酰化
冠状病毒
蛋白质水解
催化作用
化学
蛋白酵素
分子力学
劈理(地质)
构象变化
酶动力学
肽
蛋白酶
生物化学
生物物理学
立体化学
活动站点
生物
分子动力学
2019年冠状病毒病(COVID-19)
酶
计算化学
传染病(医学专业)
医学
断裂(地质)
疾病
古生物学
病理
作者
Junwei Zhou,Jiyao Chen,Peng Sun,Gang Ye,Yuanqing Wang,Runhui Qiu,Zhixiang Yang,Dengguo Wei,Guiqing Peng,Liurong Fang,Shaobo Xiao
出处
期刊:ACS Catalysis
[American Chemical Society]
日期:2024-05-14
卷期号:14 (11): 8330-8342
被引量:1
标识
DOI:10.1021/acscatal.4c01159
摘要
Coronavirus 3C-like proteases (3CLpro) are critical for viral replication and provide targets for antiviral drugs. Using the enteropathogenic alphacoronavirus porcine epidemic diarrhea virus (PEDV) as a model, we determined the crystal structure of an inactive PEDV 3CLpro variant (C144A) in complex with a peptide of NF-κB essential modulator (NEMO227–233). Structural characterization showed that the conformational change to PEDV 3CLpro S1′ pocket conferred tolerance for nonconventional P1′-Val from a NEMO peptide substrate, indicating strong substrate accommodation. Using a combination of classical and quantum mechanics/molecular mechanics simulations, we explored the free-energy landscapes associated with the acylation step of PEDV 3CLpro with regard to various substrates. The P1′ site plays a key role in the thermodynamics and kinetics of proteolysis, and the S1′ pocket might affect the free-energy cost of the acylation reaction. Our study provides structural insight into coronavirus 3CLpro-mediated cleavage and will inform the development of anti-coronavirus drugs.
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