Kanamitsu Kyoichiro, Ikeda Shogo
Department of Biochemistry, Faculty of Science, Okayama University of Science, Okayama 700-0005, Japan.
Genes Genet Syst. 2011;86(2):83-91. doi: 10.1266/ggs.86.83.
Methyl methanesulfonate (MMS) methylates nitrogen atoms in purines, and predominantly produces 7-methylguanine and 3-methyladenine (3-meA). Previously, we showed that base excision repair (BER) and nucleotide excision repair (NER) synergistically function to repair MMS-induced DNA damage in the fission yeast Schizosaccharomyces pombe. Here, we studied the roles of NER components in repair of 3-meA and BER intermediates such as the AP site and single strand breaks. Mutants of rhp41 (XPC homolog) and rhp26 (CSB homolog) exhibited moderate sensitivity to MMS. Transcription of the fbp1 gene, which is induced by glucose starvation, was strongly inhibited by MMS damage in rhp41Δ and rhp26Δ strains but not in wild type and 3-meA DNA glycosylase-deficient cells. The results indicate that Rhp41p and Rhp26p are involved in transcription-coupled repair (TCR) of MMS-induced DNA damage. In the BER pathway of S. pombe, AP lyase activity of Nth1p mainly incises the AP site to generate a 3'-blocked end, which is in turn converted to 3'-OH by Apn2p. Deletion of rad16 or rhp26 in the nth1Δ strain greatly enhanced MMS sensitivity, suggesting that the AP site could also be corrected by TCR. Double mutant apn2Δ/rad16Δ exhibited hypersensitivity to MMS, implying that Rad16p provides a backup pathway for removal of the 3'-blocked end. Moreover, an rhp51Δ strain was extremely sensitive to MMS and double mutants of nth1Δ/rhp51Δ and apn2Δ/rhp51Δ increased the sensitivity, suggesting that homologous recombination is necessary for repair of three different types of lesions, 3-meA, AP sites and 3'-blocked ends.
甲磺酸甲酯(MMS)使嘌呤中的氮原子甲基化,主要产生7-甲基鸟嘌呤和3-甲基腺嘌呤(3-meA)。此前,我们发现碱基切除修复(BER)和核苷酸切除修复(NER)协同作用,以修复裂殖酵母粟酒裂殖酵母中MMS诱导的DNA损伤。在此,我们研究了NER组分在修复3-meA和BER中间体(如AP位点和单链断裂)中的作用。rhp41(XPC同源物)和rhp26(CSB同源物)的突变体对MMS表现出中等敏感性。由葡萄糖饥饿诱导的fbp1基因的转录在rhp41Δ和rhp26Δ菌株中受到MMS损伤的强烈抑制,但在野生型和3-meA DNA糖基化酶缺陷细胞中未受抑制。结果表明,Rhp41p和Rhp26p参与了MMS诱导的DNA损伤的转录偶联修复(TCR)。在粟酒裂殖酵母的BER途径中,Nth1p的AP裂解酶活性主要切割AP位点以产生3'-封闭末端,然后由Apn2p将其转化为3'-OH。在nth1Δ菌株中缺失rad16或rhp26会大大增强对MMS的敏感性,这表明AP位点也可以通过TCR进行校正。双突变体apn2Δ/rad16Δ对MMS表现出超敏感性,这意味着Rad16p为去除3'-封闭末端提供了一条备用途径。此外,rhp51Δ菌株对MMS极其敏感,nth1Δ/rhp51Δ和apn2Δ/rhp51Δ的双突变体增加了敏感性,这表明同源重组对于修复三种不同类型的损伤(3-meA、AP位点和3'-封闭末端)是必要的。