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Characterization of a Metal-Resistant Bacillus Strain With a High Molybdate Affinity ModA From Contaminated Sediments at the Oak Ridge Reservation

A nitrate- and metal-contaminated site at the Oak Ridge Reservation (ORR) was previously shown to contain the metal molybdenum (Mo) at picomolar concentrations. This potentially limits microbial nitrate reduction, as Mo is required by the enzyme nitrate reductase, which catalyzes the first step of n...

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Autores principales: Ge, Xiaoxuan, Thorgersen, Michael P., Poole, Farris L., Deutschbauer, Adam M., Chandonia, John-Marc, Novichkov, Pavel S., Gushgari-Doyle, Sara, Lui, Lauren M., Nielsen, Torben, Chakraborty, Romy, Adams, Paul D., Arkin, Adam P., Hazen, Terry C., Adams, Michael W. W.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7604516/
https://www.ncbi.nlm.nih.gov/pubmed/33193240
http://dx.doi.org/10.3389/fmicb.2020.587127
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author Ge, Xiaoxuan
Thorgersen, Michael P.
Poole, Farris L.
Deutschbauer, Adam M.
Chandonia, John-Marc
Novichkov, Pavel S.
Gushgari-Doyle, Sara
Lui, Lauren M.
Nielsen, Torben
Chakraborty, Romy
Adams, Paul D.
Arkin, Adam P.
Hazen, Terry C.
Adams, Michael W. W.
author_facet Ge, Xiaoxuan
Thorgersen, Michael P.
Poole, Farris L.
Deutschbauer, Adam M.
Chandonia, John-Marc
Novichkov, Pavel S.
Gushgari-Doyle, Sara
Lui, Lauren M.
Nielsen, Torben
Chakraborty, Romy
Adams, Paul D.
Arkin, Adam P.
Hazen, Terry C.
Adams, Michael W. W.
author_sort Ge, Xiaoxuan
collection PubMed
description A nitrate- and metal-contaminated site at the Oak Ridge Reservation (ORR) was previously shown to contain the metal molybdenum (Mo) at picomolar concentrations. This potentially limits microbial nitrate reduction, as Mo is required by the enzyme nitrate reductase, which catalyzes the first step of nitrate removal. Enrichment for anaerobic nitrate-reducing microbes from contaminated sediment at the ORR yielded Bacillus strain EB106-08-02-XG196. This bacterium grows in the presence of multiple metals (Cd, Ni, Cu, Co, Mn, and U) but also exhibits better growth compared to control strains, including Pseudomonas fluorescens N2E2 isolated from a pristine ORR environment under low molybdate concentrations (<1 nM). Molybdate is taken up by the molybdate binding protein, ModA, of the molybdate ATP-binding cassette transporter. ModA of XG196 is phylogenetically distinct from those of other characterized ModA proteins. The genes encoding ModA from XG196, P. fluorescens N2E2 and Escherichia coli K12 were expressed in E. coli and the recombinant proteins were purified. Isothermal titration calorimetry analysis showed that XG196 ModA has a higher affinity for molybdate than other ModA proteins with a molybdate binding constant (K(D)) of 2.2 nM, about one order of magnitude lower than those of P. fluorescens N2E2 (27.0 nM) and E. coli K12 (25.0 nM). XG196 ModA also showed a fivefold higher affinity for molybdate than for tungstate (11 nM), whereas the ModA proteins from P. fluorescens N2E2 [K(D) (Mo) 27.0 nM, K(D) (W) 26.7 nM] and E. coli K12[(K(D) (Mo) 25.0 nM, K(D) (W) 23.8 nM] had similar affinities for the two oxyanions. We propose that high molybdate affinity coupled with resistance to multiple metals gives strain XG196 a competitive advantage in Mo-limited environments contaminated with high concentrations of metals and nitrate, as found at ORR.
