Diverse sediment microbiota shape methane emission temperature sensitivity in Arctic lakes

Author:

Emerson Joanne B.ORCID,Varner Ruth K.ORCID,Wik Martin,Parks Donovan H.ORCID,Neumann Rebecca B.ORCID,Johnson Joel E.,Singleton Caitlin M.ORCID,Woodcroft Ben J.ORCID,Tollerson Rodney,Owusu-Dommey Akosua,Binder Morgan,Freitas Nancy L.ORCID,Crill Patrick M.ORCID,Saleska Scott R.,Tyson Gene W.ORCID,Rich Virginia I.ORCID

Abstract

AbstractNorthern post-glacial lakes are significant, increasing sources of atmospheric carbon through ebullition (bubbling) of microbially-produced methane (CH4) from sediments. Ebullitive CH4 flux correlates strongly with temperature, reflecting that solar radiation drives emissions. However, here we show that the slope of the temperature-CH4 flux relationship differs spatially across two post-glacial lakes in Sweden. We compared these CH4 emission patterns with sediment microbial (metagenomic and amplicon), isotopic, and geochemical data. The temperature-associated increase in CH4 emissions was greater in lake middles—where methanogens were more abundant—than edges, and sediment communities were distinct between edges and middles. Microbial abundances, including those of CH4-cycling microorganisms and syntrophs, were predictive of porewater CH4 concentrations. Results suggest that deeper lake regions, which currently emit less CH4 than shallower edges, could add substantially to CH4 emissions in a warmer Arctic and that CH4 emission predictions may be improved by accounting for spatial variations in sediment microbiota.

Funder

DOE | SC | Biological and Environmental Research

University of California, Davis College of Agricultural and Environmental Sciences and Department of Plant Pathology

NERU

National Science Foundation

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry

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