottawa.ca",,Elsevier Ltd,,,,,,07430167,,JRSTF,,English,J. Rural Stud.,Article,Final,,Scopus,2-s2.0-84960106334 Aslan L.O.M.; Iba W.; Bolu L.O.R.; Ingram B.A.; Gooley G.J.; de Silva S.S.,"Aslan, La Ode M. (57094821300); Iba, Wa (57094932800); Bolu, La Ode Ridwan (57094975900); Ingram, Brett A. (7004405288); Gooley, Geoff. J. (6602072059); de Silva, Sena S. (7101742849)",57094821300; 57094932800; 57094975900; 7004405288; 6602072059; 7101742849,"Mariculture in SE Sulawesi, Indonesia: Culture practices and the socio economic aspects of the major commodities",2015,Ocean and Coastal Management,116,,,44,57,13,45,10.1016/j.ocecoaman.2015.06.028,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84957040114&doi=10.1016%2fj.ocecoaman.2015.06.028&partnerID=40&md5=4b4229a6c2a685053c787432bfdb04c6,"Faculty of Fisheries and Marine Science, Halu Oleo University, Kendari, SE Sulawesi, Indonesia; Dinas Kelautan dan Perikanan, Kendari, SE Sulawesi, Indonesia; Fisheries Victoria, Department of Economic Development, Jobs, Transport and Resources, Private Bag 20, Alexandra, 3714, VIC, Australia; CSIRO, Aspendale, 3195, VIC, Australia; School of Life and Environmental Sciences, Deakin University, Warrnambool, 3280, VIC, Australia","Aslan L.O.M., Faculty of Fisheries and Marine Science, Halu Oleo University, Kendari, SE Sulawesi, Indonesia; Iba W., Faculty of Fisheries and Marine Science, Halu Oleo University, Kendari, SE Sulawesi, Indonesia; Bolu L.O.R., Dinas Kelautan dan Perikanan, Kendari, SE Sulawesi, Indonesia; Ingram B.A., Fisheries Victoria, Department of Economic Development, Jobs, Transport and Resources, Private Bag 20, Alexandra, 3714, VIC, Australia; Gooley G.J., CSIRO, Aspendale, 3195, VIC, Australia; de Silva S.S., School of Life and Environmental Sciences, Deakin University, Warrnambool, 3280, VIC, Australia","South East Sulawesi, Indonesia (120° 45'-124° 06' E: 3°-6° S) has a rapidly developing mariculture sector. The sector essentially consists of small scale farmer owned/leased, operated and managed systems located mainly in rural coastal villages. The study was aimed at evaluating the nature and the socio-economics of the major culture practices in SE Sulawesi. The number of households engaged in mariculture in SE Sulawesi increased from 9929 in 2001 to 31,086 in 2012. Over the same time the culture area increased from 1193ha to 26,950ha and production from 9400t to 640,226t, with the main commodity, being the seaweed species Kappaphycus alvarezii (cottonii) and Eucheuma denticulatum (spinosum), accounting for more than 95% of the production, followed by grouper species. In addition farming of lobster, winged pearl oyster and sea cucumber, all based on seedstock collected form the wild, also occurs. In this paper the practices of the four major commodities cultured in SE Sulawesi, viz. seaweed, groupers, lobsters and winged pearl oyster are described and are based on information collected through a number of surveys conducted in the Buton and Muna Islands and in Kendari, in 2012-2013. Accordingly, information on the farming communities, such as the average age of farmers, years of farming experiences, education level and other related aspects together with information on the culture cycle duration, yields, and costs involved for each commodity are presented. For example, in seaweed culture the annual production (by dry weight) per farm ranged from 0.4 to 42t/yr (mean 6.1t/year) and the crop size ranged from 0.1 to 10.0t/yr (mean 1.2t/yr), and equates to around 1t/ha and 6t/ha/yr (assuming 6 crops per year). Operating costs for seaweed culture ranged from IDR 0.01-10.7×106 (mean IDR 2.08×106), and were mainly for purchase of seed (63%), fuel (20%) and labour (16%). Cost of Production (CoP) ranged from IDR 1000-8000/kg (mean IDR 4900/kg). Policies, strategies and planning to further develop mariculture in SE Sulawesi will need on-going support of farmer clusters, along with training in business management and marketing that will help empower farmers and provide them with the ability to have more influence on the market chain. Environmental factors will also need to be taken into account when planning the development of new and expanding mariculture activities, particularly changing environmental conditions associated with monsoonal weather patterns, and ensuring impacts of farming activities on the environment are minimised. © 2015.",aquaculture; farmer livelihood; grouper; lobster; seaweed; winged pearl oyster,Buton; Greater Sunda Islands; Kendari Bay; Muna; Southeast Sulawesi; Sulawesi; Sunda Isles; Epinephelinae; Eucheuma denticulatum; Holothuroidea; Kappaphycus alvarezii; lobster; Pinctada; Agriculture; Aquaculture; Commerce; Costs; Crops; Economics; Gems; Marine biology; Molluscs; Operating costs; Purchasing; Rural areas; Seaweed; Environmental conditions; Environmental factors; Farmer livelihood; Grouper; Kappaphycus alvarezii; Lobster; Pearl oyster; Socioeconomic aspects; aquaculture method; bivalve; commodity; cost analysis; employment; environmental factor; fishery management; fishery production; fishery survey; fishing community; lobster; mariculture; seaweed; seaweed culture; socioeconomic conditions; village; Shellfish,,,Elsevier Ltd,,,,,,09645691,,OCMAE,,English,Ocean Coast. Manage.,Article,Final,,Scopus,2-s2.0-84957040114 Glaser M.; Breckwoldt A.; Deswandi R.; Radjawali I.; Baitoningsih W.; Ferse S.C.A.,"Glaser, Marion (7103281929); Breckwoldt, Annette (55245837600); Deswandi, Rio (36021889500); Radjawali, Irendra (56786435500); Baitoningsih, Wasistini (36021880700); Ferse, Sebastian C.A. (26323608200)",7103281929; 55245837600; 36021889500; 56786435500; 36021880700; 26323608200,Of exploited reefs and fishers - A holistic view on participatory coastal and marine management in an Indonesian archipelago,2015,Ocean and Coastal Management,116,,,193,213,20,62,10.1016/j.ocecoaman.2015.07.022,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84939522893&doi=10.1016%2fj.ocecoaman.2015.07.022&partnerID=40&md5=a9b8d532a9d8f447ad54649116bc1198,"Leibniz Center for Tropical Marine Ecology, Fahrenheitstrasse 6, Bremen, 28359, Germany; The United Nations Industrial Development Organization (UNIDO), Jakarta, Indonesia; Institute of Oriental and Asian Studies, Bonn University, Germany","Glaser M., Leibniz Center for Tropical Marine Ecology, Fahrenheitstrasse 6, Bremen, 28359, Germany; Breckwoldt A., Leibniz Center for Tropical Marine Ecology, Fahrenheitstrasse 6, Bremen, 28359, Germany; Deswandi R., The United Nations Industrial Development Organization (UNIDO), Jakarta, Indonesia; Radjawali I., Institute of Oriental and Asian Studies, Bonn University, Germany; Baitoningsih W., Leibniz Center for Tropical Marine Ecology, Fahrenheitstrasse 6, Bremen, 28359, Germany; Ferse S.C.A., Leibniz Center for Tropical Marine Ecology, Fahrenheitstrasse 6, Bremen, 28359, Germany","This paper arises from a four-year Indonesian-German research cooperation on the governance and management of Indonesian coastal and marine ecosystems. Project objectives were to investigate coastal and marine social-ecological dynamics and feedbacks and to analyse socio-political and institutional structures and processes in order to support adaptive coastal governance. Participating researchers worked in the Spermonde Archipelago, off South Sulawesi, Indonesia, between 2007 and 2010. Methods included ship-based research excursions, several classical surveys, anthropological participant observation, and participatory research methods applied by an interdisciplinary social-natural science team. This paper summarises our findings and draws policy conclusions. First, we discuss Marine Protected Areas and participation focussing on local ""rules-in-use"". In addition, reef exploitation and local livelihoods, in particular fisheries and mariculture, and the existing social networks and hierarchies in fisheries are explored to understand social vulnerability, resilience and marine resource governance in the context of the Spermonde Archipelago. An outline of major policy recommendations concludes this article. © 2015 Elsevier Ltd.",indonesia; livelihoods; mpa management; participatory approach; social hierarchies; spermonde,Greater Sunda Islands; South Sulawesi; Spermonde Archipelago; Sulawesi; Sunda Isles; Conservation; Ecology; Ecosystems; Fisheries; Marine biology; Reefs; Indonesia; Livelihoods; Participation; Social hierarchy; Spermonde; coastal zone management; ecosystem resilience; exploitation; fishery; holistic approach; interdisciplinary approach; mariculture; marine ecosystem; marine resource; nature-society relations; participatory approach; policy making; protected area; reef; shipborne measurement; social network; vulnerability; Surveys,,,Elsevier Ltd,,,,,,09645691,,OCMAE,,English,Ocean Coast. Manage.,Article,Final,All Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-84939522893 Johnson J.E.; Welch D.J.,"Johnson, Johanna E. (55494676500); Welch, David J. (7202922123)",55494676500; 7202922123,Climate change implications for Torres Strait fisheries: assessing vulnerability to inform adaptation,2016,Climatic Change,135,3-4,,611,624,13,19,10.1007/s10584-015-1583-z,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84961126532&doi=10.1007%2fs10584-015-1583-z&partnerID=40&md5=30473e9b7d785b12ab98455e54765db5,"C2O Coasts Climate Oceans, PO Box 3041, Cairns, 4870, QLD, Australia; College of Marine and Environmental Sciences, James Cook University, QLD, Australia; C2O Fisheries, PO Box 3041, Cairns, 4870, QLD, Australia","Johnson J.E., C2O Coasts Climate Oceans, PO Box 3041, Cairns, 4870, QLD, Australia, College of Marine and Environmental Sciences, James Cook University, QLD, Australia; Welch D.J., College of Marine and Environmental Sciences, James Cook University, QLD, Australia, C2O Fisheries, PO Box 3041, Cairns, 4870, QLD, Australia","Climate change impacts on marine fisheries are being observed in tropical regions, including northern Australia and the Pacific. In the Torres Strait, Islanders have a long association with their sea country that holds significant cultural, social and economic importance. Future impacts of climate change on marine fisheries stocks and supporting habitats will affect Torres Strait Islander communities. We assessed the relative vulnerability of 15 key fishery species in Torres Strait using a semi-quantitative framework modified from the Intergovernmental Panel on Climate Change that integrated both ecological and social indicators of exposure, sensitivity and adaptive capacity. The assessment identified species with high, medium and low vulnerability to projected climate change in 2030. The species assessed as having the highest vulnerability were: Holothuria whitmaei (black teatfish), Pinctada margaritifera (black-lipped pearl oyster), Dugong dugon (dugong), and Trochus niloticus (trochus). A separate prioritisation process that considered the cultural and economic value of species identified three high priority species for future management focus: D. dugon, marine turtles (principally Chelonia mydas) and Panulirus ornatus (tropical rock lobster). These results can inform fishers and managers to prepare for the effects of climate change and minimise impacts. The relatively healthy condition of most fisheries in the Torres Strait is likely to assist successful adaptation. © 2015, Springer Science+Business Media Dordrecht.",,Australia; Pacific Ocean; Torres Strait; Chelonia mydas; Cheloniidae; Dugong dugon; Holothuria whitmaei; Panulirus ornatus; Pinctada; Pinctada margaritifera; Trochus; Trochus niloticus; Fisheries; Shellfish; Adaptive capacity; Climate change impact; Economic importance; Intergovernmental panel on climate changes; Northern Australia; Quantitative frameworks; Social indicators; Trochus niloticus; adaptive management; bivalve; climate change; economic planning; environmental impact; fishery management; Intergovernmental Panel on Climate Change; lobster; mariculture; sirenian; snail; stock assessment; turtle; vulnerability; Climate change,"J.E. Johnson; C2O Coasts Climate Oceans, Cairns, PO Box 3041, 4870, Australia; email: j.johnson@c2o.net.au",,Springer Netherlands,,,,,,01650009,,CLCHD,,English,Clim. Change,Article,Final,,Scopus,2-s2.0-84961126532 Wise R.M.; Butler J.R.A.; Suadnya W.; Puspadi K.; Suharto I.; Skewes T.D.,"Wise, R.M. (8561969000); Butler, J.R.A. (7403925780); Suadnya, W. (55976287900); Puspadi, K. (36138847700); Suharto, I. (55976109400); Skewes, T.D. (6603113963)",8561969000; 7403925780; 55976287900; 36138847700; 55976109400; 6603113963,How climate compatible are livelihood adaptation strategies and development programs in rural Indonesia?,2016,Climate Risk Management,12,,,100,114,14,27,10.1016/j.crm.2015.11.001,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84962050787&doi=10.1016%2fj.crm.2015.11.001&partnerID=40&md5=6ef2864738f2bced5c9270dcd16e23a9,"CSIRO Land and Water Flagship, Black Mountain, Canberra, 2601, ACT, Australia; CSIRO Land and Water Flagship, GPO Box 2583, Brisbane, 4001, QLD, Australia; Faculty of Agriculture, University of Mataram, Jl. Majapahit 62, Mataram, Nusa Tenggara Barat Province, 83127, Indonesia; Assessment Institute for Agricultural Technology, Lombok, NTB, Indonesia; VECO Indonesia, Denpasar, Indonesia; CSIRO Oceans and Atmosphere Flagship, GPO Box 2583, Brisbane, 4001, QLD, Australia","Wise R.M., CSIRO Land and Water Flagship, Black Mountain, Canberra, 2601, ACT, Australia; Butler J.R.A., CSIRO Land and Water Flagship, GPO Box 2583, Brisbane, 4001, QLD, Australia; Suadnya W., Faculty of Agriculture, University of Mataram, Jl. Majapahit 62, Mataram, Nusa Tenggara Barat Province, 83127, Indonesia; Puspadi K., Assessment Institute for Agricultural Technology, Lombok, NTB, Indonesia; Suharto I., VECO Indonesia, Denpasar, Indonesia; Skewes T.D., CSIRO Oceans and Atmosphere Flagship, GPO Box 2583, Brisbane, 4001, QLD, Australia","Achieving climate compatible development (CCD) is a necessity in developing countries, but there are few examples of requisite planning processes, or manifestations of CCD. This paper presents a multi-stakeholder, participatory planning process designed to screen and prioritise rural livelihood adaptation strategies against nine CCD criteria. The process also integrated three principles of adaptation pathways: interventions should be (1) 'no regrets' and maintain reversibility to avoid mal-adaptation; (2) address both proximate and underlying systemic drivers of community vulnerability; and (3) linked across spatial scales and jurisdictional levels to promote coordination. Using examples of two rural sub-districts in Indonesia, we demonstrate the process and resulting CCD strategies. Priority strategies varied between the sub-districts but all reflected standard development interventions: water management, intensification or diversification of agriculture and aquaculture, education, health, food security and skills-building for communities. Strategies delivered co-benefits for human development and ecosystem services and hence adaptive capacity, but greenhouse mitigation co-benefits were less significant. Actions to deliver the strategies' objectives were screened for reversibility, and a minority were potentially mal-adaptive (i.e. path dependent, disproportionately burdening the most vulnerable, reducing incentives to adapt, or increasing greenhouse gas emissions) yet highly feasible. These related to infrastructure, which paradoxically is necessary to deliver 'soft' adaptation benefits (i.e. road access to health services). Only a small minority of transformative strategies addressed the systemic (i.e. institutional and political) drivers of vulnerability. Strategies were well-matched by development programs, suggesting that current interventions mirror CCD. However, development programs tackled fewer systemic drivers, were poorly coordinated and had a higher risk of mal-adaptation. We conclude that the approach is effective for screening and prioritising no regrets CCD, but more extensive learning processes are necessary to build decision-makers' capacity to tackle systemic drivers, and to scrutinise potentially mal-adaptive infrastructural investments. © 2015 The Authors.",adaptation; deliberative decision-making; mal-adaptation; multiple correspondence analysis; rural development,,"R.M. Wise; CSIRO Land and Water Flagship, Black Mountain, Canberra, 2601, Australia; email: russell.wise@csiro.au",,Elsevier,,,,,,22120963,,,,English,Clim. Risk Manage.