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Trade-offs between bycatch and target catches in static versus dynamic fishery closures.
Pons, Maite; Watson, Jordan T; Ovando, Daniel; Andraka, Sandra; Brodie, Stephanie; Domingo, Andrés; Fitchett, Mark; Forselledo, Rodrigo; Hall, Martin; Hazen, Elliott L; Jannot, Jason E; Herrera, Miguel; Jiménez, Sebastián; Kaplan, David M; Kerwath, Sven; Lopez, Jon; McVeigh, Jon; Pacheco, Lucas; Rendon, Liliana; Richerson, Kate; Sant'Ana, Rodrigo; Sharma, Rishi; Smith, James A; Somers, Kayleigh; Hilborn, Ray.
Affiliation
  • Pons M; School of Aquatic and Fishery Sciences, University of Washington, Seattle, WA 98195-5020; mpons@uw.edu.
  • Watson JT; Auke Bay Laboratories, Alaska Fisheries Science Center, National Marine Fisheries Service, National Oceanic and Atmospheric Administration, Juneau, AK 99801.
  • Ovando D; School of Aquatic and Fishery Sciences, University of Washington, Seattle, WA 98195-5020.
  • Andraka S; EcoPacific Plus Consulting, San José 10111, Costa Rica.
  • Brodie S; Institute of Marine Sciences, University of California, Santa Cruz, CA 93950.
  • Domingo A; Environmental Research Division, Southwest Fisheries Science Center, National Marine Fisheries Service, National Oceanic and Atmospheric Administration, Monterey, CA 93950.
  • Fitchett M; Laboratorio de Recursos Pelágicos, Dirección Nacional de Recursos Acuáticos, Montevideo 11200, Uruguay.
  • Forselledo R; Western Pacific Regional Fishery Management Council, Honolulu, HI 96813.
  • Hall M; Laboratorio de Recursos Pelágicos, Dirección Nacional de Recursos Acuáticos, Montevideo 11200, Uruguay.
  • Hazen EL; Inter-American Tropical Tuna Commission, Bycatch Program, San Diego, CA 92037.
  • Jannot JE; Institute of Marine Sciences, University of California, Santa Cruz, CA 93950.
  • Herrera M; Environmental Research Division, Southwest Fisheries Science Center, National Marine Fisheries Service, National Oceanic and Atmospheric Administration, Monterey, CA 93950.
  • Jiménez S; Northwest Fisheries Science Center, National Marine Fisheries Service, National Oceanic and Atmospheric Administration, Seattle, WA 98115.
  • Kaplan DM; Producers' Organization of Large Tuna Freezers, Madrid 28001, Spain.
  • Kerwath S; Laboratorio de Recursos Pelágicos, Dirección Nacional de Recursos Acuáticos, Montevideo 11200, Uruguay.
  • Lopez J; Marine Biodiversity Exploitation and Conservation (MARBEC), Université Montpellier, CNRS, L'Institut Français de Recherche pour l'Exploitation de la Mer (Ifremer), IRD, Sète 34203, France.
  • McVeigh J; Institut de Recherche Pour le Développement (IRD), Sète 34203, France.
  • Pacheco L; Department of Biological Sciences, University of Cape Town, Cape Town 7700, South Africa.
  • Rendon L; Department of Forestry, Fisheries and the Environment, Cape Town 7700, South Africa.
  • Richerson K; Inter-American Tropical Tuna Commission, Bycatch Program, San Diego, CA 92037.
  • Sant'Ana R; Northwest Fisheries Science Center, National Marine Fisheries Service, National Oceanic and Atmospheric Administration, Seattle, WA 98115.
  • Sharma R; EcoPacific Plus Consulting, San José 10111, Costa Rica.
  • Smith JA; EcoPacific Plus Consulting, San José 10111, Costa Rica.
  • Somers K; Northwest Fisheries Science Center, National Marine Fisheries Service, National Oceanic and Atmospheric Administration, Seattle, WA 98115.
  • Hilborn R; Laboratório de Estudos Marinhos Aplicados, Escola do Mar, Ciência e Tecnologia, Universidade do Vale do Itajaí, Itajaí, SC 3109, Brazil.
Proc Natl Acad Sci U S A ; 119(4)2022 01 25.
Article in En | MEDLINE | ID: mdl-35058364
ABSTRACT
While there have been recent improvements in reducing bycatch in many fisheries, bycatch remains a threat for numerous species around the globe. Static spatial and temporal closures are used in many places as a tool to reduce bycatch. However, their effectiveness in achieving this goal is uncertain, particularly for highly mobile species. We evaluated evidence for the effects of temporal, static, and dynamic area closures on the bycatch and target catch of 15 fisheries around the world. Assuming perfect knowledge of where the catch and bycatch occurs and a closure of 30% of the fishing area, we found that dynamic area closures could reduce bycatch by an average of 57% without sacrificing catch of target species, compared to 16% reductions in bycatch achievable by static closures. The degree of bycatch reduction achievable for a certain quantity of target catch was related to the correlation in space and time between target and bycatch species. If the correlation was high, it was harder to find an area to reduce bycatch without sacrificing catch of target species. If the goal of spatial closures is to reduce bycatch, our results suggest that dynamic management provides substantially better outcomes than classic static marine area closures. The use of dynamic ocean management might be difficult to implement and enforce in many regions. Nevertheless, dynamic approaches will be increasingly valuable as climate change drives species and fisheries into new habitats or extended ranges, altering species-fishery interactions and underscoring the need for more responsive and flexible regulatory mechanisms.
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Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Fisheries Language: En Journal: Proc Natl Acad Sci U S A Year: 2022 Document type: Article

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Fisheries Language: En Journal: Proc Natl Acad Sci U S A Year: 2022 Document type: Article