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群体感应 agr 通过响应调节剂 AgrA 中的分子内二硫键氧化还原开关来介导细菌氧化反应。

Quorum-sensing agr mediates bacterial oxidation response via an intramolecular disulfide redox switch in the response regulator AgrA.

机构信息

Department of Chemistry and Institute for Biophysical Dynamics, University of Chicago, Chicago, IL 60637, USA.

出版信息

Proc Natl Acad Sci U S A. 2012 Jun 5;109(23):9095-100. doi: 10.1073/pnas.1200603109. Epub 2012 May 14.

Abstract

Oxidation sensing and quorum sensing significantly affect bacterial physiology and host-pathogen interactions. However, little attention has been paid to the cross-talk between these two seemingly orthogonal signaling pathways. Here we show that the quorum-sensing agr system has a built-in oxidation-sensing mechanism through an intramolecular disulfide switch possessed by the DNA-binding domain of the response regulator AgrA. Biochemical and mass spectrometric analysis revealed that oxidation induces the intracellular disulfide bond formation between Cys-199 and Cys-228, thus leading to dissociation of AgrA from DNA. Molecular dynamics (MD) simulations suggest that the disulfide bond formation generates a steric clash responsible for the abolished DNA binding of the oxidized AgrA. Mutagenesis studies further established that Cys-199 is crucial for oxidation sensing. The oxidation-sensing role of Cys-199 is further supported by the observation that the mutant Staphylococcus aureus strain expressing AgrAC199S is more susceptible to H(2)O(2) owing to repression of the antioxidant bsaA gene under oxidative stress. Together, our results show that oxidation sensing is a component of the quorum-sensing agr signaling system, which serves as an intrinsic checkpoint to ameliorate the oxidation burden caused by intense metabolic activity and potential host immune response.

摘要

氧化感应和群体感应显著影响细菌的生理和宿主-病原体相互作用。然而,人们对这两个看似正交的信号通路之间的串扰关注甚少。在这里,我们展示了群体感应 agr 系统通过响应调节因子 AgrA 的 DNA 结合域所具有的分子内二硫键开关,具有内置的氧化感应机制。生化和质谱分析表明,氧化诱导细胞内 Cys-199 和 Cys-228 之间形成二硫键,从而导致 AgrA 从 DNA 上解离。分子动力学(MD)模拟表明,二硫键的形成产生了空间位阻,导致氧化的 AgrA 失去了与 DNA 的结合。突变研究进一步证实 Cys-199 对于氧化感应至关重要。Cys-199 的氧化感应作用还得到了以下观察结果的支持:表达 AgrAC199S 的金黄色葡萄球菌突变株由于在氧化应激下抗氧化基因 bsaA 的表达受到抑制,因此更容易受到 H(2)O(2)的影响。总之,我们的研究结果表明,氧化感应是群体感应 agr 信号系统的一个组成部分,它作为内在的检查点,减轻由强烈代谢活动和潜在的宿主免疫反应引起的氧化负担。

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