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Carbon assimilation and transfer through kelp forests in the NE Atlantic is diminished under a warmer ocean climate

Global climate change is affecting carbon cycling by driving changes in primary productivity and rates of carbon fixation, release and storage within Earth's vegetated systems. There is, however, limited understanding of how carbon flow between donor and recipient habitats will respond to clima...

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Autores principales: Pessarrodona, Albert, Moore, Pippa J., Sayer, Martin D. J., Smale, Dan A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6120504/
https://www.ncbi.nlm.nih.gov/pubmed/29862600
http://dx.doi.org/10.1111/gcb.14303
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author Pessarrodona, Albert
Moore, Pippa J.
Sayer, Martin D. J.
Smale, Dan A.
author_facet Pessarrodona, Albert
Moore, Pippa J.
Sayer, Martin D. J.
Smale, Dan A.
author_sort Pessarrodona, Albert
collection PubMed
description Global climate change is affecting carbon cycling by driving changes in primary productivity and rates of carbon fixation, release and storage within Earth's vegetated systems. There is, however, limited understanding of how carbon flow between donor and recipient habitats will respond to climatic changes. Macroalgal‐dominated habitats, such as kelp forests, are gaining recognition as important carbon donors within coastal carbon cycles, yet rates of carbon assimilation and transfer through these habitats are poorly resolved. Here, we investigated the likely impacts of ocean warming on coastal carbon cycling by quantifying rates of carbon assimilation and transfer in Laminaria hyperborea kelp forests—one of the most extensive coastal vegetated habitat types in the NE Atlantic—along a latitudinal temperature gradient. Kelp forests within warm climatic regimes assimilated, on average, more than three times less carbon and donated less than half the amount of particulate carbon compared to those from cold regimes. These patterns were not related to variability in other environmental parameters. Across their wider geographical distribution, plants exhibited reduced sizes toward their warm‐water equatorward range edge, further suggesting that carbon flow is reduced under warmer climates. Overall, we estimated that Laminaria hyperborea forests stored ~11.49 Tg C in living biomass and released particulate carbon at a rate of ~5.71 Tg C year(−1). This estimated flow of carbon was markedly higher than reported values for most other marine and terrestrial vegetated habitat types in Europe. Together, our observations suggest that continued warming will diminish the amount of carbon that is assimilated and transported through temperate kelp forests in NE Atlantic, with potential consequences for the coastal carbon cycle. Our findings underline the need to consider climate‐driven changes in the capacity of ecosystems to fix and donate carbon when assessing the impacts of climate change on carbon cycling.
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spelling pubmed-61205042018-09-05 Carbon assimilation and transfer through kelp forests in the NE Atlantic is diminished under a warmer ocean climate Pessarrodona, Albert Moore, Pippa J. Sayer, Martin D. J. Smale, Dan A. Glob Chang Biol Primary Research Articles Global climate change is affecting carbon cycling by driving changes in primary productivity and rates of carbon fixation, release and storage within Earth's vegetated systems. There is, however, limited understanding of how carbon flow between donor and recipient habitats will respond to climatic changes. Macroalgal‐dominated habitats, such as kelp forests, are gaining recognition as important carbon donors within coastal carbon cycles, yet rates of carbon assimilation and transfer through these habitats are poorly resolved. Here, we investigated the likely impacts of ocean warming on coastal carbon cycling by quantifying rates of carbon assimilation and transfer in Laminaria hyperborea kelp forests—one of the most extensive coastal vegetated habitat types in the NE Atlantic—along a latitudinal temperature gradient. Kelp forests within warm climatic regimes assimilated, on average, more than three times less carbon and donated less than half the amount of particulate carbon compared to those from cold regimes. These patterns were not related to variability in other environmental parameters. Across their wider geographical distribution, plants exhibited reduced sizes toward their warm‐water equatorward range edge, further suggesting that carbon flow is reduced under warmer climates. Overall, we estimated that Laminaria hyperborea forests stored ~11.49 Tg C in living biomass and released particulate carbon at a rate of ~5.71 Tg C year(−1). This estimated flow of carbon was markedly higher than reported values for most other marine and terrestrial vegetated habitat types in Europe. Together, our observations suggest that continued warming will diminish the amount of carbon that is assimilated and transported through temperate kelp forests in NE Atlantic, with potential consequences for the coastal carbon cycle. Our findings underline the need to consider climate‐driven changes in the capacity of ecosystems to fix and donate carbon when assessing the impacts of climate change on carbon cycling. John Wiley and Sons Inc. 2018-06-03 2018-09 /pmc/articles/PMC6120504/ /pubmed/29862600 http://dx.doi.org/10.1111/gcb.14303 Text en © 2018 The Authors Global Change Biology 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 Primary Research Articles
Pessarrodona, Albert
Moore, Pippa J.
Sayer, Martin D. J.
Smale, Dan A.
Carbon assimilation and transfer through kelp forests in the NE Atlantic is diminished under a warmer ocean climate
title Carbon assimilation and transfer through kelp forests in the NE Atlantic is diminished under a warmer ocean climate
title_full Carbon assimilation and transfer through kelp forests in the NE Atlantic is diminished under a warmer ocean climate
title_fullStr Carbon assimilation and transfer through kelp forests in the NE Atlantic is diminished under a warmer ocean climate
title_full_unstemmed Carbon assimilation and transfer through kelp forests in the NE Atlantic is diminished under a warmer ocean climate
title_short Carbon assimilation and transfer through kelp forests in the NE Atlantic is diminished under a warmer ocean climate
title_sort carbon assimilation and transfer through kelp forests in the ne atlantic is diminished under a warmer ocean climate
topic Primary Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6120504/
https://www.ncbi.nlm.nih.gov/pubmed/29862600
http://dx.doi.org/10.1111/gcb.14303
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