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首页> 外文期刊>Journal of molecular modeling >Relationship between mutation of serine residue at 315th position in M. tuberculosis catalase-peroxidase enzyme and Isoniazid susceptibility: An in silico analysis
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Relationship between mutation of serine residue at 315th position in M. tuberculosis catalase-peroxidase enzyme and Isoniazid susceptibility: An in silico analysis

机译:结核分枝杆菌过氧化氢酶过氧化物酶中第315位丝氨酸残基突变与异烟肼敏感性的关系:计算机分析

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摘要

Remarkable advances have been made in the drug therapy of tuberculosis. However much remains to be learned about the molecular and structural basis of drug resistance in Mycobacterium tuberculosis. It is known that, activation of Isoniazid (INH) is mediated by Mycobacterium tuberculosis catalase-peroxidase (MtBKatG) and mutation at position 315 (serine to threonine) leads to resistance. We have conducted studies on the drug resistance through docking and binding analysis supported by time-scale (~1000 ps) and unrestrained all-atom molecular dynamics simulations of wild and mutant MtBKatG. The study showed conformational changes of binding residues. Mutant (S315T) showed high docking score and INH binding affinity as compared to wild enzyme. In molecular dynamics simulation, mutant enzyme exhibited less structure fluctuation at INH binding residues and more degree of fluctuation at C-terminal domain compared to wild enzyme. Our computational studies and data endorse that MtBKatG mutation (S315T) decrease the flexibility of binding residues and made them rigid by altering the conformational changes, in turn it hampers the INH activity. We ascertain from this work that, this study on structural mechanism of resistance development in Mycobacterium tuberculosis would lead to new therapeutics based on the result obtained in this study.
机译:结核病的药物治疗已取得显着进展。然而,关于结核分枝杆菌耐药性的分子和结构基础,仍有许多知识要学习。已知异烟肼(INH)的激活是由结核分枝杆菌过氧化氢酶过氧化物酶(MtBKatG)介导的,位置315的突变(丝氨酸变为苏氨酸)导致耐药。我们通过时间尺度(〜1000 ps)支持的对接和结合分析以及野生和突变MtBKatG的无限制全原子分子动力学模拟,对耐药性进行了研究。研究表明结合残基的构象变化。与野生酶相比,突变体(S315T)显示出较高的对接得分和INH结合亲和力。在分子动力学模拟中,与野生酶相比,突变酶在INH结合残基处的结构波动较小,而在C端结构域的波动较大。我们的计算研究和数据表明,MtBKatG突变(S315T)降低了结合残基的柔韧性,并通过改变构象变化使其变硬,从而阻碍了INH活性。从这项工作中我们可以确定,基于本研究获得的结果,对结核分枝杆菌耐药性发展机制的研究将导致新的治疗方法。

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