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-84962050787 Bjørndal T.; Child A.; Lem A.; Dey M.M.,"Bjørndal, Trond (6603939587); Child, Anna (56541072100); Lem, Audun (35409580500); Dey, Madan M. (8872616900)",6603939587; 56541072100; 35409580500; 8872616900,Value Chain Dynamics and the Small-Scale Sector: A Summary of Findings and Policy Recommendations for Fisheries and Aquaculture Trade,2015,Aquaculture Economics and Management,19,1,,148,173,25,33,10.1080/13657305.2015.994241,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84924289821&doi=10.1080%2f13657305.2015.994241&partnerID=40&md5=9a8bd60f86c97db245ee2c47cfc146a9,"Aalesund University College and SNF Center for Applied Research at NHH, Aalesund, Norway; Fisheries and Aquaculture Policy and Economics Division, The Food and Agriculture Organisaton (FAO) of the United Nations, Rome, Italy; Aquaculture and Fisheries Center, University of Arkansas at Pine Bluff, Pine Bluff, AR, United States","Bjørndal T., Aalesund University College and SNF Center for Applied Research at NHH, Aalesund, Norway; Child A., Fisheries and Aquaculture Policy and Economics Division, The Food and Agriculture Organisaton (FAO) of the United Nations, Rome, Italy; Lem A., Fisheries and Aquaculture Policy and Economics Division, The Food and Agriculture Organisaton (FAO) of the United Nations, Rome, Italy; Dey M.M., Aquaculture and Fisheries Center, University of Arkansas at Pine Bluff, Pine Bluff, AR, United States","This article centers on an FAO project that focused on price transmission in fishery and aquaculture value chains, and the research conducted via case studies in 14 developed and developing countries. A brief overview of the project with the methodology of analysis and findings for each country is summarized in this work. In addition, general policy recommendations that emerged as key themes across all value chains are discussed. Across all case studies, it was found that relative to other players in the value chain, small-scale fishers and fish farmers are receiving the smallest economic benefits for their products. Processors and retail markets were found to be receiving more of the distributional benefits of the value chain owing to their stronger bargaining power. With this finding, policy recommendations aim to safeguard the interests of small-scale fishers and fish farmers by improving their prices and margins while allowing the resource to achieve long-term sustainability from an economic, social and biological perspective. © 2015, Taylor & Francis Group, LLC.",fao; price transmission; small-scale; value chains,aquaculture industry; developing world; fishery economics; fishery management; policy approach; price dynamics; small scale industry; sustainability,,,Taylor and Francis Inc.,,,,,,13657305,,AEMAF,,English,Aquac. Econ. Manage.,Article,Final,,Scopus,2-s2.0-84924289821 de Araujo Barbosa C.C.; Dearing J.; Szabo S.; Hossain S.; Binh N.T.; Nhan D.K.; Matthews Z.,"de Araujo Barbosa, Caio Cesar (56491301400); Dearing, John (7006518459); Szabo, Sylvia (56556036400); Hossain, Sarwar (57210742754); Binh, Nguyen Thanh (57218602024); Nhan, Dang Kieu (6603431839); Matthews, Zoe (6601952196)",56491301400; 7006518459; 56556036400; 57210742754; 57218602024; 6603431839; 6601952196,"Evolutionary social and biogeophysical changes in the Amazon, Ganges–Brahmaputra–Meghna and Mekong deltas",2016,Sustainability Science,11,4,,555,574,19,15,10.1007/s11625-016-0371-7,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84968626488&doi=10.1007%2fs11625-016-0371-7&partnerID=40&md5=eb3967e82400f10a58139565c82f1d27,"Global Environmental Change and Earth Observation Research Group, Geography and Environment, University of Southampton, Southampton, SO17 1BJ, United Kingdom; Palaeoecological Laboratory, Geography and Environment, University of Southampton, Southampton, SO17 1BJ, United Kingdom; Social Statistics and Demography, University of Southampton, Southampton, SO17 1BJ, United Kingdom; Mekong Delta Development Research Institute, Can Tho University, Can Tho, Viet Nam","de Araujo Barbosa C.C., Global Environmental Change and Earth Observation Research Group, Geography and Environment, University of Southampton, Southampton, SO17 1BJ, United Kingdom; Dearing J., Palaeoecological Laboratory, Geography and Environment, University of Southampton, Southampton, SO17 1BJ, United Kingdom; Szabo S., Social Statistics and Demography, University of Southampton, Southampton, SO17 1BJ, United Kingdom; Hossain S., Palaeoecological Laboratory, Geography and Environment, University of Southampton, Southampton, SO17 1BJ, United Kingdom; Binh N.T., Mekong Delta Development Research Institute, Can Tho University, Can Tho, Viet Nam; Nhan D.K., Mekong Delta Development Research Institute, Can Tho University, Can Tho, Viet Nam; Matthews Z., Social Statistics and Demography, University of Southampton, Southampton, SO17 1BJ, United Kingdom","Policy-making in social-ecological systems increasingly looks to iterative, evolutionary approaches that can address the inherent complexity of interactions between human wellbeing, provision of goods, and the maintenance of ecosystem services. Here, we show how the analysis of available time-series in tropical delta regions over past decades can provide important insight into the social-ecological system dynamics in deltaic regions. The paper provides an exploratory analysis of the recent changes that have occurred in the major elements of three tropical deltaic social-ecological systems, such as demography, economy, health, climate, food, and water. Time-series data from official statistics, monitoring programmes, and Earth observation data are analysed to explore possible trends, slow and fast variables, and observed drivers of change in the Amazon, Ganges–Brahmaputra–Meghna and Mekong deltas. In the Ganges–Brahmaputra–Meghna delta zone, increasing gross domestic product and per capita income levels since the 1980s mirror rising levels of food and inland fish production. In contrast, non-food ecosystem services, such as water availability, water quality, and land stability appear to be deteriorating. In the Amazon delta, natural and anthropogenic perturbations are continuously degrading key ecosystem services, such as carbon storage in biomass and soils, the regulation of water balance, and the modulation of regional climate patterns. In the Mekong delta, rapid economic development, changing land-use practices, and salinity intrusion are progressively putting more pressure on the delivery of important provisioning services, such as rice and inland aquaculture production, which are key sources of staple food, farm incomes, and export revenue. Observed changes in many key indicators of ecosystem services point to a changing dynamic state and increased probability of systemic threshold transformations in the near future. © 2016, Springer Japan.",amazon; delta; dynamic principal component analysis; ganges–brahmaputra–meghna; mekong; socio-ecological systems,,"C.C. de Araujo Barbosa; Global Environmental Change and Earth Observation Research Group, Geography and Environment, University of Southampton, Southampton, SO17 1BJ, United Kingdom; email: CC.DeAraujoBarbosa@soton.ac.uk",,Springer-Verlag Tokyo,,,,,,18624065,,,,English,Sustainability Sci.,Article,Final,All Open Access; Green Open Access,Scopus,2-s2.0-84968626488 Dapueto G.; Massa F.; Costa S.; Cimoli L.; Olivari E.; Chiantore M.; Federici B.; Povero P.,"Dapueto, Giulia (56721411200); Massa, Francesco (55295948500); Costa, Sara (56091137800); Cimoli, Laura (56721413600); Olivari, Enrico (56721261500); Chiantore, Mariachiara (35613909200); Federici, Bianca (7006862054); Povero, Paolo (6603044674)",56721411200; 55295948500; 56091137800; 56721413600; 56721261500; 35613909200; 7006862054; 6603044674,"A spatial multi-criteria evaluation for site selection of offshore marine fish farm in the Ligurian Sea, Italy",2015,Ocean and Coastal Management,116,,,64,77,13,75,10.1016/j.ocecoaman.2015.06.030,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84937060525&doi=10.1016%2fj.ocecoaman.2015.06.030&partnerID=40&md5=4a7f418cb330384c3a665787493eaa15,"Dipartimento di Scienze della Terra, dell'Ambiente e della Vita (DISTAV), Università degli Studi di Genova, Corso Europa 26, Genoa, 16132, Italy; Department of Physics, University of Oxford, Parks Road, Oxford, OX1 3PU, United Kingdom; Dipartimento di Ingegneria Civile, Chimica e Ambientale (DICCA), Università degli Studi di Genova, Via Montallegro 1, Genoa, 16145, Italy","Dapueto G., Dipartimento di Scienze della Terra, dell'Ambiente e della Vita (DISTAV), Università degli Studi di Genova, Corso Europa 26, Genoa, 16132, Italy; Massa F., Dipartimento di Scienze della Terra, dell'Ambiente e della Vita (DISTAV), Università degli Studi di Genova, Corso Europa 26, Genoa, 16132, Italy; Costa S., Dipartimento di Scienze della Terra, dell'Ambiente e della Vita (DISTAV), Università degli Studi di Genova, Corso Europa 26, Genoa, 16132, Italy; Cimoli L., Dipartimento di Scienze della Terra, dell'Ambiente e della Vita (DISTAV), Università degli Studi di Genova, Corso Europa 26, Genoa, 16132, Italy, Department of Physics, University of Oxford, Parks Road, Oxford, OX1 3PU, United Kingdom; Olivari E., Dipartimento di Scienze della Terra, dell'Ambiente e della Vita (DISTAV), Università degli Studi di Genova, Corso Europa 26, Genoa, 16132, Italy; Chiantore M., Dipartimento di Scienze della Terra, dell'Ambiente e della Vita (DISTAV), Università degli Studi di Genova, Corso Europa 26, Genoa, 16132, Italy; Federici B., Dipartimento di Ingegneria Civile, Chimica e Ambientale (DICCA), Università degli Studi di Genova, Via Montallegro 1, Genoa, 16145, Italy; Povero P., Dipartimento di Scienze della Terra, dell'Ambiente e della Vita (DISTAV), Università degli Studi di Genova, Corso Europa 26, Genoa, 16132, Italy","Mariculture is a relatively new activity that is expanding globally and interacts with other coastal uses. Therefore, it is necessary to allocate suitable sites from environmental, economic and social points of view, involving different stakeholders in the decision-making process. In particular, in the Ligurian Sea (Italy), for its environmental characteristics and tradition, fish farming should be further boosted and an accurate marine spatial planning should be done. This paper presents a spatial multi-criteria evaluation (SMCE) addressed to identify suitable areas for siting offshore medium size fish farms in the Ligurian Sea at the regional scale. The SMCE procedure follows an integrated approach that can be potentially adapted and applied to any coastal system. The site selection is based on the definition of criteria that assess their suitability and on conditions related to the entire study area. Suitability values are ranked on a scale from 1 (suitable) to 10 (optimal). More than 9000ha were identified and almost 40% of this area gets high suitability values, from 7 to 9, pointing out the untapped potential for Ligurian marine coastal zone. Results demonstrate that our SMCE, and in particular its procedure, allows identifying the most suitable areas in an easy and quick way and solving effectively the complex spatial problem of suitable site selection for fish farming. © 2015 Elsevier Ltd.",allocated zone for aquaculture; fish farming; gis; marine spatial planning; spatial multi-criteria evaluation; suitable site selection,Ligurian Sea; Mediterranean Sea; Aquaculture; Decision making; Fish; Geographic information systems; Marine biology; Decision making process; Environmental characteristic; Fish farming; Integrated approach; Marine fish farms; Marine Spatial Planning; Multi-criteria evaluation; Spatial problems; aquaculture; coastal zone; decision making; economic analysis; fish culture; fishery management; GIS; site selection; spatial planning; stakeholder; Site selection,,,Elsevier Ltd,,,,,,09645691,,OCMAE,,English,Ocean Coast. Manage.,Article,Final,All Open Access; Green Open Access,Scopus,2-s2.0-84937060525 Jennings S.; Stentiford G.D.; Leocadio A.M.; Jeffery K.R.; Metcalfe J.D.; Katsiadaki I.; Auchterlonie N.A.; Mangi S.C.; Pinnegar J.K.; Ellis T.; Peeler E.J.; Luisetti T.; Baker-Austin C.; Brown M.; Catchpole T.L.; Clyne F.J.; Dye S.R.; Edmonds N.J.; Hyder K.; Lee J.; Lees D.N.; Morgan