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Benthic N(2) fixation in coral reefs and the potential effects of human-induced environmental change

Tropical coral reefs are among the most productive and diverse ecosystems, despite being surrounded by ocean waters where nutrients are in short supply. Benthic dinitrogen (N(2)) fixation is a significant internal source of “new” nitrogen (N) in reef ecosystems, but related information appears to be...

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Autores principales: Cardini, Ulisse, Bednarz, Vanessa N, Foster, Rachel A, Wild, Christian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BlackWell Publishing Ltd 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4063469/
https://www.ncbi.nlm.nih.gov/pubmed/24967086
http://dx.doi.org/10.1002/ece3.1050
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author Cardini, Ulisse
Bednarz, Vanessa N
Foster, Rachel A
Wild, Christian
author_facet Cardini, Ulisse
Bednarz, Vanessa N
Foster, Rachel A
Wild, Christian
author_sort Cardini, Ulisse
collection PubMed
description Tropical coral reefs are among the most productive and diverse ecosystems, despite being surrounded by ocean waters where nutrients are in short supply. Benthic dinitrogen (N(2)) fixation is a significant internal source of “new” nitrogen (N) in reef ecosystems, but related information appears to be sparse. Here, we review the current state (and gaps) of knowledge on N(2) fixation associated with coral reef organisms and their ecosystems. By summarizing the existing literature, we show that benthic N(2) fixation is an omnipresent process in tropical reef environments. Highest N(2) fixation rates are detected in reef-associated cyanobacterial mats and sea grass meadows, clearly showing the significance of these functional groups, if present, to the input of new N in reef ecosystems. Nonetheless, key benthic organisms such as hard corals also importantly contribute to benthic N(2) fixation in the reef. Given the usually high coral coverage of healthy reef systems, these results indicate that benthic symbiotic associations may be more important than previously thought. In fact, mutualisms between carbon (C) and N(2) fixers have likely evolved that may enable reef communities to mitigate N limitation. We then explore the potential effects of the increasing human interferences on the process of benthic reef N(2) fixation via changes in diazotrophic populations, enzymatic activities, or availability of benthic substrates favorable to these microorganisms. Current knowledge indicates positive effects of ocean acidification, warming, and deoxygenation and negative effects of increased ultraviolet radiation on the amount of N fixed in coral reefs. Eutrophication may either boost or suppress N(2) fixation, depending on the nutrient becoming limiting. As N(2) fixation appears to play a fundamental role in nutrient-limited reef ecosystems, these assumptions need to be expanded and confirmed by future research efforts addressing the knowledge gaps identified in this review.
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spelling pubmed-40634692014-06-25 Benthic N(2) fixation in coral reefs and the potential effects of human-induced environmental change Cardini, Ulisse Bednarz, Vanessa N Foster, Rachel A Wild, Christian Ecol Evol Review Tropical coral reefs are among the most productive and diverse ecosystems, despite being surrounded by ocean waters where nutrients are in short supply. Benthic dinitrogen (N(2)) fixation is a significant internal source of “new” nitrogen (N) in reef ecosystems, but related information appears to be sparse. Here, we review the current state (and gaps) of knowledge on N(2) fixation associated with coral reef organisms and their ecosystems. By summarizing the existing literature, we show that benthic N(2) fixation is an omnipresent process in tropical reef environments. Highest N(2) fixation rates are detected in reef-associated cyanobacterial mats and sea grass meadows, clearly showing the significance of these functional groups, if present, to the input of new N in reef ecosystems. Nonetheless, key benthic organisms such as hard corals also importantly contribute to benthic N(2) fixation in the reef. Given the usually high coral coverage of healthy reef systems, these results indicate that benthic symbiotic associations may be more important than previously thought. In fact, mutualisms between carbon (C) and N(2) fixers have likely evolved that may enable reef communities to mitigate N limitation. We then explore the potential effects of the increasing human interferences on the process of benthic reef N(2) fixation via changes in diazotrophic populations, enzymatic activities, or availability of benthic substrates favorable to these microorganisms. Current knowledge indicates positive effects of ocean acidification, warming, and deoxygenation and negative effects of increased ultraviolet radiation on the amount of N fixed in coral reefs. Eutrophication may either boost or suppress N(2) fixation, depending on the nutrient becoming limiting. As N(2) fixation appears to play a fundamental role in nutrient-limited reef ecosystems, these assumptions need to be expanded and confirmed by future research efforts addressing the knowledge gaps identified in this review. BlackWell Publishing Ltd 2014-05 2014-03-31 /pmc/articles/PMC4063469/ /pubmed/24967086 http://dx.doi.org/10.1002/ece3.1050 Text en © 2014 The Authors. Ecology and Evolution published by John Wiley & Sons Ltd. http://creativecommons.org/licenses/by/3.0/ This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Review
Cardini, Ulisse
Bednarz, Vanessa N
Foster, Rachel A
Wild, Christian
Benthic N(2) fixation in coral reefs and the potential effects of human-induced environmental change
title Benthic N(2) fixation in coral reefs and the potential effects of human-induced environmental change
title_full Benthic N(2) fixation in coral reefs and the potential effects of human-induced environmental change
title_fullStr Benthic N(2) fixation in coral reefs and the potential effects of human-induced environmental change
title_full_unstemmed Benthic N(2) fixation in coral reefs and the potential effects of human-induced environmental change
title_short Benthic N(2) fixation in coral reefs and the potential effects of human-induced environmental change
title_sort benthic n(2) fixation in coral reefs and the potential effects of human-induced environmental change
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4063469/
https://www.ncbi.nlm.nih.gov/pubmed/24967086
http://dx.doi.org/10.1002/ece3.1050
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