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PMID: 10500114 Published · ppublish English Journal Article

Structure-assisted design of mechanism-based irreversible inhibitors of human rhinovirus 3C protease with potent antiviral activity against multiple rhinovirus serotypes.

Matthews DA, Dragovich PS, Webber SE, Fuhrman SA, Patick AK, Zalman LS, Hendrickson TF, Love RA, Prins TJ, Marakovits JT, Zhou R, Tikhe J, Ford CE, Meador JW, Ferre RA, Brown EL, Binford SL, Brothers MA, DeLisle DM, Worland ST

Abstract

Human rhinoviruses, the most important etiologic agents of the common cold, are messenger-active single-stranded monocistronic RNA viruses that have evolved a highly complex cascade of proteolytic processing events to control viral gene expression and replication. Most maturation cleavages within the precursor polyprotein are mediated by rhinovirus 3C protease (or its immediate precursor, 3CD), a cysteine protease with a trypsin-like polypeptide fold. High-resolution crystal structures of the enzyme from three viral serotypes have been used for the design and elaboration of 3C protease inhibitors representing different structural and chemical classes. Inhibitors having alpha,beta-unsaturated carbonyl groups combined with peptidyl-binding elements specific for 3C protease undergo a Michael reaction mediated by nucleophilic addition of the enzyme's catalytic Cys-147, resulting in covalent-bond formation and irreversible inactivation of the viral protease. Direct inhibition of 3C proteolytic activity in virally infected cells treated with these compounds can be inferred from dose-dependent accumulations of viral precursor polyproteins as determined by SDS/PAGE analysis of radiolabeled proteins. Cocrystal-structure-assisted optimization of 3C-protease-directed Michael acceptors has yielded molecules having extremely rapid in vitro inactivation of the viral protease, potent antiviral activity against multiple rhinovirus serotypes and low cellular toxicity. Recently, one compound in this series, AG7088, has entered clinical trials.