O.C.; O'Brien C.M.; Oidtmann B.; Posen P.E.; Santos A.R.; Taylor N.G.H.; Turner A.D.; Townhill B.L.; Verner-Jeffreys D.W.,"Jennings, Simon (15845637700); Stentiford, Grant D (6603933684); Leocadio, Ana M (55322337700); Jeffery, Keith R (22937829400); Metcalfe, Julian D (57203231404); Katsiadaki, Ioanna (6603324300); Auchterlonie, Neil A (56584465200); Mangi, Stephen C (16310212400); Pinnegar, John K (6603881869); Ellis, Tim (26535822600); Peeler, Edmund J (55880403600); Luisetti, Tiziana (26026032800); Baker-Austin, Craig (15761707700); Brown, Mary (57085557200); Catchpole, Thomas L (8259721300); Clyne, Fiona J (54892064300); Dye, Stephen R (16479784100); Edmonds, Nathan J (48461289600); Hyder, Kieran (14627633000); Lee, Janette (35750029500); Lees, David N (55621847400); Morgan, Owen C (7006504910); O'Brien, Carl M (7402420090); Oidtmann, Birgit (55952586300); Posen, Paulette E (8747242200); Santos, Ana Ribeiro (55625359500); Taylor, Nick G H (13003256000); Turner, Andrew D (24535975900); Townhill, Bryony L (56429654600); Verner-Jeffreys, David W (6506105557)",15845637700; 6603933684; 55322337700; 22937829400; 57203231404; 6603324300; 56584465200; 16310212400; 6603881869; 26535822600; 55880403600; 26026032800; 15761707700; 57085557200; 8259721300; 54892064300; 16479784100; 48461289600; 14627633000; 35750029500; 55621847400; 7006504910; 7402420090; 55952586300; 8747242200; 55625359500; 13003256000; 24535975900; 56429654600; 6506105557,"Aquatic food security: insights into challenges and solutions from an analysis of interactions between fisheries, aquaculture, food safety, human health, fish and human welfare, economy and environment",2016,Fish and Fisheries,17,4,,893,938,45,269,10.1111/faf.12152,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84958787009&doi=10.1111%2ffaf.12152&partnerID=40&md5=0f10e8f10f1c6dd21d4db26f08e8edea,"Lowestoft Laboratory, Centre for Environment, Fisheries and Aquaculture Science, Lowestoft, NR33 0HT, United Kingdom; School of Environmental Sciences, University of East Anglia, Norwich, NR4 7TJ, United Kingdom; Weymouth Laboratory, Centre for Environment, Fisheries and Aquaculture Science, Weymouth, DT4 8UB, United Kingdom; Centre for Environment, Fisheries and Aquaculture Science, 55 Briseham Road, Brixham, TQ5 9NX, United Kingdom; IFFO The Marine Ingredients Organisation, Unit C, Printworks, 22 Amelia Street, London, SE17 3BZ, United Kingdom","Jennings S., Lowestoft Laboratory, Centre for Environment, Fisheries and Aquaculture Science, Lowestoft, NR33 0HT, United Kingdom, School of Environmental Sciences, University of East Anglia, Norwich, NR4 7TJ, United Kingdom; Stentiford G.D., Weymouth Laboratory, Centre for Environment, Fisheries and Aquaculture Science, Weymouth, DT4 8UB, United Kingdom; Leocadio A.M., Lowestoft Laboratory, Centre for Environment, Fisheries and Aquaculture Science, Lowestoft, NR33 0HT, United Kingdom; Jeffery K.R., Weymouth Laboratory, Centre for Environment, Fisheries and Aquaculture Science, Weymouth, DT4 8UB, United Kingdom; Metcalfe J.D., Lowestoft Laboratory, Centre for Environment, Fisheries and Aquaculture Science, Lowestoft, NR33 0HT, United Kingdom; Katsiadaki I., Weymouth Laboratory, Centre for Environment, Fisheries and Aquaculture Science, Weymouth, DT4 8UB, United Kingdom; Auchterlonie N.A., Weymouth Laboratory, Centre for Environment, Fisheries and Aquaculture Science, Weymouth, DT4 8UB, United Kingdom, IFFO The Marine Ingredients Organisation, Unit C, Printworks, 22 Amelia Street, London, SE17 3BZ, United Kingdom; Mangi S.C., Centre for Environment, Fisheries and Aquaculture Science, 55 Briseham Road, Brixham, TQ5 9NX, United Kingdom; Pinnegar J.K., Lowestoft Laboratory, Centre for Environment, Fisheries and Aquaculture Science, Lowestoft, NR33 0HT, United Kingdom; Ellis T., Weymouth Laboratory, Centre for Environment, Fisheries and Aquaculture Science, Weymouth, DT4 8UB, United Kingdom; Peeler E.J., Weymouth Laboratory, Centre for Environment, Fisheries and Aquaculture Science, Weymouth, DT4 8UB, United Kingdom; Luisetti T., Lowestoft Laboratory, Centre for Environment, Fisheries and Aquaculture Science, Lowestoft, NR33 0HT, United Kingdom, School of Environmental Sciences, University of East Anglia, Norwich, NR4 7TJ, United Kingdom; Baker-Austin C., Weymouth Laboratory, Centre for Environment, Fisheries and Aquaculture Science, Weymouth, DT4 8UB, United Kingdom; Brown M., Lowestoft Laboratory, Centre for Environment, Fisheries and Aquaculture Science, Lowestoft, NR33 0HT, United Kingdom; Catchpole T.L., Lowestoft Laboratory, Centre for Environment, Fisheries and Aquaculture Science, Lowestoft, NR33 0HT, United Kingdom; Clyne F.J., Lowestoft Laboratory, Centre for Environment, Fisheries and Aquaculture Science, Lowestoft, NR33 0HT, United Kingdom; Dye S.R., Lowestoft Laboratory, Centre for Environment, Fisheries and Aquaculture Science, Lowestoft, NR33 0HT, United Kingdom; Edmonds N.J., Lowestoft Laboratory, Centre for Environment, Fisheries and Aquaculture Science, Lowestoft, NR33 0HT, United Kingdom; Hyder K., Lowestoft Laboratory, Centre for Environment, Fisheries and Aquaculture Science, Lowestoft, NR33 0HT, United Kingdom; Lee J., Lowestoft Laboratory, Centre for Environment, Fisheries and Aquaculture Science, Lowestoft, NR33 0HT, United Kingdom; Lees D.N., Weymouth Laboratory, Centre for Environment, Fisheries and Aquaculture Science, Weymouth, DT4 8UB, United Kingdom; Morgan O.C., Weymouth Laboratory, Centre for Environment, Fisheries and Aquaculture Science, Weymouth, DT4 8UB, United Kingdom; O'Brien C.M., Lowestoft Laboratory, Centre for Environment, Fisheries and Aquaculture Science, Lowestoft, NR33 0HT, United Kingdom; Oidtmann B., Weymouth Laboratory, Centre for Environment, Fisheries and Aquaculture Science, Weymouth, DT4 8UB, United Kingdom; Posen P.E., Lowestoft Laboratory, Centre for Environment, Fisheries and Aquaculture Science, Lowestoft, NR33 0HT, United Kingdom; Santos A.R., Lowestoft Laboratory, Centre for Environment, Fisheries and Aquaculture Science, Lowestoft, NR33 0HT, United Kingdom; Taylor N.G.H., Weymouth Laboratory, Centre for Environment, Fisheries and Aquaculture Science, Weymouth, DT4 8UB, United Kingdom; Turner A.D., Weymouth Laboratory, Centre for Environment, Fisheries and Aquaculture Science, Weymouth, DT4 8UB, United Kingdom; Townhill B.L., Lowestoft Laboratory, Centre for Environment, Fisheries and Aquaculture Science, Lowestoft, NR33 0HT, United Kingdom; Verner-Jeffreys D.W., Weymouth Laboratory, Centre for Environment, Fisheries and Aquaculture Science, Weymouth, DT4 8UB, United Kingdom","Fisheries and aquaculture production, imports, exports and equitability of distribution determine the supply of aquatic food to people. Aquatic food security is achieved when a food supply is sufficient, safe, sustainable, shockproof and sound: sufficient, to meet needs and preferences of people; safe, to provide nutritional benefit while posing minimal health risks; sustainable, to provide food now and for future generations; shock-proof, to provide resilience to shocks in production systems and supply chains; and sound, to meet legal and ethical standards for welfare of animals, people and environment. Here, we present an integrated assessment of these elements of the aquatic food system in the United Kingdom, a system linked to dynamic global networks of producers, processors and markets. Our assessment addresses sufficiency of supply from aquaculture, fisheries and trade; safety of supply given biological, chemical and radiation hazards; social, economic and environmental sustainability of production systems and supply chains; system resilience to social, economic and environmental shocks; welfare of fish, people and environment; and the authenticity of food. Conventionally, these aspects of the food system are not assessed collectively, so information supporting our assessment is widely dispersed. Our assessment reveals trade-offs and challenges in the food system that are easily overlooked in sectoral analyses of fisheries, aquaculture, health, medicine, human and fish welfare, safety and environment. We highlight potential benefits of an integrated, systematic and ongoing process to assess security of the aquatic food system and to predict impacts of social, economic and environmental change on food supply and demand. © 2016 Crown copyright. Fish and fisheries published by John Wiley & Sons Ltd.",ethics; food safety; food security; food system; health; sustainability,United Kingdom; Animalia; analytical framework; animal welfare; environmental change; ethics; fishery economics; fishery management; fishery production; food product; food safety; food security; food supply; public health; supply chain management; sustainability; trade-off; welfare reform,"S. Jennings; Lowestoft Laboratory, Centre for Environment, Fisheries and Aquaculture Science, Lowestoft, NR33 0HT, United Kingdom; email: simon.jennings@cefas.co.uk",,Blackwell Publishing Ltd,,,,,,14672960,,FFIIA,,English,Fish Fish.,Article,Final,All Open Access; Green Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-84958787009 Weatherdon L.V.; Magnan A.K.; Rogers A.D.; Sumaila U.R.; Cheung W.W.L.,"Weatherdon, Lauren V. (57074132500); Magnan, Alexandre K. (57203056178); Rogers, Alex D. (7402815969); Sumaila, U. Rashid (6701840163); Cheung, William W.L. (57201781940)",57074132500; 57203056178; 7402815969; 6701840163; 57201781940,"Observed and projected impacts of climate change on marine fisheries, aquaculture, coastal tourism, and human health: An update",2016,Frontiers in Marine Science,3,APR,48,,,,165,10.3389/fmars.2016.00048,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85008686805&doi=10.3389%2ffmars.2016.00048&partnerID=40&md5=0731171aae277c7df9513659221f71d7,"Changing Ocean Research Unit, Global Fisheries Cluster, Institute for the Oceans and Fisheries, The University of British Columbia, Vancouver, BC, Canada; UNEP World Conservation Monitoring Centre, Cambridge, United Kingdom; Institute for Sustainable Development and International Relations, Paris, France; Department of Zoology, University of Oxford, Oxford, United Kingdom; Fisheries Economics Research Unit, Global Fisheries Cluster, Institute for the Oceans and Fisheries, The University of British Columbia, Vancouver, BC, Canada; Nippon Foundation - University of British Columbia Nereus Program, Institute for the Oceans and Fisheries, The University of British Columbia, Vancouver, BC, Canada","Weatherdon L.V., Changing Ocean Research Unit, Global Fisheries Cluster, Institute for the Oceans and Fisheries, The University of British Columbia, Vancouver, BC, Canada, UNEP World Conservation Monitoring Centre, Cambridge, United Kingdom; Magnan A.K., Institute for Sustainable Development and International Relations, Paris, France; Rogers A.D., Department of Zoology, University of Oxford, Oxford, United Kingdom; Sumaila U.R., Fisheries Economics Research Unit, Global Fisheries Cluster, Institute for the Oceans and Fisheries, The University of British Columbia, Vancouver, BC, Canada; Cheung W.W.L., Changing Ocean Research Unit, Global Fisheries Cluster, Institute for the Oceans and Fisheries, The University of British Columbia, Vancouver, BC, Canada, Nippon Foundation - University of British Columbia Nereus Program, Institute for the Oceans and Fisheries, The University of British Columbia, Vancouver, BC, Canada","The Intergovernmental Panel on Climate Change (IPCC) Fifth Assessment Report (AR5) states that climate change and ocean acidification are altering the oceans at a rate that is unprecedented compared with the recent past, leading to multifaceted impacts on marine ecosystems, associated goods and services, and human societies. AR5 underlined key uncertainties that remain regarding how synergistic changes in the ocean are likely to affect human systems, and how humans are likely to respond to these events. As climate change research has accelerated rapidly following AR5, an updated synthesis of available knowledge is necessary to identify emerging evidence, and to thereby better inform policy discussions. This paper reviews the literature to capture corroborating, conflicting, and novel findings published following the cut-off date for contribution to AR5. Specifically, we highlight key scientific developments on the impacts of climate-induced changes in the ocean on key socioeconomic sectors, including fisheries, aquaculture, and tourism. New evidence continues to support a climate-induced redistribution of benefits and losses at multiple scales and across coastal and marine socio-ecological systems, partly resulting from species and ecosystem range shifts and changes in primary productivity. New efforts have been made to characterize and value ecosystem services in the context of climate change, with specific relevance to ecosystem-based adaptation. Recent studies have also explored synergistic interactions between climatic drivers, and have found strong variability between impacts on species at different life stages. Although climate change may improve conditions for some types of freshwater aquaculture, potentially providing alternative opportunities to adapt to impacts on wild capture fisheries, ocean acidification poses a risk to shellfish fisheries and aquaculture. The risk of increased prevalence of disease under warmer temperatures is uncertain, and may detrimentally affect human health. Climate change may also induce changes in tourism flows, leading to substantial geospatial shifts in economic costs and benefits associated with tourism revenue and coastal infrastructure protection and repairs. While promising, ecosystem-based coastal adaptation approaches are still emerging, and require an improved understanding of key ecosystem services, and values for coastal communities in order to assess risk, aid coastal development planning, and build decision support systems. © 2016 Weatherdon, Magnan, Rogers, Sumaila and Cheung.",aquaculture; climate change; coastal tourism; ecosystem services; fisheries; food security; human health; ocean impacts,,"L.V. Weatherdon; Changing Ocean Research Unit, Global Fisheries Cluster, Institute for the Oceans and Fisheries, The University of British Columbia, Vancouver, Canada; email: lauren.weatherdon@unep-wcmc.org",,Frontiers Media S. A,,,,,,22967745,,,,English,Front. Mar. Sci.