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Electric coupling between distant nitrate reduction and sulfide oxidation in marine sediment

Filamentous bacteria of the Desulfobulbaceae family can conduct electrons over centimeter-long distances thereby coupling oxygen reduction at the surface of marine sediment to sulfide oxidation in deeper anoxic layers. The ability of these cable bacteria to use alternative electron acceptors is curr...

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Autores principales: Marzocchi, Ugo, Trojan, Daniela, Larsen, Steffen, Louise Meyer, Rikke, Peter Revsbech, Niels, Schramm, Andreas, Peter Nielsen, Lars, Risgaard-Petersen, Nils
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4817607/
https://www.ncbi.nlm.nih.gov/pubmed/24577351
http://dx.doi.org/10.1038/ismej.2014.19
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author Marzocchi, Ugo
Trojan, Daniela
Larsen, Steffen
Louise Meyer, Rikke
Peter Revsbech, Niels
Schramm, Andreas
Peter Nielsen, Lars
Risgaard-Petersen, Nils
author_facet Marzocchi, Ugo
Trojan, Daniela
Larsen, Steffen
Louise Meyer, Rikke
Peter Revsbech, Niels
Schramm, Andreas
Peter Nielsen, Lars
Risgaard-Petersen, Nils
author_sort Marzocchi, Ugo
collection PubMed
description Filamentous bacteria of the Desulfobulbaceae family can conduct electrons over centimeter-long distances thereby coupling oxygen reduction at the surface of marine sediment to sulfide oxidation in deeper anoxic layers. The ability of these cable bacteria to use alternative electron acceptors is currently unknown. Here we show that these organisms can use also nitrate or nitrite as an electron acceptor thereby coupling the reduction of nitrate to distant oxidation of sulfide. Sulfidic marine sediment was incubated with overlying nitrate-amended anoxic seawater. Within 2 months, electric coupling of spatially segregated nitrate reduction and sulfide oxidation was evident from: (1) the formation of a 4–6-mm-deep zone separating sulfide oxidation from the associated nitrate reduction, and (2) the presence of pH signatures consistent with proton consumption by cathodic nitrate reduction, and proton production by anodic sulfide oxidation. Filamentous Desulfobulbaceae with the longitudinal structures characteristic of cable bacteria were detected in anoxic, nitrate-amended incubations but not in anoxic, nitrate-free controls. Nitrate reduction by cable bacteria using long-distance electron transport to get privileged access to distant electron donors is a hitherto unknown mechanism in nitrogen and sulfur transformations, and the quantitative importance for elements cycling remains to be addressed.
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spelling pubmed-48176072016-04-15 Electric coupling between distant nitrate reduction and sulfide oxidation in marine sediment Marzocchi, Ugo Trojan, Daniela Larsen, Steffen Louise Meyer, Rikke Peter Revsbech, Niels Schramm, Andreas Peter Nielsen, Lars Risgaard-Petersen, Nils ISME J Original Article Filamentous bacteria of the Desulfobulbaceae family can conduct electrons over centimeter-long distances thereby coupling oxygen reduction at the surface of marine sediment to sulfide oxidation in deeper anoxic layers. The ability of these cable bacteria to use alternative electron acceptors is currently unknown. Here we show that these organisms can use also nitrate or nitrite as an electron acceptor thereby coupling the reduction of nitrate to distant oxidation of sulfide. Sulfidic marine sediment was incubated with overlying nitrate-amended anoxic seawater. Within 2 months, electric coupling of spatially segregated nitrate reduction and sulfide oxidation was evident from: (1) the formation of a 4–6-mm-deep zone separating sulfide oxidation from the associated nitrate reduction, and (2) the presence of pH signatures consistent with proton consumption by cathodic nitrate reduction, and proton production by anodic sulfide oxidation. Filamentous Desulfobulbaceae with the longitudinal structures characteristic of cable bacteria were detected in anoxic, nitrate-amended incubations but not in anoxic, nitrate-free controls. Nitrate reduction by cable bacteria using long-distance electron transport to get privileged access to distant electron donors is a hitherto unknown mechanism in nitrogen and sulfur transformations, and the quantitative importance for elements cycling remains to be addressed. Nature Publishing Group 2014-08 2014-02-27 /pmc/articles/PMC4817607/ /pubmed/24577351 http://dx.doi.org/10.1038/ismej.2014.19 Text en Copyright © 2014 International Society for Microbial Ecology http://creativecommons.org/licenses/by/3.0/ This work is licensed under a Creative Commons Attribution 3.0 Unported License. To view a copy of this license, visit http://creativecommons.org/licenses/by/3.0/
spellingShingle Original Article
Marzocchi, Ugo
Trojan, Daniela
Larsen, Steffen
Louise Meyer, Rikke
Peter Revsbech, Niels
Schramm, Andreas
Peter Nielsen, Lars
Risgaard-Petersen, Nils
Electric coupling between distant nitrate reduction and sulfide oxidation in marine sediment
title Electric coupling between distant nitrate reduction and sulfide oxidation in marine sediment
title_full Electric coupling between distant nitrate reduction and sulfide oxidation in marine sediment
title_fullStr Electric coupling between distant nitrate reduction and sulfide oxidation in marine sediment
title_full_unstemmed Electric coupling between distant nitrate reduction and sulfide oxidation in marine sediment
title_short Electric coupling between distant nitrate reduction and sulfide oxidation in marine sediment
title_sort electric coupling between distant nitrate reduction and sulfide oxidation in marine sediment
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4817607/
https://www.ncbi.nlm.nih.gov/pubmed/24577351
http://dx.doi.org/10.1038/ismej.2014.19
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