Literature DB >> 32627825

Differences in substrate use linked to divergent carbon flow during litter decomposition.

Michaeline B N Albright1, Jaron Thompson2, Marie E Kroeger1, Renee Johansen1, Danielle E M Ulrich1, La Verne Gallegos-Graves1, Brian Munsky2,3, John Dunbar1.   

Abstract

Discovering widespread microbial processes that create variation in soil carbon (C) cycling within ecosystems may improve soil C modeling. Toward this end, we screened 206 soil communities decomposing plant litter in a common garden microcosm environment and examined features linked to divergent patterns of C flow. C flow was measured as carbon dioxide (CO2) and dissolved organic carbon (DOC) from 44-days of litter decomposition. Two large groups of microbial communities representing 'high' and 'low' DOC phenotypes from original soil and 44-day microcosm samples were down-selected for fungal and bacterial profiling. Metatranscriptomes were also sequenced from a smaller subset of communities in each group. The two groups exhibited differences in average rate of CO2 production, demonstrating that the divergent patterns of C flow arose from innate functional constraints on C metabolism, not a time-dependent artefact. To infer functional constraints, we identified features - traits at the organism, pathway or gene level - linked to the high and low DOC phenotypes using RNA-Seq approaches and machine learning approaches. Substrate use differed across the high and low DOC phenotypes. Additional features suggested that divergent patterns of C flow may be driven in part by differences in organism interactions that affect DOC abundance directly or indirectly by controlling community structure. © FEMS 2020.

Entities:  

Keywords:  bacteriovores; carbon cycling; carbon dioxide; dissolved organic carbon; effect traits; fungivores; machine learning; metatranscriptome; microbiome; oligotrophs; physiology; soil

Year:  2020        PMID: 32627825     DOI: 10.1093/femsec/fiaa135

Source DB:  PubMed          Journal:  FEMS Microbiol Ecol        ISSN: 0168-6496            Impact factor:   4.194


  1 in total

1.  Microbial community composition controls carbon flux across litter types in early phase of litter decomposition.

Authors:  Marie E Kroeger; M Rae DeVan; Jaron Thompson; Renee Johansen; La Verne Gallegos-Graves; Deanna Lopez; Andreas Runde; Thomas Yoshida; Brian Munsky; Sanna Sevanto; Michaeline B N Albright; John Dunbar
Journal:  Environ Microbiol       Date:  2021-08-17       Impact factor: 5.476

  1 in total

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