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HprSR 是大肠杆菌中一种感应活性氯的双组分系统。

HprSR Is a Reactive Chlorine Species-Sensing, Two-Component System in Escherichia coli.

机构信息

Aix-Marseille Université, CNRS, Laboratoire de Chimie Bactérienne, Institut de Microbiologie de la Méditerranée, Marseille, France.

Institut de Microbiologie de la Méditerranée, Plate-forme Transcriptomique, Marseille, France.

出版信息

J Bacteriol. 2022 Feb 15;204(2):e0044921. doi: 10.1128/JB.00449-21. Epub 2021 Dec 13.

Abstract

Two-component systems (TCS) are signaling pathways that allow bacterial cells to sense, respond to, and adapt to fluctuating environments. Among the classical TCS of Escherichia coli, HprSR has recently been shown to be involved in the regulation of , which encodes the periplasmic methionine sulfoxide reductase system. In this study, we demonstrated that hypochlorous acid (HOCl) induces the expression of in an HprSR-dependent manner, whereas HO, NO, and paraquat (a superoxide generator) do not. Therefore, HprS appears to be an HOCl-sensing histidine kinase. Using a directed mutagenesis approach, we showed that Met residues located in the periplasmic loop of HprS are important for its activity: we provide evidence that as HOCl preferentially oxidizes Met residues, HprS could be activated via the reversible oxidation of its methionine residues, meaning that MsrPQ plays a role in switching HprSR off. We propose that the activation of HprS by HOCl could occur through a Met redox switch. HprSR appears to be the first characterized TCS able to detect reactive chlorine species (RCS) in E. coli. This study represents an important step toward understanding the mechanisms of RCS resistance in prokaryotes. Understanding how bacteria respond to oxidative stress at the molecular level is crucial in the fight against pathogens. HOCl is one of the most potent industrial and physiological microbicidal oxidants. Therefore, bacteria have developed counterstrategies to survive HOCl-induced stress. Over the last decade, important insights into these bacterial protection factors have been obtained. Our work establishes HprSR as a reactive chlorine species-sensing, two-component system in Escherichia coli MG1655, which regulates the expression of , two genes encoding, a repair system for HOCl-oxidized proteins. Moreover, we provide evidence suggesting that HOCl could activate HprS through a methionine redox switch.

摘要

双组分系统(TCS)是一种信号通路,使细菌细胞能够感知、响应和适应不断变化的环境。在大肠杆菌的经典 TCS 中,最近已经表明 HprSR 参与了 的调节,该基因编码周质甲硫氨酸亚砜还原酶系统。在这项研究中,我们证明了次氯酸(HOCl)以 HprSR 依赖的方式诱导 的表达,而 HO、NO 和百草枯(超氧化物生成剂)则没有。因此,HprS 似乎是一种 HOCl 感应组氨酸激酶。通过定向诱变方法,我们表明 HprS 中位于周质环中的 Met 残基对于其活性很重要:我们提供的证据表明,由于 HOCl 优先氧化 Met 残基,HprS 可以通过其甲硫氨酸残基的可逆氧化而被激活,这意味着 MsrPQ 在关闭 HprSR 方面发挥作用。我们提出,HOCl 对 HprS 的激活可能通过 Met 氧化还原开关发生。HprSR 似乎是第一个能够在大肠杆菌中检测到活性氯物种(RCS)的特征性 TCS。这项研究是理解原核生物抵抗 RCS 机制的重要一步。了解细菌如何在分子水平上应对氧化应激对于对抗病原体至关重要。HOCl 是最有效的工业和生理微生物杀灭氧化剂之一。因此,细菌已经开发出了应对 HOCl 诱导应激的对策。在过去的十年中,人们对这些细菌保护因子有了重要的了解。我们的工作确立了 HprSR 作为大肠杆菌 MG1655 中一种活性氯物种感应的双组分系统,该系统调节 的表达,该基因编码两种基因,用于修复 HOCl 氧化的蛋白质。此外,我们提供的证据表明,HOCl 可以通过甲硫氨酸氧化还原开关激活 HprS。

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