压力条件下结核分枝杆菌σ因子 H 与反σ因子 RshA 的分子调控

Q4 Veterinary
Sayantee Sen, Swarnav Bhakta, Kuntal Pal
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引用次数: 0

摘要

结核分枝杆菌是结核病的病原体,结核病是每年夺去数百万人生命的主要致命传染病。在正常情况下,SigH 与同源的反 SigH 因子 RshA 结合,形成抑制转录的复合物。在氧化应激过程中,SigH 从复合物中释放出来,与 RNA 聚合酶(RNAP)结合,启动转录。因此,了解 SigH 在不同细胞或环境背景下与不同蛋白伙伴复合时的分子构象状态非常重要。这项工作旨在分析 SigH-RshA 复合物,揭示 SigH 在分别与 RNAP 和 RshA 形成复合物时的变化。此前,对 SigH-RshA 相互作用的氢氘交换-质谱(HDX-MS)分析详细揭示了参与相互作用的关键残基。利用 HDX-MS 数据将 RshA 与 SigH-RNAP 复合物结构(PDB:5ZX2)中的 SigH 开放构象对接,并通过蛋白质建模获得封闭构象。对接结果表明,从 HDX-MS 数据来看,SigH 与 RshA 复合物的封闭构象表明,在不同环境条件下,SigH 与 RshA 和 RNAP 这两个不同的结合伙伴相互作用时,其结构发生了重大转变。SigH 与 RshA 和 RNAP 的这种结构转变对于理解结核杆菌的应激反应具有重要意义,而且 SigH 可能被证明是一个潜在的药物靶点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Molecular regulation of Mycobacterium tuberculosis Sigma factor H with Anti-sigma factor RshA under stress condition
Mycobacterium tuberculosis is the causative agent of tuberculosis, the leading fatal infectious disease that claims millions of lives every year. M. tuberculosis regulates its stress condition response using its regulatory protein, Sigma Factor H, which binds with its cognate anti-sigma factor RshA in normal conditions, forming a complex inhibiting transcription. During oxidative stress, SigH is released from the complex and binds to RNA Polymerase (RNAP) to initiate transcription. Thus, it is important to understand the molecular conformational state of SigH in complex with different protein partners under different cellular or environmental contexts. This work intends to analyze the SigH-RshA complex, which revealed the variation in SigH shown during complex formation with RNAP and RshA, respectively. Previously, Hydrogen Deuterium Exchange-Mass Spectrometry (HDX-MS) analysis of SigH-RshA interaction provided a detailed insight into the critical residues participating in the interaction. The HDX-MS data were used to dock RshA on the open conformation of SigH from the SigH-RNAP complex structure (PDB: 5ZX2), and closed conformation was obtained from protein modelling. The docking revealed that closed conformation of SigH complexing with RshA in terms of HDX-MS data revealed a major structural shift in SigH while interacting with two different binding partners, RshA and RNAP, under variable environmental conditions. This structural shift of SigH with RshA and RNAP has significance in understanding the stress response of M. tuberculosis, and SigH could prove to be a potential drug target.
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来源期刊
Journal of Experimental Biology and Agricultural Sciences
Journal of Experimental Biology and Agricultural Sciences Agricultural and Biological Sciences-Agricultural and Biological Sciences (all)
CiteScore
1.00
自引率
0.00%
发文量
127
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