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“Candidatus Thermonerobacter thiotrophicus,” A Non-phototrophic Member of the Bacteroidetes/Chlorobi With Dissimilatory Sulfur Metabolism in Hot Spring Mat Communities

In this study we present evidence for a novel, thermophilic bacterium with dissimilatory sulfur metabolism, tentatively named “Candidatus Thermonerobacter thiotrophicus,” which is affiliated with the Bacteroides/Ignavibacteria/Chlorobi and which we predict to be a sulfate reducer. Dissimilatory sulf...

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Autores principales: Thiel, Vera, Garcia Costas, Amaya M., Fortney, Nathaniel W., Martinez, Joval N., Tank, Marcus, Roden, Eric E., Boyd, Eric S., Ward, David M., Hanada, Satoshi, Bryant, Donald A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6338057/
https://www.ncbi.nlm.nih.gov/pubmed/30687241
http://dx.doi.org/10.3389/fmicb.2018.03159
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author Thiel, Vera
Garcia Costas, Amaya M.
Fortney, Nathaniel W.
Martinez, Joval N.
Tank, Marcus
Roden, Eric E.
Boyd, Eric S.
Ward, David M.
Hanada, Satoshi
Bryant, Donald A.
author_facet Thiel, Vera
Garcia Costas, Amaya M.
Fortney, Nathaniel W.
Martinez, Joval N.
Tank, Marcus
Roden, Eric E.
Boyd, Eric S.
Ward, David M.
Hanada, Satoshi
Bryant, Donald A.
author_sort Thiel, Vera
collection PubMed
description In this study we present evidence for a novel, thermophilic bacterium with dissimilatory sulfur metabolism, tentatively named “Candidatus Thermonerobacter thiotrophicus,” which is affiliated with the Bacteroides/Ignavibacteria/Chlorobi and which we predict to be a sulfate reducer. Dissimilatory sulfate reduction (DSR) is an important and ancient metabolic process for energy conservation with global importance for geochemical sulfur and carbon cycling. Characterized sulfate-reducing microorganisms (SRM) are found in a limited number of bacterial and archaeal phyla. However, based on highly diverse environmental dsrAB sequences, a variety of uncultivated and unidentified SRM must exist. The recent development of high-throughput sequencing methods allows the phylogenetic identification of some of these uncultured SRM. In this study, we identified a novel putative SRM inhabiting hot spring microbial mats that is a member of the OPB56 clade (“Ca. Kapabacteria”) within the Bacteroidetes/Chlorobi superphylum. Partial genomes for this new organism were retrieved from metagenomes from three different hot springs in Yellowstone National Park, United States, and Japan. Supporting the prediction of a sulfate-reducing metabolism for this organism during period of anoxia, diel metatranscriptomic analyses indicate highest relative transcript levels in situ for all DSR-related genes at night. The presence of terminal oxidases, which are transcribed during the day, further suggests that these organisms might also perform aerobic respiration. The relative phylogenetic proximity to the sulfur-oxidizing, chlorophototrophic Chlorobi further raises new questions about the evolution of dissimilatory sulfur metabolism.
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spelling pubmed-63380572019-01-25 “Candidatus Thermonerobacter thiotrophicus,” A Non-phototrophic Member of the Bacteroidetes/Chlorobi With Dissimilatory Sulfur Metabolism in Hot Spring Mat Communities Thiel, Vera Garcia Costas, Amaya M. Fortney, Nathaniel W. Martinez, Joval N. Tank, Marcus Roden, Eric E. Boyd, Eric S. Ward, David M. Hanada, Satoshi Bryant, Donald A. Front Microbiol Microbiology In this study we present evidence for a novel, thermophilic bacterium with dissimilatory sulfur metabolism, tentatively named “Candidatus Thermonerobacter thiotrophicus,” which is affiliated with the Bacteroides/Ignavibacteria/Chlorobi and which we predict to be a sulfate reducer. Dissimilatory sulfate reduction (DSR) is an important and ancient metabolic process for energy conservation with global importance for geochemical sulfur and carbon cycling. Characterized sulfate-reducing microorganisms (SRM) are found in a limited number of bacterial and archaeal phyla. However, based on highly diverse environmental dsrAB sequences, a variety of uncultivated and unidentified SRM must exist. The recent development of high-throughput sequencing methods allows the phylogenetic identification of some of these uncultured SRM. In this study, we identified a novel putative SRM inhabiting hot spring microbial mats that is a member of the OPB56 clade (“Ca. Kapabacteria”) within the Bacteroidetes/Chlorobi superphylum. Partial genomes for this new organism were retrieved from metagenomes from three different hot springs in Yellowstone National Park, United States, and Japan. Supporting the prediction of a sulfate-reducing metabolism for this organism during period of anoxia, diel metatranscriptomic analyses indicate highest relative transcript levels in situ for all DSR-related genes at night. The presence of terminal oxidases, which are transcribed during the day, further suggests that these organisms might also perform aerobic respiration. The relative phylogenetic proximity to the sulfur-oxidizing, chlorophototrophic Chlorobi further raises new questions about the evolution of dissimilatory sulfur metabolism. Frontiers Media S.A. 2019-01-09 /pmc/articles/PMC6338057/ /pubmed/30687241 http://dx.doi.org/10.3389/fmicb.2018.03159 Text en Copyright © 2019 Thiel, Garcia Costas, Fortney, Martinez, Tank, Roden, Boyd, Ward, Hanada and Bryant. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Microbiology
Thiel, Vera
Garcia Costas, Amaya M.
Fortney, Nathaniel W.
Martinez, Joval N.
Tank, Marcus
Roden, Eric E.
Boyd, Eric S.
Ward, David M.
Hanada, Satoshi
Bryant, Donald A.
“Candidatus Thermonerobacter thiotrophicus,” A Non-phototrophic Member of the Bacteroidetes/Chlorobi With Dissimilatory Sulfur Metabolism in Hot Spring Mat Communities
title “Candidatus Thermonerobacter thiotrophicus,” A Non-phototrophic Member of the Bacteroidetes/Chlorobi With Dissimilatory Sulfur Metabolism in Hot Spring Mat Communities
title_full “Candidatus Thermonerobacter thiotrophicus,” A Non-phototrophic Member of the Bacteroidetes/Chlorobi With Dissimilatory Sulfur Metabolism in Hot Spring Mat Communities
title_fullStr “Candidatus Thermonerobacter thiotrophicus,” A Non-phototrophic Member of the Bacteroidetes/Chlorobi With Dissimilatory Sulfur Metabolism in Hot Spring Mat Communities
title_full_unstemmed “Candidatus Thermonerobacter thiotrophicus,” A Non-phototrophic Member of the Bacteroidetes/Chlorobi With Dissimilatory Sulfur Metabolism in Hot Spring Mat Communities
title_short “Candidatus Thermonerobacter thiotrophicus,” A Non-phototrophic Member of the Bacteroidetes/Chlorobi With Dissimilatory Sulfur Metabolism in Hot Spring Mat Communities
title_sort “candidatus thermonerobacter thiotrophicus,” a non-phototrophic member of the bacteroidetes/chlorobi with dissimilatory sulfur metabolism in hot spring mat communities
topic Microbiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6338057/
https://www.ncbi.nlm.nih.gov/pubmed/30687241
http://dx.doi.org/10.3389/fmicb.2018.03159
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