The processing of double-strand breaks and binding of single-strand-binding proteins RPA and Rad51 modulate the formation of ATR-kinase foci in yeast

被引:44
作者
Dubrana, Karine
van Attikum, Haico
Hediger, Florence
Gasser, Susan M.
机构
[1] Leiden Univ, Med Ctr, Dept Toxicogenet, NL-2300 RC Leiden, Netherlands
[2] Phillip Morris Int, Toxicol Product Assessment, CH-2000 Neuchatel, Switzerland
[3] Friedrich Miescher Inst Biomed Res, CH-4058 Basel, Switzerland
关键词
double-strand break; ATR-related kinase; checkpoint; single-stranded DNA; Rad24; RPA; Rad51;
D O I
10.1242/jcs.018366
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Double-strand breaks (DSB) in yeast lead to the formation of repair foci and induce a checkpoint response that requires both the ATR-related kinase Mec1 and its target, Rad53. By combining high-resolution confocal microscopy and chromatin-immunoprecipitation assays, we analysed the genetic requirements for and the kinetics of Mec1 recruitment to an irreparable HO-endonuclease-induced DSB. Coincident with the formation of a 3' overhang, the Mec1-Ddc2 (Lcd1) complex is recruited into a single focus that colocalises with the DSB site and precipitates with single-strand DNA (ssDNA). The absence of Rad24 impaired cut-site resection, Mec1 recruitment and focus formation, whereas, in the absence of yKu70, both ssDNA accumulation and Mec1 recruitment was accelerated. By contrast, mutation of the N-terminus of the large RPA subunit blocked Mec1 focus formation without affecting DSB processing, arguing for a direct involvement of RPA in Mec1-Ddc2 recruitment. Conversely, loss of Rad51 enhanced Mec1 focus formation independently of ssDNA formation, suggesting that Rad51 might compete for the interaction of RPA with Mec1-Ddc2. In all cases, Mec1 focus formation correlated with checkpoint activation. These obsevations led to a model that links end-processing and competition between different ssDNA-binding factors with Mec1-Ddc2 focus formation and checkpoint activation.
引用
收藏
页码:4209 / 4220
页数:12
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