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一种利用包膜蛋白同源结构抑制寨卡病毒的方法。

An Approach for Zika Virus Inhibition Using Homology Structure of the Envelope Protein.

作者信息

Fernando Sandun, Fernando Teshan, Stefanik Michal, Eyer Ludek, Ruzek Daniel

机构信息

Biological Engineering, Texas A&M University, 303C Scoates Hall, 2117 TAMU, College Station, TX, 77843, USA.

Department of Virology, Veterinary Research Institute, Hudcova 70, 62100, Brno, Czech Republic.

出版信息

Mol Biotechnol. 2016 Dec;58(12):801-806. doi: 10.1007/s12033-016-9979-1.

DOI:10.1007/s12033-016-9979-1
PMID:27683255
Abstract

To find an effective drug for Zika virus, it is important to understand how numerous proteins which are critical for the virus' structure and function interact with their counterparts. One approach to inhibiting the flavivirus is to deter its ability to bind onto glycoproteins; however, the crystal structures of envelope proteins of the ever-evolving viral strains that decipher glycosidic or drug-molecular interactions are not always available. To fill this gap, we are reporting a holistic, simulation-based approach to predict compounds that will inhibit ligand binding onto a structurally unresolved protein, in this case the Zika virus envelope protein (ZVEP), by developing a three-dimensional general structure and analyzing sites at which ligands and small drug-like molecules interact. By examining how glycan molecules and small-molecule probes interact with a freshly resolved ZVEP homology model, we report the susceptibility of ZVEP to inhibition via two small molecules, ZINC33683341 and ZINC49605556-by preferentially binding onto the primary receptor responsible for the virus' virulence. Antiviral activity was confirmed when ZINC33683341 was tested in cell culture. We anticipate the results to be a starting point for drug discovery targeting Zika virus and other emerging pathogens.

摘要

为了找到一种针对寨卡病毒的有效药物,了解众多对病毒结构和功能至关重要的蛋白质如何与其对应物相互作用非常重要。抑制黄病毒的一种方法是阻止其与糖蛋白结合的能力;然而,用于解析糖苷或药物 - 分子相互作用的不断演变的病毒株包膜蛋白的晶体结构并非总是可得。为了填补这一空白,我们报告了一种基于模拟的整体方法,通过构建三维通用结构并分析配体和类药物小分子相互作用的位点,来预测能够抑制配体与结构未解析的蛋白质(在这种情况下为寨卡病毒包膜蛋白(ZVEP))结合的化合物。通过研究聚糖分子和小分子探针如何与新解析的ZVEP同源模型相互作用,我们报告了ZVEP对两种小分子ZINC33683341和ZINC49605556抑制的敏感性——通过优先结合负责病毒毒力的主要受体。当在细胞培养中测试ZINC33683341时,抗病毒活性得到证实。我们预计这些结果将成为针对寨卡病毒和其他新兴病原体的药物发现的起点。

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