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PMID: 2147282 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, Non-P.H.S. Research Support, U.S. Gov't, P.H.S.

Evidence that the N-terminal domain of nonstructural protein NS3 from yellow fever virus is a serine protease responsible for site-specific cleavages in the viral polyprotein.

Chambers TJ, Weir RC, Grakoui A, McCourt DW, Bazan JF, Fletterick RJ, Rice CM

Abstract

Sequence homology and molecular modeling studies have suggested that the N-terminal one-third of the flavirvirus nonstructural protein NS3 functions as a trypsin-like serine protease. To examine the putative proteolytic activity of NS3, segments of the yellow fever virus genome were subcloned into plasmid transcription/translation vectors and cell-free translation products were characterized. The results suggest that a protease activity encoded within NS2B and the N-terminal one-third of yellow fever virus NS3 is capable of cis-acting site-specific proteolysis at the NS2B-NS3 cleavage site and dilution-insensitive cleavage of the NS2A-NS2B site. Site-directed mutagenesis of the His-53, Asp-77, and Ser-138 residues of NS3 that compose the proposed catalytic triad implicates this domain as a serine protease. Infectious virus was not recovered from mammalian cells transfected with RNAs transcribed from full-length yellow fever virus cDNA templates containing mutations at Ser-138 (which abolish or dramatically reduce protease activity in vitro), suggesting that the protease is required for viral replication.

