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解锁极端嗜酸、耐盐属中金属和氧化应激的生存机制。

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

机构信息

School of Pharmacy and Biomedical Sciences, Curtin University, Perth 6845, Australia.

CSIRO Land and Water, Floreat 6014, Australia.

出版信息

Genes (Basel). 2020 Nov 24;11(12):1392. doi: 10.3390/genes11121392.

Abstract

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 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 members in their defense against a wide range of metals and oxidative stress. Analysis revealed the presence of multiple conserved mechanisms of metal tolerance. F5, 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 members can use to tolerate high levels of oxidative stress. Three of the 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.

摘要

用于从矿物中生物浸出金属的微生物必须能够在生物浸出环境中发现的高浓度金属和氧化应激下存活。该属由四种耐盐、铁硫氧化嗜酸微生物组成,它们的独特之处在于能够耐受氯化物和酸胁迫,同时生物浸出矿物。本文使用生物信息学工具来预测属成员在抵御各种金属和氧化应激时所使用的基因和机制。分析表明存在多种保守的金属耐受机制。F5 是唯一能够氧化矿物黄铜矿的属成员,它包含一个由 40 个基因组成的 39.9 Kb 基因簇,这些基因编码移动元件和一系列具有直接铜抗性功能的蛋白质。分析还揭示了属成员可以用来耐受高水平氧化应激的多种策略。三个 基因组都发现含有编码过氧化氢酶的基因,而过氧化氢酶在嗜酸微生物中并不常见。特别有趣的是一个 rubrerythrin 基因组簇,其中包含具有多系应激相关功能起源的基因。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f872/7760498/9cd33cf2332a/genes-11-01392-g001.jpg

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