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伪尿嘧啶核苷结合在破坏细菌 RNA 聚合酶桥螺旋构象排列中的作用的结构见解。

Structural Insights into the Role of Pseudouridimycin Binding in Disruption of Bacterial RNA Polymerase Bridge Helix Conformational Arrangement.

机构信息

Molecular Bio-computation and Drug Design Research Group, School of Health Sciences, University of KwaZulu Natal, Westville Campus, Durban 4001, South Africa.

出版信息

Curr Pharm Biotechnol. 2023;24(4):562-569. doi: 10.2174/1389201023666220511211433.

Abstract

BACKGROUND

The bridge helix (BH) is a crucial region in bacterial RNA polymerase (RNAP) catalysis. It plays an essential role in the nucleotide addition cycle (NAC) by performing many modulated rearrangements and conformational changes. Any changes in the bridge helix conformational arrangements could perturb the NAC.

OBJECTIVE

Pseudouridimycin (PUM) was recently reported as a new RNAP inhibitor. However, the crucial role of the bridge helix in the inhibitory activity of PUM remains unclear, hence the aim of this study.

METHODS

The PUM interaction and the structural dynamics of bacterial Bridge Helix upon PUM binding were investigated using various dynamic analysis approaches.

RESULTS

Besides establishing the importance of the bridge helix residues in the binding of PUM, the findings of this study revealed that the adjacent binding of PUM induces a stabilized and structurally rigid bridge helix characterized by a reduction of individual residue flexibility, which could interfere with its role in the NAC. In addition, a hydrophobic structural rearrangement of the bridge helix is observed, evidenced by the burial and folding of residues into the hydrophobic core and a switch in the secondary structure of some regions of the bridge helix from the turn and bend to the alpha helix. The observed conformational disruption of the bridge helix upon binding of PUM also accounts for the reported inhibitory prowess and broad-spectrum activity as widely reported. Conclusion We believe findings from this study will further complement current drug discovery knowledge on disrupting bacterial RNAP machinery.

摘要

背景

桥螺旋(BH)是细菌 RNA 聚合酶(RNAP)催化的关键区域。它在核苷酸添加循环(NAC)中起着至关重要的作用,通过执行许多调制重排和构象变化。桥螺旋构象排列的任何变化都可能破坏 NAC。

目的

假尿嘧啶核苷(PUM)最近被报道为一种新的 RNAP 抑制剂。然而,桥螺旋在 PUM 抑制活性中的关键作用尚不清楚,因此本研究旨在探讨这一问题。

方法

使用各种动态分析方法研究了 PUM 与细菌桥螺旋的相互作用以及桥螺旋的结构动力学。

结果

除了确定桥螺旋残基在 PUM 结合中的重要性外,本研究的发现还表明,PUM 的相邻结合诱导了一个稳定的、结构刚性的桥螺旋,其特征是单个残基的灵活性降低,这可能干扰其在 NAC 中的作用。此外,观察到桥螺旋的疏水性结构重排,证据是残基埋藏和折叠到疏水性核心中,以及桥螺旋的一些区域的二级结构从转弯和弯曲到α螺旋的转变。PUM 结合后桥螺旋的构象破坏也解释了广泛报道的报道的抑制功效和广谱活性。

结论

我们相信本研究的结果将进一步补充当前关于破坏细菌 RNAP 机制的药物发现知识。

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