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通过高斯加速分子动力学模拟探究结核分枝杆菌RNA聚合酶上S456L和D441V点突变导致利福平耐药的分子机制。

Probing the Molecular Mechanism of Rifampin Resistance Caused by the Point Mutations S456L and D441V on Mycobacterium tuberculosis RNA Polymerase through Gaussian Accelerated Molecular Dynamics Simulation.

作者信息

Zhang Qianqian, Tan Shuoyan, Xiao Tong, Liu Hongli, Shah Syed Jawad Ali, Liu Huanxiang

机构信息

School of Pharmacy, Lanzhou University, Lanzhou, China.

School of Pharmacy, Lanzhou University, Lanzhou, China

出版信息

Antimicrob Agents Chemother. 2020 Jun 23;64(7). doi: 10.1128/AAC.02476-19.

Abstract

Rifampin is the first-line antituberculosis drug, with RNA polymerase as the molecular target. Unfortunately, strains that are resistant to rifampin have been identified in clinical settings, which limits its therapeutic effects. In clinical isolates, S531L and D516V (in ) are two common mutated codons in the gene , corresponding to S456L and D441V in However, the resistance mechanism at the molecular level is still elusive. In this work, Gaussian accelerated molecular dynamics simulations were performed to uncover the resistance mechanism of rifampin due to S456L and D441V mutations at the atomic level. The binding free energy analysis revealed that the reduction in the ability of two mutants to bind rifampin is mainly due to a decrease in electrostatic interaction, specifically, a decrease in the energy contribution of the R454 residue. R454 acts as an anchor and forms stable hydrogen bond interaction with rifampin, allowing rifampin to be stably incorporated in the center of the binding pocket. However, the disappearance of the hydrogen bond between R454 and the mutated residues increases the flexibility of the side chain of R454. The conformation of R454 changes, and the hydrogen bond interaction between it and rifampin is disrupted. As result, the rifampin molecule moves to the outside of the pocket, and the binding affinity decreases. Overall, these findings can provide useful information for understanding the drug resistance mechanism of rifampin and also can give theoretical guidance for further design of novel inhibitors to overcome the drug resistance.

摘要

利福平是一线抗结核药物,其分子靶点为RNA聚合酶。不幸的是,临床上已鉴定出对利福平耐药的菌株,这限制了其治疗效果。在临床分离株中,S531L和D516V(在……中)是基因……中的两个常见突变密码子,对应于……中的S456L和D441V。然而,分子水平的耐药机制仍不清楚。在这项工作中,进行了高斯加速分子动力学模拟,以在原子水平上揭示利福平因S456L和D441V突变产生的耐药机制。结合自由能分析表明,两个突变体与利福平结合能力的降低主要是由于静电相互作用的减弱,具体而言,是R454残基能量贡献的减少。R454作为一个锚定物,与利福平形成稳定的氢键相互作用,使利福平能够稳定地结合在结合口袋的中心。然而,R454与突变残基之间氢键的消失增加了R454侧链的灵活性。R454的构象发生变化,其与利福平之间的氢键相互作用被破坏。结果,利福平分子移至口袋外部,结合亲和力降低。总体而言,这些发现可为理解利福平的耐药机制提供有用信息,也可为进一步设计新型抑制剂以克服耐药性提供理论指导。

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