Design of wide-spectrum inhibitors targeting coronavirus main proteases

Haitao Yang;卫青 谢;Xiaoyu Xue;Kailin Yang;Jing Ma;Wenxue Liang;Qi Zhao;Zhe Zhou;端卿 裴;John Ziebuhr;Rolf Hilgenfeld;Yung Yuen Kwok;Luet Wong;光侠 高;赛娟 陈;竺 陈;大为 马;Mark Bartlam;子和 饶

Tsinghua University;CAS - Institute of Biophysics;CAS - Shanghai Institute of Organic Chemistry;Shanghai Jiao Tong University;CAS - Guangzhou Institute of Biomedicine and Health;University of Würzburg;University of Lübeck;The University of Hong Kong;University of Oxford

发表时间:2005-10

期 刊:PLoS Biology

语 言:English

U R L: http://www.scopus.com/inward/record.url?scp=26444498493&partnerID=8YFLogxK

摘要

The genus Coronavirus contains about 25 species of coronaviruses (CoVs), which are important pathogens causing highly prevalent diseases and often severe or fatal in humans and animals. No licensed specific drugs are available to prevent their infection. Different host receptors for cellular entry, poorly conserved structural proteins (antigens), and the high mutation and recombination rates of CoVs pose a significant problem in the development of wide-spectrum anti-CoV drugs and vaccines. CoV main proteases (M pros), which are key enzymes in viral gene expression and replication, were revealed to share a highly conservative substrate-recognition pocket by comparison of four crystal structures and a homology model representing all three genetic clusters of the genus Coronavirus. This conclusion was further supported by enzyme activity assays. Mechanism-based irreversible inhibitors were designed, based on this conserved structural region, and a uniform inhibition mechanism was elucidated from the structures of Mpro-inhibitor complexes from severe acute respiratory syndrome-CoV and porcine transmissible gastroenteritis virus. A structure-assisted optimization program has yielded compounds with fast in vitro inactivation of multiple CoV Mpros, potent antiviral activity, and extremely low cellular toxicity in cell-based assays. Further modification could rapidly lead to the discovery of a single agent with clinical potential against existing and possible future emerging CoV-related diseases.

相关科学

农业与生物科学
生物化学、遗传学和分子生物学
免疫和微生物学
神经系统科学

被引量

期刊度量

Scopus度量

年份 CiteScore SJR SNIP
1996
1997
1998
1999
2000
2001
2002
2003
2004 6.047 2.24
2005 7.087 2.498
2006 6.415 2.45
2007 6.899 2.806
2008 6.663 2.856
2009 7.722 2.977
2010 7.847 2.734
2011 17.3 8.744 2.605
2012 17.2 8.791 2.675
2013 16.4 8.223 2.64
2014 13.6 6.814 2.303
2015 11.6 5.596 2.055
2016 12 5.06 1.986
2017 12.8 4.941 2.088
2018 11.3 4.783 2.112
2019 10.6 4.488 2.078
2020 11 4.127 2.005
2021 11.6

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