HIV-1蛋白酶有效小分子调节剂CID-2135609的结构鉴定和分子特性

IF 2.8 3区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
S Rehan Ahmad, Md. Zeyaullah, Abdullah M. AlShahrani, Ali Mohieldin, Mohammad Shane Alam, Abdelrhman A. G. Altijani
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引用次数: 0

摘要

HIV-1蛋白酶是抗逆转录病毒药物开发的关键治疗靶点。在这项研究中,采用基于结构的高通量虚拟筛选(HTVS)方法来鉴定针对蛋白酶催化位点的新型喹唑啉类抑制剂。从PubChem数据库中筛选了5000个化合物,CID-2135609以最强的结合亲和力(-12.39 kcal/mol)脱颖而出。CID-2135609除了具有优异的对接评分外,还具有良好的药物样特性,包括最佳分子量、高Caco-2通透性、平衡的亲脂性和可接受的血脑屏障穿透性。分子对接发现,CID-2135609通过范德华和π相互作用与关键催化残基(Asp25、Ile50、Gly49)结合,另外还有Arg8、Asp30和Ile47的参与。热力学分析表明,这种结合是由疏水接触和水位移驱动的放热和熵有利的,负ΔG证实了自发结合。超过200 ns的全原子分子动力学模拟表明,CID-2135609在活性位点内保持稳定的结合,在调整其取向以增强配合的同时保持了关键的接触。蛋白酶结构保持构象稳定,二级结构或整体致密性偏差最小。时间分辨相互作用分析显示,与Pro81、Ile84和Thr80等残基的相互作用持续扩大。与载脂蛋白形式的比较分析表明,在配体结合时,溶剂暴露和构象灵活性降低,SASA和PCA分析也支持这一点。自由能分解进一步验证了配合物的稳定性。总之,CID-2135609是抑制HIV-1蛋白酶的有希望的候选药物,值得进一步的实验验证。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Structure-Based Identification and Molecular Characterization of CID-2135609 as a Potent Small Molecule Modulator of HIV-1 Protease

HIV-1 protease is a key therapeutic target for antiretroviral drug development. In this study, a structure-based high-throughput virtual screening (HTVS) approach was employed to identify novel quinazoline-based inhibitors targeting the protease's catalytic site. A library of 5000 compounds from the PubChem database was screened, and CID-2135609 emerged as the top hit with the strongest binding affinity (–12.39 kcal/mol). In addition to its superior docking score, CID-2135609 exhibited favorable drug-like properties, including optimal molecular weight, high Caco-2 permeability, balanced lipophilicity, and acceptable blood-brain barrier penetration. Molecular docking revealed that CID-2135609 engages key catalytic residues (Asp25, Ile50, Gly49) through van der Waals and π-interactions, with additional contributions from Arg8, Asp30, and Ile47. Thermodynamic profiling indicated that binding is exothermic and entropically favorable, driven by hydrophobic contacts and water displacement, with a negative ΔG confirming spontaneous association. All-atom molecular dynamics simulations over 200 ns demonstrated that CID-2135609 maintains stable binding within the active site, preserving critical contacts while adapting its orientation to enhance fit. The protease structure remained conformationally stable, with minimal deviation in secondary structure or global compactness. Time-resolved interaction profiling revealed sustained and expanded interactions with residues including Pro81, Ile84, and Thr80. Comparative analysis with the apo form showed reduced solvent exposure and conformational flexibility upon ligand binding, as supported by SASA and PCA analyses. Free energy decomposition further validated complex stability. Overall, CID-2135609 is a promising candidate for HIV-1 protease inhibition and merits further experimental validation.

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来源期刊
Journal of cellular biochemistry
Journal of cellular biochemistry 生物-生化与分子生物学
CiteScore
9.90
自引率
0.00%
发文量
164
审稿时长
1 months
期刊介绍: The Journal of Cellular Biochemistry publishes descriptions of original research in which complex cellular, pathogenic, clinical, or animal model systems are studied by biochemical, molecular, genetic, epigenetic or quantitative ultrastructural approaches. Submission of papers reporting genomic, proteomic, bioinformatics and systems biology approaches to identify and characterize parameters of biological control in a cellular context are encouraged. The areas covered include, but are not restricted to, conditions, agents, regulatory networks, or differentiation states that influence structure, cell cycle & growth control, structure-function relationships.
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