Versatile methanotrophs form an active methane biofilter in the oxycline of a seasonally stratified coastal basin

Author:

Venetz Jessica1ORCID,Żygadłowska Olga M.2,Lenstra Wytze K.2,van Helmond Niels A. G. M.2,Nuijten Guylaine H. L.1,Wallenius Anna J.1,Dalcin Martins Paula13,Slomp Caroline P.12,Jetten Mike S. M.1,Veraart Annelies J.4

Affiliation:

1. Department of Microbiology, Radboud Institute for Biological and Environmental Sciences Radboud University Nijmegen The Netherlands

2. Department of Earth Sciences, Faculty of Geosciences Utrecht University Utrecht The Netherlands

3. Groningen Institute for Evolutionary Life Sciences University of Groningen Groningen The Netherlands

4. Department of Aquatic Ecology and Environmental Biology, Radboud Institute for Biological and Environmental Sciences Radboud University Nijmegen The Netherlands

Abstract

AbstractThe potential and drivers of microbial methane removal in the water column of seasonally stratified coastal ecosystems and the importance of the methanotrophic community composition for ecosystem functioning are not well explored. Here, we combined depth profiles of oxygen and methane with 16S rRNA gene amplicon sequencing, metagenomics and methane oxidation rates at discrete depths in a stratified coastal marine system (Lake Grevelingen, The Netherlands). Three amplicon sequence variants (ASVs) belonging to different genera of aerobic Methylomonadaceae and the corresponding three methanotrophic metagenome‐assembled genomes (MOB‐MAGs) were retrieved by 16S rRNA sequencing and metagenomic analysis, respectively. The abundances of the different methanotrophic ASVs and MOB‐MAGs peaked at different depths along the methane oxygen counter‐gradient and the MOB‐MAGs show a quite diverse genomic potential regarding oxygen metabolism, partial denitrification and sulphur metabolism. Moreover, potential aerobic methane oxidation rates indicated high methanotrophic activity throughout the methane oxygen counter‐gradient, even at depths with low in situ methane or oxygen concentration. This suggests that niche‐partitioning with high genomic versatility of the present Methylomonadaceae might contribute to the functional resilience of the methanotrophic community and ultimately the efficiency of methane removal in the stratified water column of a marine basin.

Funder

Netherlands Earth System Science Centre

Publisher

Wiley

Subject

Ecology, Evolution, Behavior and Systematics,Microbiology

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