Structural Insights into Plasticity and Discovery of Flavonoid Allosteric Inhibitors of Flavivirus NS2B–NS3 Protease

M. Saivish, G. Menezes, Vaston Gonçalves da Costa, Liliane Nebo, G. C. D. Silva, C. Pacca, R. E. Marques, M. Nogueira, R. D. da Silva
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引用次数: 1

Abstract

Flaviviruses are among the most critical pathogens in tropical regions; they cause various severe diseases in developing countries but are not restricted to these countries. The development of antiviral therapeutics is crucial for managing flavivirus outbreaks. Ten proteins are encoded in the flavivirus RNA. The N2B–NS3pro protein complex plays a fundamental role in flavivirus replication and is a promising drug target; however, no flavivirus protease inhibitors have progressed to the preclinical stage. This study analyzed the structural models and plasticity of the NS2B–NS3pro protein complex of five medically important non-dengue flaviviruses (West Nile, Rocio, Ilhéus, yellow fever, and Saint Louis encephalitis). The flavonoids amentoflavone, tetrahydrorobustaflavone, and quercetin were selected for their exceptional binding energies as potential inhibitors of the NS2B–NS3pro protein complex. AutoDock Vina results ranged from −7.0 kcal/mol to −11.5 kcal/mol and the compounds preferentially acted non-competitively. Additionally, the first structural model for the NS2B–NS3pro protein complex was proposed for Ilhéus and Rocio viruses. The NS2B–NS3pro protease is an attractive molecular target for drug development. The three identified natural flavonoids showed great inhibitory potential against the viral species. Nevertheless, further in silico and in vitro studies are required to obtain more information regarding NS2B–NS3pro inhibition by these flavonoids and their therapeutic potential.
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黄病毒NS2B–NS3蛋白酶可塑性的结构观察及黄酮类变构抑制剂的发现
黄病毒是热带地区最重要的病原体之一;它们在发展中国家引起各种严重疾病,但并不局限于这些国家。抗病毒疗法的开发对于控制黄病毒爆发至关重要。黄病毒核糖核酸中编码了10种蛋白质。N2B–NS3pro蛋白复合物在黄病毒复制中起着重要作用,是一个有前景的药物靶点;然而,没有黄病毒蛋白酶抑制剂进展到临床前阶段。本研究分析了五种医学上重要的非登革热黄病毒(西尼罗河病毒、Rocio病毒、Ilhéus病毒、黄热病病毒和圣路易斯脑炎病毒)的NS2B–NS3pro蛋白复合物的结构模型和可塑性。黄酮类化合物核黄素、四氢罗布斯塔黄酮和槲皮素因其特殊的结合能而被选为NS2B–NS3pro蛋白复合物的潜在抑制剂。AutoDock Vina的结果范围为−7.0 kcal/mol至−11.5 kcal/mol,这些化合物优先表现为非竞争性。此外,针对Ilhéus和Rocio病毒提出了NS2B–NS3pro蛋白复合物的第一个结构模型。NS2B–NS3蛋白酶是药物开发的一个有吸引力的分子靶点。三种已鉴定的天然黄酮类化合物显示出对病毒物种的巨大抑制潜力。然而,还需要进一步的计算机和体外研究来获得更多关于这些类黄酮对NS2B–NS3pro的抑制作用及其治疗潜力的信息。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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