阿扎那韦作用下 HIV-1 蛋白酶亚型 C 的耐药机制

IF 2.7 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
S.V. Sankaran , Sowmya R. Krishnan , Yasien Sayed , M. Michael Gromiha
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引用次数: 0

摘要

艾滋病是由艾滋病毒引起的人类历史上最致命的疾病之一。尽管技术不断发展,但遏制病毒在人类宿主体内的感染仍是一项挑战。HAART 等疗法使用多种药物组合来抑制病毒活性。其中一个重要靶点包括艾滋病毒蛋白酶,抑制其活性将最大限度地减少成熟结构蛋白的产生。然而,基因的多样性和耐药性突变的发生增加了有效药物设计的复杂性。在本研究中,我们旨在了解其中一种亚型(即 C 亚型及其插入变体 L38HL)的药物结合机制。我们对野生型和 L38HL 与阿扎那韦(ATV)的结合进行了多重分子动力学模拟和结合自由能分析。分析结果表明,插入改变了氢键和疏水相互作用网络。相互作用网络的改变增加了铰链-富集界面的灵活性。此外,这些变化还影响了瓣尖的卷曲。此外,铰链-富集-悬臂界面的变化会改变功能区的协同运动,导致瓣片运动方向的改变,从而引起活性位点体积的微妙变化。此外,与 L38HL 对接的 ATV 分子内氢键的形成限制了 R1 和 R2 基团的运动,从而改变了相互作用。总之,瓣片灵活性的变化以及活性位点体积和配体紧密度的变化,为提高 ATV 与 L38HL 的结合亲和力提供了启示。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Mechanism of drug resistance in HIV-1 protease subtype C in the presence of Atazanavir

Mechanism of drug resistance in HIV-1 protease subtype C in the presence of Atazanavir

AIDS is one of the deadliest diseases in the history of humankind caused by HIV. Despite the technological development, curtailing the viral infection inside human host still remains a challenge. Therapies such as HAART uses a combination of drugs to inhibit the viral activity. One of the important targets includes HIV protease and inhibiting its activity will minimize the production of mature structural proteins. However, the genetic diversity and the occurrence of drug resistant mutations adds complexity to effective drug design. In this study, we aimed at understanding the drug binding mechanism of one such subtype, namely subtype C and its insertion variant L38HL. We performed multiple molecular dynamics simulations along with binding free energy analysis of wild-type and L38HL bound to Atazanavir (ATV). From the analysis, we revealed that the insertion alters the hydrogen bond and hydrophobic interaction networks. The alterations in the interaction networks increase flexibility at the hinge-fulcrum interface. Further, the effects of these changes affect flap tip curling. Moreover, the changes in the hinge-fulcrum-cantilever interface alters the concerted motion of the functional regions leading to change in the direction of flap movement thus causing a subtle change in the active site volume. Additionally, formation of intramolecular hydrogen bonds in the ATV docked to L38HL restricted the movement of R1 and R2 groups thereby altering the interactions. Overall, the changes in the flexibility of flap together with the changes in the active site volume and compactness of the ligand provide insights for increased binding affinity of ATV with L38HL.

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来源期刊
CiteScore
4.60
自引率
0.00%
发文量
33
审稿时长
104 days
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