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基于奈韦拉平的改进药物设计及与 HIV-1 逆转录酶 Y188C 突变体分子相互作用机制。

Me-Better Drug Design Based on Nevirapine and Mechanism of Molecular Interactions with Y188C Mutant HIV-1 Reverse Transcriptase.

机构信息

Key Laboratory of Drug Design, College of Chemistry and Chemical Engineering, Huangshan University, Huangshan 245061, China.

Key Laboratory of Biorheological Science and Technology, Ministry of Education, Chongqing University, Chongqing 400044, China.

出版信息

Molecules. 2022 Oct 29;27(21):7348. doi: 10.3390/molecules27217348.

Abstract

In this paper, the Y188C mutant HIV-1 reverse transcriptase (Y188CM-RT) target protein was constructed by homology modeling, and new ligands based on nevirapine (NVP) skeleton were designed by means of fragment growth. The binding activity of new ligands to Y188CM-RT was evaluated by structural analysis, ADMET prediction, molecular docking, energy calculation and molecular dynamics. Results show that 10 new ligands had good absorbability, and their binding energies to Y188CM-RT were significantly higher than those of wild-type HIV-1 reverse transcriptase(wt). The binding mode explained that fragment growth contributed to larger ligands, leading to improved suitability at the docking pocket. In the way of fragment growth, the larger side chain with extensive contact at terminal is obviously better than substituted benzene ring. The enhancement of docking activity is mainly due to the new fragments such as alkyl chains and rings with amino groups at NVP terminal, resulting in a large increase in hydrophobic bonding and the new addition of hydrogen bonding or salt bonding. This study is expected to provide reference for the research on non-nucleoside reverse transcriptase inhibitors resistance and AIDS treatment.

摘要

本文通过同源建模构建了 Y188C 突变 HIV-1 逆转录酶(Y188CM-RT)靶蛋白,并通过碎片生长设计了基于奈韦拉平(NVP)骨架的新型配体。通过结构分析、ADMET 预测、分子对接、能量计算和分子动力学评估了新型配体与 Y188CM-RT 的结合活性。结果表明,10 种新型配体具有良好的吸收性,它们与 Y188CM-RT 的结合能明显高于野生型 HIV-1 逆转录酶(wt)。结合模式表明,碎片生长有助于形成更大的配体,从而提高与对接口袋的适配性。在碎片生长的方式中,末端具有广泛接触的较大侧链显然优于取代的苯环。对接活性的增强主要归因于 NVP 末端带有氨基的新片段,如烷基链和环,从而导致疏水性键合的大幅增加,并新增了氢键或盐键合。本研究有望为非核苷逆转录酶抑制剂耐药性和艾滋病治疗的研究提供参考。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fbf6/9659058/c1afd99f1cde/molecules-27-07348-g001.jpg

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