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Meiofauna Metabolism in Suboxic Sediments: Currently Overestimated

Oxygen is recognized as a structuring factor of metazoan communities in marine sediments. The importance of oxygen as a controlling factor on meiofauna (32 µm-1 mm in size) respiration rates is however less clear. Typically, respiration rates are measured under oxic conditions, after which these rat...

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Autores principales: Braeckman, Ulrike, Vanaverbeke, Jan, Vincx, Magda, van Oevelen, Dick, Soetaert, Karline
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3610736/
https://www.ncbi.nlm.nih.gov/pubmed/23555652
http://dx.doi.org/10.1371/journal.pone.0059289
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author Braeckman, Ulrike
Vanaverbeke, Jan
Vincx, Magda
van Oevelen, Dick
Soetaert, Karline
author_facet Braeckman, Ulrike
Vanaverbeke, Jan
Vincx, Magda
van Oevelen, Dick
Soetaert, Karline
author_sort Braeckman, Ulrike
collection PubMed
description Oxygen is recognized as a structuring factor of metazoan communities in marine sediments. The importance of oxygen as a controlling factor on meiofauna (32 µm-1 mm in size) respiration rates is however less clear. Typically, respiration rates are measured under oxic conditions, after which these rates are used in food web studies to quantify the role of meiofauna in sediment carbon turnover. Sediment oxygen concentration ([O(2)]) is generally far from saturated, implying that (1) current estimates of the role of meiofauna in carbon cycling may be biased and (2) meiofaunal organisms need strategies to survive in oxygen-stressed environments. Two main survival strategies are often hypothesized: 1) frequent migration to oxic layers and 2) morphological adaptation. To evaluate these hypotheses, we (1) used a model of oxygen turnover in the meiofauna body as a function of ambient [O(2)], and (2) performed respiration measurements at a range of [O(2)] conditions. The oxygen turnover model predicts a tight coupling between ambient [O(2)] and meiofauna body [O(2)] with oxygen within the body being consumed in seconds. This fast turnover favors long and slender organisms in sediments with low ambient [O(2)] but even then frequent migration between suboxic and oxic layers is for most organisms not a viable strategy to alleviate oxygen limitation. Respiration rates of all measured meiofauna organisms slowed down in response to decreasing ambient [O(2)], with Nematoda displaying the highest metabolic sensitivity for declining [O(2)] followed by Foraminifera and juvenile Gastropoda. Ostracoda showed a behavioral stress response when ambient [O(2)] reached a critical level. Reduced respiration at low ambient [O(2)] implies that meiofauna in natural, i.e. suboxic, sediments must have a lower metabolism than inferred from earlier respiration rates conducted under oxic conditions. The implications of these findings are discussed for the contribution of meiofauna to carbon cycling in marine sediments.
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spelling pubmed-36107362013-04-03 Meiofauna Metabolism in Suboxic Sediments: Currently Overestimated Braeckman, Ulrike Vanaverbeke, Jan Vincx, Magda van Oevelen, Dick Soetaert, Karline PLoS One Research Article Oxygen is recognized as a structuring factor of metazoan communities in marine sediments. The importance of oxygen as a controlling factor on meiofauna (32 µm-1 mm in size) respiration rates is however less clear. Typically, respiration rates are measured under oxic conditions, after which these rates are used in food web studies to quantify the role of meiofauna in sediment carbon turnover. Sediment oxygen concentration ([O(2)]) is generally far from saturated, implying that (1) current estimates of the role of meiofauna in carbon cycling may be biased and (2) meiofaunal organisms need strategies to survive in oxygen-stressed environments. Two main survival strategies are often hypothesized: 1) frequent migration to oxic layers and 2) morphological adaptation. To evaluate these hypotheses, we (1) used a model of oxygen turnover in the meiofauna body as a function of ambient [O(2)], and (2) performed respiration measurements at a range of [O(2)] conditions. The oxygen turnover model predicts a tight coupling between ambient [O(2)] and meiofauna body [O(2)] with oxygen within the body being consumed in seconds. This fast turnover favors long and slender organisms in sediments with low ambient [O(2)] but even then frequent migration between suboxic and oxic layers is for most organisms not a viable strategy to alleviate oxygen limitation. Respiration rates of all measured meiofauna organisms slowed down in response to decreasing ambient [O(2)], with Nematoda displaying the highest metabolic sensitivity for declining [O(2)] followed by Foraminifera and juvenile Gastropoda. Ostracoda showed a behavioral stress response when ambient [O(2)] reached a critical level. Reduced respiration at low ambient [O(2)] implies that meiofauna in natural, i.e. suboxic, sediments must have a lower metabolism than inferred from earlier respiration rates conducted under oxic conditions. The implications of these findings are discussed for the contribution of meiofauna to carbon cycling in marine sediments. Public Library of Science 2013-03-28 /pmc/articles/PMC3610736/ /pubmed/23555652 http://dx.doi.org/10.1371/journal.pone.0059289 Text en © 2013 Braeckman et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Braeckman, Ulrike
Vanaverbeke, Jan
Vincx, Magda
van Oevelen, Dick
Soetaert, Karline
Meiofauna Metabolism in Suboxic Sediments: Currently Overestimated
title Meiofauna Metabolism in Suboxic Sediments: Currently Overestimated
title_full Meiofauna Metabolism in Suboxic Sediments: Currently Overestimated
title_fullStr Meiofauna Metabolism in Suboxic Sediments: Currently Overestimated
title_full_unstemmed Meiofauna Metabolism in Suboxic Sediments: Currently Overestimated
title_short Meiofauna Metabolism in Suboxic Sediments: Currently Overestimated
title_sort meiofauna metabolism in suboxic sediments: currently overestimated
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3610736/
https://www.ncbi.nlm.nih.gov/pubmed/23555652
http://dx.doi.org/10.1371/journal.pone.0059289
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