首页> 外文期刊>Journal of chemical theory and computation: JCTC >Improving the Resistance Profile of Hepatitis C NS3/4A Inhibitors: Dynamic Substrate Envelope Guided Design
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Improving the Resistance Profile of Hepatitis C NS3/4A Inhibitors: Dynamic Substrate Envelope Guided Design

机译:改善丙型肝炎NS3 / 4A抑制剂的抗药性:动态基质包膜导向设计

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摘要

Drug resistance is a principal concern in the treatment of quickly evolving diseases. The viral protease NS3/4A is a primary drug target for the hepatitis C virus (HCV) and is known to evolve resistance mutations in response to drug therapy. At the molecular level, drug resistance reflects a subtle change in the balance of molecular recognition by NS3/4A; the drug resistant protease variants are no longer effectively inhibited by the competitive active site inhibitors but can still process the natural substrates with enough efficiency for viral survival. In previous works, we have developed the "substrate envelope" hypothesis, which posits that inhibitors should be less susceptible to drug resistance if they better mimic the natural substrate molecular recognition features. In this work, we perform molecular dynamics simulations on four native substrates bound to NS3/4A and discover a clearly conserved dynamic substrate envelope. We show that the most severe drug resistance mutations in NS3/4A occur at residues that are outside the substrate envelope. Comparative analysis of three NS3/4A inhibitors reveals structural and dynamic characteristics of inhibitors that could lead to resistance. We also suggest inhibitor modifications to improve resistance profiles based on the dynamic substrate envelope. This study provides a general framework for guiding the development of novel inhibitors that will be more robust against resistance by mimicking the static and dynamic binding characteristics of natural substrates.
机译:耐药性是治疗快速发展的疾病的主要关注点。病毒蛋白酶NS3 / 4A是丙型肝炎病毒(HCV)的主要药物靶标,已知会响应药物治疗而产生耐药性突变。在分子水平上,耐药性反映出NS3 / 4A在分子识别平衡方面的细微变化。抗药性蛋白酶变体不再被竞争性活性位点抑制剂有效抑制,但仍能以足够的效率处理天然底物以实现病毒存活。在以前的工作中,我们提出了“底物包膜”假说,该假说认为,如果抑制剂能够更好地模仿天然底物分子识别功能,那么它们应该不易产生耐药性。在这项工作中,我们对绑定到NS3 / 4A的四个天然底物进行分子动力学模拟,并发现了一个清晰保守的动态底物包膜。我们表明,NS3 / 4A中最严重的耐药性突变发生在底物包膜之外的残基上。对三种NS3 / 4A抑制剂的比较分析显示,这些抑制剂可能导致耐药性的结构和动力学特征。我们还建议对抑制剂进行修饰,以改善基于动态底物包膜的抗性。这项研究为指导新型抑制剂的开发提供了一个总体框架,该抑制剂通过模仿天然底物的静态和动态结合特性,将具有更强的抗性。

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