Site-directed mutagenesis and kinetic studies of the West Nile virus NS3 protease identify key enzyme-substrate interactions

被引:47
作者
Chappell, KJ
Nall, TA
Stoermer, MJ
Fang, NX
Tyndall, JDA
Fairlie, DP
Young, PR [1 ]
机构
[1] Univ Queensland, Sch Mol & Microbial Sci, Dept Microbiol & Parasitol, Brisbane, Qld 4072, Australia
[2] Univ Queensland, Inst Mol Biosci, Ctr Drug Design & Dev, Brisbane, Qld 4072, Australia
[3] Univ Otago, Sch Pharm, Dunedin 9015, New Zealand
关键词
D O I
10.1074/jbc.M409931200
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The flavivirus West Nile virus (WNV) has spread rapidly throughout the world in recent years causing fever, meningitis, encephalitis, and fatalities. Because the viral protease NS2B/NS3 is essential for replication, it is attracting attention as a potential therapeutic target, although there are currently no antiviral inhibitors for any flavivirus. This paper focuses on elucidating interactions between a hexapeptide substrate (Ae-KPGLKR-p-nitroanilide) and residues at S1 and S2 in the active site of WNV protease by comparing the catalytic activities of selected mutant recombinant proteases in vitro. Homology modeling enabled the predictions of key mutations in VWNV NS3 protease at S1 (V115A/F, D129A/ E/N, S135A, Y150A/F, S160A, and S163A) and S2 (N152A) that might influence substrate recognition and catalytic efficiency. Key conclusions are that the substrate P1 Arg strongly interacts with S1 residues Asp-129, Tyr-150, and Ser-163 and, to a lesser extent, Ser-160, and P2 Lys makes an essential interaction with Asn-152 at S2. The inferred substrate-enzyme interactions provide a basis for rational protease inhibitor design and optimization. High sequence conservation within flavivirus proteases means that this study may also be relevant to design of protease inhibitors for other flavivirus proteases.
引用
收藏
页码:2896 / 2903
页数:8
相关论文
共 39 条
[1]   An efficient Fmoc strategy for the rapid synthesis of peptide para-nitroanilides [J].
Abbenante, G ;
Leung, D ;
Bond, T ;
Fairlie, DP .
LETTERS IN PEPTIDE SCIENCE, 2000, 7 (06) :347-351
[2]   Mutagenesis of the NS2B-NS3-mediated cleavage site in the flavivirus capsid protein demonstrates a requirement for coordinated processing [J].
Amberg, SM ;
Rice, CM .
JOURNAL OF VIROLOGY, 1999, 73 (10) :8083-8094
[3]   DETECTION OF A TRYPSIN-LIKE SERINE PROTEASE DOMAIN IN FLAVIVIRUSES AND PESTIVIRUSES [J].
BAZAN, JF ;
FLETTERICK, RJ .
VIROLOGY, 1989, 171 (02) :637-639
[4]   Homology model of the dengue 2 virus NS3 protease: putative interactions with both substrate and NS2B cofactor [J].
Brinkworth, RI ;
Fairlie, DP ;
Leung, D ;
Young, PR .
JOURNAL OF GENERAL VIROLOGY, 1999, 80 :1167-1177
[5]   The molecular biology of West Nile virus: A new invader of the Western hemisphere [J].
Brinton, MA .
ANNUAL REVIEW OF MICROBIOLOGY, 2002, 56 :371-402
[6]   Serological evidence of West Nile virus, Usutu virus and Sindbis virus infection of birds in the UK [J].
Buckley, A ;
Dawson, A ;
Moss, SR ;
Hinsley, SA ;
Bellamy, PE ;
Gould, EA .
JOURNAL OF GENERAL VIROLOGY, 2003, 84 :2807-2817
[7]  
*CBBG, XWINNMR VERS 2 6
[8]   MUTAGENESIS OF THE YELLOW-FEVER VIRUS NS2B/3 CLEAVAGE SITE - DETERMINANTS OF CLEAVAGE SITE-SPECIFICITY AND EFFECTS ON POLYPROTEIN PROCESSING AND VIRAL REPLICATION [J].
CHAMBERS, TJ ;
NESTOROWICZ, A ;
RICE, CM .
JOURNAL OF VIROLOGY, 1995, 69 (03) :1600-1605
[9]   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 [J].
CHAMBERS, TJ ;
WEIR, RC ;
GRAKOUI, A ;
MCCOURT, DW ;
BAZAN, JF ;
FLETTERICK, RJ ;
RICE, CM .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1990, 87 (22) :8898-8902
[10]   FLAVIVIRUS GENOME ORGANIZATION, EXPRESSION, AND REPLICATION [J].
CHAMBERS, TJ ;
HAHN, CS ;
GALLER, R ;
RICE, CM .
ANNUAL REVIEW OF MICROBIOLOGY, 1990, 44 :649-688