1WOF
Crystal Structure Of SARS-CoV Mpro in Complex with an Inhibitor N1
Summary for 1WOF
Entry DOI | 10.2210/pdb1wof/pdb |
Related | 1UJ1 1WNO |
Descriptor | 3C-like proteinase, N-[(5-METHYLISOXAZOL-3-YL)CARBONYL]-L-ALANYL-L-VALYL-N~1~-((1S)-4-ETHOXY-4-OXO-1-{[(3S)-2-OXOPYRROLIDIN-3-YL]METHYL}BUT-2-ENYL)-L-LEUCINAMIDE (3 entities in total) |
Functional Keywords | anti-parallel b-barrel, anti-parallel a-helices, hydrolase |
Biological source | SARS coronavirus |
Cellular location | Non-structural protein 3: Host membrane; Multi-pass membrane protein (Potential). Non-structural protein 4: Host membrane; Multi-pass membrane protein (Potential). Non-structural protein 6: Host membrane; Multi-pass membrane protein (Potential). Non-structural protein 7: Host cytoplasm, host perinuclear region (By similarity). Non-structural protein 8: Host cytoplasm, host perinuclear region (By similarity). Non-structural protein 9: Host cytoplasm, host perinuclear region (By similarity). Non-structural protein 10: Host cytoplasm, host perinuclear region (By similarity). Helicase: Host endoplasmic reticulum-Golgi intermediate compartment (Potential). Uridylate-specific endoribonuclease: Host cytoplasm, host perinuclear region (By similarity): P59641 |
Total number of polymer chains | 2 |
Total formula weight | 69813.62 |
Authors | |
Primary citation | Yang, H.,Xie, W.,Xue, X.,Yang, K.,Ma, J.,Liang, W.,Zhao, Q.,Zhou, Z.,Pei, D.,Ziebuhr, J.,Hilgenfeld, R.,Yuen, K.Y.,Wong, L.,Gao, G.,Chen, S.,Chen, Z.,Ma, D.,Bartlam, M.,Rao, Z. Design of Wide-Spectrum Inhibitors Targeting Coronavirus Main Proteases. Plos Biol., 3:324-334, 2005 Cited by PubMed Abstract: 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(pro)s), 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 M(pro)s, 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. PubMed: 16128623DOI: 10.1371/journal.pbio.0030324 PDB entries with the same primary citation |
Experimental method | X-RAY DIFFRACTION (2 Å) |
Structure validation
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