Literature DB >> 31796563

Uncovering the Diversity and Activity of Methylotrophic Methanogens in Freshwater Wetland Soils.

Adrienne B Narrowe1, Mikayla A Borton1, David W Hoyt2, Garrett J Smith3, Rebecca A Daly1, Jordan C Angle3, Elizabeth K Eder2, Allison R Wong2, Richard A Wolfe3, Alexandra Pappas3, Gil Bohrer4, Christopher S Miller5, Kelly C Wrighton6.   

Abstract

Wetland soils are one of the largest natural contributors to the emission of methane, a potent greenhouse gas. Currently, microbial contributions to methane emissions from these systems emphasize the roles of acetoclastic and hydrogenotrophic methanogens, while less frequently considering methyl-group substrates (e.g., methanol and methylamines). Here, we integrated laboratory and field experiments to explore the potential for methylotrophic methanogenesis in Old Woman Creek (OWC), a temperate freshwater wetland located in Ohio, USA. We first demonstrated the capacity for methylotrophic methanogenesis in these soils using laboratory soil microcosms amended with trimethylamine. However, subsequent field porewater nuclear magnetic resonance (NMR) analyses to identify methanogenic substrates failed to detect evidence for methylamine compounds in soil porewaters, instead noting the presence of the methylotrophic substrate methanol. Accordingly, our wetland soil-derived metatranscriptomic data indicated that methanol utilization by the Methanomassiliicoccaceae was the likely source of methylotrophic methanogenesis. Methanomassiliicoccaceae relative contributions to mcrA transcripts nearly doubled with depth, accounting for up to 8% of the mcrA transcripts in 25-cm-deep soils. Longitudinal 16S rRNA amplicon and mcrA gene surveys demonstrated that Methanomassiliicoccaceae were stably present over 2 years across lateral and depth gradients in this wetland. Meta-analysis of 16S rRNA sequences similar (>99%) to OWC Methanomassiliicoccaceae in public databases revealed a global distribution, with a high representation in terrestrial soils and sediments. Together, our results demonstrate that methylotrophic methanogenesis likely contributes to methane flux from climatically relevant wetland soils.IMPORTANCE Understanding the sources and controls on microbial methane production from wetland soils is critical to global methane emission predictions, particularly in light of changing climatic conditions. Current biogeochemical models of methanogenesis consider only acetoclastic and hydrogenotrophic sources and exclude methylotrophic methanogenesis, potentially underestimating microbial contributions to methane flux. Our multi-omic results demonstrated that methylotrophic methanogens of the family Methanomassiliicoccaceae were present and active in a freshwater wetland, with metatranscripts indicating that methanol, not methylamines, was the likely substrate under the conditions measured here. However, laboratory experiments indicated the potential for other methanogens to become enriched in response to trimethylamine, revealing the reservoir of methylotrophic methanogenesis potential residing in these soils. Collectively, our approach used coupled field and laboratory investigations to illuminate metabolisms influencing the terrestrial microbial methane cycle, thereby offering direction for increased realism in predictive process-oriented models of methane flux in wetland soils.
Copyright © 2019 Narrowe et al.

Entities:  

Keywords:  Methanomassiliicoccaleszzm321990; metagenomics; metatranscriptomics; methanol; trimethylamine; wetlands

Year:  2019        PMID: 31796563     DOI: 10.1128/mSystems.00320-19

Source DB:  PubMed          Journal:  mSystems        ISSN: 2379-5077            Impact factor:   6.496


  7 in total

1.  Variation in Root Exudate Composition Influences Soil Microbiome Membership and Function.

Authors:  Valerie A Seitz; Bridget B McGivern; Rebecca A Daly; Jacqueline M Chaparro; Mikayla A Borton; Amy M Sheflin; Stephen Kresovich; Lindsay Shields; Meagan E Schipanski; Kelly C Wrighton; Jessica E Prenni
Journal:  Appl Environ Microbiol       Date:  2022-05-10       Impact factor: 5.005

2.  Linking transcriptional dynamics of CH4-cycling grassland soil microbiomes to seasonal gas fluxes.

Authors:  Jana Täumer; Sven Marhan; Verena Groß; Corinna Jensen; Andreas W Kuss; Steffen Kolb; Tim Urich
Journal:  ISME J       Date:  2022-04-06       Impact factor: 11.217

3.  Decrypting bacterial polyphenol metabolism in an anoxic wetland soil.

Authors:  Bridget B McGivern; Malak M Tfaily; Mikayla A Borton; Suzanne M Kosina; Rebecca A Daly; Carrie D Nicora; Samuel O Purvine; Allison R Wong; Mary S Lipton; David W Hoyt; Trent R Northen; Ann E Hagerman; Kelly C Wrighton
Journal:  Nat Commun       Date:  2021-04-29       Impact factor: 17.694

4.  Full Genome Sequence of a Methanomassiliicoccales Representative Enriched from Peat Soil.

Authors:  Micha Weil; Katharina J Hoff; Walter Meißner; Fabian Schäfer; Andrea Söllinger; Haitao Wang; Lisa Hagenau; Andreas W Kuss; Tim Urich
Journal:  Microbiol Resour Announc       Date:  2021-12-02

Review 5.  Microbiological insights into anaerobic digestion for biogas, hydrogen or volatile fatty acids (VFAs): a review.

Authors:  Sharareh Harirchi; Steven Wainaina; Taner Sar; Seyed Ali Nojoumi; Milad Parchami; Mohsen Parchami; Sunita Varjani; Samir Kumar Khanal; Jonathan Wong; Mukesh Kumar Awasthi; Mohammad J Taherzadeh
Journal:  Bioengineered       Date:  2022-03       Impact factor: 3.269

6.  Soil Metabolomics Predict Microbial Taxa as Biomarkers of Moisture Status in Soils from a Tidal Wetland.

Authors:  Taniya RoyChowdhury; Lisa M Bramer; Joseph Brown; Young-Mo Kim; Erika Zink; Thomas O Metz; Lee Ann McCue; Heida L Diefenderfer; Vanessa Bailey
Journal:  Microorganisms       Date:  2022-08-16

7.  Metagenomic evidence of suppressed methanogenic pathways along soil profile after wetland conversion to cropland.

Authors:  Nannan Wang; Xinhao Zhu; Yunjiang Zuo; Jianzhao Liu; Fenghui Yuan; Ziyu Guo; Lihua Zhang; Ying Sun; Chao Gong; Changchun Song; Xiaofeng Xu
Journal:  Front Microbiol       Date:  2022-09-20       Impact factor: 6.064

  7 in total

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