Literature DB >> 26873322

Alpha- and Gammaproteobacterial Methanotrophs Codominate the Active Methane-Oxidizing Communities in an Acidic Boreal Peat Bog.

Kaitlin C Esson1, Xueju Lin1, Deepak Kumaresan2, Jeffrey P Chanton3, J Colin Murrell4, Joel E Kostka5.   

Abstract

The objective of this study was to characterize metabolically active, aerobic methanotrophs in an ombrotrophic peatland in the Marcell Experimental Forest, in Minnesota. Methanotrophs were investigated in the field and in laboratory incubations using DNA-stable isotope probing (SIP), expression studies on particulate methane monooxygenase (pmoA) genes, and amplicon sequencing of 16S rRNA genes. Potential rates of oxidation ranged from 14 to 17 μmol of CH4g dry weight soil(-1)day(-1) Within DNA-SIP incubations, the relative abundance of methanotrophs increased from 4% in situ to 25 to 36% after 8 to 14 days. Phylogenetic analysis of the(13)C-enriched DNA fractions revealed that the active methanotrophs were dominated by the genera Methylocystis(type II;Alphaproteobacteria),Methylomonas, and Methylovulum(both, type I;Gammaproteobacteria). In field samples, a transcript-to-gene ratio of 1 to 2 was observed for pmoA in surface peat layers, which attenuated rapidly with depth, indicating that the highest methane consumption was associated with a depth of 0 to 10 cm. Metagenomes and sequencing of cDNA pmoA amplicons from field samples confirmed that the dominant active methanotrophs were Methylocystis and Methylomonas Although type II methanotrophs have long been shown to mediate methane consumption in peatlands, our results indicate that members of the genera Methylomonas and Methylovulum(type I) can significantly contribute to aerobic methane oxidation in these ecosystems.
Copyright © 2016, American Society for Microbiology. All Rights Reserved.

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Year:  2016        PMID: 26873322      PMCID: PMC4959502          DOI: 10.1128/AEM.03640-15

Source DB:  PubMed          Journal:  Appl Environ Microbiol        ISSN: 0099-2240            Impact factor:   4.792


  44 in total

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Journal:  Nature       Date:  2006-04-13       Impact factor: 49.962

5.  Revealing the uncultivated majority: combining DNA stable-isotope probing, multiple displacement amplification and metagenomic analyses of uncultivated Methylocystis in acidic peatlands.

Authors:  Yin Chen; Marc G Dumont; Josh D Neufeld; Levente Bodrossy; Nancy Stralis-Pavese; Niall P McNamara; Nick Ostle; Maria J I Briones; J Colin Murrell
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2.  Recovery in methanotrophic activity does not reflect on the methane-driven interaction network after peat mining.

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4.  Molybdenum-Based Diazotrophy in a Sphagnum Peatland in Northern Minnesota.

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6.  Methane Monooxygenase Gene Transcripts as Quantitative Biomarkers of Methanotrophic Activity in Methylosinus trichosporium OB3b.

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Review 7.  Prospecting the significance of methane-utilizing bacteria in agriculture.

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8.  Survey of methanotrophic diversity in various ecosystems by degenerate methane monooxygenase gene primers.

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9.  Enrichment culture and identification of endophytic methanotrophs isolated from peatland plants.

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10.  Genomic Insights Into the Acid Adaptation of Novel Methanotrophs Enriched From Acidic Forest Soils.

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