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基于结构的冠状病毒核衣壳蛋白非天然蛋白-蛋白相互作用的稳定化在抗病毒药物设计中的应用。

Structure-Based Stabilization of Non-native Protein-Protein Interactions of Coronavirus Nucleocapsid Proteins in Antiviral Drug Design.

机构信息

Institute of Genomics and Bioinformatics, National Chung Hsing University, Taichung 402, Taiwan.

Department of Life Sciences, National Chung Hsing University, Taichung 402, Taiwan.

出版信息

J Med Chem. 2020 Mar 26;63(6):3131-3141. doi: 10.1021/acs.jmedchem.9b01913. Epub 2020 Mar 11.

Abstract

Structure-based stabilization of protein-protein interactions (PPIs) is a promising strategy for drug discovery. However, this approach has mainly focused on the stabilization of native PPIs, and non-native PPIs have received little consideration. Here, we identified a non-native interaction interface on the three-dimensional dimeric structure of the N-terminal domain of the MERS-CoV nucleocapsid protein (MERS-CoV N-NTD). The interface formed a conserved hydrophobic cavity suitable for targeted drug screening. By considering the hydrophobic complementarity during the virtual screening step, we identified 5-benzyloxygramine as a new N protein PPI orthosteric stabilizer that exhibits both antiviral and N-NTD protein-stabilizing activities. X-ray crystallography and small-angle X-ray scattering showed that 5-benzyloxygramine stabilizes the N-NTD dimers through simultaneous hydrophobic interactions with both partners, resulting in abnormal N protein oligomerization that was further confirmed in the cell. This unique approach based on the identification and stabilization of non-native PPIs of N protein could be applied toward drug discovery against CoV diseases.

摘要

基于结构的稳定蛋白-蛋白相互作用(PPIs)是一种很有前途的药物发现策略。然而,这种方法主要集中在稳定天然的 PPIs 上,很少考虑非天然的 PPIs。在这里,我们在 MERS-CoV 核衣壳蛋白(MERS-CoV N-NTD)的三维二聚体结构上鉴定了一个非天然的相互作用界面。该界面形成了一个保守的疏水性腔,适合于靶向药物筛选。通过在虚拟筛选步骤中考虑疏水性互补性,我们鉴定出 5-苯甲氧基-gramine 是一种新的 N 蛋白 PPI 正构稳定剂,具有抗病毒和 N-NTD 蛋白稳定活性。X 射线晶体学和小角 X 射线散射表明,5-苯甲氧基-gramine 通过与两个伴侣的同时疏水相互作用稳定 N-NTD 二聚体,导致异常的 N 蛋白寡聚化,这在细胞中得到了进一步证实。这种基于鉴定和稳定 N 蛋白的非天然 PPIs 的独特方法可应用于针对 CoV 疾病的药物发现。

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