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RbpA 内的结构域具有特定的功能作用,调节不同的分枝杆菌基因亚群的表达。

Domains within RbpA Serve Specific Functional Roles That Regulate the Expression of Distinct Mycobacterial Gene Subsets.

机构信息

Department of Molecular Microbiology, Washington University School of Medicine, St. Louis, Missouri, USA.

Department of Biochemistry and Molecular Biophysics, Washington University School of Medicine, St. Louis, Missouri, USA.

出版信息

J Bacteriol. 2018 Jun 11;200(13). doi: 10.1128/JB.00690-17. Print 2018 Jul 1.

Abstract

The RNA polymerase (RNAP) binding protein A (RbpA) contributes to the formation of stable RNAP-promoter open complexes (RP) and is essential for viability in mycobacteria. Four domains have been identified in the RbpA protein, i.e., an N-terminal tail (NTT) that interacts with RNAP β' and σ subunits, a core domain (CD) that contacts the RNAP β' subunit, a basic linker (BL) that binds DNA, and a σ-interaction domain (SID) that binds group I and group II σ factors. Limited studies have been performed in mycobacteria, however, and how individual structural domains of RbpA contribute to RbpA function and mycobacterial gene expression remains mostly unknown. We investigated the roles of the RbpA structural domains in mycobacteria using a panel of mutants that target individual RbpA domains. The function of each RbpA domain was required for viability and optimal growth in We determined that the RbpA SID is both necessary and sufficient for RbpA interaction with the RNAP, indicating that the primary functions of the NTT and CD are not solely association with the RNAP. We show that the RbpA BL and SID are required for RP stabilization , while the NTT and CD antagonize this activity. Finally, RNA-sequencing analyses suggest that the NTT and CD broadly activate gene expression, whereas the BL and SID activate or repress gene expression in a gene-dependent manner for a subset of mycobacterial genes. Our findings highlight specific outcomes for the activities of the individual functional domains in RbpA. is the causative agent of tuberculosis and continues to be the most lethal infectious disease worldwide. Improved molecular understanding of the essential proteins involved in transcription, such as RbpA, could provide targets for much needed future therapeutic agents aimed at combatting this pathogen. In this study, we expand our understanding of RbpA by identifying the RbpA structural domains responsible for the interaction of RbpA with the RNAP and the effects of RbpA on transcription initiation and gene expression. These experiments expand our knowledge of RbpA while also broadening our understanding of bacterial transcription in general.

摘要

RNA 聚合酶 (RNAP) 结合蛋白 A (RbpA) 有助于形成稳定的 RNAP-启动子开放复合物 (RP),并对分枝杆菌的生存至关重要。在 RbpA 蛋白中已经鉴定出四个结构域,即与 RNAP β'和 σ 亚基相互作用的 N 端尾巴 (NTT)、与 RNAP β'亚基接触的核心结构域 (CD)、结合 DNA 的碱性连接子 (BL) 和与组 I 和组 II σ 因子结合的 σ 相互作用结构域 (SID)。然而,在分枝杆菌中进行的研究有限,并且 RbpA 各结构域如何有助于 RbpA 功能和分枝杆菌基因表达在很大程度上仍然未知。我们使用一组针对单个 RbpA 结构域的突变体来研究分枝杆菌中 RbpA 结构域的作用。每个 RbpA 结构域的功能对于生存和最佳生长都是必需的,我们确定 RbpA SID 既是与 RNAP 相互作用的必要条件,也是充分条件,这表明 NTT 和 CD 的主要功能不仅仅是与 RNAP 结合。我们表明,RbpA BL 和 SID 对于 RP 的稳定是必需的,而 NTT 和 CD 拮抗这种活性。最后,RNA-seq 分析表明,NTT 和 CD 广泛激活基因表达,而 BL 和 SID 以基因依赖的方式激活或抑制一组分枝杆菌基因的基因表达。我们的发现强调了 RbpA 中各个功能结构域活动的特定结果。结核分枝杆菌是结核病的病原体,仍然是全球最致命的传染病。对参与转录的必需蛋白(如 RbpA)的分子理解的提高,可为对抗这种病原体的未来急需的治疗药物提供目标。在这项研究中,我们通过确定与 RNAP 相互作用的 RbpA 结构域以及 RbpA 对转录起始和基因表达的影响,来识别 RbpA 结构域负责的 RbpA ,从而扩展了对 RbpA 的理解。这些实验扩展了我们对 RbpA 的认识,同时也拓宽了我们对细菌转录的理解。

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