Department of Biology, Tufts University, Medford, MA 02155, USA.
Genetics Program, Sackler School of Graduate Biomedical Sciences, Tufts University, Boston, MA 02111, USA.
Nucleic Acids Res. 2018 Apr 20;46(7):3487-3497. doi: 10.1093/nar/gky099.
Expansion of simple DNA repeats is responsible for numerous hereditary diseases in humans. The role of DNA replication, repair and transcription in the expansion process has been well documented. Here we analyzed, in a yeast experimental system, the role of RNA-DNA hybrids in genetic instability of long (GAA)n repeats, which cause Friedreich's ataxia. Knocking out both yeast RNase H enzymes, which counteract the formation of RNA-DNA hybrids, increased (GAA)n repeat expansion and contraction rates when the repetitive sequence was transcribed. Unexpectedly, we observed a similar increase in repeat instability in RNase H-deficient cells when we either changed the direction of transcription-replication collisions, or flipped the repeat sequence such that the (UUC)n run occurred in the transcript. The increase in repeat expansions in RNase H-deficient strains was dependent on Rad52 and Pol32 proteins, suggesting that break-induced replication (BIR) is responsible for this effect. We conclude that expansions of (GAA)n repeats are induced by the formation of RNA-DNA hybrids that trigger BIR. Since this stimulation is independent of which strand of the repeat (homopurine or homopyrimidine) is in the RNA transcript, we hypothesize that triplex H-DNA structures stabilized by an RNA-DNA hybrid (H-loops), rather than conventional R-loops, could be responsible.
简单 DNA 重复序列的扩展是人类许多遗传性疾病的原因。DNA 复制、修复和转录在扩展过程中的作用已经得到了很好的证明。在这里,我们在酵母实验系统中分析了 RNA-DNA 杂交体在导致弗里德里希共济失调的长 (GAA)n 重复遗传不稳定性中的作用。敲除两种酵母核糖核酸酶 H 酶,这些酶可以抵抗 RNA-DNA 杂交体的形成,当重复序列被转录时,(GAA)n 重复扩展和收缩的速度增加。出乎意料的是,当我们改变转录-复制碰撞的方向,或者翻转重复序列,使得 (UUC)n 序列出现在转录本中时,我们在核糖核酸酶 H 缺陷细胞中观察到类似的重复不稳定性增加。核糖核酸酶 H 缺陷菌株中重复扩展的增加依赖于 Rad52 和 Pol32 蛋白,表明断裂诱导复制 (BIR) 是造成这种效应的原因。我们得出的结论是,(GAA)n 重复序列的扩展是由触发 BIR 的 RNA-DNA 杂交体形成引起的。由于这种刺激与重复序列的哪条链(同嘌呤或同嘧啶)在 RNA 转录本中无关,我们假设由 RNA-DNA 杂交体稳定的三链体 H-DNA 结构(H-环),而不是常规的 R 环,可能是负责的。