HDF1 (Ku70)和HDF2 (Ku80)对酿酒酵母自发重组和DNA损伤诱导的染色体内重组的影响

T Cervelli, A Galli
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引用次数: 13

摘要

Ku异二聚体与DNA双链断裂(DSBs)末端结合,参与非同源末端连接。HDF1和HDF2已在酵母中被鉴定为哺乳动物Ku70和Ku80蛋白的同源物,仅在同源重组修复受损时才降低辐射敏感性,因此通过非同源重组影响DSB修复。虽然已有报道称hdf1零突变体存在同源重组缺陷,但hdf1和HDF2在这一过程中的作用尚不完全清楚。我们通过测量由自发和DNA损伤诱导事件(DEL重组)引起的直接重复序列之间的缺失率,研究了HDF1和HDF2对染色体内重组的影响。我们发现在TCY5 (hdf1delta)和TCY6 (hdf2delta)菌株中自发DEL重组减少,表明HDF1和HDF2在同源重组中起作用。由于DEL重组事件可能通过姐妹染色单体转化和/或单链退火(由dsb启动)发生,因此可能需要HDF1和HDF2将蛋白质招募到受损端,从而促进单链退火。菌株TCY5和TCY6在甲基甲烷磺酸盐(MMS)和x射线诱导的重组中也存在缺陷,但在紫外线诱导的DEL重组中没有缺陷。这证实了HDF1和HDF2是通过单链退火完成DEL重组所必需的。
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Effects of HDF1 (Ku70) and HDF2 (Ku80) on spontaneous and DNA damage-induced intrachromosomal recombination in Saccharomyces cerevisiae.

The Ku heterodimer binds to the ends of double-stranded breaks (DSBs) in DNA, and is involved in nonhomologous end joining. HDF1 and HDF2, which have been identified in Saccharomyces cerevisiae as homologues of the Ku70 and Ku80 proteins of mammals, reduce radiosensitivity only when homologous recombination repair is impaired and, therefore, affect DSB repair via nonhomologous recombination. Although it has been reported that homologous recombination is defective in the hdf1 null mutant, the roles of HDF1 and HDF2 in this process are not completely clear. We investigated the effect of HDF1 and HDF2 on intrachromosomal recombination by measuring rates of deletion between direct repeats caused by spontaneous and DNA damage-induced events (DEL recombination). We found a decrease in spontaneous DEL recombination in both TCY5 (hdf1delta) and TCY6 (hdf2delta) strains, suggesting that HDF1 and HDF2 play a role in homologous recombination. As DEL recombination events may occur by sister chromatid conversion and/or single-strand annealing, which is initiated by DSBs, HDF1 and HDF2 may be required to recruit proteins to the damaged ends so as to promote single-strand annealing. The strains TCY5 and TCY6 are also defective in methylmethane sulfonate (MMS)- and X-ray-induced, but not in UV-induced DEL recombination. This confirms that HDF1 and HDF2 are required for the completion of DEL recombination by single strand annealing.

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