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Reverse Methanogenesis and Respiration in Methanotrophic Archaea

Anaerobic oxidation of methane (AOM) is catalyzed by anaerobic methane-oxidizing archaea (ANME) via a reverse and modified methanogenesis pathway. Methanogens can also reverse the methanogenesis pathway to oxidize methane, but only during net methane production (i.e., “trace methane oxidation”). In...

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Autores principales: Timmers, Peer H. A., Welte, Cornelia U., Koehorst, Jasper J., Plugge, Caroline M., Jetten, Mike S. M., Stams, Alfons J. M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi Publishing Corporation 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5244752/
https://www.ncbi.nlm.nih.gov/pubmed/28154498
http://dx.doi.org/10.1155/2017/1654237
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author Timmers, Peer H. A.
Welte, Cornelia U.
Koehorst, Jasper J.
Plugge, Caroline M.
Jetten, Mike S. M.
Stams, Alfons J. M.
author_facet Timmers, Peer H. A.
Welte, Cornelia U.
Koehorst, Jasper J.
Plugge, Caroline M.
Jetten, Mike S. M.
Stams, Alfons J. M.
author_sort Timmers, Peer H. A.
collection PubMed
description Anaerobic oxidation of methane (AOM) is catalyzed by anaerobic methane-oxidizing archaea (ANME) via a reverse and modified methanogenesis pathway. Methanogens can also reverse the methanogenesis pathway to oxidize methane, but only during net methane production (i.e., “trace methane oxidation”). In turn, ANME can produce methane, but only during net methane oxidation (i.e., enzymatic back flux). Net AOM is exergonic when coupled to an external electron acceptor such as sulfate (ANME-1, ANME-2abc, and ANME-3), nitrate (ANME-2d), or metal (oxides). In this review, the reversibility of the methanogenesis pathway and essential differences between ANME and methanogens are described by combining published information with domain based (meta)genome comparison of archaeal methanotrophs and selected archaea. These differences include abundances and special structure of methyl coenzyme M reductase and of multiheme cytochromes and the presence of menaquinones or methanophenazines. ANME-2a and ANME-2d can use electron acceptors other than sulfate or nitrate for AOM, respectively. Environmental studies suggest that ANME-2d are also involved in sulfate-dependent AOM. ANME-1 seem to use a different mechanism for disposal of electrons and possibly are less versatile in electron acceptors use than ANME-2. Future research will shed light on the molecular basis of reversal of the methanogenic pathway and electron transfer in different ANME types.
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spelling pubmed-52447522017-02-02 Reverse Methanogenesis and Respiration in Methanotrophic Archaea Timmers, Peer H. A. Welte, Cornelia U. Koehorst, Jasper J. Plugge, Caroline M. Jetten, Mike S. M. Stams, Alfons J. M. Archaea Review Article Anaerobic oxidation of methane (AOM) is catalyzed by anaerobic methane-oxidizing archaea (ANME) via a reverse and modified methanogenesis pathway. Methanogens can also reverse the methanogenesis pathway to oxidize methane, but only during net methane production (i.e., “trace methane oxidation”). In turn, ANME can produce methane, but only during net methane oxidation (i.e., enzymatic back flux). Net AOM is exergonic when coupled to an external electron acceptor such as sulfate (ANME-1, ANME-2abc, and ANME-3), nitrate (ANME-2d), or metal (oxides). In this review, the reversibility of the methanogenesis pathway and essential differences between ANME and methanogens are described by combining published information with domain based (meta)genome comparison of archaeal methanotrophs and selected archaea. These differences include abundances and special structure of methyl coenzyme M reductase and of multiheme cytochromes and the presence of menaquinones or methanophenazines. ANME-2a and ANME-2d can use electron acceptors other than sulfate or nitrate for AOM, respectively. Environmental studies suggest that ANME-2d are also involved in sulfate-dependent AOM. ANME-1 seem to use a different mechanism for disposal of electrons and possibly are less versatile in electron acceptors use than ANME-2. Future research will shed light on the molecular basis of reversal of the methanogenic pathway and electron transfer in different ANME types. Hindawi Publishing Corporation 2017-01-05 /pmc/articles/PMC5244752/ /pubmed/28154498 http://dx.doi.org/10.1155/2017/1654237 Text en Copyright © 2017 Peer H. A. Timmers et al. https://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Review Article
Timmers, Peer H. A.
Welte, Cornelia U.
Koehorst, Jasper J.
Plugge, Caroline M.
Jetten, Mike S. M.
Stams, Alfons J. M.
Reverse Methanogenesis and Respiration in Methanotrophic Archaea
title Reverse Methanogenesis and Respiration in Methanotrophic Archaea
title_full Reverse Methanogenesis and Respiration in Methanotrophic Archaea
title_fullStr Reverse Methanogenesis and Respiration in Methanotrophic Archaea
title_full_unstemmed Reverse Methanogenesis and Respiration in Methanotrophic Archaea
title_short Reverse Methanogenesis and Respiration in Methanotrophic Archaea
title_sort reverse methanogenesis and respiration in methanotrophic archaea
topic Review Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5244752/
https://www.ncbi.nlm.nih.gov/pubmed/28154498
http://dx.doi.org/10.1155/2017/1654237
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