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Genetic analysis redraws the management boundaries for the European sprat

Sustainable fisheries management requires detailed knowledge of population genetic structure. The European sprat is an important commercial fish distributed from Morocco to the Arctic circle, Baltic, Mediterranean, and Black seas. Prior to 2018, annual catch advice on sprat from the International Co...

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Autores principales: Quintela, María, Kvamme, Cecilie, Bekkevold, Dorte, Nash, Richard D. M., Jansson, Eeva, Sørvik, Anne Grete, Taggart, John B., Skaala, Øystein, Dahle, Geir, Glover, Kevin A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7463317/
https://www.ncbi.nlm.nih.gov/pubmed/32908594
http://dx.doi.org/10.1111/eva.12942
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author Quintela, María
Kvamme, Cecilie
Bekkevold, Dorte
Nash, Richard D. M.
Jansson, Eeva
Sørvik, Anne Grete
Taggart, John B.
Skaala, Øystein
Dahle, Geir
Glover, Kevin A.
author_facet Quintela, María
Kvamme, Cecilie
Bekkevold, Dorte
Nash, Richard D. M.
Jansson, Eeva
Sørvik, Anne Grete
Taggart, John B.
Skaala, Øystein
Dahle, Geir
Glover, Kevin A.
author_sort Quintela, María
collection PubMed
description Sustainable fisheries management requires detailed knowledge of population genetic structure. The European sprat is an important commercial fish distributed from Morocco to the Arctic circle, Baltic, Mediterranean, and Black seas. Prior to 2018, annual catch advice on sprat from the International Council for the Exploration of the Sea (ICES) was based on five putative stocks: (a) North Sea, (b) Kattegat–Skagerrak and Norwegian fjords, (c) Baltic Sea, (d) West of Scotland—southern Celtic Seas, and (e) English Channel. However, there were concerns that the sprat advice on stock size estimates management plan inadequately reflected the underlying biological units. Here, we used ddRAD sequencing to develop 91 SNPs that were thereafter used to genotype approximately 2,500 fish from 40 locations. Three highly distinct and relatively homogenous genetic groups were identified: (a) Norwegian fjords; (b) Northeast Atlantic including the North Sea, Kattegat–Skagerrak, Celtic Sea, and Bay of Biscay; and (c) Baltic Sea. Evidence of genetic admixture and possibly physical mixing was detected in samples collected from the transition zone between the North and Baltic seas, but not between any of the other groups. These results have already been implemented by ICES with the decision to merge the North Sea and the Kattegat–Skagerrak sprat to be assessed as a single unit, thus demonstrating that genetic data can be rapidly absorbed to align harvest regimes and biological units.
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spelling pubmed-74633172020-09-08 Genetic analysis redraws the management boundaries for the European sprat Quintela, María Kvamme, Cecilie Bekkevold, Dorte Nash, Richard D. M. Jansson, Eeva Sørvik, Anne Grete Taggart, John B. Skaala, Øystein Dahle, Geir Glover, Kevin A. Evol Appl Original Articles Sustainable fisheries management requires detailed knowledge of population genetic structure. The European sprat is an important commercial fish distributed from Morocco to the Arctic circle, Baltic, Mediterranean, and Black seas. Prior to 2018, annual catch advice on sprat from the International Council for the Exploration of the Sea (ICES) was based on five putative stocks: (a) North Sea, (b) Kattegat–Skagerrak and Norwegian fjords, (c) Baltic Sea, (d) West of Scotland—southern Celtic Seas, and (e) English Channel. However, there were concerns that the sprat advice on stock size estimates management plan inadequately reflected the underlying biological units. Here, we used ddRAD sequencing to develop 91 SNPs that were thereafter used to genotype approximately 2,500 fish from 40 locations. Three highly distinct and relatively homogenous genetic groups were identified: (a) Norwegian fjords; (b) Northeast Atlantic including the North Sea, Kattegat–Skagerrak, Celtic Sea, and Bay of Biscay; and (c) Baltic Sea. Evidence of genetic admixture and possibly physical mixing was detected in samples collected from the transition zone between the North and Baltic seas, but not between any of the other groups. These results have already been implemented by ICES with the decision to merge the North Sea and the Kattegat–Skagerrak sprat to be assessed as a single unit, thus demonstrating that genetic data can be rapidly absorbed to align harvest regimes and biological units. John Wiley and Sons Inc. 2020-03-17 /pmc/articles/PMC7463317/ /pubmed/32908594 http://dx.doi.org/10.1111/eva.12942 Text en © 2020 The Authors. Evolutionary Applications published by John Wiley & Sons Ltd This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Articles
Quintela, María
Kvamme, Cecilie
Bekkevold, Dorte
Nash, Richard D. M.
Jansson, Eeva
Sørvik, Anne Grete
Taggart, John B.
Skaala, Øystein
Dahle, Geir
Glover, Kevin A.
Genetic analysis redraws the management boundaries for the European sprat
title Genetic analysis redraws the management boundaries for the European sprat
title_full Genetic analysis redraws the management boundaries for the European sprat
title_fullStr Genetic analysis redraws the management boundaries for the European sprat
title_full_unstemmed Genetic analysis redraws the management boundaries for the European sprat
title_short Genetic analysis redraws the management boundaries for the European sprat
title_sort genetic analysis redraws the management boundaries for the european sprat
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7463317/
https://www.ncbi.nlm.nih.gov/pubmed/32908594
http://dx.doi.org/10.1111/eva.12942
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