Resource quality affects carbon cycling in deep-sea sediments

被引:0
作者
Daniel J Mayor
Barry Thornton
Steve Hay
Alain F Zuur
Graeme W Nicol
Jenna M McWilliam
Ursula F M Witte
机构
[1] Institute of Biological and Environmental Sciences,
[2] Oceanlab,undefined
[3] University of Aberdeen,undefined
[4] The James Hutton Institute,undefined
[5] Marine Scotland Science,undefined
[6] Scottish Government,undefined
[7] Marine Laboratory,undefined
[8] Highland Statistics Ltd,undefined
[9] Institute of Biological and Environmental Sciences,undefined
[10] University of Aberdeen,undefined
来源
The ISME Journal | 2012年 / 6卷
关键词
bacterial growth efficiency; biogeochemistry; carbon mineralization; deep sea; resource quality; stable isotope;
D O I
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中图分类号
学科分类号
摘要
Deep-sea sediments cover ∼70% of Earth's surface and represent the largest interface between the biological and geological cycles of carbon. Diatoms and zooplankton faecal pellets naturally transport organic material from the upper ocean down to the deep seabed, but how these qualitatively different substrates affect the fate of carbon in this permanently cold environment remains unknown. We added equal quantities of 13C-labelled diatoms and faecal pellets to a cold water (−0.7 °C) sediment community retrieved from 1080 m in the Faroe-Shetland Channel, Northeast Atlantic, and quantified carbon mineralization and uptake by the resident bacteria and macrofauna over a 6-day period. High-quality, diatom-derived carbon was mineralized >300% faster than that from low-quality faecal pellets, demonstrating that qualitative differences in organic matter drive major changes in the residence time of carbon at the deep seabed. Benthic bacteria dominated biological carbon processing in our experiments, yet showed no evidence of resource quality-limited growth; they displayed lower growth efficiencies when respiring diatoms. These effects were consistent in contrasting months. We contend that respiration and growth in the resident sediment microbial communities were substrate and temperature limited, respectively. Our study has important implications for how future changes in the biochemical makeup of exported organic matter will affect the balance between mineralization and sequestration of organic carbon in the largest ecosystem on Earth.
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页码:1740 / 1748
页数:8
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  • [1] Andersson JH(2008)Short-term fate of phytodetritus in sediments across the Arabian Sea oxygen minimum zone Biogeosciences 5 43-53
  • [2] Woulds C(2006)Temperature regulation of bacterial production, respiration and growth efficiency in a temperate salt-marsh estuary Aquat Microb Ecol 43 243-254
  • [3] Schwartz M(1998)Temperature dependence of microbial degradation of organic matter in marine sediments: polysaccharide hydrolysis, oxygen consumption, and sulphate reduction Mar Ecol Prog Ser 165 59-70
  • [4] Cowie GL(1987)Copepod fecal pellets: abundance, sedimentation and content at a permanent station in the Norwegian Sea in May/June 1986 Mar Ecol Prog Ser 38 45-51
  • [5] Levin LA(1983)Seasonal sedimentation of phytoplankton to the deep-sea benthos Nature 302 520-522
  • [6] Soetaert K(1996)Effect of organic enrichments on hydrolytic potentials and growth of bacteria in deep-sea sediments Mar Ecol Prog Ser 140 239-250
  • [7] Apple JK(2002)Stable isotopes and biomarkers in microbial ecology FEMS Microb Ecol 40 85-95
  • [8] del Giorgio PA(1990)Effects of substrate concentration, growth state, and oxygen availability on relationships among bacterial carbon, nitrogen and phosphorus content FEMS Microbiol Lett 74 345-355
  • [9] Kemp WM(2006)Benthic microbial and whole-community responses to different amounts of Limnol Oceanogr 54 157-165
  • [10] Arnosti C(2007)C-enriched algae: Chem Rev 107 467-485