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spelling pubmed-76045162020-11-13 Characterization of a Metal-Resistant Bacillus Strain With a High Molybdate Affinity ModA From Contaminated Sediments at the Oak Ridge Reservation Ge, Xiaoxuan Thorgersen, Michael P. Poole, Farris L. Deutschbauer, Adam M. Chandonia, John-Marc Novichkov, Pavel S. Gushgari-Doyle, Sara Lui, Lauren M. Nielsen, Torben Chakraborty, Romy Adams, Paul D. Arkin, Adam P. Hazen, Terry C. Adams, Michael W. W. Front Microbiol Microbiology A nitrate- and metal-contaminated site at the Oak Ridge Reservation (ORR) was previously shown to contain the metal molybdenum (Mo) at picomolar concentrations. This potentially limits microbial nitrate reduction, as Mo is required by the enzyme nitrate reductase, which catalyzes the first step of nitrate removal. Enrichment for anaerobic nitrate-reducing microbes from contaminated sediment at the ORR yielded Bacillus strain EB106-08-02-XG196. This bacterium grows in the presence of multiple metals (Cd, Ni, Cu, Co, Mn, and U) but also exhibits better growth compared to control strains, including Pseudomonas fluorescens N2E2 isolated from a pristine ORR environment under low molybdate concentrations (<1 nM). Molybdate is taken up by the molybdate binding protein, ModA, of the molybdate ATP-binding cassette transporter. ModA of XG196 is phylogenetically distinct from those of other characterized ModA proteins. The genes encoding ModA from XG196, P. fluorescens N2E2 and Escherichia coli K12 were expressed in E. coli and the recombinant proteins were purified. Isothermal titration calorimetry analysis showed that XG196 ModA has a higher affinity for molybdate than other ModA proteins with a molybdate binding constant (K(D)) of 2.2 nM, about one order of magnitude lower than those of P. fluorescens N2E2 (27.0 nM) and E. coli K12 (25.0 nM). XG196 ModA also showed a fivefold higher affinity for molybdate than for tungstate (11 nM), whereas the ModA proteins from P. fluorescens N2E2 [K(D) (Mo) 27.0 nM, K(D) (W) 26.7 nM] and E. coli K12[(K(D) (Mo) 25.0 nM, K(D) (W) 23.8 nM] had similar affinities for the two oxyanions. We propose that high molybdate affinity coupled with resistance to multiple metals gives strain XG196 a competitive advantage in Mo-limited environments contaminated with high concentrations of metals and nitrate, as found at ORR. Frontiers Media S.A. 2020-10-19 /pmc/articles/PMC7604516/ /pubmed/33193240 http://dx.doi.org/10.3389/fmicb.2020.587127 Text en Copyright © 2020 Ge, Thorgersen, Poole, Deutschbauer, Chandonia, Novichkov, Gushgari-Doyle, Lui, Nielsen, Chakraborty, Adams, Arkin, Hazen and Adams. 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
Ge, Xiaoxuan
Thorgersen, Michael P.
Poole, Farris L.
Deutschbauer, Adam M.
Chandonia, John-Marc
Novichkov, Pavel S.
Gushgari-Doyle, Sara
Lui, Lauren M.
Nielsen, Torben
Chakraborty, Romy
Adams, Paul D.
Arkin, Adam P.
Hazen, Terry C.
Adams, Michael W. W.
Characterization of a Metal-Resistant Bacillus Strain With a High Molybdate Affinity ModA From Contaminated Sediments at the Oak Ridge Reservation
title Characterization of a Metal-Resistant Bacillus Strain With a High Molybdate Affinity ModA From Contaminated Sediments at the Oak Ridge Reservation
title_full Characterization of a Metal-Resistant Bacillus Strain With a High Molybdate Affinity ModA From Contaminated Sediments at the Oak Ridge Reservation
title_fullStr Characterization of a Metal-Resistant Bacillus Strain With a High Molybdate Affinity ModA From Contaminated Sediments at the Oak Ridge Reservation
title_full_unstemmed Characterization of a Metal-Resistant Bacillus Strain With a High Molybdate Affinity ModA From Contaminated Sediments at the Oak Ridge Reservation
title_short Characterization of a Metal-Resistant Bacillus Strain With a High Molybdate Affinity ModA From Contaminated Sediments at the Oak Ridge Reservation
title_sort characterization of a metal-resistant bacillus strain with a high molybdate affinity moda from contaminated sediments at the oak ridge reservation
topic Microbiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7604516/
https://www.ncbi.nlm.nih.gov/pubmed/33193240
http://dx.doi.org/10.3389/fmicb.2020.587127
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