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Interplay of cellular cAMP levels, σS activity and oxidative stress resistance in Escherichia coli

机译:细胞阵营水平的相互作用,σs活性和氧化胁迫抗性在大肠杆菌中

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Hypochlorous acid (HOCl), the active ingredient of household bleach, functions as a powerful antimicrobial that is used not only in numerous industrial applications but also in mammalian host defence. Here we show that multicopy expression of cpdA, encoding the cAMP phosphodiesterase, leads to a dramatically increased resistance of Escherichia coli to HOCl stress as well as to the unrelated hydrogen peroxide (H2O2) stress. This general oxidative stress resistance is apparently caused by the CpdA-mediated decrease in cellular cAMP levels, which leads to the partial inactivation of the global transcriptional regulator cAMP receptor protein (CRP). Downregulation of CRP in turn causes the derepression of rpoS, encoding the alternative sigma factor σS, which activates the general stress response in E. coli. We found that these highly oxidative stress-resistant cells have a substantially increased capacity to combat HOCl-mediated insults and to degrade reactive oxygen species. Mutational analysis revealed that the DNA-protecting protein Dps, the catalase KatE, and the exonuclease III XthA play the predominant roles in conferring the high resistance of rpoS-overexpressing strains towards HOCl and H2O2 stress. Our results demonstrate the close regulatory interplay between cellular cAMP levels, σS activity and oxidative stress resistance in E. coli.
机译:次氯酸(HOCL),家用漂白剂的活性成分,用作强大的抗菌剂,不仅在众多工业应用中使用,而且在哺乳动物主体防御中使用。在这里,我们表明CPDA的多拷贝表达,编码磷酸二酯酶,导致大肠杆菌与Hocl胁迫的显着增加,以及不相关的过氧化氢(H2O2)应激。这种普遍的氧化胁迫性显然是由CPDA介导的细胞阵营水平的降低引起的,这导致全局转录调节阵营受体蛋白(CRP)的部分失活。 CRP的下调反过来导致RPO的DEREPLACE,编码替代的SIGMA因子σs,其激活大肠杆菌中的一般应力响应。我们发现这些高度氧化的抗胁迫细胞具有对抗Hocl介导的损伤并降解反应性氧物质的基本上增加的能力。突变分析显示,DNA保护蛋白DP,过氧化酯酸酯和外切核酸酶III XTHA在赋予HOCL和H 2 O 2应力的RPO过表达菌株的高抗性中起主要作用。我们的结果表明,在大肠杆菌中蜂窝阵列水平,σs活性和氧化胁迫性之间的密切调节相互作用。

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