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Unlocking Survival Mechanisms for Metal and Oxidative Stress in the Extremely Acidophilic, Halotolerant Acidihalobacter Genus

Microorganisms used for the biohydrometallurgical extraction of metals from minerals must be able to survive high levels of metal and oxidative stress found in bioleaching environments. The Acidihalobacter genus consists of four species of halotolerant, iron–sulfur-oxidizing acidophiles that are uni...

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Autores principales: Khaleque, Himel Nahreen, Fathollazadeh, Homayoun, González, Carolina, Shafique, Raihan, Kaksonen, Anna H., Holmes, David S., Watkin, Elizabeth L.J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7760498/
https://www.ncbi.nlm.nih.gov/pubmed/33255299
http://dx.doi.org/10.3390/genes11121392
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author Khaleque, Himel Nahreen
Fathollazadeh, Homayoun
González, Carolina
Shafique, Raihan
Kaksonen, Anna H.
Holmes, David S.
Watkin, Elizabeth L.J.
author_facet Khaleque, Himel Nahreen
Fathollazadeh, Homayoun
González, Carolina
Shafique, Raihan
Kaksonen, Anna H.
Holmes, David S.
Watkin, Elizabeth L.J.
author_sort Khaleque, Himel Nahreen
collection PubMed
description Microorganisms used for the biohydrometallurgical extraction of metals from minerals must be able to survive high levels of metal and oxidative stress found in bioleaching environments. The Acidihalobacter genus consists of four species of halotolerant, iron–sulfur-oxidizing acidophiles that are unique in their ability to tolerate chloride and acid stress while simultaneously bioleaching minerals. This paper uses bioinformatic tools to predict the genes and mechanisms used by Acidihalobacter members in their defense against a wide range of metals and oxidative stress. Analysis revealed the presence of multiple conserved mechanisms of metal tolerance. Ac. yilgarnensis F5(T), the only member of this genus that oxidizes the mineral chalcopyrite, contained a 39.9 Kb gene cluster consisting of 40 genes encoding mobile elements and an array of proteins with direct functions in copper resistance. The analysis also revealed multiple strategies that the Acidihalobacter members can use to tolerate high levels of oxidative stress. Three of the Acidihalobacter genomes were found to contain genes encoding catalases, which are not common to acidophilic microorganisms. Of particular interest was a rubrerythrin genomic cluster containing genes that have a polyphyletic origin of stress-related functions.
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spelling pubmed-77604982020-12-26 Unlocking Survival Mechanisms for Metal and Oxidative Stress in the Extremely Acidophilic, Halotolerant Acidihalobacter Genus Khaleque, Himel Nahreen Fathollazadeh, Homayoun González, Carolina Shafique, Raihan Kaksonen, Anna H. Holmes, David S. Watkin, Elizabeth L.J. Genes (Basel) Article Microorganisms used for the biohydrometallurgical extraction of metals from minerals must be able to survive high levels of metal and oxidative stress found in bioleaching environments. The Acidihalobacter genus consists of four species of halotolerant, iron–sulfur-oxidizing acidophiles that are unique in their ability to tolerate chloride and acid stress while simultaneously bioleaching minerals. This paper uses bioinformatic tools to predict the genes and mechanisms used by Acidihalobacter members in their defense against a wide range of metals and oxidative stress. Analysis revealed the presence of multiple conserved mechanisms of metal tolerance. Ac. yilgarnensis F5(T), the only member of this genus that oxidizes the mineral chalcopyrite, contained a 39.9 Kb gene cluster consisting of 40 genes encoding mobile elements and an array of proteins with direct functions in copper resistance. The analysis also revealed multiple strategies that the Acidihalobacter members can use to tolerate high levels of oxidative stress. Three of the Acidihalobacter genomes were found to contain genes encoding catalases, which are not common to acidophilic microorganisms. Of particular interest was a rubrerythrin genomic cluster containing genes that have a polyphyletic origin of stress-related functions. MDPI 2020-11-24 /pmc/articles/PMC7760498/ /pubmed/33255299 http://dx.doi.org/10.3390/genes11121392 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Khaleque, Himel Nahreen
Fathollazadeh, Homayoun
González, Carolina
Shafique, Raihan
Kaksonen, Anna H.
Holmes, David S.
Watkin, Elizabeth L.J.
Unlocking Survival Mechanisms for Metal and Oxidative Stress in the Extremely Acidophilic, Halotolerant Acidihalobacter Genus
title Unlocking Survival Mechanisms for Metal and Oxidative Stress in the Extremely Acidophilic, Halotolerant Acidihalobacter Genus
title_full Unlocking Survival Mechanisms for Metal and Oxidative Stress in the Extremely Acidophilic, Halotolerant Acidihalobacter Genus
title_fullStr Unlocking Survival Mechanisms for Metal and Oxidative Stress in the Extremely Acidophilic, Halotolerant Acidihalobacter Genus
title_full_unstemmed Unlocking Survival Mechanisms for Metal and Oxidative Stress in the Extremely Acidophilic, Halotolerant Acidihalobacter Genus
title_short Unlocking Survival Mechanisms for Metal and Oxidative Stress in the Extremely Acidophilic, Halotolerant Acidihalobacter Genus
title_sort unlocking survival mechanisms for metal and oxidative stress in the extremely acidophilic, halotolerant acidihalobacter genus
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7760498/
https://www.ncbi.nlm.nih.gov/pubmed/33255299
http://dx.doi.org/10.3390/genes11121392
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