Empirical evidence reveals seasonally dependent reduction in nitrification in coastal sediments subjected to near future ocean acidification.

Research so far has provided little evidence that benthic biogeochemical cycling is affected by ocean acidification under realistic climate change scenarios. We measured nutrient exchange and sediment community oxygen consumption (SCOC) rates to estimate nitrification in natural coastal permeable an...

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Main Authors: Ulrike Braeckman, Carl Van Colen, Katja Guilini, Dirk Van Gansbeke, Karline Soetaert, Magda Vincx, Jan Vanaverbeke
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2014-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC4199590?pdf=render
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spelling doaj-b370e9c23fc247ff80a8a457a1e2c2b02020-11-25T01:09:29ZengPublic Library of Science (PLoS)PLoS ONE1932-62032014-01-01910e10815310.1371/journal.pone.0108153Empirical evidence reveals seasonally dependent reduction in nitrification in coastal sediments subjected to near future ocean acidification.Ulrike BraeckmanCarl Van ColenKatja GuiliniDirk Van GansbekeKarline SoetaertMagda VincxJan VanaverbekeResearch so far has provided little evidence that benthic biogeochemical cycling is affected by ocean acidification under realistic climate change scenarios. We measured nutrient exchange and sediment community oxygen consumption (SCOC) rates to estimate nitrification in natural coastal permeable and fine sandy sediments under pre-phytoplankton bloom and bloom conditions. Ocean acidification, as mimicked in the laboratory by a realistic pH decrease of 0.3, significantly reduced SCOC on average by 60% and benthic nitrification rates on average by 94% in both sediment types in February (pre-bloom period), but not in April (bloom period). No changes in macrofauna functional community (density, structural and functional diversity) were observed between ambient and acidified conditions, suggesting that changes in benthic biogeochemical cycling were predominantly mediated by changes in the activity of the microbial community during the short-term incubations (14 days), rather than by changes in engineering effects of bioturbating and bio-irrigating macrofauna. As benthic nitrification makes up the gross of ocean nitrification, a slowdown of this nitrogen cycling pathway in both permeable and fine sediments in winter, could therefore have global impacts on coupled nitrification-denitrification and hence eventually on pelagic nutrient availability.http://europepmc.org/articles/PMC4199590?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Ulrike Braeckman
Carl Van Colen
Katja Guilini
Dirk Van Gansbeke
Karline Soetaert
Magda Vincx
Jan Vanaverbeke
spellingShingle Ulrike Braeckman
Carl Van Colen
Katja Guilini
Dirk Van Gansbeke
Karline Soetaert
Magda Vincx
Jan Vanaverbeke
Empirical evidence reveals seasonally dependent reduction in nitrification in coastal sediments subjected to near future ocean acidification.
PLoS ONE
author_facet Ulrike Braeckman
Carl Van Colen
Katja Guilini
Dirk Van Gansbeke
Karline Soetaert
Magda Vincx
Jan Vanaverbeke
author_sort Ulrike Braeckman
title Empirical evidence reveals seasonally dependent reduction in nitrification in coastal sediments subjected to near future ocean acidification.
title_short Empirical evidence reveals seasonally dependent reduction in nitrification in coastal sediments subjected to near future ocean acidification.
title_full Empirical evidence reveals seasonally dependent reduction in nitrification in coastal sediments subjected to near future ocean acidification.
title_fullStr Empirical evidence reveals seasonally dependent reduction in nitrification in coastal sediments subjected to near future ocean acidification.
title_full_unstemmed Empirical evidence reveals seasonally dependent reduction in nitrification in coastal sediments subjected to near future ocean acidification.
title_sort empirical evidence reveals seasonally dependent reduction in nitrification in coastal sediments subjected to near future ocean acidification.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2014-01-01
description Research so far has provided little evidence that benthic biogeochemical cycling is affected by ocean acidification under realistic climate change scenarios. We measured nutrient exchange and sediment community oxygen consumption (SCOC) rates to estimate nitrification in natural coastal permeable and fine sandy sediments under pre-phytoplankton bloom and bloom conditions. Ocean acidification, as mimicked in the laboratory by a realistic pH decrease of 0.3, significantly reduced SCOC on average by 60% and benthic nitrification rates on average by 94% in both sediment types in February (pre-bloom period), but not in April (bloom period). No changes in macrofauna functional community (density, structural and functional diversity) were observed between ambient and acidified conditions, suggesting that changes in benthic biogeochemical cycling were predominantly mediated by changes in the activity of the microbial community during the short-term incubations (14 days), rather than by changes in engineering effects of bioturbating and bio-irrigating macrofauna. As benthic nitrification makes up the gross of ocean nitrification, a slowdown of this nitrogen cycling pathway in both permeable and fine sediments in winter, could therefore have global impacts on coupled nitrification-denitrification and hence eventually on pelagic nutrient availability.
url http://europepmc.org/articles/PMC4199590?pdf=render
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