Shinohara A, Shinohara M, Ohta T, Matsuda S, Ogawa T
Department of Biology, Graduate School of Science, Osaka University, Toyonaka, Japan.
Genes Cells. 1998 Mar;3(3):145-56. doi: 10.1046/j.1365-2443.1998.00176.x.
The RAD52 epistasis group in Saccharomyces cerevisiae is involved in various types of homologous recombination including recombinational double-strand break (DSB) repair and meiotic recombination. A RecA homologue, Rad51, plays a pivotal role in homology search and strand exchange. Genetic analysis has shown that among members of its epistasis group, RAD52 alone is required for recombination between direct repeats yielding deletions. Very little has been discovered about the biochemical roles and structure of the Rad52 protein.
Purified Rad52 protein binds to both single-stranded DNA (ssDNA) and double-stranded DNA (dsDNA). Electron microscope observations revealed that Rad52 molecules form multimeric rings. An increase in the intensity of fluorescence when Rad52 is bound to epsilonDNA showed an alteration of the structure of ssDNA. RPA was binding to Rad52 and enhanced the annealing of complementary ssDNA molecules. This enhancement was not observed in Escherichia coli SSB protein or T4 phage gp32 protein.
Rad52 forms a ring-like structure and binds to ssDNA. Its structure and DNA binding properties are different from those of Rad51. The interaction of Rad52 with RPA plays an important role in the enhancement of annealing of complementary ssDNAs. We therefore propose that Rad52 mediates the RAD51-independent recombination through an ssDNA annealing, assisted by RPA.
酿酒酵母中的RAD52上位性基因群参与多种类型的同源重组,包括重组双链断裂(DSB)修复和减数分裂重组。一种RecA同源物Rad51在同源性搜索和链交换中起关键作用。遗传分析表明,在其上位性基因群成员中,只有RAD52是产生缺失的直接重复序列之间重组所必需的。关于Rad52蛋白的生化作用和结构,人们了解甚少。
纯化的Rad52蛋白能与单链DNA(ssDNA)和双链DNA(dsDNA)结合。电子显微镜观察显示,Rad52分子形成多聚体环。当Rad52与εDNA结合时荧光强度增加,表明ssDNA的结构发生了改变。RPA与Rad52结合,并增强了互补ssDNA分子的退火作用。在大肠杆菌SSB蛋白或T4噬菌体gp32蛋白中未观察到这种增强作用。
Rad52形成环状结构并与ssDNA结合。其结构和DNA结合特性与Rad51不同。Rad52与RPA的相互作用在增强互补ssDNA退火方面起重要作用。因此,我们提出Rad52在RPA的协助下通过ssDNA退火介导不依赖RAD51的重组。