Biochemical and random mutagenesis analysis of the region carrying the catalytic E152 amino acid of HIV-1 integrase

被引:11
作者
Calmels, C
de Soultrait, VR
Caumont, A
Desjobert, C
Faure, A
Fournier, M
Tarrago-Litvak, L
Parissi, V
机构
[1] Univ Bordeaux 2, CNRS, UMR 5097, F-33076 Bordeaux, France
[2] IFR Pathol Infect & Canc 66, Bordeaux, France
关键词
D O I
10.1093/nar/gkh298
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
HIV-1 integrase (IN) catalyzes the integration of the proviral DNA into the cellular genome. The catalytic triad D-64, D-116 and E-152 of HIV-1 IN is involved in the reaction mechanism and the DNA binding. Since the integration and substrate binding processes are not yet exactly known, we studied the role of amino acids localized in the catalytic site. We focused our interest on the V151E152S153 region. We generated random mutations inside this domain and selected mutated active INs by using the IN-induced yeast lethality assay. In vitro analysis of the selected enzymes showed that the IN nuclease activities (specific 3'-processing and non-sequence-specific endonuclease), the integration and disintegration reactions and the binding of the various DNA substrates were affected differently. Our results support the hypothesis that the three reactions may involve different DNA binding sites, enzyme conformations or mechanisms. We also show that the V151E152S153 region involvement in the integration reaction is more important than for the 3'-processing activity and can be involved in the recognition of DNA. The IN mutants may lead to the development of new tools for studying the integration reaction, and could serve as the basis for the discovery of integration-specific inhibitors.
引用
收藏
页码:1527 / 1538
页数:12
相关论文
共 53 条
[1]   Role of the nonspecific DNA-binding region and α helices within the core domain of retroviral integrase in selecting target DNA sites for integration [J].
Appa, RS ;
Shin, CG ;
Lee, P ;
Chow, SA .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2001, 276 (49) :45848-45855
[2]   HIV-1 integrase: Structural organization, conformational changes, and catalysis [J].
Asante-Appiah, E ;
Skalka, AM .
ADVANCES IN VIRUS RESEARCH, VOL 52, 1999, 52 :351-369
[3]   The catalytic domain of human immunodeficiency virus integrase: Ordered active site in the F185H mutant [J].
Bujacz, G ;
Alexandratos, J ;
ZhouLiu, Q ;
ClementMella, C ;
Wlodawer, A .
FEBS LETTERS, 1996, 398 (2-3) :175-178
[4]   HIGH-RESOLUTION STRUCTURE OF THE CATALYTIC DOMAIN OF AVIAN-SARCOMA VIRUS INTEGRASE [J].
BUJACZ, G ;
JASKOLSKI, M ;
ALEXANDRATOS, J ;
WLODAWER, A ;
MERKEL, G ;
KATZ, RA ;
SKALKA, AM .
JOURNAL OF MOLECULAR BIOLOGY, 1995, 253 (02) :333-346
[5]   The catalytic domain of avian sarcoma virus integrase: Conformation of the active-site residues in the presence of divalent cations [J].
Bujacz, G ;
Jaskolski, M ;
Alexandratos, J ;
Wlodawer, A ;
Merkel, G ;
Katz, RA ;
Skalka, AM .
STRUCTURE, 1996, 4 (01) :89-96
[6]   High affinity interaction of HIV-1 integrase with specific and non-specific single-stranded short oligonucleotides [J].
Caumont, A ;
Jamieson, G ;
de Soultrait, VR ;
Parissi, V ;
Fournier, M ;
Zakharova, OD ;
Bayandin, R ;
Litvak, S ;
Tarrago-Litvak, L ;
Nevinsky, GA .
FEBS LETTERS, 1999, 455 (1-2) :154-158
[7]  
Caumont AB, 1996, CURR GENET, V29, P503
[8]   ONE-STEP TRANSFORMATION OF YEAST IN STATIONARY PHASE [J].
CHEN, DC ;
YANG, BC ;
KUO, TT .
CURRENT GENETICS, 1992, 21 (01) :83-84
[9]   Crystal structure of the HIV-1 integrase catalytic core and C-terminal domains: A model for viral DNA binding [J].
Chen, JCH ;
Krucinski, J ;
Miercke, LJW ;
Finer-Moore, JS ;
Tang, AH ;
Leavitt, AD ;
Stroud, RM .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2000, 97 (15) :8233-8238
[10]   In vitro assays for activities of retroviral integrase [J].
Chow, SA .
METHODS-A COMPANION TO METHODS IN ENZYMOLOGY, 1997, 12 (04) :306-317