Diverse sediment microbiota shape methane emission temperature sensitivity in Arctic lakes.

Emerson, Joanne B; Varner, Ruth K; Wik, Martin; Parks, Donovan H; Neumann, Rebecca B; Johnson, Joel E; Singleton, Caitlin M; Woodcroft, Ben J et al. · Nat Commun · 2021

basic_science · Level V

Where this comes from

Abstract

Northern post-glacial lakes are significant, increasing sources of atmospheric carbon through ebullition (bubbling) of microbially-produced methane (CH<sub>4</sub>) from sediments. Ebullitive CH<sub>4</sub> flux correlates strongly with temperature, reflecting that solar radiation drives emissions. However, here we show that the slope of the temperature-CH<sub>4</sub> flux relationship differs spatially across two post-glacial lakes in Sweden. We compared these CH<sub>4</sub> emission patterns with sediment microbial (metagenomic and amplicon), isotopic, and geochemical data. The temperature-associated increase in CH<sub>4</sub> 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 CH<sub>4</sub>-cycling microorganisms and syntrophs, were predictive of porewater CH<sub>4</sub> concentrations. Results suggest that deeper lake regions, which currently emit less CH<sub>4</sub> than shallower edges, could add substantially to CH<sub>4</sub> emissions in a warmer Arctic and that CH<sub>4</sub> emission predictions may be improved by accounting for spatial variations in sediment microbiota.

Medical subject headings