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-85008686805 Verbyla M.E.; Cairns M.R.; Gonzalez P.A.; Whiteford L.M.; Mihelcic J.R.,"Verbyla, Matthew E. (55943898000); Cairns, Maryann R. (57002773400); Gonzalez, Paola A. (58436387200); Whiteford, Linda M. (6603073720); Mihelcic, James R. (7004170368)",55943898000; 57002773400; 58436387200; 6603073720; 7004170368,Emerging challenges for pathogen control and resource recovery in natural wastewater treatment systems,2015,Wiley Interdisciplinary Reviews: Water,2,6,,701,714,13,15,10.1002/WAT2.1101,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85059233483&doi=10.1002%2fWAT2.1101&partnerID=40&md5=d5d4fa8aad85b66cea24df5c3a0d0595,"Department of Civil and Environmental Engineering, University of South Florida, Tampa, FL, United States; Social Science Environmental Health Research Institute (SSEHRI), Department of Sociology and Anthropology, Northeastern University, Boston, MA, United States; Department of Anthropology, University of South Florida, Tampa, FL, United States","Verbyla M.E., Department of Civil and Environmental Engineering, University of South Florida, Tampa, FL, United States; Cairns M.R., Social Science Environmental Health Research Institute (SSEHRI), Department of Sociology and Anthropology, Northeastern University, Boston, MA, United States; Gonzalez P.A., Department of Anthropology, University of South Florida, Tampa, FL, United States; Whiteford L.M., Department of Anthropology, University of South Florida, Tampa, FL, United States; Mihelcic J.R., Department of Civil and Environmental Engineering, University of South Florida, Tampa, FL, United States","Natural wastewater treatment systems have been used for centuries to recover resources through agriculture and aquaculture water reuse. Because the management of wastewater using natural methods relies on the integration of environmental, engineered, economic, and social systems, pathogens cannot be effectively monitored and controlled in these systems using a single approach or a single indicator organism (e.g., monitoring for coliform indicator bacteria). Different types of pathogens are removed at different rates in natural wastewa-ter treatment systems and certain diseases are more important in some regions than they are in others. For natural systems in tropical regions that incorpo-rate water reuse for agriculture or aquaculture, parasites such as soil-transmitted helminths, Schistosoma, Taenia, or food-transmitted trematodes may be of greater public health concern than some bacterial pathogens. Professionals and practitioners must consider how social and environmental systems might be shaped by the use of natural wastewater management systems, and how, in turn, natural wastew-ater management may impact existing socio-environmental relationships. Because of this, effective pathogen monitoring and control in natural wastewater treatment systems requires coordinated participation from stakeholders in multiple sectors. © 2015 Wiley Periodicals, Inc. © 2015 Wi l ey Per i odi c al s, I nc.",,,"M.E. Verbyla; Department of Civil and Environmental Engineering, University of South Florida, Tampa, United States; email: verbylam@mail.usf.edu",,John Wiley and Sons Inc,,,,,,20491948,,,,English,Wiley Interdiscip. Rev.: Water,Article,Final,,Scopus,2-s2.0-85059233483 Foley P.; Havice E.,"Foley, Paul (55070550600); Havice, Elizabeth (35558599100)",55070550600; 35558599100,The rise of territorial eco-certifications: New politics of transnational sustainability governance in the fishery sector,2016,Geoforum,69,,,24,33,9,66,10.1016/j.geoforum.2015.11.015,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84955253160&doi=10.1016%2fj.geoforum.2015.11.015&partnerID=40&md5=21e1e223e625a738f9cc14a04594d639,"Environmental Policy Institute, Memorial University of Newfoundland, Grenfell Campus, 20 University Drive, Corner Brook, A2H7M9, NL, Canada; Geography Department, University of North Carolina-Chapel Hill, Carolina Hall, CB#3229, Chapel Hill, 27599-3220, NC, United States","Foley P., Environmental Policy Institute, Memorial University of Newfoundland, Grenfell Campus, 20 University Drive, Corner Brook, A2H7M9, NL, Canada; Havice E., Geography Department, University of North Carolina-Chapel Hill, Carolina Hall, CB#3229, Chapel Hill, 27599-3220, NC, United States","Eco-certifications have become an important site of power struggles in commodity sectors such as forestry, fisheries, aquaculture, palm oil, and soy. In each, multiple eco-certification initiatives have been developed and resisted through interactions among non-governmental organizations, governments, and commercial actors. This paper contributes to understanding how power is embodied in certifications by exploring how territoriality manifests in the international struggle over defining what products are 'sustainable' and which producers will have access to markets that require 'sustainable' products. Focusing on the wild capture fisheries sector in which the non-governmental Marine Stewardship Council (MSC) administers the preeminent eco-certification initiative, we explore the emergence of new fisheries eco-certification initiatives in Japan, Iceland, Alaska, Canada, and the US that insist there is no transnational monopoly on judgments over fisheries sustainability. We argue that these new eco-certifications attempt to defend and embed territorial social and regulatory relations of production within the contested domain of transnational sustainability governance. The initiatives accommodate both the territorially embedded material interests, institutions, and discursive strategies of producers (and their state supporting agencies) and transnationally embedded governance norms for assessing and communicating sustainability. They also counter the globally applicable institutions of the MSC in favor of making space for state and non-state actors to contend with demands for sustainability in the global seafood market by combining place-specific attributes with transnational governance norms. © 2015 Published by Elsevier Ltd.",eco-certification; fisheries; governance; political economy; territoriality; transnational,,"E. Havice; Geography Department, University of North Carolina-Chapel Hill, Carolina Hall, Chapel Hill, CB#3229, 27599-3220, United States; email: havice@email.unc.edu",,Elsevier Ltd,,,,,,00167185,,,,English,Geoforum,Article,Final,All Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-84955253160 Stuiver M.; Soma K.; Koundouri P.; van den Burg S.; Gerritsen A.; Harkamp T.; Dalsgaard N.; Zagonari F.; Guanche R.; Schouten J.-J.; Hommes S.; Giannouli A.; Söderqvist T.; Rosen L.; Garção R.; Norrman J.; Röckmann C.; de Bel M.; Zanuttigh B.; Petersen O.; Møhlenberg F.,"Stuiver, Marian (8593089200); Soma, Katrine (12753685600); Koundouri, Phoebe (14060612200); van den Burg, Sander (6505922945); Gerritsen, Alwin (55588520000); Harkamp, Thorbjørn (57189097227); Dalsgaard, Niels (57189093990); Zagonari, Fabio (6506060546); Guanche, Raul (22937826600); Schouten, Jan-Joost (56902253300); Hommes, Saskia (23466842200); Giannouli, Amerissa (57163500800); Söderqvist, Tore (7004680504); Rosen, Lars (57240087200); Garção, Rita (57163833600); Norrman, Jenny (8874824400); Röckmann, Christine (16205357400); de Bel, Mark (57113561600); Zanuttigh, Barbara (6603452469); Petersen, Ole (7203034541); Møhlenberg, Flemming (6603450536)",8593089200; 12753685600; 14060612200; 6505922945; 55588520000; 57189097227; 57189093990; 6506060546; 22937826600; 56902253300; 23466842200; 57163500800; 7004680504; 57240087200; 57163833600; 8874824400; 16205357400; 57113561600; 6603452469; 7203034541; 6603450536,The governance of multi-use platforms at sea for energy production and aquaculture: Challenges for policy makers in European Seas,2016,Sustainability (Switzerland),8,4,333,,,,80,10.3390/su8040333,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84965157735&doi=10.3390%2fsu8040333&partnerID=40&md5=c03fd9d7ea9223360042a02b1533b05e,"Alterra Wageningen UR, P.O. Box 47, Wageningen, 6700 AA, Netherlands; LEIWageningen UR, P.O. Box 29703, The Hague, 2502 LS, Netherlands; School of Economics, Athens University of Economics and Business, 28is Oktovriou 76, Athens, 10434, Greece; Grantham Research Institute on Climate Change and the Environment, London School of Economics, Houghton Street, London, WC2A 2AE, United Kingdom; ICRE8: International ICRE8, Center for Research on the Environment and the Economy Athens, 48 Aigialias and Epidavrou, str., Maroussi, Athens, 15125, Greece; Musholm A/S ReersøHavn, Strandvejen 101, Gørlev, DK 4281, Denmark; Department of Economics, University of Bologna, via Angherà 22, Rimini, 47921, Italy; Environmental Hydraulics Institute, IH Cantabria, University of Cantabria, C/Isabel Torres no 15, Santander, 39011, Spain; Deltares, P.O. Box 177, Delft, 2600 MH, Netherlands; Enveco Environmental Economics Consultancy, Måsholmsgränd 3, Skärholmen, SE-127 48, Sweden; Chalmers University of Technology, Department of Civil and Environmental Engineering, Göteborg, SE-412 96, Sweden; Institute for Marine Resources and Ecosystem Studies (IMARES)Wageningen UR, P.O. Box 57, Den Helder, 1780 AB, Netherlands; Department of Civil, Chemicals, Environmental and Materials Engineering, University of Bologna-Viale, Viale Risorgimento 2, Bologna, 40136, Italy; DHI, Agernalle 5, Horsholm, 2970, Denmark","Stuiver M., Alterra Wageningen UR, P.O. Box 47, Wageningen, 6700 AA, Netherlands; Soma K., LEIWageningen UR, P.O. Box 29703, The Hague, 2502 LS, Netherlands; Koundouri P., School of Economics, Athens University of Economics and Business, 28is Oktovriou 76, Athens, 10434, Greece, Grantham Research Institute on Climate Change and the Environment, London School of Economics, Houghton Street, London, WC2A 2AE, United Kingdom, ICRE8: International ICRE8, Center for Research on the Environment and the Economy Athens, 48 Aigialias and Epidavrou, str., Maroussi, Athens, 15125, Greece; van den Burg S., LEIWageningen UR, P.O. Box 29703, The Hague, 2502 LS, Netherlands; Gerritsen A., Alterra Wageningen UR, P.O. Box 47, Wageningen, 6700 AA, Netherlands; Harkamp T., Musholm A/S ReersøHavn, Strandvejen 101, Gørlev, DK 4281, Denmark; Dalsgaard N., Musholm A/S ReersøHavn, Strandvejen 101, Gørlev, DK 4281, Denmark; Zagonari F., Department of Economics, University of Bologna, via Angherà 22, Rimini, 47921, Italy; Guanche R., Environmental Hydraulics Institute, IH Cantabria, University of Cantabria, C/Isabel Torres no 15, Santander, 39011, Spain; Schouten J.-J., Deltares, P.O. Box 177, Delft, 2600 MH, Netherlands; Hommes S., Deltares, P.O. Box 177, Delft, 2600 MH, Netherlands; Giannouli A., School of Economics, Athens University of Economics and Business, 28is Oktovriou 76, Athens, 10434, Greece, ICRE8: International ICRE8, Center for Research on the Environment and the Economy Athens, 48 Aigialias and Epidavrou, str., Maroussi, Athens, 15125, Greece; Söderqvist T., Enveco Environmental Economics Consultancy, Måsholmsgränd 3, Skärholmen, SE-127 48, Sweden; Rosen L., Chalmers University of Technology, Department of Civil and Environmental Engineering, Göteborg, SE-412 96, Sweden; Garção R., Chalmers University of Technology, Department of Civil and Environmental Engineering, Göteborg, SE-412 96, Sweden; Norrman J., Chalmers University of Technology, Department of Civil and Environmental Engineering, Göteborg, SE-412 96, Sweden; Röckmann C., Institute for Marine Resources and Ecosystem Studies (IMARES)Wageningen UR, P.O. Box 57, Den Helder, 1780 AB, Netherlands; de Bel M., Deltares, P.O. Box 177, Delft, 2600 MH, Netherlands; Zanuttigh B., Department of Civil, Chemicals, Environmental and Materials Engineering, University of Bologna-Viale, Viale Risorgimento 2, Bologna, 40136, Italy; Petersen O., DHI, Agernalle 5, Horsholm, 2970, Denmark; Møhlenberg F., DHI, Agernalle 5, Horsholm, 2970, Denmark","European seas are encountering an upsurge in competing marine activities and infrastructures. Traditional exploitation such as fisheries, tourism, transportation, and oil production are accompanied by new sustainable economic activities such as offshore windfarms, aquaculture, and tidal and wave energy. One proposed solution to overcome possible competing claims at sea lies in combining these economic activities as part of Multi-Use Platforms at Sea (MUPS). MUPS can be understood as areas at sea, designated for a combination of activities, either completely integrated in a platform or in shared marine space. MUPS can potentially benefit from each other in terms of infrastructure, maintenance, etc. Developing MUPS in the marine environment demands adequate governance. In this article, we investigate four European sites to find out how governance arrangements may facilitate or complicate MUPs. In particular, we apply a framework specifying policy, economic, social, technical, environmental, and legal (PESTEL) factors to explore governance arrangements in four case study sites in different sea basins around Europe (the Mediterranean Sea, the Atlantic Ocean, the North Sea, and the Baltic Sea). The article concludes with policy recommendations on a governance regime for facilitating the development of MUPS in the future. © 2016 by the authors.",aquaculture; energy production; governance; multi-use platforms; offshore; pestel,Atlantic Ocean; Baltic Sea; Europe; Mediterranean Sea; North Sea; aquaculture; economic analysis; governance approach; infrastructural development; maintenance; marine environment; offshore structure; oil production; policy making; wave energy; wind farm,"M. Stuiver; Alterra Wageningen UR, Wageningen, P.O. Box 47, 6700 AA, Netherlands; email: marian.stuiver@wur.nl",,MDPI,,,,,,20711050,,,,English,Sustainability,Article,Final,All Open Access; Gold Open Access; Green Open Access,Scopus,2-s2.0-84965157735 Lacoue-Labarthe T.; Nunes P.A.L.D.; Ziveri P.; Cinar M.; Gazeau F.; Hall-Spencer J.M.; Hilmi N.; Moschella P.; Safa A.; Sauzade D.; Turley C.,"Lacoue-Labarthe, Thomas (56429420100); Nunes, Paulo A.L.D. (7006823069); Ziveri, Patrizia (6701388855); Cinar, Mine (55818831000); Gazeau, Frédéric (6603760784); Hall-Spencer, Jason M. (6603382752); Hilmi, Nathalie (55337686800); Moschella, Paula (9740482200); Safa, Alain (55337256200); Sauzade, Didier (23484019200); Turley, Carol (24282211700)",56429420100; 7006823069; 6701388855; 55818831000; 6603760784; 6603382752; 55337686800; 9740482200; 55337256200; 