2010Marine Geology & Quaternary GeologyRequires access

APPLICATION OF BIOMARKERS AND CARBON ISOTOPES TO COLD SEEP BIOGEOCHEMICAL PROCESSES

Meixun Zhao

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Abstract

Methane flux generally controls cold seep biogeochemical processes and ecosystem.Anaerobic oxidation of methane(AOM)is the major sink of CH4,which is mediated by methane-oxidizing archaea and sulfate-reducing bacteria,and the mechanisms of AOM can be traced using biomarkers and their carbon isotope ratios.Biomarkers for these microbes are depleted in 13C,and the δ13C values of sulfate-reducing bacteria biomarkers are enriched compared to those of archaeal biomarkers,indicating CH4 carbon has flowed from archaea to bacteria during AOM.Methane flux also determines the microbial community structure of cold seeps,with the ANME-2 cluster dominating when CH4 flux is high.Cold seep microbial community structure changes can be traced by the two biomarker indices,OH-AR and BIPH,with higher values for both when ANME-2 cluster dominates.Thus,biomarkers and their δ13C values can not only provide evidence suppoting the occurrence of AOM,but they can also be used to study environments and microbial consortium structure for both modern and ancient cold seeps.

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What this paper is about

Methane flux generally controls cold seep biogeochemical processes and ecosystem.Anaerobic oxidation of methane(AOM)is the major sink of CH4,which is mediated by methane-oxidizing archaea and sulfate-reducing bacteria,and the mechanisms of AOM can be traced using biomarkers and their carbon isotope ratios.Biomarkers for these microbes are depleted in 13C,and the δ13C values of sulfate-reducing bacteria biomarkers are enriched compared to those of archaeal biomarkers,indicating CH4 carbon has flowed from archaea to bacteria during AOM.Methane flux also determines the microbial community structure of cold seeps,with the ANME-2 cluster dominating when CH4 flux is high.Cold seep microbial community structure changes can be traced by the two biomarker indices,OH-AR and BIPH,with higher values for both when ANME-2 cluster dominates.Thus,biomarkers and their δ13C values can not only provide evidence suppoting the occurrence of AOM,but they can also be used to study environments and microbial consortium structure for both modern and ancient cold seeps.

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Available abstract

Methane flux generally controls cold seep biogeochemical processes and ecosystem.Anaerobic oxidation of methane(AOM)is the major sink of CH4,which is mediated by methane-oxidizing archaea and sulfate-reducing bacteria,and the mechanisms of AOM can be traced using biomarkers and their carbon isotope ratios.Biomarkers for these microbes are depleted in 13C,and the δ13C values of sulfate-reducing bacteria biomarkers are enriched compared to those of archaeal biomarkers,indicating CH4 carbon has flowed from archaea to bacteria during AOM.Methane flux also determines the microbial community structure of cold seeps,with the ANME-2 cluster dominating when CH4 flux is high.Cold seep microbial community structure changes can be traced by the two biomarker indices,OH-AR and BIPH,with higher values for both when ANME-2 cluster dominates.Thus,biomarkers and their δ13C values can not only provide evidence suppoting the occurrence of AOM,but they can also be used to study environments and microbial consortium structure for both modern and ancient cold seeps.

Key concepts: Cold seep, Archaea, Biogeochemical cycle, Anaerobic oxidation of methane, Methane, Environmental chemistry, Isotopes of carbon, Microbial population biology

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