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      The growth of finfish in global open-ocean aquaculture under climate change

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      Proceedings of the Royal Society B: Biological Sciences
      The Royal Society

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          Abstract

          <p class="first" id="d4235002e198">Aquaculture production is projected to expand from land-based operations to the open ocean as demand for seafood grows and competition increases for inputs to land-based aquaculture, such as freshwater and suitable land. In contrast to land-based production, open-ocean aquaculture is constrained by oceanographic factors, such as current speeds and seawater temperature, which are dynamic in time and space, and cannot easily be controlled. As such, the potential for offshore aquaculture to increase seafood production is tied to the physical state of the oceans. We employ a novel spatial model to estimate the potential of open-ocean finfish aquaculture globally, given physical, biological and technological constraints. Finfish growth potential for three common aquaculture species representing different thermal guilds—Atlantic salmon ( <i>Salmo salar</i>), gilthead seabream ( <i>Sparus aurata</i>) and cobia ( <i>Rachycentron canadum</i>)—is compared across species and regions and with climate change, based on outputs of a high-resolution global climate model. Globally, there are ample areas that are physically suitable for fish growth and potential expansion of the nascent aquaculture industry. The effects of climate change are heterogeneous across species and regions, but areas with existing aquaculture industries are likely to see increases in growth rates. In areas where climate change results in reduced growth rates, adaptation measures, such as selective breeding, can probably offset potential production losses. </p>

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          Ecology. Physiology and climate change.

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            Thermal Adaptation

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              Large-scale redistribution of maximum fisheries catch potential in the global ocean under climate change

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                Author and article information

                Journal
                Proceedings of the Royal Society B: Biological Sciences
                Proc. R. Soc. B
                The Royal Society
                0962-8452
                1471-2954
                October 04 2017
                October 11 2017
                October 04 2017
                October 11 2017
                : 284
                : 1864
                : 20170834
                Article
                10.1098/rspb.2017.0834
                5647286
                28978724
                39e77371-67d6-4caa-a639-3aba6b17bb71
                © 2017

                http://royalsocietypublishing.org/licence

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