首页> 外文期刊>Journal of Molecular Modeling >Homology modeling, molecular dynamics, e-pharmacophore mapping and docking study of Chikungunya virus nsP2 protease
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Homology modeling, molecular dynamics, e-pharmacophore mapping and docking study of Chikungunya virus nsP2 protease

机译:基孔肯雅病毒nsP2蛋白酶的同源性建模,分子动力学,电子药效团定位和对接研究

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To date, no suitable vaccine or specific antiviral drug is available to treat Chikungunya viral (CHIKV) fever. Hence, it is essential to identify drug candidates that could potentially impede CHIKV infection. Here, we present the development of a homology model of nsP2 protein based on the crystal structure of the nsP2 protein of Venezuelan equine encephalitis virus (VEEV). The protein modeled was optimized using molecular dynamics simulation; the junction peptides of a nonstructural protein complex were then docked in order to investigate the possible protein–protein interactions between nsP2 and the proteins cleaved by nsP2. The modeling studies conducted shed light on the binding modes, and the critical interactions with the peptides provide insight into the chemical features needed to inhibit the CHIK virus infection. Energy-optimized pharmacophore mapping was performed using the junction peptides. Based on the results, we propose the pharmacophore features that must be present in an inhibitor of nsP2 protease. The resulting pharmacophore model contained an aromatic ring, a hydrophobic and three hydrogen-bond donor sites. Using these pharmacophore features, we screened a large public library of compounds (Asinex, Maybridge, TOSLab, Binding Database) to find a potential ligand that could inhibit the nsP2 protein. The compounds that yielded a fitness score of more than 1.0 were further subjected to Glide HTVS and Glide XP. Here, we report the best four compounds based on their docking scores; these compounds have IDs of 27943, 21362, ASN 01107557 and ASN 01541696. We propose that these compounds could bind to the active site of nsP2 protease and inhibit this enzyme. Furthermore, the backbone structural scaffolds of these four lead compounds could serve as building blocks when designing drug-like molecules for the treatment of Chikungunya viral fever.
机译:迄今为止,尚无合适的疫苗或特异性抗病毒药物可用于治疗基孔肯雅病毒(CHIKV)热。因此,必须确定可能阻碍CHIKV感染的候选药物。在这里,我们根据委内瑞拉马脑炎病毒(VEEV)nsP2蛋白的晶体结构,提出nsP2蛋白同源模型的开发。使用分子动力学模拟对建模的蛋白质进行优化;然后将非结构蛋白复合物的连接肽对接,以研究nsP2与nsP2裂解的蛋白之间可能存在的蛋白-蛋白相互作用。进行的建模研究阐明了结合方式,与肽的关键相互作用为抑制CHIK病毒感染所需的化学特征提供了见识。使用连接肽进行能量优化的药效团作图。根据结果​​,我们提出了nsP2蛋白酶抑制剂中必须存在的药效团特征。所得的药效团模型包含一个芳环,一个疏水和三个氢键供体位点。利用这些药效基团的功能,我们筛选了一个大型化合物公共图书馆(Asinex,Maybridge,TOSLab,结合数据库),以寻找可能抑制nsP2蛋白的潜在配体。将健身评分大于1.0的化合物进一步使用Glide HTVS和Glide XP。在这里,我们根据对接分数报告了最佳的四种化合物。这些化合物的ID为27943、21362,ASN 01107557和ASN01541696。我们建议这些化合物可以与nsP2蛋白酶的活性位点结合并抑制该酶。此外,在设计用于治疗基孔肯雅病毒热的药物样分子时,这四种先导化合物的骨架结构支架可以作为构建基块。

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