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Novel Cesium Resistance Mechanism of Alkaliphilic Bacterium Isolated From Jumping Spider Ground Extract

The radionuclide isotopes ((134)Cs and (137)Cs) of Cesium (Cs), an alkali metal, are attracting attention as major causes of radioactive contamination. Although Cs(+) is harmful to the growth of plants and bacteria, alkaliphilic bacterium Microbacterium sp. TS-1, isolated from a jumping spider, show...

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Autores principales: Koretsune, Takahiro, Ishida, Yoshiki, Kaneda, Yuri, Ishiuchi, Eri, Teshima, Miyu, Marubashi, Nanami, Satoh, Katsuya, Ito, Masahiro
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8984678/
https://www.ncbi.nlm.nih.gov/pubmed/35401473
http://dx.doi.org/10.3389/fmicb.2022.841821
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author Koretsune, Takahiro
Ishida, Yoshiki
Kaneda, Yuri
Ishiuchi, Eri
Teshima, Miyu
Marubashi, Nanami
Satoh, Katsuya
Ito, Masahiro
author_facet Koretsune, Takahiro
Ishida, Yoshiki
Kaneda, Yuri
Ishiuchi, Eri
Teshima, Miyu
Marubashi, Nanami
Satoh, Katsuya
Ito, Masahiro
author_sort Koretsune, Takahiro
collection PubMed
description The radionuclide isotopes ((134)Cs and (137)Cs) of Cesium (Cs), an alkali metal, are attracting attention as major causes of radioactive contamination. Although Cs(+) is harmful to the growth of plants and bacteria, alkaliphilic bacterium Microbacterium sp. TS-1, isolated from a jumping spider, showed growth even in the presence of 1.2 M CsCl. The maximum concentration of Cs(+) that microorganisms can withstand has been reported to be 700 mM till date, suggesting that the strain TS-1 is resistant to a high concentration of Cs ions. Multiple reports of cesium ion-resistant bacteria have been reported, but the detailed mechanism has not yet been elucidated. We obtained Cs ion-sensitive mutants and their revertant mutants from strain TS-1 and identified a Cs ion resistance-related gene, MTS1_00475, by performing SNP analysis of the whole-genome sequence data. When exposed to more than 200 mM Cs(+) concentration, the intracellular Cs(+) concentration was constantly lowered by MTS1_00475, which encodes the novel low-affinity Cs(+)/H(+) antiporter. This study is the first to clarify the mechanism of cesium resistance in unexplained cesium-resistant microorganisms. By clarifying the new cesium resistance mechanism, it can be expected to be used as a bioremediation tool for treating radioactive Cs(+) contaminated water.
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spelling pubmed-89846782022-04-07 Novel Cesium Resistance Mechanism of Alkaliphilic Bacterium Isolated From Jumping Spider Ground Extract Koretsune, Takahiro Ishida, Yoshiki Kaneda, Yuri Ishiuchi, Eri Teshima, Miyu Marubashi, Nanami Satoh, Katsuya Ito, Masahiro Front Microbiol Microbiology The radionuclide isotopes ((134)Cs and (137)Cs) of Cesium (Cs), an alkali metal, are attracting attention as major causes of radioactive contamination. Although Cs(+) is harmful to the growth of plants and bacteria, alkaliphilic bacterium Microbacterium sp. TS-1, isolated from a jumping spider, showed growth even in the presence of 1.2 M CsCl. The maximum concentration of Cs(+) that microorganisms can withstand has been reported to be 700 mM till date, suggesting that the strain TS-1 is resistant to a high concentration of Cs ions. Multiple reports of cesium ion-resistant bacteria have been reported, but the detailed mechanism has not yet been elucidated. We obtained Cs ion-sensitive mutants and their revertant mutants from strain TS-1 and identified a Cs ion resistance-related gene, MTS1_00475, by performing SNP analysis of the whole-genome sequence data. When exposed to more than 200 mM Cs(+) concentration, the intracellular Cs(+) concentration was constantly lowered by MTS1_00475, which encodes the novel low-affinity Cs(+)/H(+) antiporter. This study is the first to clarify the mechanism of cesium resistance in unexplained cesium-resistant microorganisms. By clarifying the new cesium resistance mechanism, it can be expected to be used as a bioremediation tool for treating radioactive Cs(+) contaminated water. Frontiers Media S.A. 2022-03-08 /pmc/articles/PMC8984678/ /pubmed/35401473 http://dx.doi.org/10.3389/fmicb.2022.841821 Text en Copyright © 2022 Koretsune, Ishida, Kaneda, Ishiuchi, Teshima, Marubashi, Satoh and Ito. https://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
Koretsune, Takahiro
Ishida, Yoshiki
Kaneda, Yuri
Ishiuchi, Eri
Teshima, Miyu
Marubashi, Nanami
Satoh, Katsuya
Ito, Masahiro
Novel Cesium Resistance Mechanism of Alkaliphilic Bacterium Isolated From Jumping Spider Ground Extract
title Novel Cesium Resistance Mechanism of Alkaliphilic Bacterium Isolated From Jumping Spider Ground Extract
title_full Novel Cesium Resistance Mechanism of Alkaliphilic Bacterium Isolated From Jumping Spider Ground Extract
title_fullStr Novel Cesium Resistance Mechanism of Alkaliphilic Bacterium Isolated From Jumping Spider Ground Extract
title_full_unstemmed Novel Cesium Resistance Mechanism of Alkaliphilic Bacterium Isolated From Jumping Spider Ground Extract
title_short Novel Cesium Resistance Mechanism of Alkaliphilic Bacterium Isolated From Jumping Spider Ground Extract
title_sort novel cesium resistance mechanism of alkaliphilic bacterium isolated from jumping spider ground extract
topic Microbiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8984678/
https://www.ncbi.nlm.nih.gov/pubmed/35401473
http://dx.doi.org/10.3389/fmicb.2022.841821
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