Bacterial DNA repair genes and their eukaryotic homologues: 2. Role of bacterial mutator gene homologues in human disease. Overview of nucleotide pool sanitization and mismatch repair systems

被引:18
作者
Arczewska, Katarzyna D.
Kusmierek, Jaroslaw T.
机构
[1] Polish Acad Sci, Inst Biochem & Biophys, PL-02106 Warsaw, Poland
[2] Polish Acad Sci, Inst Biochem & Biophys, Dept Mol Biol, Warsaw, Poland
关键词
DNA damage; DNA repair; MutT protein; human MutT homologue; mismatch repair; hereditary non-polyposis; colorectal cancer;
D O I
10.18388/abp.2007_3220
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
Since the discovery of the first E. coli mutator gene, mutT, most of the mutations inducing elevated spontaneous mutation rates could be clearly attributed to defects in DNA repair. MutT turned out to be a pyrophosphohydrolase hydrolyzing 8-oxodGTP, thus preventing its incorporation into DNA and suppresing the occurrence of spontaneous AT -> CG transversions. Most of the bacterial mutator genes appeared to be evolutionarily conserved, and scientists were continuously searching for contribution of DNA repair deficiency in human diseases, especially carcinogenesis. Yet a human MutT homologue - hMTH1 protein - was found to be overexpressed rather than inactivated in many human diseases, including cancer. The interest in DNA repair contribution to human diseases exploded with the observation that germline mutations in mismatch repair (MMR) genes predispose to hereditary non-polyposis colorectal cancer (HNPCC). Despite our continuously growing knowledge about DNA repair we still do not fully understand how the mutator phenotype contributes to specific forms of human diseases.
引用
收藏
页码:435 / 457
页数:23
相关论文
共 290 条
[71]   hMSH2-hMSH6 forms a hydrolysis-independent sliding clamp on mismatched DNA [J].
Gradia, S ;
Subramanian, D ;
Wilson, T ;
Acharya, S ;
Makhov, A ;
Griffith, J ;
Fishel, R .
MOLECULAR CELL, 1999, 3 (02) :255-261
[72]  
GRILLEY M, 1989, J BIOL CHEM, V264, P1000
[73]  
GRILLEY M, 1993, J BIOL CHEM, V268, P11830
[74]   ATP-dependent interaction of human mismatch repair proteins and dual role of PCNA in mismatch repair [J].
Gu, LY ;
Hong, Y ;
McCulloch, S ;
Watanabe, H ;
Li, GM .
NUCLEIC ACIDS RESEARCH, 1998, 26 (05) :1173-1178
[75]   dUTPase activity is critical to maintain genetic stability in Saccharomyces cerevisiae [J].
Guillet, Marie ;
Van der Kemp, Patricia Auffret ;
Boiteux, Serge .
NUCLEIC ACIDS RESEARCH, 2006, 34 (07) :2056-2066
[76]   Differential requirement for proliferating cell nuclear antigen in 5′ and 3′ nick-directed excision in human mismatch repair [J].
Guo, SL ;
Presnell, SR ;
Yuan, FH ;
Zhang, YB ;
Gu, LY ;
Li, GM .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2004, 279 (17) :16912-16917
[77]   Extracellular 8-oxo-dG as a sensitive parameter for oxidative stress in vivo and in vitro [J].
Haghdoost, S ;
Czene, S ;
Näslund, I ;
Skog, S ;
Harms-Ringdahl, M .
FREE RADICAL RESEARCH, 2005, 39 (02) :153-162
[78]   The nucleotide pool is a significant target for oxidative stress [J].
Haghdoost, Siarnak ;
Sjolander, Lena ;
Czene, Stefan ;
Hanns-Ringdahl, Mats .
FREE RADICAL BIOLOGY AND MEDICINE, 2006, 41 (04) :620-626
[79]   Mismatch repair proteins and mitotic genome stability [J].
Harfe, BD ;
Jinks-Robertson, S .
MUTATION RESEARCH-FUNDAMENTAL AND MOLECULAR MECHANISMS OF MUTAGENESIS, 2000, 451 (1-2) :151-167
[80]   GENERATION AND ELIMINATION OF 8-OXO-7,8-DIHYDRO-2'-DEOXYGUANOSINE 5'-TRIPHOSPHATE, A MUTAGENIC SUBSTRATE FOR DNA-SYNTHESIS, IN HUMAN-CELLS [J].
HAYAKAWA, H ;
TAKETOMI, A ;
SAKUMI, K ;
KUWANO, M ;
SEKIGUCHI, M .
BIOCHEMISTRY, 1995, 34 (01) :89-95