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A Comparative Genomic Analysis of Energy Metabolism in Sulfate Reducing Bacteria and Archaea

The number of sequenced genomes of sulfate reducing organisms (SRO) has increased significantly in the recent years, providing an opportunity for a broader perspective into their energy metabolism. In this work we carried out a comparative survey of energy metabolism genes found in 25 available geno...

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Autores principales: Pereira, Inês A. Cardoso, Ramos, Ana Raquel, Grein, Fabian, Marques, Marta Coimbra, da Silva, Sofia Marques, Venceslau, Sofia Santos
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Research Foundation 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3119410/
https://www.ncbi.nlm.nih.gov/pubmed/21747791
http://dx.doi.org/10.3389/fmicb.2011.00069
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author Pereira, Inês A. Cardoso
Ramos, Ana Raquel
Grein, Fabian
Marques, Marta Coimbra
da Silva, Sofia Marques
Venceslau, Sofia Santos
author_facet Pereira, Inês A. Cardoso
Ramos, Ana Raquel
Grein, Fabian
Marques, Marta Coimbra
da Silva, Sofia Marques
Venceslau, Sofia Santos
author_sort Pereira, Inês A. Cardoso
collection PubMed
description The number of sequenced genomes of sulfate reducing organisms (SRO) has increased significantly in the recent years, providing an opportunity for a broader perspective into their energy metabolism. In this work we carried out a comparative survey of energy metabolism genes found in 25 available genomes of SRO. This analysis revealed a higher diversity of possible energy conserving pathways than classically considered to be present in these organisms, and permitted the identification of new proteins not known to be present in this group. The Deltaproteobacteria (and Thermodesulfovibrio yellowstonii) are characterized by a large number of cytochromes c and cytochrome c-associated membrane redox complexes, indicating that periplasmic electron transfer pathways are important in these bacteria. The Archaea and Clostridia groups contain practically no cytochromes c or associated membrane complexes. However, despite the absence of a periplasmic space, a few extracytoplasmic membrane redox proteins were detected in the Gram-positive bacteria. Several ion-translocating complexes were detected in SRO including H(+)-pyrophosphatases, complex I homologs, Rnf, and Ech/Coo hydrogenases. Furthermore, we found evidence that cytoplasmic electron bifurcating mechanisms, recently described for other anaerobes, are also likely to play an important role in energy metabolism of SRO. A number of cytoplasmic [NiFe] and [FeFe] hydrogenases, formate dehydrogenases, and heterodisulfide reductase-related proteins are likely candidates to be involved in energy coupling through electron bifurcation, from diverse electron donors such as H(2), formate, pyruvate, NAD(P)H, β-oxidation, and others. In conclusion, this analysis indicates that energy metabolism of SRO is far more versatile than previously considered, and that both chemiosmotic and flavin-based electron bifurcating mechanisms provide alternative strategies for energy conservation.
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spelling pubmed-31194102011-07-11 A Comparative Genomic Analysis of Energy Metabolism in Sulfate Reducing Bacteria and Archaea Pereira, Inês A. Cardoso Ramos, Ana Raquel Grein, Fabian Marques, Marta Coimbra da Silva, Sofia Marques Venceslau, Sofia Santos Front Microbiol Microbiology The number of sequenced genomes of sulfate reducing organisms (SRO) has increased significantly in the recent years, providing an opportunity for a broader perspective into their energy metabolism. In this work we carried out a comparative survey of energy metabolism genes found in 25 available genomes of SRO. This analysis revealed a higher diversity of possible energy conserving pathways than classically considered to be present in these organisms, and permitted the identification of new proteins not known to be present in this group. The Deltaproteobacteria (and Thermodesulfovibrio yellowstonii) are characterized by a large number of cytochromes c and cytochrome c-associated membrane redox complexes, indicating that periplasmic electron transfer pathways are important in these bacteria. The Archaea and Clostridia groups contain practically no cytochromes c or associated membrane complexes. However, despite the absence of a periplasmic space, a few extracytoplasmic membrane redox proteins were detected in the Gram-positive bacteria. Several ion-translocating complexes were detected in SRO including H(+)-pyrophosphatases, complex I homologs, Rnf, and Ech/Coo hydrogenases. Furthermore, we found evidence that cytoplasmic electron bifurcating mechanisms, recently described for other anaerobes, are also likely to play an important role in energy metabolism of SRO. A number of cytoplasmic [NiFe] and [FeFe] hydrogenases, formate dehydrogenases, and heterodisulfide reductase-related proteins are likely candidates to be involved in energy coupling through electron bifurcation, from diverse electron donors such as H(2), formate, pyruvate, NAD(P)H, β-oxidation, and others. In conclusion, this analysis indicates that energy metabolism of SRO is far more versatile than previously considered, and that both chemiosmotic and flavin-based electron bifurcating mechanisms provide alternative strategies for energy conservation. Frontiers Research Foundation 2011-04-19 /pmc/articles/PMC3119410/ /pubmed/21747791 http://dx.doi.org/10.3389/fmicb.2011.00069 Text en Copyright © 2011 Pereira, Ramos, Grein, Marques, Marques da Silva and Venceslau. http://www.frontiersin.org/licenseagreement This is an open-access article subject to a non-exclusive license between the authors and Frontiers Media SA, which permits use, distribution and reproduction in other forums, provided the original authors and source are credited and other Frontiers conditions are complied with.
spellingShingle Microbiology
Pereira, Inês A. Cardoso
Ramos, Ana Raquel
Grein, Fabian
Marques, Marta Coimbra
da Silva, Sofia Marques
Venceslau, Sofia Santos
A Comparative Genomic Analysis of Energy Metabolism in Sulfate Reducing Bacteria and Archaea
title A Comparative Genomic Analysis of Energy Metabolism in Sulfate Reducing Bacteria and Archaea
title_full A Comparative Genomic Analysis of Energy Metabolism in Sulfate Reducing Bacteria and Archaea
title_fullStr A Comparative Genomic Analysis of Energy Metabolism in Sulfate Reducing Bacteria and Archaea
title_full_unstemmed A Comparative Genomic Analysis of Energy Metabolism in Sulfate Reducing Bacteria and Archaea
title_short A Comparative Genomic Analysis of Energy Metabolism in Sulfate Reducing Bacteria and Archaea
title_sort comparative genomic analysis of energy metabolism in sulfate reducing bacteria and archaea
topic Microbiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3119410/
https://www.ncbi.nlm.nih.gov/pubmed/21747791
http://dx.doi.org/10.3389/fmicb.2011.00069
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