MeSH Terms
3C Viral Proteases Amino Acid Sequence Antiviral Agents/pharmacology Binding Sites Crystallization Cysteine Endopeptidases/drug effects Cysteine Proteinase Inhibitors/pharmacology Drug Design Humans Isoxazoles/chemistry,pharmacology Molecular Sequence Data Phenylalanine/analogs & derivatives Pyrrolidinones/chemistry,pharmacology Rhinovirus/drug effects,enzymology Structure-Activity Relationship Valine/analogs & derivatives Viral Proteins
Chemicals
Antiviral Agents Cysteine Proteinase Inhibitors Isoxazoles Pyrrolidinones Viral Proteins Phenylalanine Cysteine Endopeptidases 3C Viral Proteases 3C proteases Valine rupintrivir
Authors & Affiliations
20 authors, click to expand affiliations / ORCID
Matthews D A
Agouron Pharmaceuticals, Inc., 3565 General Atomics Court, San Diego, CA 92121, USA. David.Matthews@Agouron.com
Dragovich P S
Webber S E
Fuhrman S A
Patick A K
Zalman L S
Hendrickson T F
Love R A
Prins T J
Marakovits J T
Zhou R
Tikhe J
Ford C E
Meador J W
Ferre R A
Brown E L
Binford S L
Brothers M A
DeLisle D M
Worland S T
References (25)
25 references, click to expand
  1. Structure-based design, synthesis, and biological evaluation of irreversible human rhinovirus 3C protease inhibitors. 3. Structure-activity studies of ketomethylene-containing peptidomimetics.
    J Med Chem. 1999 Apr 8;42(7):1203-12 PMID: 10197964
  2. Structure-based design, synthesis, and biological evaluation of irreversible human rhinovirus 3C protease inhibitors. 4. Incorporation of P1 lactam moieties as L-glutamine replacements.
    J Med Chem. 1999 Apr 8;42(7):1213-24 PMID: 10197965
  3. Solid-phase synthesis of irreversible human rhinovirus 3C protease inhibitors. Part 1: Optimization of tripeptides incorporating N-terminal amides.
    Bioorg Med Chem. 1999 Apr;7(4):589-98 PMID: 10353638
  4. Structure-activity relationships for inhibition of papain by peptide Michael acceptors.
    J Med Chem. 1992 Mar 20;35(6):1067-75 PMID: 1552501
  5. The major and minor group receptor families contain all but one human rhinovirus serotype.
    Virology. 1991 Feb;180(2):814-7 PMID: 1846502
  6. Picornavirus protein processing--enzymes, substrates, and genetic regulation.
    Curr Top Microbiol Immunol. 1990;161:49-87 PMID: 2169385
  7. Viral proteinases: weakness in strength.
    Biochim Biophys Acta. 1990 Jan 30;1048(1):1-18 PMID: 2404520
  8. A consensus sequence for substrate hydrolysis by rhinovirus 3C proteinase.
    FEBS Lett. 1989 Nov 20;258(1):75-8 PMID: 2556299
  9. Chemotherapy of rhinovirus colds.
    Antimicrob Agents Chemother. 1988 Apr;32(4):409-19 PMID: 2897829
  10. Viral proteinases.
    Annu Rev Biochem. 1988;57:701-54 PMID: 3052288
  11. Weakly polar interactions in proteins.
    Adv Protein Chem. 1988;39:125-89 PMID: 3072867
  12. Vinylogous amino acid esters: a new class of inactivators for thiol proteases.
    J Med Chem. 1984 Jun;27(6):711-2 PMID: 6547487
  13. Structure of human rhinovirus 3C protease reveals a trypsin-like polypeptide fold, RNA-binding site, and means for cleaving precursor polyprotein.
    Cell. 1994 Jun 3;77(5):761-71 PMID: 7515772
  14. Interaction between the 5'-terminal cloverleaf and 3AB/3CDpro of poliovirus is essential for RNA replication.
    J Virol. 1995 Jun;69(6):3658-67 PMID: 7745714
  15. Peptide aldehyde inhibitors of hepatitis A virus 3C proteinase.
    Biochemistry. 1995 Jun 27;34(25):8172-9 PMID: 7794931
  16. Picornaviral 3C cysteine proteinases have a fold similar to chymotrypsin-like serine proteinases.
    Nature. 1994 May 5;369(6475):72-6 PMID: 8164744
  17. Human rhinovirus-14 protease 3C (3Cpro) binds specifically to the 5'-noncoding region of the viral RNA. Evidence that 3Cpro has different domains for the RNA binding and proteolytic activities.
    J Biol Chem. 1993 Dec 5;268(34):25735-9 PMID: 8245010
  18. Poliovirus RNA synthesis utilizes an RNP complex formed around the 5'-end of viral RNA.
    EMBO J. 1993 Sep;12(9):3587-98 PMID: 8253083
  19. Design, synthesis, and evaluation of nonpeptidic inhibitors of human rhinovirus 3C protease.
    J Med Chem. 1996 Dec 20;39(26):5072-82 PMID: 8978838
  20. Processing of a cellular polypeptide by 3CD proteinase is required for poliovirus ribonucleoprotein complex formation.
    J Virol. 1997 Jan;71(1):578-85 PMID: 8985386
  21. Refined X-ray crystallographic structure of the poliovirus 3C gene product.
    J Mol Biol. 1997 Nov 14;273(5):1032-47 PMID: 9367789
  22. Tripeptide aldehyde inhibitors of human rhinovirus 3C protease: design, synthesis, biological evaluation, and cocrystal structure solution of P1 glutamine isosteric replacements.
    J Med Chem. 1998 Jul 16;41(15):2786-805 PMID: 9667969
  23. Structure-based design, synthesis, and biological evaluation of irreversible human rhinovirus 3C protease inhibitors. 1. Michael acceptor structure-activity studies.
    J Med Chem. 1998 Jul 16;41(15):2806-18 PMID: 9667970
  24. Structure-based design, synthesis, and biological evaluation of irreversible human rhinovirus 3C protease inhibitors. 2. Peptide structure-activity studies.
    J Med Chem. 1998 Jul 16;41(15):2819-34 PMID: 9667971
  25. Thrombin inhibitor design.
    Curr Med Chem. 1998 Aug;5(4):289-304 PMID: 9668196
Article Info
Journal
Proceedings of the National Academy of Sciences of the United States of America
Abbr.
Proc Natl Acad Sci U S A
ISSN
0027-8424
Published
1999-09-28
Pages
11000-7
Language
English
Region
United States
NLM ID
7505876
PMCID
PMC34232
Subset
IM
Databases
PDB
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