Good timing in the cell cycle for precise DNA repair by BRCA1

被引:58
作者
Durant, ST [1 ]
Nickoloff, JA [1 ]
机构
[1] Univ New Mexico, Sch Med, Canc Res & Treatment Ctr, Albuquerque, NM 87131 USA
关键词
BRCA1; NHEJ; HR; MRE11; RAD50; NBS1; exonuclease; cell cycle; DSB repair;
D O I
10.4161/cc.4.9.2027
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
It is now clear that large DNA-binding proteins have evolved in mammals to orchestrate the relatively ancient process of DNA recombinational repair. These proteins are recruited to accurately repair DNA double strand breaks (DSBs) - the frequent, potentially lethal and mutagenic lesions in the genomes of all organisms. An essential mammalian regulator of DSB repair is BRCA1. Heterozygous BRCA1 mutations predispose individuals to breast, ovarian and other secondary cancers. BRCA1-defective cells exhibit reduced DSB repair, sensitivity to a wide range of DNA damaging agents, genomic instability and defects in the S-phase checkpoint, transcription and chromatin remodelling. DSBs can be repaired by RAD51/RPA-dependent homologous recombination (HR) or DNA-PK-dependent nonhomologous end-joining (NHEJ). Both of these pathways can be imprecise and mutagenic. BRCA1 plays a central role in promoting accurate repair by both HR and NHEJ. Consistent with recent evidence, we have assembled a novel cell-cycle-dependent model in which DNA-PK inhibits RPA in S-phase of the cell cycle, while BRCA1 inhibits the exonuclease processivity of the MRE11/RAD50/NBS1 (MRN) complex and facilitates the removal of RPA in S and G(2) phase. This model provides an explanation for how BRCA1 promotes accurate DSB repair during various phases of the cell cycle and also accounts for the dual effects that BRCA1 and MRN activity have upon DNA repair and S-phase arrest.
引用
收藏
页码:1216 / 1222
页数:7
相关论文
共 104 条
[81]   Targeted disruption of the catalytic subunit of the DNA-PK gene in mice confers severe combined immunodeficiency and radiosensitivity [J].
Taccioli, GE ;
Amatucci, AG ;
Beamish, HJ ;
Gell, D ;
Xiang, XH ;
Arzayus, MIT ;
Priestley, A ;
Jackson, SP ;
Rothstein, AM ;
Jeggo, PA ;
Herrera, VLM .
IMMUNITY, 1998, 9 (03) :355-366
[82]   The XRCC genes:: expanding roles in DNA double-strand break repair [J].
Thacker, J ;
Zdzienicka, MZ .
DNA REPAIR, 2004, 3 (8-9) :1081-1090
[83]   The DNA double-strand break response pathway: becoming more BRCAish than ever [J].
Ting, NSY ;
Lee, WH .
DNA REPAIR, 2004, 3 (8-9) :935-944
[84]  
Tomlinson GE, 1998, CANCER RES, V58, P3237
[85]   Regulation and mechanisms of mammalian double-strand break repair [J].
Valerie, K ;
Povirk, LF .
ONCOGENE, 2003, 22 (37) :5792-5812
[86]   Recruitment of the INO80 complex by H2A phosphorylation links ATP-dependent chromatin remodeling with DNA double-strand break repair [J].
van Attikum, H ;
Fritsch, O ;
Hohn, B ;
Gasser, SM .
CELL, 2004, 119 (06) :777-788
[87]   Replication protein A (RPA) phosphorylation prevents RPA association with replication centers [J].
Vassin, VM ;
Wold, MS ;
Borowiec, JA .
MOLECULAR AND CELLULAR BIOLOGY, 2004, 24 (05) :1930-1943
[88]  
Wang HC, 2001, CANCER RES, V61, P270
[89]  
Wang HY, 2001, CANCER RES, V61, P8554
[90]   Roles of replication protein a and DNA-dependent protein kinase in the regulation of DNA replication following DNA damage [J].
Wang, Y ;
Zhou, XY ;
Wang, H ;
Wang, HY ;
Huq, MS ;
Iliakis, G .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1999, 274 (31) :22060-22064