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Conductive Particles Enable Syntrophic Acetate Oxidation between Geobacter and Methanosarcina from Coastal Sediments

Coastal sediments are rich in conductive particles, possibly affecting microbial processes for which acetate is a central intermediate. In the methanogenic zone, acetate is consumed by methanogens and/or syntrophic acetate-oxidizing (SAO) consortia. SAO consortia live under extreme thermodynamic pre...

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Autores principales: Rotaru, Amelia-Elena, Calabrese, Federica, Stryhanyuk, Hryhoriy, Musat, Florin, Shrestha, Pravin Malla, Weber, Hannah Sophia, Snoeyenbos-West, Oona L. O., Hall, Per O. J., Richnow, Hans H., Musat, Niculina, Thamdrup, Bo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5930305/
https://www.ncbi.nlm.nih.gov/pubmed/29717006
http://dx.doi.org/10.1128/mBio.00226-18
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author Rotaru, Amelia-Elena
Calabrese, Federica
Stryhanyuk, Hryhoriy
Musat, Florin
Shrestha, Pravin Malla
Weber, Hannah Sophia
Snoeyenbos-West, Oona L. O.
Hall, Per O. J.
Richnow, Hans H.
Musat, Niculina
Thamdrup, Bo
author_facet Rotaru, Amelia-Elena
Calabrese, Federica
Stryhanyuk, Hryhoriy
Musat, Florin
Shrestha, Pravin Malla
Weber, Hannah Sophia
Snoeyenbos-West, Oona L. O.
Hall, Per O. J.
Richnow, Hans H.
Musat, Niculina
Thamdrup, Bo
author_sort Rotaru, Amelia-Elena
collection PubMed
description Coastal sediments are rich in conductive particles, possibly affecting microbial processes for which acetate is a central intermediate. In the methanogenic zone, acetate is consumed by methanogens and/or syntrophic acetate-oxidizing (SAO) consortia. SAO consortia live under extreme thermodynamic pressure, and their survival depends on successful partnership. Here, we demonstrate that conductive particles enable the partnership between SAO bacteria (i.e., Geobacter spp.) and methanogens (Methanosarcina spp.) from the coastal sediments of the Bothnian Bay of the Baltic Sea. Baltic methanogenic sediments were rich in conductive minerals, had an apparent isotopic fractionation characteristic of CO(2)-reductive methanogenesis, and were inhabited by Geobacter and Methanosarcina. As long as conductive particles were delivered, Geobacter and Methanosarcina persisted, whereas exclusion of conductive particles led to the extinction of Geobacter. Baltic Geobacter did not establish a direct electric contact with Methanosarcina, necessitating conductive particles as electrical conduits. Within SAO consortia, Geobacter was an efficient [(13)C]acetate utilizer, accounting for 82% of the assimilation and 27% of the breakdown of acetate. Geobacter benefits from the association with the methanogen, because in the absence of an electron acceptor it can use Methanosarcina as a terminal electron sink. Consequently, inhibition of methanogenesis constrained the SAO activity of Geobacter as well. A potential benefit for Methanosarcina partnering with Geobacter is that together they competitively exclude acetoclastic methanogens like Methanothrix from an environment rich in conductive particles. Conductive particle-mediated SAO could explain the abundance of acetate oxidizers like Geobacter in the methanogenic zone of sediments where no electron acceptors other than CO(2) are available.
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spelling pubmed-59303052018-05-04 Conductive Particles Enable Syntrophic Acetate Oxidation between Geobacter and Methanosarcina from Coastal Sediments Rotaru, Amelia-Elena Calabrese, Federica Stryhanyuk, Hryhoriy Musat, Florin Shrestha, Pravin Malla Weber, Hannah Sophia Snoeyenbos-West, Oona L. O. Hall, Per O. J. Richnow, Hans H. Musat, Niculina Thamdrup, Bo mBio Research Article Coastal sediments are rich in conductive particles, possibly affecting microbial processes for which acetate is a central intermediate. In the methanogenic zone, acetate is consumed by methanogens and/or syntrophic acetate-oxidizing (SAO) consortia. SAO consortia live under extreme thermodynamic pressure, and their survival depends on successful partnership. Here, we demonstrate that conductive particles enable the partnership between SAO bacteria (i.e., Geobacter spp.) and methanogens (Methanosarcina spp.) from the coastal sediments of the Bothnian Bay of the Baltic Sea. Baltic methanogenic sediments were rich in conductive minerals, had an apparent isotopic fractionation characteristic of CO(2)-reductive methanogenesis, and were inhabited by Geobacter and Methanosarcina. As long as conductive particles were delivered, Geobacter and Methanosarcina persisted, whereas exclusion of conductive particles led to the extinction of Geobacter. Baltic Geobacter did not establish a direct electric contact with Methanosarcina, necessitating conductive particles as electrical conduits. Within SAO consortia, Geobacter was an efficient [(13)C]acetate utilizer, accounting for 82% of the assimilation and 27% of the breakdown of acetate. Geobacter benefits from the association with the methanogen, because in the absence of an electron acceptor it can use Methanosarcina as a terminal electron sink. Consequently, inhibition of methanogenesis constrained the SAO activity of Geobacter as well. A potential benefit for Methanosarcina partnering with Geobacter is that together they competitively exclude acetoclastic methanogens like Methanothrix from an environment rich in conductive particles. Conductive particle-mediated SAO could explain the abundance of acetate oxidizers like Geobacter in the methanogenic zone of sediments where no electron acceptors other than CO(2) are available. American Society for Microbiology 2018-05-01 /pmc/articles/PMC5930305/ /pubmed/29717006 http://dx.doi.org/10.1128/mBio.00226-18 Text en Copyright © 2018 Rotaru et al. https://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Rotaru, Amelia-Elena
Calabrese, Federica
Stryhanyuk, Hryhoriy
Musat, Florin
Shrestha, Pravin Malla
Weber, Hannah Sophia
Snoeyenbos-West, Oona L. O.
Hall, Per O. J.
Richnow, Hans H.
Musat, Niculina
Thamdrup, Bo
Conductive Particles Enable Syntrophic Acetate Oxidation between Geobacter and Methanosarcina from Coastal Sediments
title Conductive Particles Enable Syntrophic Acetate Oxidation between Geobacter and Methanosarcina from Coastal Sediments
title_full Conductive Particles Enable Syntrophic Acetate Oxidation between Geobacter and Methanosarcina from Coastal Sediments
title_fullStr Conductive Particles Enable Syntrophic Acetate Oxidation between Geobacter and Methanosarcina from Coastal Sediments
title_full_unstemmed Conductive Particles Enable Syntrophic Acetate Oxidation between Geobacter and Methanosarcina from Coastal Sediments
title_short Conductive Particles Enable Syntrophic Acetate Oxidation between Geobacter and Methanosarcina from Coastal Sediments
title_sort conductive particles enable syntrophic acetate oxidation between geobacter and methanosarcina from coastal sediments
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5930305/
https://www.ncbi.nlm.nih.gov/pubmed/29717006
http://dx.doi.org/10.1128/mBio.00226-18
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