23484019200; 24282211700,Impacts of ocean acidification in a warming Mediterranean Sea: An overview,2016,Regional Studies in Marine Science,5,,,1,11,10,77,10.1016/j.rsma.2015.12.005,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84954167556&doi=10.1016%2fj.rsma.2015.12.005&partnerID=40&md5=5635ea7eec1193ae8b849f8d4eac6c31,"International Atomic Energy Agency - Environment Laboratories, 4 Quai Antoine Ier, Monaco; Littoral Environnement et Sociétés (LIENSs), UMR 7266 CNRS, Université de la Rochelle, Institut du Littoral et Environnement, 2 rue Olympe de Gouges, La Rochelle, 17000, France; Ecosystem Services Economic Unit, Division of Environmental Policy Implementation, United Nations Environment Programme (UNEP), Nairobi, Kenya; Institut de Ciències Del Mar, CSIC, Psg. Marítim de la Barceloneta 37-49, Barcelona, Spain; Institute of Environmental Science and Technology, Universitat Autonomòma de Barcelona (UAB), S/N Edifici Z Campus de la UAB, Carretera de les Columnes, Barcelona, 08193, Bellaterra, Spain; Catalan Institution for Research and Advanced Studies (ICREA), Barcelona, 08010, Spain; Quinlan School of Business, Loyola University Chicago, Chicago, IL 60611, United States; Laboratoire d'Océanographie de Villefranche, CNRS-INSU, BP 28, Villefranche-sur-Mer Cedex, 06234, France; Sorbonne Universités, UPMC Univ Paris 06, Observatoire Océanologique de Villefranche, Villefranche-sur-Mer Cedex, 06230, France; Marine Institute, Plymouth University, Plymouth, PL4 8AA, United Kingdom; Centre Scientifique de Monaco, Avenue Saint-Martin, Monaco, 98000, Monaco; The Mediterranean Science Commission, CIESM, Monaco; Skill Partners, Nice, France; Plan Bleu, Villa Valmer, 271 Corniche Kennedy, Marseille, 13007, France; Plymouth Marine Laboratory, Prospect Place, Hoe, Plymouth, PL1 3DH, United Kingdom","Lacoue-Labarthe T., International Atomic Energy Agency - Environment Laboratories, 4 Quai Antoine Ier, Monaco, Littoral Environnement et Sociétés (LIENSs), UMR 7266 CNRS, Université de la Rochelle, Institut du Littoral et Environnement, 2 rue Olympe de Gouges, La Rochelle, 17000, France; Nunes P.A.L.D., Ecosystem Services Economic Unit, Division of Environmental Policy Implementation, United Nations Environment Programme (UNEP), Nairobi, Kenya, Institut de Ciències Del Mar, CSIC, Psg. Marítim de la Barceloneta 37-49, Barcelona, Spain; Ziveri P., Institute of Environmental Science and Technology, Universitat Autonomòma de Barcelona (UAB), S/N Edifici Z Campus de la UAB, Carretera de les Columnes, Barcelona, 08193, Bellaterra, Spain, Catalan Institution for Research and Advanced Studies (ICREA), Barcelona, 08010, Spain; Cinar M., Quinlan School of Business, Loyola University Chicago, Chicago, IL 60611, United States; Gazeau F., Laboratoire d'Océanographie de Villefranche, CNRS-INSU, BP 28, Villefranche-sur-Mer Cedex, 06234, France, Sorbonne Universités, UPMC Univ Paris 06, Observatoire Océanologique de Villefranche, Villefranche-sur-Mer Cedex, 06230, France; Hall-Spencer J.M., Marine Institute, Plymouth University, Plymouth, PL4 8AA, United Kingdom; Hilmi N., International Atomic Energy Agency - Environment Laboratories, 4 Quai Antoine Ier, Monaco, Centre Scientifique de Monaco, Avenue Saint-Martin, Monaco, 98000, Monaco; Moschella P., The Mediterranean Science Commission, CIESM, Monaco; Safa A., Skill Partners, Nice, France; Sauzade D., Plan Bleu, Villa Valmer, 271 Corniche Kennedy, Marseille, 13007, France; Turley C., Plymouth Marine Laboratory, Prospect Place, Hoe, Plymouth, PL1 3DH, United Kingdom","Mediterranean Sea fisheries supply significant local and international markets, based largely on small pelagic fish, artisanal fisheries and aquaculture of finfish (mainly seabass and seabream) and shellfish (mussels and oysters). Fisheries and aquaculture contribute to the economy of countries bordering this sea and provide food and employment to coastal communities employing ca 600,000 people. Increasing temperatures and heat wave frequency are causing stress and mortality in marine organisms and ocean acidification is expected to worsen these effects, especially for bivalves and coralligenous systems. Recruitment and seed production present possible bottlenecks for shellfish aquaculture in the future since early life stages are vulnerable to acidification and warming. Although adult finfish seem able to withstand the projected increases in seawater CO2, degradation of seabed habitats and increases in harmful blooms of algae and jellyfish might adversely affect fish stocks. Ocean acidification should therefore be factored into fisheries and aquaculture management plans. Rising CO2 levels are expected to reduce coastal biodiversity, altering ecosystem functioning and possibly impacting tourism being the Mediterranean the world's most visited region. We recommend that ocean acidification is monitored in key areas of the Mediterranean Sea, with regular assessments of the likely socio-economic impacts to build adaptive strategies for the Mediterranean countries concerned. © 2015 Elsevier B.V. All rights reserved.",acidification; climate change; ecosystem services; ecosystem services; fisheries; habitat loss; mediterranean; warming,,"T. Lacoue-Labarthe; Littoral Environnement et Sociétés (LIENSs), UMR 7266 CNRS, Université de la Rochelle, Institut du Littoral et Environnement, La Rochelle, 2 rue Olympe de Gouges, 17000, France; email: tlacouel@univ-lr.fr",,Elsevier B.V.,,,,,,23524855,,,,English,Reg. Stud. Mar. Sci.,Article,Final,All Open Access; Green Open Access,Scopus,2-s2.0-84954167556 Galappaththi E.K.; Kodithuwakku S.S.; Galappaththi I.M.,"Galappaththi, Eranga K. (56554182300); Kodithuwakku, Sarath S. (6506055530); Galappaththi, Iroshani M. (57163904400)",56554182300; 6506055530; 57163904400,Can environment management integrate into supply chain management? Information sharing via shrimp aquaculture cooperatives in northwestern Sri Lanka,2016,Marine Policy,68,,,187,194,7,22,10.1016/j.marpol.2016.03.013,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84960446442&doi=10.1016%2fj.marpol.2016.03.013&partnerID=40&md5=753a724c05189e2bcb400b0d4b3d5019,"Department of Geography, McGill University, 805 Sherbrooke Street West, Montreal, H3A 0B9, QC, Canada; Sultan Qaboos University, PO Box 34, Al-Khod 123, Oman; Manitoba Health, 300 Carlton Street, Winnipeg, R3B 3M9, MB, Canada; Postgraduate Institute of Agriculture, University of Peradeniya, Old Galaha Road, Peradeniya, 20400, Sri Lanka; Natural Resources Institute, University of Manitoba, 70 Dysart Road, Winni-peg, R3T2N2, MB, Canada","Galappaththi E.K., Department of Geography, McGill University, 805 Sherbrooke Street West, Montreal, H3A 0B9, QC, Canada, Postgraduate Institute of Agriculture, University of Peradeniya, Old Galaha Road, Peradeniya, 20400, Sri Lanka, Natural Resources Institute, University of Manitoba, 70 Dysart Road, Winni-peg, R3T2N2, MB, Canada; Kodithuwakku S.S., Sultan Qaboos University, PO Box 34, Al-Khod 123, Oman, Postgraduate Institute of Agriculture, University of Peradeniya, Old Galaha Road, Peradeniya, 20400, Sri Lanka; Galappaththi I.M., Manitoba Health, 300 Carlton Street, Winnipeg, R3B 3M9, MB, Canada, Postgraduate Institute of Agriculture, University of Peradeniya, Old Galaha Road, Peradeniya, 20400, Sri Lanka","This paper examines the effects of information sharing via community cooperatives on supply chain management (SCM) in community-based shrimp aquaculture in northwestern Sri Lanka. Further, it identifies how environment management integrates into SCM. The paper examined shrimp aquaculture operations in northwestern Sri Lanka using the case study approach. Main actors of the shrimp aquaculture supply chain (SC) are: brood-stock suppliers; hatcheries; farmers; collectors; and processing companies. Information shared is: post-larvae prices; feed brands; harvest prices; production quotas; disease spread; farming techniques; and management practices. This paper explores the existing information sharing network. Its findings reveal that community cooperatives play crucial roles within this network while functioning under a mixed governance regime (private; communal; government). Membership gives farmers a mechanism for networking and accessing information. This article discusses how such information can act as commons. An efficient network of information sharing is vital for the community's socio-economic wellbeing, as well as social-ecological sustainability. Sri Lankan shrimp aquaculture exemplifies SCM that integrates environment and commons management. © 2016.",co-operatives; information; information; shrimp aquaculture; sri lanka; supply chain management,Sri Lanka; Decapoda (Crustacea); cooperative sector; environmental management; governance approach; shrimp culture; supply chain management,"E.K. Galappaththi; Department of Geography, McGill University, Montreal, 805 Sherbrooke Street West, H3A 0B9, Canada; email: erangakokila@yahoo.com",,Elsevier Ltd,,,,,,0308597X,,,,English,Mar. Policy,Article,Final,,Scopus,2-s2.0-84960446442 Zhang Y.; Bleeker A.; Liu J.,"Zhang, Ying (56522883900); Bleeker, Albert (6701374507); Liu, Junguo (57200122300)",56522883900; 6701374507; 57200122300,Nutrient discharge from China's aquaculture industry and associated environmental impacts,2015,Environmental Research Letters,10,4,045002,,,,123,10.1088/1748-9326/10/4/045002,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84928719062&doi=10.1088%2f1748-9326%2f10%2f4%2f045002&partnerID=40&md5=05143314c1a3deaf5b6c27c319965727,"College of Nature Conservation, Beijing Forestry University, Beijing, 100083, China; Energy Research Centre of the Netherlands (ECN), Petten, 1755ZG, Netherlands","Zhang Y., College of Nature Conservation, Beijing Forestry University, Beijing, 100083, China; Bleeker A., Energy Research Centre of the Netherlands (ECN), Petten, 1755ZG, Netherlands; Liu J., College of Nature Conservation, Beijing Forestry University, Beijing, 100083, China","China's aquaculture industry accounts for the largest share of the world's fishery production, and provides a principal source of protein for the nation's booming population. However, the environmental effects of the nutrient loadings produced by this industry have not been systematically studied or reviewed. Few quantitative estimates exist for nutrient discharge from aquaculture and the resultant nutrient enrichment in waters and sediments. In this paper, we evaluate nutrient discharge from aquacultural systems into aquatic ecosystems and the resulting nutrient enrichment of water and sediments, based on data from 330 cases in 51 peer-reviewed publications. Nitrogen use efficiency ranged from 11.7% to 27.7%, whereas phosphorus use efficiency ranged from 8.7% to 21.2%. In 2010, aquacultural nutrient discharges into Chinese aquatic ecosystems included 1044 Gg total nitrogen (184 Gg N from mariculture; 860 Gg N freshwater culture) and 173 Gg total phosphorus (22 Gg P from mariculture; 151 Gg P from freshwater culture). Water bodies and sediments showed high levels of nutrient enrichment, especially in closed pond systems. However, this does not mean that open aquacultural systems have smaller nutrient losses. Improvement of feed efficiency in cage systems and retention of nutrients in closed systems will therefore be necessary. Strategies to increase nutrient recycling, such as integrated multi-trophic aquaculture, and social measures, such as subsidies, should be increased in the future. We recommend the recycling of nutrients in water and sediments by hybrid agricultural-aquacultural systems and the adoption of nutrient use efficiency as an indicator at farm or regional level for the sustainable development of aquaculture; such indicators; together with water quality indicators, can be used to guide evaluations of technological, policy, and economic approaches to improve the sustainability of Chinese aquaculture. © 2015 IOP Publishing Ltd.",aquaculture; china; environmental sustainability; nutrient discharges; nutrient use efficiency,China; Aquaculture; Aquatic ecosystems; Ecology; Ecosystems; Efficiency; Environmental impact; Forestry; Marine biology; Nitrogen; Phosphorus; Quality control; Recycling; Sediments; Sustainable development; Water; Water quality; Water recycling; China; Nitrogen-use efficiency; Nutrient discharges; Nutrient enrichments; Nutrient-use efficiencies; Phosphorus use efficiencies; Quantitative estimates; Water quality indicators; aquaculture; environmental impact; fishery production; nutrient dynamics; nutrient enrichment; nutrient use efficiency; pollution control; sustainable development; Nutrients,,,Institute of Physics Publishing,,,,,,17489318,,,,English,Environ.Res.Lett.,Article,Final,All Open Access; Gold Open Access,Scopus,2-s2.0-84928719062 Pitchon A.,"Pitchon, Ana (39762490100)",39762490100,"Large-Scale Aquaculture and Coastal Resource-Dependent Communities: Tradition in Transition on Chiloe Island, Chile",2015,Journal of Latin American and Caribbean Anthropology,20,2,,343,358,15,12,10.1111/jlca.12151,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84948156607&doi=10.1111%2fjlca.12151&partnerID=40&md5=3eabb17b62128835658a539dfc9a28ec,"California State University Dominguez Hills, United States","Pitchon A., California State University Dominguez Hills, United States","This article examines the sociocultural impact of commercial aquaculture on a coastal resource dependent community on the island of Chiloé, Chile. Many inhabitants of the island have been involved with the small-scale harvesting of near-shore and intertidal common pool resources for the commercial, recreational, and subsistence sectors for generations. The introduction of commercial aquaculture in the region is threatening access to these resources and in the process promoting social and economic change within a balanced and largely egalitarian way of life. The degree of both cultural and subsistence dependence on these resources should be acknowledged when aquaculture policy is developed in order to ensure social ecological sustainability. In this article, I examine a case where the emerging dominant economic industry of salmon aquaculture has supplanted small-scale resource use despite multiple levels of continuing dependency. © 2015 American Anthropological Association.",aquaculture; chiloé; coastal erosion,,,,Wiley-Blackwell,,,,,,19354932,,,,English,J. Lat. Am. Caribb. Antropol.,Article,Final,,Scopus,2-s2.0-84948156607 