Blastyák András, Pintér Lajos, Unk Ildiko, Prakash Louise, Prakash Satya, Haracska Lajos
Institute of Genetics, Biological Research Center, Hungarian Academy of Sciences, Szeged, Temesvari krt.62, H-6726, Hungary.
Mol Cell. 2007 Oct 12;28(1):167-75. doi: 10.1016/j.molcel.2007.07.030.
Lesions in the template DNA strand block the progression of the replication fork. In the yeast Saccharomyces cerevisiae, replication through DNA lesions is mediated by different Rad6-Rad18-dependent means, which include translesion synthesis and a Rad5-dependent postreplicational repair pathway that repairs the discontinuities that form in the DNA synthesized from damaged templates. Although translesion synthesis is well characterized, little is known about the mechanisms that modulate Rad5-dependent postreplicational repair. Here we show that yeast Rad5 has a DNA helicase activity that is specialized for replication fork regression. On model replication fork structures, Rad5 concertedly unwinds and anneals the nascent and the parental strands without exposing extended single-stranded regions. These observations provide insight into the mechanism of postreplicational repair in which Rad5 action promotes template switching for error-free damage bypass.
模板DNA链中的损伤会阻碍复制叉的前进。在酿酒酵母中,通过DNA损伤进行的复制是由不同的Rad6-Rad18依赖性方式介导的,这些方式包括跨损伤合成和一种依赖Rad5的复制后修复途径,该途径可修复由受损模板合成的DNA中形成的间断。尽管跨损伤合成已得到充分表征,但对于调节依赖Rad5的复制后修复的机制知之甚少。在这里,我们表明酵母Rad5具有专门用于复制叉倒退的DNA解旋酶活性。在模型复制叉结构上,Rad5协同解开并退火新生链和亲本链,而不会暴露延伸的单链区域。这些观察结果为复制后修复机制提供了见解,其中Rad5的作用促进了无错误损伤绕过的模板切换。