首页> 外文期刊>Frontiers in Microbiology >The Global Redox Responding RegB/RegA Signal Transduction System Regulates the Genes Involved in Ferrous Iron and Inorganic Sulfur Compound Oxidation of the Acidophilic Acidithiobacillus ferrooxidans
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The Global Redox Responding RegB/RegA Signal Transduction System Regulates the Genes Involved in Ferrous Iron and Inorganic Sulfur Compound Oxidation of the Acidophilic Acidithiobacillus ferrooxidans

机译:全球氧化还原响应RegB / RegA信号转导系统调节嗜酸性 Acidithiobacillus ferrooxidans 的亚铁和无机硫化合物氧化涉及的基因

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The chemical attack of ore by ferric iron and/or sulfuric acid releases valuable metals. The products of these reactions are recycled by iron and sulfur oxidizing microorganisms. These acidophilic chemolithotrophic prokaryotes, among which Acidithiobacillus ferrooxidans , grow at the expense of the energy released from the oxidation of ferrous iron and/or inorganic sulfur compounds (ISCs). In At. ferrooxidans , it has been shown that the expression of the genes encoding the proteins involved in these respiratory pathways is dependent on the electron donor and that the genes involved in iron oxidation are expressed before those responsible for ISCs oxidation when both iron and sulfur are present. Since the redox potential increases during iron oxidation but remains stable during sulfur oxidation, we have put forward the hypothesis that the global redox responding two components system RegB/RegA is involved in this regulation. To understand the mechanism of this system and its role in the regulation of the aerobic respiratory pathways in At. ferrooxidans , the binding of different forms of RegA (DNA binding domain, wild-type, unphosphorylated and phosphorylated-like forms of RegA) on the regulatory region of different genes/operons involved in ferrous iron and ISC oxidation has been analyzed. We have shown that the four RegA forms are able to bind specifically the upstream region of these genes. Interestingly, the phosphorylation of RegA did not change its affinity for its cognate DNA. The transcriptional start site of these genes/operons has been determined. In most cases, the RegA binding site(s) was (were) located upstream from the ?35 (or ?24) box suggesting that RegA does not interfere with the RNA polymerase binding. Based on the results presented in this report, the role of the RegB/RegA system in the regulation of the ferrous iron and ISC oxidation pathways in At. ferrooxidans is discussed.
机译:铁和/或硫酸对矿石的化学侵蚀释放出有价值的金属。这些反应的产物被铁和硫的氧化微生物再循环。这些嗜酸性的化学营养型原核生物,其中的酸性氧化硫硫杆菌,以氧化亚铁和/或无机硫化合物(ISC)释放的能量为代价生长。在。已经证明,编码这些呼吸途径中涉及的蛋白质的基因的表达取决于电子供体,并且当同时存在铁和硫时,参与铁氧化的基因先于负责ISC氧化的那些基因表达。由于氧化还原电势在铁氧化过程中会增加,而在硫氧化过程中会保持稳定,因此我们提出了一个假设,即全球氧化还原响应的两个组件系统RegB / RegA参与了这一调控。了解该系统的机制及其在At的有氧呼吸路径调节中的作用。分析了不同形式的RegA(DNA结合结构域,野生型,未磷酸化和磷酸化样形式的RegA)在涉及亚铁和ISC氧化的不同基因/操纵子上的结合。我们已经表明,四种RegA形式能够特异性结合这些基因的上游区域。有趣的是,RegA的磷酸化并没有改变其与其同源DNA的亲和力。这些基因/操纵子的转录起始位点已经确定。在大多数情况下,RegA结合位点位于?35(或?24)框的上游,这表明RegA不会干扰RNA聚合酶的结合。根据本报告提供的结果,RegB / RegA系统在调节At中亚铁和ISC氧化途径中的作用。讨论了氧化亚铁。

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