Rodríguez G.R.; Ramudo R.B.,"Rodríguez, Gonzalo Rodríguez (25626359700); Ramudo, Roberto Bande (24764485500)",25626359700; 24764485500,Market differences between wild and farmed major European Marine fish species. Evidence from the Spanish seafood market,2015,Turkish Journal of Fisheries and Aquatic Sciences,15,3,,713,725,12,6,10.4194/1303-2712-v15_3_15,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84956916286&doi=10.4194%2f1303-2712-v15_3_15&partnerID=40&md5=32afecce2f910c928ac5019b18c39622,"Department of Applied Economics, University of Santiago de Compostela, Av. Burgo das Nacións s/n, Santiago de Compostela, 15782, Spain; GAME-IDEGA and Department of Economics, University of Santiago de Compostela, Av. Burgo das Nacións s/n, Santiago de Compostela, 15782, Spain","Rodríguez G.R., Department of Applied Economics, University of Santiago de Compostela, Av. Burgo das Nacións s/n, Santiago de Compostela, 15782, Spain; Ramudo R.B., GAME-IDEGA and Department of Economics, University of Santiago de Compostela, Av. Burgo das Nacións s/n, Santiago de Compostela, 15782, Spain","It has long been generally accepted that substitution between wild and farmed fish exists when they are of the same species. While this is true for some species and markets, the relation does not hold for all of them. In fact, using cointegration methodology, this paper proves that farmed and wild gilthead sea bream, sea bass and turbot (with salmon, the major European marine aquaculture species) are not substitutes in the Spanish seafood market. These results have implications for policy makers, fishers and fish farmers, stemming from ecological, economical and social sustainability. © Published by Central Fisheries Research Institute (CFRI) Trabzon, Turkey.",,,"G.R. Rodríguez; Department of Applied Economics, University of Santiago de Compostela, Santiago de Compostela, Av. Burgo das Nacións s/n, 15782, Spain; email: gonzalo.rodriguez@usc.es",,Central Fisheries Research Inst,,,,,,13032712,,,,English,Turk. J. Fish. Aquat. Sci.,Article,Final,All Open Access; Bronze Open Access,Scopus,2-s2.0-84956916286 Kluger L.C.; Taylor M.H.; Mendo J.; Tam J.; Wolff M.,"Kluger, Lotta C. (56862169000); Taylor, Marc H. (55763725400); Mendo, Jaime (6508078300); Tam, Jorge (25631426500); Wolff, Matthias (7403304576)",56862169000; 55763725400; 6508078300; 25631426500; 7403304576,Carrying capacity simulations as a tool for ecosystem-based management of a scallop aquaculture system,2016,Ecological Modelling,331,,,44,55,11,73,10.1016/j.ecolmodel.2015.09.002,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84942066322&doi=10.1016%2fj.ecolmodel.2015.09.002&partnerID=40&md5=f1a66cc03cb834b4fa73ca50f074d8c7,"Leibniz Center for Tropical Marine Ecology (ZMT), Fahrenheitstr. 6, Bremen, 28359, Germany; Facultad de Pesquería, Universidad Nacional Agraria La Molina (UNALM), Lima, Peru; Instituto del Mar del Perú (IMARPE), Esq. Gamarra y Gral. Valle s/n, Callao, Lima, Peru","Kluger L.C., Leibniz Center for Tropical Marine Ecology (ZMT), Fahrenheitstr. 6, Bremen, 28359, Germany; Taylor M.H., Leibniz Center for Tropical Marine Ecology (ZMT), Fahrenheitstr. 6, Bremen, 28359, Germany; Mendo J., Facultad de Pesquería, Universidad Nacional Agraria La Molina (UNALM), Lima, Peru; Tam J., Instituto del Mar del Perú (IMARPE), Esq. Gamarra y Gral. Valle s/n, Callao, Lima, Peru; Wolff M., Leibniz Center for Tropical Marine Ecology (ZMT), Fahrenheitstr. 6, Bremen, 28359, Germany","Over the past decade, Sechura Bay has become an important center for mariculture in Peru, where the Peruvian bay scallop (Argopecten purpuratus) is grown in bottom cultures. Currently, the business involves 5000 artisanal fishermen and yields an export value of more than 158 million US$ per year. However, intensity and area extent of cultivation activities continue to increase. Overstocking of scallops combined with critical environmental changes may cause mass mortalities and severe consequences for the ecosystem. Accordingly, the ecosystem-based assessment of the current situation and the determination of long-term sustainable limits to scallop culture for the bay are crucial. Using a trophic food web model, the further expansion of culture activities is explored by forcing scallop biomass to increase to four different levels (458, 829, 1200, and 1572 t km-2) and the impact on other groups and the ecosystem are investigated. The ecological carrying capacity (ECC) is defined as the maximum amount of scallop biomass that would not yet cause any other group's biomass to fall below 10% of its original biomass. Results suggest that (a) the current magnitude of scallop bottom culture (147.4 t km-2) does not yet exceed ECC, (b) phytoplankton availability does not represent a critical factor for culture expansion, (c) a further increase in scallop biomass may cause scallop predator biomasses to increase, representing in turn a top-down control on other groups of the system, and (d) exceeding scallop biomass levels of 458 t km-2 may cause other functional groups biomasses to fall below the 10% threshold. The applicability and potential of the here presented ECC simulations as an ecosystem-based approach to sustainable bivalve culture are discussed. Results of this study are expected to guide both local fishers and managers in their challenging task of finding sustainable long-term levels for this important socio-economic activity in Sechura Bay. © 2015 Elsevier B.V.",bivalve bottom culture; ecological mangrove restoration; ecosystem services; trophic modeling,Peru; Piura [Peru]; Sechura Bay; Argopecten irradians; Argopecten purpuratus; Bivalvia; Pectinidae; Biomass; Ecology; Economics; Marine biology; Molluscs; Shellfish; Aquaculture systems; Capacity simulation; Current magnitudes; Current situation; Ecological carrying capacity; Ecosystem-based management; Environmental change; Trophic models; aquaculture industry; carrying capacity; cultivation; ecosystem management; fishing community; food web; functional group; mariculture; phytoplankton; scallop culture; shellfish culture; sustainability; trophic structure; Ecosystems,"L.C. Kluger; Leibniz Center for Tropical Marine Ecology (ZMT), Bremen, Fahrenheitstr. 6, 28359, Germany; email: lotta.kluger@zmt-bremen.de",,Elsevier B.V.,,,,,,03043800,,ECMOD,,English,Ecol. Model.,Article,Final,,Scopus,2-s2.0-84942066322 Hossain M.S.; Dearing J.A.; Rahman M.M.; Salehin M.,"Hossain, Md. Sarwar (57210742754); Dearing, John A. (7006518459); Rahman, M.M. (58266019900); Salehin, M. (7801555589)",57210742754; 7006518459; 58266019900; 7801555589,Recent changes in ecosystem services and human well-being in the Bangladesh coastal zone,2016,Regional Environmental Change,16,2,,429,443,14,148,10.1007/s10113-014-0748-z,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84956647016&doi=10.1007%2fs10113-014-0748-z&partnerID=40&md5=f782df3fe0ca2b42a88029f57c349322,"Palaeoecology Laboratory, Geography and Environment, University of Southampton, Southampton, SO17 1BJ, United Kingdom; Institute of Water and Flood Management (IWFM), Bangladesh University of Engineering and Technology (BUET), Dhaka, 1000, Bangladesh","Hossain M.S., Palaeoecology Laboratory, Geography and Environment, University of Southampton, Southampton, SO17 1BJ, United Kingdom; Dearing J.A., Palaeoecology Laboratory, Geography and Environment, University of Southampton, Southampton, SO17 1BJ, United Kingdom; Rahman M.M., Institute of Water and Flood Management (IWFM), Bangladesh University of Engineering and Technology (BUET), Dhaka, 1000, Bangladesh; Salehin M., Institute of Water and Flood Management (IWFM), Bangladesh University of Engineering and Technology (BUET), Dhaka, 1000, Bangladesh","This study takes an historical approach in order to establish how the form and function of the social-ecological system that represents the Bangladesh south-western coastal zone has changed over recent decades. Time series data for a range of ecosystem services and drivers are analysed to define the range of trends, the presence of change points, slow and fast variables and the significant drivers of change. Since the 1980s, increasing gross domestic product and per capita income mirror rising levels of food and inland fish production. As a result, the size of population below the poverty line has reduced by ~17 %. In contrast, non-food ecosystem services such as water availability, water quality and land stability have deteriorated. Conversion of rice fields to shrimp farms is almost certainly a factor in increasing soil and surface water salinity. Most of the services experienced statistically significant change points between 1975 and 1980, and among the services, water availability, shrimp farming and maintenance of biodiversity appear to have passed tipping points. An environmental Kuznets curve analysis suggests that the point at which growing economic wealth feeds back into effective environmental protection has not yet been reached for water resources. Trends in indicators of ecosystem services and human well-being point to widespread non-stationary dynamics governed by slowly changing variables with an increased likelihood of systemic threshold changes/tipping points in the near future. The results will feed into simulation models and strategies that can define alternative and sustainable paths for land management. © 2015, The Author(s).",bangladesh; delta; ecosystem services; tipping points; trend analysis; wellbeing,,"M.S. Hossain; Palaeoecology Laboratory, Geography and Environment, University of Southampton, Southampton, SO17 1BJ, United Kingdom; email: koushikadd@yahoo.com",,Springer Verlag,,,,,,14363798,,,,English,Reg. Environ. Change,Article,Final,All Open Access; Green Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-84956647016 van Wesenbeeck B.K.; Balke T.; van Eijk P.; Tonneijck F.; Siry H.Y.; Rudianto M.E.; Winterwerp J.C.,"van Wesenbeeck, B.K. (23029219900); Balke, T. (36992070600); van Eijk, P. (12140059900); Tonneijck, F. (16308114400); Siry, H.Y. (14122398400); Rudianto, M.E. (56880326900); Winterwerp, J.C. (6701804198)",23029219900; 36992070600; 12140059900; 16308114400; 14122398400; 56880326900; 6701804198,Aquaculture induced erosion of tropical coastlines throws coastal communities back into poverty,2015,Ocean and Coastal Management,116,,,466,469,3,76,10.1016/j.ocecoaman.2015.09.004,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84942802062&doi=10.1016%2fj.ocecoaman.2015.09.004&partnerID=40&md5=344ff215705dc9aaf12ad6ff427531fb,"Unit for Marine and Coastal Systems, Deltares, P.O. Box 177, MH Delft, 2600, Netherlands; Department of Hydraulic Engineering, Delft University of Technology, P.O. Box 5048, GA Delft, 2600, Netherlands; Institute for Biology and Environmental Science, Carl von Ossietzky University Oldenburg, Carl-von-Ossietzky-Str. 9-11, Oldenburg, D-26129, Germany; Wetlands International, P.O. Box 471, AL Wageningen, 6700, Netherlands; Directorate of Marine and Coasts, Ministry of Marine Affairs and Fisheries (MMAF), Jakarta, 10110, Indonesia","van Wesenbeeck B.K., Unit for Marine and Coastal Systems, Deltares, P.O. Box 177, MH Delft, 2600, Netherlands, Department of Hydraulic Engineering, Delft University of Technology, P.O. Box 5048, GA Delft, 2600, Netherlands; Balke T., Unit for Marine and Coastal Systems, Deltares, P.O. Box 177, MH Delft, 2600, Netherlands, Institute for Biology and Environmental Science, Carl von Ossietzky University Oldenburg, Carl-von-Ossietzky-Str. 9-11, Oldenburg, D-26129, Germany; van Eijk P., Wetlands International, P.O. Box 471, AL Wageningen, 6700, Netherlands; Tonneijck F., Wetlands International, P.O. Box 471, AL Wageningen, 6700, Netherlands; Siry H.Y., Directorate of Marine and Coasts, Ministry of Marine Affairs and Fisheries (MMAF), Jakarta, 10110, Indonesia; Rudianto M.E., Directorate of Marine and Coasts, Ministry of Marine Affairs and Fisheries (MMAF), Jakarta, 10110, Indonesia; Winterwerp J.C., Unit for Marine and Coastal Systems, Deltares, P.O. Box 177, MH Delft, 2600, Netherlands, Department of Hydraulic Engineering, Delft University of Technology, P.O. Box 5048, GA Delft, 2600, Netherlands","Shallow tropical coastlines harbour unique mangrove ecosystems, which support livelihoods and provide a natural barrier against coastal flooding. Non-sustainable land-use practices, such as large-scale clear cutting of mangroves for aquaculture, ground water withdrawal and alteration of river flows, result in rapid subsidence. The collapse of aquaculture production, due to pollution and disease, is followed by coastal erosion, damage to infrastructure, intrusion of salt water and coastal flooding. Standard engineered interventions for protection often fail or are extremely expensive in these soft muddy environments. Subsidence and erosion render re-planting of mangroves in front of retreating coastlines impossible. Short-term solutions should focus on restoration of abiotic conditions, such as hydrology and sediment fluxes, to facilitate rapid establishment of protective mangrove belts. However, to ensure long-term sustainability, improved governance frameworks are required that put in place criteria for sustainable aquaculture, guide coastal infrastructure designs and limit ground water extraction. © 2015 The Authors.",aquaculture; coastal erosion; ground water extraction/withdrawal; mangrove restoration; mangroves; subsidence,Rhizophoraceae; Aquaculture; Ecosystems; Erosion; Floods; Groundwater; Land use; Landforms; Restoration; River pollution; Salt water intrusion; Subsidence; Water pollution; Coastal communities; Coastal erosion; Coastal infrastructure; Long-term sustainability; Mangroves; Short-term solutions; Sustainable land use; Water extraction; aquaculture system; coastal erosion; coastal protection; environmental impact assessment; groundwater abstraction; habitat restoration; land use change; mangrove; poverty; subsidence; sustainability; tropical region; Extraction,"B.K. van Wesenbeeck; Unit for Marine and Coastal Systems, Deltares, MH Delft, P.O. Box 177, 2600, Netherlands; email: bregje.vanwesenbeeck@deltares.nl",,Elsevier Ltd,,,,,,09645691,,OCMAE,,English,Ocean Coast. Manage.,Article,Final,All Open Access; Green Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-84942802062 Cowx I.G.,"Cowx, I.G. (56284380100)",56284380100,Characterisation of inland fisheries