Petalcorin Mark I R, Sandall Jane, Wigley Dale B, Boulton Simon J
Molecular Enzymology Laboratory, Cancer Research UK, The London Research Institute, Clare Hall Laboratories, South Mimms, EN6 3LD, UK.
J Mol Biol. 2006 Aug 11;361(2):231-42. doi: 10.1016/j.jmb.2006.06.020. Epub 2006 Jun 27.
The BRCA2 tumour suppressor regulates the RAD-51 recombinase during double-strand break (DSB) repair by homologous recombination (HR) but how BRCA2 executes its functions is not well understood. We previously described a functional homologue of BRCA2 in Caenorhabditis elegans (CeBRC-2) that binds preferentially to single-stranded DNA via an OB-fold domain and associates directly with RAD-51 via a single BRC domain. Consistent with a direct role in HR, Cebrc-2 mutants are defective for repair of meiotic and radiation-induced DSBs due to an inability to regulate RAD-51. Here, we explore the function of CeBRC-2 in HR processes using purified proteins. We show that CeBRC-2 stimulates RAD-51-mediated D-loop formation and reduces the rate of ATP hydrolysis catalysed by RAD-51. These functions of CeBRC-2 are dependent upon direct association with RAD-51 via its BRC motif and on its DNA-binding activity, as point mutations in the BRC domain that abolish RAD-51 binding or the BRC domain of CeBRC-2 alone, lacking the DNA-binding domain, fail to stimulate RAD-51-mediated D-loop formation and do not reduce the rate of ATP hydrolysis by RAD-51. Phenotypic comparison of Cebrc-2 and rad-51 mutants also revealed a role for CeBRC-2 in an error-prone DSB repair pathway independent of rad-51 and non-homologous end joining, raising the possibility that CeBRC-2 may have replaced the role of vertebrate Rad52 in DNA single-strand annealing (SSA), which is missing from C. elegans. Indeed, we show here that CeBRC-2 mediates SSA of RPA-oligonucleotide complexes similar to Rad52. These results reveal RAD-51-dependent and -independent functions of CeBRC-2 that provide an explanation for the difference in DNA repair defects observed in Cebrc-2 and rad-51 mutants, and define mechanistic roles for CeBRC-2 in HR and in the SSA pathway for DSB repair.
BRCA2肿瘤抑制因子在通过同源重组(HR)进行双链断裂(DSB)修复过程中调节RAD-51重组酶,但BRCA2如何执行其功能尚不清楚。我们之前在秀丽隐杆线虫中描述了一种BRCA2的功能同源物(CeBRC-2),它通过一个OB折叠结构域优先结合单链DNA,并通过一个单一的BRC结构域直接与RAD-51结合。与在HR中起直接作用一致,Cebrc-2突变体由于无法调节RAD-51,在减数分裂和辐射诱导的DSB修复方面存在缺陷。在这里,我们使用纯化的蛋白质探索CeBRC-2在HR过程中的功能。我们发现CeBRC-2刺激RAD-51介导的D环形成,并降低RAD-51催化的ATP水解速率。CeBRC-2的这些功能依赖于通过其BRC基序与RAD-51的直接结合及其DNA结合活性,因为BRC结构域中消除RAD-51结合的点突变或单独缺失DNA结合结构域的CeBRC-2的BRC结构域,均无法刺激RAD-51介导的D环形成,也不会降低RAD-51的ATP水解速率。Cebrc-2和rad-51突变体的表型比较还揭示了CeBRC-2在一条独立于rad-51和非同源末端连接的易错DSB修复途径中的作用,这增加了CeBRC-2可能取代秀丽隐杆线虫中缺失的脊椎动物Rad52在DNA单链退火(SSA)中的作用的可能性。事实上,我们在此表明CeBRC-2介导类似于Rad52的RPA-寡核苷酸复合物的SSA。这些结果揭示了CeBRC-2的RAD-51依赖性和非依赖性功能,这为在Cebrc-2和rad-51突变体中观察到的DNA修复缺陷差异提供了解释,并确定了CeBRC-2在HR和DSB修复的SSA途径中的机制作用。