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Genomic Insights into the Carbon and Energy Metabolism of a Thermophilic Deep-Sea Bacterium Deferribacter autotrophicus Revealed New Metabolic Traits in the Phylum Deferribacteres

Information on the biochemical pathways of carbon and energy metabolism in representatives of the deep lineage bacterial phylum Deferribacteres are scarce. Here, we report the results of the sequencing and analysis of the high-quality draft genome of the thermophilic chemolithoautotrophic anaerobe D...

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Autores principales: Slobodkin, Alexander, Slobodkina, Galina, Allioux, Maxime, Alain, Karine, Jebbar, Mohamed, Shadrin, Valerian, Kublanov, Ilya, Toshchakov, Stepan, Bonch-Osmolovskaya, Elizaveta
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6896113/
https://www.ncbi.nlm.nih.gov/pubmed/31717820
http://dx.doi.org/10.3390/genes10110849
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author Slobodkin, Alexander
Slobodkina, Galina
Allioux, Maxime
Alain, Karine
Jebbar, Mohamed
Shadrin, Valerian
Kublanov, Ilya
Toshchakov, Stepan
Bonch-Osmolovskaya, Elizaveta
author_facet Slobodkin, Alexander
Slobodkina, Galina
Allioux, Maxime
Alain, Karine
Jebbar, Mohamed
Shadrin, Valerian
Kublanov, Ilya
Toshchakov, Stepan
Bonch-Osmolovskaya, Elizaveta
author_sort Slobodkin, Alexander
collection PubMed
description Information on the biochemical pathways of carbon and energy metabolism in representatives of the deep lineage bacterial phylum Deferribacteres are scarce. Here, we report the results of the sequencing and analysis of the high-quality draft genome of the thermophilic chemolithoautotrophic anaerobe Deferribacter autotrophicus. Genomic data suggest that CO(2) assimilation is carried out by recently proposed reversible tricarboxylic acid cycle (“roTCA cycle”). The predicted genomic ability of D. autotrophicus to grow due to the oxidation of carbon monoxide was experimentally proven. CO oxidation was coupled with the reduction of nitrate to ammonium. Utilization of CO most likely involves anaerobic [Ni, Fe]-containing CO dehydrogenase. This is the first evidence of CO oxidation in the phylum Deferribacteres. The genome of D. autotrophicus encodes a Nap-type complex of nitrate reduction. However, the conversion of produced nitrite to ammonium proceeds via a non-canonical pathway with the participation of hydroxylamine oxidoreductase (Hao) and hydroxylamine reductase. The genome contains 17 genes of putative multiheme c-type cytochromes and “e-pilin” genes, some of which are probably involved in Fe(III) reduction. Genomic analysis indicates that the roTCA cycle of CO(2) fixation and putative Hao-enabled ammonification may occur in several members of the phylum Deferribacteres.
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spelling pubmed-68961132019-12-23 Genomic Insights into the Carbon and Energy Metabolism of a Thermophilic Deep-Sea Bacterium Deferribacter autotrophicus Revealed New Metabolic Traits in the Phylum Deferribacteres Slobodkin, Alexander Slobodkina, Galina Allioux, Maxime Alain, Karine Jebbar, Mohamed Shadrin, Valerian Kublanov, Ilya Toshchakov, Stepan Bonch-Osmolovskaya, Elizaveta Genes (Basel) Article Information on the biochemical pathways of carbon and energy metabolism in representatives of the deep lineage bacterial phylum Deferribacteres are scarce. Here, we report the results of the sequencing and analysis of the high-quality draft genome of the thermophilic chemolithoautotrophic anaerobe Deferribacter autotrophicus. Genomic data suggest that CO(2) assimilation is carried out by recently proposed reversible tricarboxylic acid cycle (“roTCA cycle”). The predicted genomic ability of D. autotrophicus to grow due to the oxidation of carbon monoxide was experimentally proven. CO oxidation was coupled with the reduction of nitrate to ammonium. Utilization of CO most likely involves anaerobic [Ni, Fe]-containing CO dehydrogenase. This is the first evidence of CO oxidation in the phylum Deferribacteres. The genome of D. autotrophicus encodes a Nap-type complex of nitrate reduction. However, the conversion of produced nitrite to ammonium proceeds via a non-canonical pathway with the participation of hydroxylamine oxidoreductase (Hao) and hydroxylamine reductase. The genome contains 17 genes of putative multiheme c-type cytochromes and “e-pilin” genes, some of which are probably involved in Fe(III) reduction. Genomic analysis indicates that the roTCA cycle of CO(2) fixation and putative Hao-enabled ammonification may occur in several members of the phylum Deferribacteres. MDPI 2019-10-26 /pmc/articles/PMC6896113/ /pubmed/31717820 http://dx.doi.org/10.3390/genes10110849 Text en © 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Slobodkin, Alexander
Slobodkina, Galina
Allioux, Maxime
Alain, Karine
Jebbar, Mohamed
Shadrin, Valerian
Kublanov, Ilya
Toshchakov, Stepan
Bonch-Osmolovskaya, Elizaveta
Genomic Insights into the Carbon and Energy Metabolism of a Thermophilic Deep-Sea Bacterium Deferribacter autotrophicus Revealed New Metabolic Traits in the Phylum Deferribacteres
title Genomic Insights into the Carbon and Energy Metabolism of a Thermophilic Deep-Sea Bacterium Deferribacter autotrophicus Revealed New Metabolic Traits in the Phylum Deferribacteres
title_full Genomic Insights into the Carbon and Energy Metabolism of a Thermophilic Deep-Sea Bacterium Deferribacter autotrophicus Revealed New Metabolic Traits in the Phylum Deferribacteres
title_fullStr Genomic Insights into the Carbon and Energy Metabolism of a Thermophilic Deep-Sea Bacterium Deferribacter autotrophicus Revealed New Metabolic Traits in the Phylum Deferribacteres
title_full_unstemmed Genomic Insights into the Carbon and Energy Metabolism of a Thermophilic Deep-Sea Bacterium Deferribacter autotrophicus Revealed New Metabolic Traits in the Phylum Deferribacteres
title_short Genomic Insights into the Carbon and Energy Metabolism of a Thermophilic Deep-Sea Bacterium Deferribacter autotrophicus Revealed New Metabolic Traits in the Phylum Deferribacteres
title_sort genomic insights into the carbon and energy metabolism of a thermophilic deep-sea bacterium deferribacter autotrophicus revealed new metabolic traits in the phylum deferribacteres
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6896113/
https://www.ncbi.nlm.nih.gov/pubmed/31717820
http://dx.doi.org/10.3390/genes10110849
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