in Europe,2015,Fisheries Management and Ecology,22,1,,78,87,9,44,10.1111/fme.12105,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84921885389&doi=10.1111%2ffme.12105&partnerID=40&md5=b0259a42d851de72e05c7bb505fa4f51,"Hull International Fisheries Institute, University of Hull, Hull, United Kingdom","Cowx I.G., Hull International Fisheries Institute, University of Hull, Hull, United Kingdom","The situation facing inland fisheries and aquaculture in Europe has altered rapidly in response to an exceptional period of change throughout the continent over the past 25 to 30 years. A number of factors contribute towards these trends, including increasing demand for water, social, economic and political shifts, and increased awareness of environmental issues. The aim of this study is to explore changes in the European inland fisheries sector to assist planning and management of the sector in the future. Commercial fisheries have declined throughout Europe. After slow expansion through the 1950s-1980s, catches have declined steadily over the past 25 years, more so in the north and west than in Eastern countries. Similarly, recreational fisheries are under threat from declining participation and degradation from external interventions. By contrast, aquaculture production from inland waters in European countries has shown a progressive increase of 7% per year from 300 000 t in 1985 to 430 000 t in 2012. Despite the importance of inland fisheries, especially recreational fisheries, throughout Europe, there is a perception that natural fisheries have undergone major, often adverse, changes. These are related to ongoing restructuring in post-socialist countries, changing relationships between commercial and recreational fishers, deficiencies and confusion in fisheries legislation, administration and access to waters. The resources are also subject to numerous anthropogenic perturbations. In an effort to maintain, improve and develop inland fisheries in Europe options for development, including river basin management planning and ecosystem approach are discussed. © 2015 John Wiley & Sons Ltd.",aquaculture; ecosystem services; employment; fresh water; management; water framework,Europe; aquaculture; basin management; commercial species; ecosystem approach; employment; fishery management; freshwater environment; inland fishery; river basin; water planning,"I.G. Cowx; Hull International Fisheries Institute, University of Hull, Hull, HU6 7RX, United Kingdom; email: i.g.cowx@hull.ac.uk",,,,,,,,0969997X,,,,English,Fish. Manage. Ecol.,Article,Final,,Scopus,2-s2.0-84921885389 Rova S.; Pranovi F.; Müller F.,"Rova, Silvia (55253649800); Pranovi, Fabio (6603162433); Müller, Felix (7402078324)",55253649800; 6603162433; 7402078324,Provision of ecosystem services in the lagoon of Venice (Italy): An initial spatial assessment,2015,Ecohydrology and Hydrobiology,15,1,,13,25,12,44,10.1016/j.ecohyd.2014.12.001,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84923069317&doi=10.1016%2fj.ecohyd.2014.12.001&partnerID=40&md5=0a4303fb882a5d6a29ac7f4f24ba45b0,"Institute for Natural Resource Conservation, Department of Ecosystem Management, Christian-Albrechts-Universität zu Kiel, Olshausenstr. 75, Kiel, D-24118, Germany; Department of Environmental Sciences, Informatics and Statistics, Università Ca' Foscari Venezia, Castello 2737/b, Venezia, 30122, Italy","Rova S., Institute for Natural Resource Conservation, Department of Ecosystem Management, Christian-Albrechts-Universität zu Kiel, Olshausenstr. 75, Kiel, D-24118, Germany; Pranovi F., Department of Environmental Sciences, Informatics and Statistics, Università Ca' Foscari Venezia, Castello 2737/b, Venezia, 30122, Italy; Müller F., Institute for Natural Resource Conservation, Department of Ecosystem Management, Christian-Albrechts-Universität zu Kiel, Olshausenstr. 75, Kiel, D-24118, Germany","The lagoon of Venice is a complex human-environmental system where several environmental, economic and social issues call for new integrated management perspectives. The ecosystem services approach can provide a new framework for the management of this area, and one of the first steps towards its application is ecosystem services mapping. In this work, the spatial distribution of ecosystem services in the lagoon of Venice was assessed in a qualitative way. Seven ecosystem services were chosen for the assessment: four provisioning services (aquaculture, fish and seafood, wild food and crops), two cultural services (recreation and tourism and knowledge systems) and one regulating service (erosion regulation). The services were mapped by integrating biophysical and socio-economic information, resulting in an easily understandable representation of the services provided. The ecosystem services maps were used to perform a zonal analysis, referred to the water bodies adopted in compliance with the Water Framework Directive, which allowed to identify the patterns of ecosystem services provision that characterize each water body. © 2014 European Regional Centre for Ecohydrology of Polish Academy of Sciences.",coastal ecosystems; directive; erosion regulation; gis; mapping ecosystem services; water framework,Italy; Veneto; Venezia [Veneto]; Venice Lagoon; coastal lagoon; compliance; ecosystem service; erosion control; GIS; spatial distribution; water management,"S. Rova; Institute for Natural Resource Conservation, Department of Ecosystem Management, Christian-Albrechts-Universität zu Kiel, Kiel, Olshausenstr. 75, D-24118, Germany; email: silvia.rova@unive.it",,Elsevier B.V.,,,,,,16423593,,EHCYA,,English,Ecohydrol. Hydrobiol.,Article,Final,,Scopus,2-s2.0-84923069317 Moga L.M.; Dediu L.; Zhang X.; Nenciu M.I.; Ududec Novac C.; Gavrila S.P.,"Moga, L.M. (27467572400); Dediu, L. (37101248200); Zhang, X. (8448836000); Nenciu, M.I. (55193472000); Ududec Novac, C. (57190687311); Gavrila, S.P. (56956989900)",27467572400; 37101248200; 8448836000; 55193472000; 57190687311; 56956989900,Barriers of adopting traceability systems by romanian fishery and aquaculture,2016,Journal of Environmental Protection and Ecology,17,1,,284,290,6,0,,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84982313672&partnerID=40&md5=3e935d5ec550b9353348b5e80f5f5314,"Dunarea de Jos University of Galati, 47 Domneasca Street, Galati, 800 008, Romania; China Agricultural University, 17 Qinghua Donglu Street, Beijing, 100 083, China; NIRDEP-National Institute for Marine Research and Development Grigore, Antipa, 300 Mamaia Blvd, Constanta, 900 581, Romania","Moga L.M., Dunarea de Jos University of Galati, 47 Domneasca Street, Galati, 800 008, Romania; Dediu L., Dunarea de Jos University of Galati, 47 Domneasca Street, Galati, 800 008, Romania; Zhang X., China Agricultural University, 17 Qinghua Donglu Street, Beijing, 100 083, China; Nenciu M.I., NIRDEP-National Institute for Marine Research and Development Grigore, Antipa, 300 Mamaia Blvd, Constanta, 900 581, Romania; Ududec Novac C., Dunarea de Jos University of Galati, 47 Domneasca Street, Galati, 800 008, Romania; Gavrila S.P., Dunarea de Jos University of Galati, 47 Domneasca Street, Galati, 800 008, Romania","The increase of the awareness about the environmental, social, and legal issues associated with seafood and fish products led to significant concerns of the shareholders, and challenges to the corporate social responsibility initiatives of companies. Many countries have begun to implement a traceability system to increase vertical coordination and guarantee safety in fish products. This paper aims to provide information about the barriers that influence the implementation of the traceability system for the fish products in Romania. The research is based on the results of an empirical study on the barriers that influence Romanian fish farms to adopt the traceability system. The questioners applied in Romanian fish farms investigate barriers like the basic characteristics of the enterprises and whether they export, the costs of adoption, and different traceability standards in the markets, in order to provide the information necessary for the development of a traceability system which will satisfy the needs of all the stakeholders and will be adopted by the companies.",barriers; environmental sustainability; fish production; implementation; safety; traceability,Romania; aquaculture; corporate social responsibility; environmental protection; fishery production; food safety; standard (regulation),"L.M. Moga; Dunarea de Jos University of Galati, Galati, 47 Domneasca Street, 800 008, Romania; email: liliana.moga@gmail.com",,Scibulcom Ltd.,,,,,,13115065,,,,English,J. Environ. Prot. Ecol.,Article,Final,,Scopus,2-s2.0-84982313672 Tiller R.; De Kok J.-L.; Vermeiren K.; Richards R.; Van Ardelan M.; Bailey J.,"Tiller, Rachel (23987107100); De Kok, Jean-Luc (7004851988); Vermeiren, Karolien (55159802900); Richards, Russell (22981340500); Van Ardelan, Murat (28367531500); Bailey, Jennifer (7404344775)",23987107100; 7004851988; 55159802900; 22981340500; 28367531500; 7404344775,"Stakeholder perceptions of links between environmental changes to their socio-ecological system and their adaptive capacity in the region of Troms, Norway",2016,Frontiers in Marine Science,3,DEC,267,,,,20,10.3389/fmars.2016.00267,https://www.scopus.com/inward/record.uri?eid=2-s2.0-85008702798&doi=10.3389%2ffmars.2016.00267&partnerID=40&md5=2c465f5d0eec9234785e16f1530617e1,"SINTEF Fisheries and Aquaculture, Trondheim, Norway; Department of Sociology and Political Science, Norwegian University of Science and Technology (NTNU), Trondheim, Norway; Unit Environmental Modelling, Flemish Institute for Technological Research (VITO), Antwerp, Belgium; School of Agriculture and Food Sciences, The University of Queensland, Brisbane, QLD, Australia; Department of Chemistry, Norwegian University of Science and Technology (NTNU), Trondheim, Norway","Tiller R., SINTEF Fisheries and Aquaculture, Trondheim, Norway, Department of Sociology and Political Science, Norwegian University of Science and Technology (NTNU), Trondheim, Norway; De Kok J.-L., Unit Environmental Modelling, Flemish Institute for Technological Research (VITO), Antwerp, Belgium; Vermeiren K., Unit Environmental Modelling, Flemish Institute for Technological Research (VITO), Antwerp, Belgium; Richards R., School of Agriculture and Food Sciences, The University of Queensland, Brisbane, QLD, Australia; Van Ardelan M., Department of Chemistry, Norwegian University of Science and Technology (NTNU), Trondheim, Norway; Bailey J., Department of Sociology and Political Science, Norwegian University of Science and Technology (NTNU), Trondheim, Norway","Climate change affects the marine environment at all levels of governance. At a global level, researchers expect the projected increase in sea surface temperature to facilitate large changes in the marine food web, which in turn will affect both global fisheries and aquaculture. At the local level, government and stakeholders want to know whether and how this affects their local communities and their adaptive capacity in light of this. Research suggests that risk communication of the effects of changes in the marine food web suffers from stakeholders' short-term mentality and narrow boundaries. This in turn can lead to an underestimation of the potential risks associated with climate change. We explore this theory by mapping the perceptions of marine stakeholders in the region of Troms, Norway. We first developed cognitive maps in a workshop setting, and then used system conceptualization to analyze the feedback mechanisms of the system qualitatively using fuzzy cognitive mapping. We examined the outcomes and compared them for different scenarios using a simple MatLab script. Results demonstrated that stakeholders did not underestimate their risks to climate change. They were aware of environmental changes, and they perceived that a changing climate was the cause of this change, and that it was indeed affecting their livelihoods-and would continue to do so in the future. © 2016 Tiller, De Kok, Vermeiren, Richards, Ardelan and Bailey.",adaptive capacity; climate change; coastal communities; fuzzy cognitive map; participatory approach; policy makers; scenarios; stakeholders,,"R. Tiller; SINTEF Fisheries and Aquaculture, Trondheim, Norway; email: rachel.tiller@sintef.no",,Frontiers Media S. A,,,,,,22967745,,,,English,Front. Mar. Sci.,Article,Final,All Open Access; Gold Open Access; Green Open Access,Scopus,2-s2.0-85008702798 Villasante S.; Rivero Rodríguez S.; Molares Y.; Martínez M.; Remiro J.; García-Díez C.; Lahoz C.; Omar I.; Bechardas M.; Elago P.; Ekandjo M.; Saisai M.; Awity L.,"Villasante, Sebastian (24176215600); Rivero Rodríguez, Susana (15835671400); Molares, Yolanda (56786272200); Martínez, Mercedes (56784879100); Remiro, Javier (56786488200); García-Díez, Cristina (56786475300); Lahoz, Carmen (56785543500); Omar, Isabel (56592422600); Bechardas, Margarida (56786496700); Elago, Panduleni (56786435100); Ekandjo, Mikael (57204222641); Saisai, Maiba (56786466200); Awity, Lionel (56786558600)",24176215600; 15835671400; 56786272200; 56784879100; 56786488200; 56786475300; 56785543500; 56592422600; 56786496700; 56786435100; 57204222641; 56786466200; 56786558600,Are provisioning ecosystem services from rural aquaculture contributing to reduce hunger in Africa?,2015,Ecosystem Services,16,,,365,377,12,14,10.1016/j.ecoser.2015.07.003,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84939521274&doi=10.1016%2fj.ecoser.2015.07.003&partnerID=40&md5=31b5289a3107b0e8eede1e28e14fed1e,"Faculty of Political Sciences, University of Santiago de Compostela, Av. Angel Echevarry s/n, Santiago de Compostela, 15782, Spain; Campus Do Mar - International Campus of Excellence, Spain; Technological Centre of the Sea (CETMAR), C/ Eduardo Cabello s/n, Bouzas-Vigo, E-36208, Spain; Spanish Aquaculture Observatory (OESA) Foundation, Madrid, Spain; Institute of Studies on Conflicts and Humanitarian Action (IECAH), Madrid, Spain; Institute of Aquaculture, Ministry of Fisheries, Mozambique; Ministry of Fisheries and Marine Resources, Namibia; FAO Regional Office for Africa (FAORAF), Accra, Ghana","Villasante S., Faculty of Political Sciences, University of Santiago de Compostela, Av. Angel Echevarry s/n, Santiago de Compostela, 15782, Spain, Campus Do Mar - International Campus of Excellence, Spain; Rivero Rodríguez S., Faculty of