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首页> 外文期刊>Journal of Molecular Biology >Structural and biochemical bases for the redox sensitivity of Mycobacterium tuberculosis RslA.
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Structural and biochemical bases for the redox sensitivity of Mycobacterium tuberculosis RslA.

机译:结核分枝杆菌RslA对氧化还原敏感性的结构和生化基础。

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摘要

An effective transcriptional response to redox stimuli is of particular importance for Mycobacterium tuberculosis, as it adapts to the environment of host alveoli and macrophages. The M. tuberculosis sigma factor sigma(L) regulates the expression of genes involved in cell-wall and polyketide syntheses. sigma(L) interacts with the cytosolic anti-sigma domain of a membrane-associated protein, RslA. Here we demonstrate that RslA binds Zn(2+) and can sequester sigma(L) in a reducing environment. In response to an oxidative stimulus, proximal cysteines in the CXXC motif of RslA form a disulfide bond, releasing bound Zn(2+). This results in a substantial rearrangement of the sigma(L)/RslA complex, leading to an 8-fold decrease in the affinity of RslA for sigma(L). The crystal structure of the -35-element recognition domain of sigma(L), sigma(4)(L), bound to RslA reveals that RslA inactivates sigma(L) by sterically occluding promoter DNA and RNA polymerase binding sites. The crystal structure further reveals that the cysteine residues that coordinate Zn(2+) in RslA are solvent exposed in the complex, thus providing a structural basis for the redox sensitivity of RslA. The biophysical parameters of sigma(L)/RslA interactions provide a template for understanding how variations in the rate of Zn(2+) release and associated conformational changes could regulate the activity of a Zn(2+)-associated anti-sigma factor.
机译:对氧化还原刺激的有效转录应答对于结核分枝杆菌特别重要,因为它适应宿主肺泡和巨噬细胞的环境。结核分枝杆菌西格玛因子sigma(L)调节参与细胞壁和聚酮化合物合成的基因的表达。 sigma(L)与膜相关蛋白RslA的胞质抗sigma域相互作用。在这里,我们证明RslA结合Zn(2+)并可以在还原环境中隔离sigma(L)。响应于氧化刺激,RslA的CXXC基序中的近端半胱氨酸形成二硫键,释放结合的Zn(2+)。这导致σ(R)/ RslA复合物的实质性重排,导致RslA对σ(L)的亲和力降低8倍。绑定到RslA的sigma(L),sigma(4)(L)的-35元素识别结构域的晶体结构揭示,RslA通过在空间上封闭启动子DNA和RNA聚合酶结合位点来灭活sigma(L)。晶体结构进一步揭示了与RslA中的Zn(2+)配位的半胱氨酸残基在复合物中被溶剂暴露,从而为RslA的氧化还原敏感性提供了结构基础。 Sigma(L)/ RslA相互作用的生物物理参数提供了一个模板,用于了解Zn(2+)释放速率的变化和相关的构象变化如何调节Zn(2+)相关的​​抗Sigma因子的活性。

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