MeSH Terms
Capsid/genetics,metabolism Cloning, Molecular DNA Mutational Analysis Genes, Viral Protein Biosynthesis Protein Precursors/metabolism Serine Endopeptidases/genetics Viral Core Proteins/genetics,metabolism Viral Nonstructural Proteins Viral Proteins/metabolism Viral Structural Proteins/genetics Yellow fever virus/enzymology,genetics
Chemicals
Protein Precursors Viral Core Proteins Viral Nonstructural Proteins Viral Proteins Viral Structural Proteins Serine Endopeptidases
Authors & Affiliations
7 authors, click to expand affiliations / ORCID
Chambers T J
Department of Molecular Microbiology, Washington University School of Medicine, Saint Louis, MO 63110-1093.
Weir R C
Grakoui A
McCourt D W
Bazan J F
Fletterick R J
Rice C M
References (29)
29 references, click to expand
  1. Redesigning trypsin: alteration of substrate specificity.
    Science. 1985 Apr 19;228(4697):291-7 PMID: 3838593
  2. Rapid and efficient site-specific mutagenesis without phenotypic selection.
    Proc Natl Acad Sci U S A. 1985 Jan;82(2):488-92 PMID: 3881765
  3. Partial N-terminal amino acid sequences of three nonstructural proteins of two flaviviruses.
    Virology. 1986 May;151(1):1-9 PMID: 3008425
  4. Expression and site-specific mutagenesis of the poliovirus 3C protease in Escherichia coli.
    Proc Natl Acad Sci U S A. 1986 Aug;83(15):5392-6 PMID: 3016701
  5. In vitro molecular genetics as a tool for determining the differential cleavage specificities of the poliovirus 3C proteinase.
    Nucleic Acids Res. 1987 Mar 11;15(5):2069-88 PMID: 3031587
  6. Selective alteration of substrate specificity by replacement of aspartic acid-189 with lysine in the binding pocket of trypsin.
    Biochemistry. 1987 May 5;26(9):2616-23 PMID: 3111531
  7. Primer-directed enzymatic amplification of DNA with a thermostable DNA polymerase.
    Science. 1988 Jan 29;239(4839):487-91 PMID: 2448875
  8. Dissecting the catalytic triad of a serine protease.
    Nature. 1988 Apr 7;332(6164):564-8 PMID: 3282170
  9. Viral proteinases.
    Annu Rev Biochem. 1988;57:701-54 PMID: 3052288
  10. Viral cysteine proteases are homologous to the trypsin-like family of serine proteases: structural and functional implications.
    Proc Natl Acad Sci U S A. 1988 Nov;85(21):7872-6 PMID: 3186696
  11. Yellow fever virus proteins NS2A, NS2B, and NS4B: identification and partial N-terminal amino acid sequence analysis.
    Virology. 1989 Mar;169(1):100-9 PMID: 2922923
  12. Analyses of the terminal sequences of West Nile virus structural proteins and of the in vitro translation of these proteins allow the proposal of a complete scheme of the proteolytic cleavages involved in their synthesis.
    Virology. 1989 Apr;169(2):365-76 PMID: 2705302
  13. N-terminal domains of putative helicases of flavi- and pestiviruses may be serine proteases.
    Nucleic Acids Res. 1989 May 25;17(10):3889-97 PMID: 2543956
  14. Detection of a trypsin-like serine protease domain in flaviviruses and pestiviruses.
    Virology. 1989 Aug;171(2):637-9 PMID: 2548336
  15. Characterization of the catalytic residues of the tobacco etch virus 49-kDa proteinase.
    Virology. 1989 Sep;172(1):302-10 PMID: 2475971
  16. Processing of yellow fever virus polyprotein: role of cellular proteases in maturation of the structural proteins.
    J Virol. 1989 Oct;63(10):4199-209 PMID: 2674479
  17. Introduction of a cysteine protease active site into trypsin.
    Biochemistry. 1989 Nov 28;28(24):9256-63 PMID: 2611227
  18. A serine protease triad forms the catalytic centre of a triacylglycerol lipase.
    Nature. 1990 Feb 22;343(6260):767-70 PMID: 2304552
  19. Structure of human pancreatic lipase.
    Nature. 1990 Feb 22;343(6260):771-4 PMID: 2106079
  20. Structure of wheat serine carboxypeptidase II at 3.5-A resolution. A new class of serine proteinase.
    J Biol Chem. 1990 Apr 25;265(12):6528-31 PMID: 2324088
  21. Site-directed mutagenesis suggests close functional relationship between a human rhinovirus 3C cysteine protease and cellular trypsin-like serine proteases.
    J Biol Chem. 1990 May 5;265(13):7180-7 PMID: 2158990
  22. Site-directed mutagenesis of the proposed catalytic amino acids of the Sindbis virus capsid protein autoprotease.
    J Virol. 1990 Jun;64(6):3069-73 PMID: 2335827
  23. Production of yellow fever virus proteins in infected cells: identification of discrete polyprotein species and analysis of cleavage kinetics using region-specific polyclonal antisera.
    Virology. 1990 Jul;177(1):159-74 PMID: 2353452
  24. Cleavage-site preferences of Sindbis virus polyproteins containing the non-structural proteinase. Evidence for temporal regulation of polyprotein processing in vivo.
    EMBO J. 1990 Aug;9(8):2631-8 PMID: 2142454
  25. Use of T7 RNA polymerase to direct expression of cloned genes.
    Methods Enzymol. 1990;185:60-89 PMID: 2199796
  26. Flavivirus genome organization, expression, and replication.
    Annu Rev Microbiol. 1990;44:649-88 PMID: 2174669
  27. Transcription of infectious yellow fever RNA from full-length cDNA templates produced by in vitro ligation.
    New Biol. 1989 Dec;1(3):285-96 PMID: 2487295
  28. Evidence for intramolecular self-cleavage of picornaviral replicase precursors.
    J Virol. 1982 Jan;41(1):244-9 PMID: 6283117
  29. Nucleotide sequence of yellow fever virus: implications for flavivirus gene expression and evolution.
    Science. 1985 Aug 23;229(4715):726-33 PMID: 4023707
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
1990-11-00
Pages
8898-902
Language
English
Region
United States
NLM ID
7505876
PMCID
PMC55067
Subset
IM
Grants
NIAID NIH HHS · AI07172 · United States
NIAID NIH HHS · AI07739 · United States
NIDDK NIH HHS · DK39304 · United States
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