Political Sciences, University of Santiago de Compostela, Av. Angel Echevarry s/n, Santiago de Compostela, 15782, Spain, Campus Do Mar - International Campus of Excellence, Spain; Molares Y., Technological Centre of the Sea (CETMAR), C/ Eduardo Cabello s/n, Bouzas-Vigo, E-36208, Spain; Martínez M., Technological Centre of the Sea (CETMAR), C/ Eduardo Cabello s/n, Bouzas-Vigo, E-36208, Spain; Remiro J., Spanish Aquaculture Observatory (OESA) Foundation, Madrid, Spain; García-Díez C., Spanish Aquaculture Observatory (OESA) Foundation, Madrid, Spain; Lahoz C., Institute of Studies on Conflicts and Humanitarian Action (IECAH), Madrid, Spain; Omar I., Institute of Aquaculture, Ministry of Fisheries, Mozambique; Bechardas M., Institute of Aquaculture, Ministry of Fisheries, Mozambique; Elago P., Ministry of Fisheries and Marine Resources, Namibia; Ekandjo M., Ministry of Fisheries and Marine Resources, Namibia; Saisai M., Ministry of Fisheries and Marine Resources, Namibia; Awity L., FAO Regional Office for Africa (FAORAF), Accra, Ghana","Despite the recognised advantages of rural aquaculture, little research has been done to assess its direct and indirect impacts on food security and poverty mitigation, especially in Africa. The aim of this study is to provide a better understanding of the role of fish-farming systems and their scale, market structure and institutional mechanisms in improving rural aquaculture in Mozambique and Namibia and, consequently, livelihoods and human development in rural communities. This study shows that rural households are strongly dependent on agriculture/aquaculture as their main source of food and income. In general, families making a living from fish farming as their main activity have improved their access to food and basic services. There has been a significant increase in fish consumption in households since they have been engaged in rural fish farming, and there has also been an increase in the frequency of fish consumption per week. This progress in food and nutrition security needs to be consolidated through fish-farming development policies. However, rural aquaculture is still a sector in the early stages of development and has to overcome limiting factors such as a lack of specialised technical knowledge, logistical infrastructure and difficulties in access to credit and markets. © 2015 Elsevier B.V.",africa; hunger; mozambique; namibia; provisioning ecosystem services; rural aquaculture,,"S. Villasante; Faculty of Political Sciences, University of Santiago de Compostela, Santiago de Compostela, Av. Angel Echevarry s/n, 15782, Spain; email: sebastian.villasante@usc.es",,Elsevier,,,,,,22120416,,,,English,Ecosyst. Serv.,Article,Final,,Scopus,2-s2.0-84939521274 Tumilba V.; Yarime M.,"Tumilba, Victor (56674715100); Yarime, Masaru (23037745200)",56674715100; 23037745200,Ecological network metrics in assessing sustainability of the philippine milkfish (Chanos chanos) economic resource system,2015,AACL Bioflux,8,3,,253,264,11,1,,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84930656291&partnerID=40&md5=01221a44f83c4f478af0ee258174928d,"Global Leadership Initiative, Graduate of Frontier Sciences, University of Tokyo, Kashiwa, Japan; Graduate School of Public Policy, University of Tokyo, Tokyo, Japan; Department of Science Technology, Engineering and Public Policy (STEaPP), University College London, London, United Kingdom","Tumilba V., Global Leadership Initiative, Graduate of Frontier Sciences, University of Tokyo, Kashiwa, Japan; Yarime M., Graduate School of Public Policy, University of Tokyo, Tokyo, Japan, Department of Science Technology, Engineering and Public Policy (STEaPP), University College London, London, United Kingdom","We used an ecological network analytical approach on a simplified, non-trivial and expandable model of the Philippine brackish-pond milkfish (Chanos chanos) resource network as an initial attempt in quantifying sustainability of aquaculture systems holistically. The approach defines sustainability as robustness which is the appropriation between systemic efficiency and redundancy of network flow structures. The milkfish resource network model analyzed has five categorized functional compartments: fry source, fry distribution channel, production area, product distribution channel and market consumption. The directed flows in-between compartments are taken as economic values of milkfish fry and products from 1979 to 2001 to exclude other production source in the latter years. The results are compared to previous analyzed global economic and local ecological networks as bench marks. The milkfish resource network exhibit high levels of efficiency and sustainability may be improved by managing production flows of the industry that would optimize robustness through increasing redundancy. The approach can be useful in assessing the effects of policy interventions on the systemic sustainability of resource network systems as demonstrated in the case study. © 2015 BIOFLUX SRL. All rights reserved.",efficiency; milkfish; resilience; robustness; social-ecological systems,Chanos chanos,,,BIOFLUX SRL,,,,,,18448143,,,,English,AACL Bioflux,Article,Final,,Scopus,2-s2.0-84930656291 Friess D.A.; Thompson B.S.; Brown B.; Amir A.A.; Cameron C.; Koldewey H.J.; Sasmito S.D.; Sidik F.,"Friess, Daniel A. (52263575800); Thompson, Benjamin S. (56108081100); Brown, Ben (56420364800); Amir, A Aldrie (54941646800); Cameron, Clint (57195461517); Koldewey, Heather J. (14819276800); Sasmito, Sigit D. (56237388100); Sidik, Frida (55759333100)",52263575800; 56108081100; 56420364800; 54941646800; 57195461517; 14819276800; 56237388100; 55759333100,Policy challenges and approaches for the conservation of mangrove forests in Southeast Asia,2016,Conservation biology : the journal of the Society for Conservation Biology,30,5,,933,949,16,151,10.1111/cobi.12784,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84985869862&doi=10.1111%2fcobi.12784&partnerID=40&md5=e7674c9d14da42bad3edcb871e13ebec,Singapore; Indonesia; Australia; Malaysia; United Kingdom; Indonesia; Indonesia,"Friess D.A., Singapore; Thompson B.S., Singapore; Brown B., Indonesia, Australia; Amir A.A., Malaysia; Cameron C., Australia; Koldewey H.J., United Kingdom; Sasmito S.D., Indonesia; Sidik F., Indonesia","Many drivers of mangrove forest loss operate over large scales and are most effectively addressed by policy interventions. However, conflicting or unclear policy objectives exist at multiple tiers of government, resulting in contradictory management decisions. To address this, we considered four approaches that are being used increasingly or could be deployed in Southeast Asia to ensure sustainable livelihoods and biodiversity conservation. First, a stronger incorporation of mangroves into marine protected areas (that currently focus largely on reefs and fisheries) could resolve some policy conflicts and ensure that mangroves do not fall through a policy gap. Second, examples of community and government comanagement exist, but achieving comanagement at scale will be important in reconciling stakeholders and addressing conflicting policy objectives. Third, private-sector initiatives could protect mangroves through existing and novel mechanisms in degraded areas and areas under future threat. Finally, payments for ecosystem services (PES) hold great promise for mangrove conservation, with carbon PES schemes (known as blue carbon) attracting attention. Although barriers remain to the implementation of PES, the potential to implement them at multiple scales exists. Closing the gap between mangrove conservation policies and action is crucial to the improved protection and management of this imperiled coastal ecosystem and to the livelihoods that depend on them. © 2016 Society for Conservation Biology.",aquaculture; amp; aquaculture; community-based conservation; decentralization; deforestación; deforestation; decentralization; gobierno; governance; manejo basado en la comunidad; marine protected area; mpa; pago por servicios ambientales; payments for ecosystem services; pes; psa; redd+; área marina protegida,"Asia, Southeastern; Conservation of Natural Resources; Ecosystem; Environmental Policy; Forests; Wetlands; Southeast Asia; Rhizophoraceae; biodiversity; coastal protection; coastal zone; conservation management; decision making; deforestation; ecosystem service; habitat management; mangrove; marine park; policy implementation; stakeholder; ecosystem; environmental policy; environmental protection; forest; Southeast Asia; wetland",,,Blackwell Publishing Inc.,,,,,,15231739,,CBIOE,27341487,English,Conserv. Biol.,Article,Final,,Scopus,2-s2.0-84985869862 Bailey C.,"Bailey, Conner (7402066397)",7402066397,"Transgenic Salmon: Science, Politics, and Flawed Policy",2015,Society and Natural Resources,28,11,,1249,1260,11,8,10.1080/08941920.2015.1089610,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84945415075&doi=10.1080%2f08941920.2015.1089610&partnerID=40&md5=dcb581c376b28077411155ffca091b18,"Department of Agricultural Economics & Rural Sociology, Auburn University, Auburn, AL, United States","Bailey C., Department of Agricultural Economics & Rural Sociology, Auburn University, Auburn, AL, United States","The U.S. Food and Drug Administration (FDA) in 2012 issued a draft Environmental Assessment that could open the door for transgenic salmon to be sold in the United States for direct human consumption as food. This would be the first genetically engineered animal to enter the market, a precedent-setting action that could lead to adoption of genetic engineering in other animals. The FDA is well suited to evaluate food safety concerns but less well equipped to address complex social and environmental issues associated with the introduction of what is essentially an exotic species into aquatic environments. The FDA was given responsibility for regulating genetically engineered animals through a Coordinated Framework for the Regulation of Biotechnology established in 1986 and updated in 1992. Policy recommendations include revamping of this framework and the conduct of a full Environmental Impact Statement before issuing a permit for this transgenic fish. © 2015, Copyright © Taylor & Francis Group, LLC.",aquaculture; genetic engineering; science policy; transgenic salmon,United States; Animalia; aquaculture method; environmental assessment; environmental issue; genetic engineering; genetically modified organism; salmonid,"C. Bailey; Department of Agricultural Economics & Rural Sociology, Auburn University, Auburn, Comer Hall, 36849-5406, United States; email: cbailey@ag.auburn.edu",,Routledge,,,,,,08941920,,,,English,Soc. Nat. Res.,Article,Final,,Scopus,2-s2.0-84945415075 Orchard S.E.; Stringer L.C.; Quinn C.H.,"Orchard, Steven E. (56641026400); Stringer, Lindsay C. (14018839600); Quinn, Claire H. (8202525200)",56641026400; 14018839600; 8202525200,Impacts of aquaculture on social networks in the mangrove systems of northern Vietnam,2015,Ocean and Coastal Management,114,,,1,10,9,41,10.1016/j.ocecoaman.2015.05.019,https://www.scopus.com/inward/record.uri?eid=2-s2.0-84930938284&doi=10.1016%2fj.ocecoaman.2015.05.019&partnerID=40&md5=38c31de8753f3472bac22f3bac218011,"Sustainability Research Institute (SRI), School of Earth and Environment, University of Leeds, Leeds, LS2 9JT, United Kingdom","Orchard S.E., Sustainability Research Institute (SRI), School of Earth and Environment, University of Leeds, Leeds, LS2 9JT, United Kingdom; Stringer L.C., Sustainability Research Institute (SRI), School of Earth and Environment, University of Leeds, Leeds, LS2 9JT, United Kingdom; Quinn C.H., Sustainability Research Institute (SRI), School of Earth and Environment, University of Leeds, Leeds, LS2 9JT, United Kingdom","Mangrove systems are one of the most complex and productive ecosystems on Earth, providing crucial livelihood support to coastal communities in developing countries. However, mangrove systems are being degraded and lost at an alarming rate globally. In Vietnam, the principal threat to mangrove systems is their conversion to aquaculture. Historically, mangrove system dependent communities (MSDC) have responded to change through their livelihoods and social networks, using social capital to self-organise and access crucial livelihood resources. However, little is known about the impact of different degrees of aquaculture on MSDC livelihoods and social networks, and what this means for the resilience of these communities and their ability to self-organise in response to change. Using a quantitative approach based on empirical household survey data, we assess the association between aquaculture and the livelihoods and social networks of three coastal communities of northern Vietnam. Results indicate that greater degrees of aquaculture are associated with: greater income inequality and lower livelihood diversity; and larger and less dense social networks. The increased influence of market-based relations associated with greater degrees of aquaculture has implications for resilience through the socio-economic differentiation and fragmentation of MSDC networks, which reduces social capital and the ability to self-organise in response to change. A diversity of network ties is required in order to connect various groups within MSDC. This can enable shared identification and understanding of the issues facing mangrove systems in order to facilitate self-organisation, and foster the resilience necessary for the sustainable governance of mangrove systems. © 2015 The Authors.",adaptive capacity; natural resource management; resilience; social acceptance; social network analysis; social-ecological systems; sustainability; vulnerability; wetland,Viet Nam; Aquaculture; Developing countries; Ecology; Natural resources management; Network security; Social networking (online); Surveys; Wetlands; Adaptive capacity; Natural resource management; Resilience; Social capitals; Social-ecological systems; Sustainable livelihood; Vulnerability; coastal zone management; developing world; household survey; mangrove; mariculture; natural resource; self organization; social capital; social network; sustainability; vulnerability; wetland management; Complex networks,,,Elsevier Ltd,,,,,,09645691,,OCMAE,,English,Ocean Coast. Manage.,Article,Final,All Open Access; Green Open Access; Hybrid Gold Open Access,Scopus,2-s2.0-84930938284