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</script>What coronavirus 3C‐like protease tells us: From structure, substrate selectivity, to inhibitor design
What coronavirus 3C‐like protease tells us: From structure, substrate selectivity, to inhibitor design
AbstractThe emergence of a variety of coronaviruses (CoVs) in the last decades has posed huge threats to human health. Especially, the ongoing pandemic of coronavirus disease 2019 (COVID‐19) caused by severe acute respiratory syndrome coronavirus 2 (SARS‐CoV‐2) has led to more than 70 million infections and over 1.6 million of deaths worldwide in the past few months. None of the efficacious antiviral agents against human CoVs have been approved yet. 3C‐like protease (3CLpro) is an attractive target for antiviral intervention due to its essential role in processing polyproteins translated from viral RNA, and its conserved structural feature and substrate specificity among CoVs in spite of the sequence variation. This review focuses on all available crystal structures of 12 CoV 3CLpros and their inhibitors, and intends to provide a comprehensive understanding of this protease from multiple aspects including its structural features, substrate specificity, inhibitor binding modes, and more importantly, to recapitulate the similarity and diversity among different CoV 3CLpros and the structure–activity relationship of various types of inhibitors. Such an attempt could gain a deep insight into the inhibition mechanisms and drive future structure‐based drug discovery targeting 3CLpros.
- Chinese Academy of Science China (People's Republic of)
- University of Chinese Academy of Sciences China (People's Republic of)
- Shanghai Institute of Materia Medica China (People's Republic of)
- Chinese Academy of Sciences (中国科学院) China (People's Republic of)
- Chinese Academy of Sciences China (People's Republic of)
Pharmacology, Binding Sites, Protein Conformation, SARS-CoV-2, Antiviral Agents, Substrate Specificity, COVID-19 Drug Treatment, Structure-Activity Relationship, Drug Design, Drug Discovery, Molecular Medicine, Humans, Protein Structure, Quaternary, Coronavirus 3C Proteases
Pharmacology, Binding Sites, Protein Conformation, SARS-CoV-2, Antiviral Agents, Substrate Specificity, COVID-19 Drug Treatment, Structure-Activity Relationship, Drug Design, Drug Discovery, Molecular Medicine, Humans, Protein Structure, Quaternary, Coronavirus 3C Proteases
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