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Biogeochemical dynamics and microbial community development under sulfate- and iron-reducing conditions based on electron shuttle amendment

Iron reduction and sulfate reduction are two of the major biogeochemical processes that occur in anoxic sediments. Microbes that catalyze these reactions are therefore some of the most abundant organisms in the subsurface, and some of the most important. Due to the variety of mechanisms that microbe...

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Autores principales: Flynn, Theodore M., Antonopoulos, Dionysios A., Skinner, Kelly A., Brulc, Jennifer M., Johnston, Eric, Boyanov, Maxim I., Kwon, Man Jae, Kemner, Kenneth M., O’Loughlin, Edward J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8136678/
https://www.ncbi.nlm.nih.gov/pubmed/34014980
http://dx.doi.org/10.1371/journal.pone.0251883
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author Flynn, Theodore M.
Antonopoulos, Dionysios A.
Skinner, Kelly A.
Brulc, Jennifer M.
Johnston, Eric
Boyanov, Maxim I.
Kwon, Man Jae
Kemner, Kenneth M.
O’Loughlin, Edward J.
author_facet Flynn, Theodore M.
Antonopoulos, Dionysios A.
Skinner, Kelly A.
Brulc, Jennifer M.
Johnston, Eric
Boyanov, Maxim I.
Kwon, Man Jae
Kemner, Kenneth M.
O’Loughlin, Edward J.
author_sort Flynn, Theodore M.
collection PubMed
description Iron reduction and sulfate reduction are two of the major biogeochemical processes that occur in anoxic sediments. Microbes that catalyze these reactions are therefore some of the most abundant organisms in the subsurface, and some of the most important. Due to the variety of mechanisms that microbes employ to derive energy from these reactions, including the use of soluble electron shuttles, the dynamics between iron- and sulfate-reducing populations under changing biogeochemical conditions still elude complete characterization. Here, we amended experimental bioreactors comprised of freshwater aquifer sediment with ferric iron, sulfate, acetate, and the model electron shuttle AQDS (9,10-anthraquinone-2,6-disulfonate) and monitored both the changing redox conditions as well as changes in the microbial community over time. The addition of the electron shuttle AQDS did increase the initial rate of Fe(III) reduction; however, it had little effect on the composition of the microbial community. Our results show that in both AQDS- and AQDS+ systems there was an initial dominance of organisms classified as Geobacter (a genus of dissimilatory Fe(III)-reducing bacteria), after which sequences classified as Desulfosporosinus (a genus of dissimilatory sulfate-reducing bacteria) came to dominate both experimental systems. Furthermore, most of the ferric iron reduction occurred under this later, ostensibly “sulfate-reducing” phase of the experiment. This calls into question the usefulness of classifying subsurface sediments by the dominant microbial process alone because of their interrelated biogeochemical consequences. To better inform models of microbially-catalyzed subsurface processes, such interactions must be more thoroughly understood under a broad range of conditions.
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spelling pubmed-81366782021-06-02 Biogeochemical dynamics and microbial community development under sulfate- and iron-reducing conditions based on electron shuttle amendment Flynn, Theodore M. Antonopoulos, Dionysios A. Skinner, Kelly A. Brulc, Jennifer M. Johnston, Eric Boyanov, Maxim I. Kwon, Man Jae Kemner, Kenneth M. O’Loughlin, Edward J. PLoS One Research Article Iron reduction and sulfate reduction are two of the major biogeochemical processes that occur in anoxic sediments. Microbes that catalyze these reactions are therefore some of the most abundant organisms in the subsurface, and some of the most important. Due to the variety of mechanisms that microbes employ to derive energy from these reactions, including the use of soluble electron shuttles, the dynamics between iron- and sulfate-reducing populations under changing biogeochemical conditions still elude complete characterization. Here, we amended experimental bioreactors comprised of freshwater aquifer sediment with ferric iron, sulfate, acetate, and the model electron shuttle AQDS (9,10-anthraquinone-2,6-disulfonate) and monitored both the changing redox conditions as well as changes in the microbial community over time. The addition of the electron shuttle AQDS did increase the initial rate of Fe(III) reduction; however, it had little effect on the composition of the microbial community. Our results show that in both AQDS- and AQDS+ systems there was an initial dominance of organisms classified as Geobacter (a genus of dissimilatory Fe(III)-reducing bacteria), after which sequences classified as Desulfosporosinus (a genus of dissimilatory sulfate-reducing bacteria) came to dominate both experimental systems. Furthermore, most of the ferric iron reduction occurred under this later, ostensibly “sulfate-reducing” phase of the experiment. This calls into question the usefulness of classifying subsurface sediments by the dominant microbial process alone because of their interrelated biogeochemical consequences. To better inform models of microbially-catalyzed subsurface processes, such interactions must be more thoroughly understood under a broad range of conditions. Public Library of Science 2021-05-20 /pmc/articles/PMC8136678/ /pubmed/34014980 http://dx.doi.org/10.1371/journal.pone.0251883 Text en © 2021 Flynn et al https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Flynn, Theodore M.
Antonopoulos, Dionysios A.
Skinner, Kelly A.
Brulc, Jennifer M.
Johnston, Eric
Boyanov, Maxim I.
Kwon, Man Jae
Kemner, Kenneth M.
O’Loughlin, Edward J.
Biogeochemical dynamics and microbial community development under sulfate- and iron-reducing conditions based on electron shuttle amendment
title Biogeochemical dynamics and microbial community development under sulfate- and iron-reducing conditions based on electron shuttle amendment
title_full Biogeochemical dynamics and microbial community development under sulfate- and iron-reducing conditions based on electron shuttle amendment
title_fullStr Biogeochemical dynamics and microbial community development under sulfate- and iron-reducing conditions based on electron shuttle amendment
title_full_unstemmed Biogeochemical dynamics and microbial community development under sulfate- and iron-reducing conditions based on electron shuttle amendment
title_short Biogeochemical dynamics and microbial community development under sulfate- and iron-reducing conditions based on electron shuttle amendment
title_sort biogeochemical dynamics and microbial community development under sulfate- and iron-reducing conditions based on electron shuttle amendment
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8136678/
https://www.ncbi.nlm.nih.gov/pubmed/34014980
http://dx.doi.org/10.1371/journal.pone.0251883
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