Fujikawa Yoshihiro, Kawanishi Masanobu, Kuraoka Isao, Yagi Takashi
Graduate School of Science, Osaka Prefecture University, 1-2 Gakuen-cho, Naka-ku, Sakai, Osaka 599-8570, Japan.
Biological Chemistry Group, Division of Chemistry, Graduate School of Engineering Science, Osaka University, Toyonaka, Osaka 560-8531, Japan.
Mutat Res Genet Toxicol Environ Mutagen. 2014 Aug;770:23-8. doi: 10.1016/j.mrgentox.2014.05.006. Epub 2014 May 29.
Cisplatin (cis-diamminedichloroplatinum(II)), a widely used anticancer drug, forms inter- and intra-strand DNA crosslinks. The major intra-strand crosslinks are Pt adducts at 1,2-d(GpG) and 1,3-d(GpNpG) (Pt-GG and Pt-GNG, respectively). Although most of the intra-strand crosslinks are removed by the nucleotide excision repair (NER), the remaining crosslinks can cause mutations through the translesion DNA synthesis (TLS) during chromosome replication. To understand the precise mechanism of cisplatin mutagenesis in human cells, the plasmid carrying a single Pt-GG or 1,3-d(GpTpG) crosslink (Pt-GTG) site-specifically in lacZ gene was constructed and propagated in NER-defective xeroderma pigmentosum cells. The plasmids retrieved from the cells were introduced into indicator bacterial cells to access frequencies of TLS and mutations. The experiments revealed that Pt-GTG blocked DNA replication more strongly and caused more mutations (29.1%) than Pt-GG (1.7%). Most mutations were G to A or T base changes at 5' G residue in the Pt-GTG crosslinks. These results indicate that the Pt-GTG crosslinks become effective obstacles for cancer cell division, and have an important role for cisplatin cancer therapy.
顺铂(顺二氨二氯铂(II))是一种广泛使用的抗癌药物,可形成链间和链内DNA交联。主要的链内交联是在1,2 - d(GpG)和1,3 - d(GpNpG)处的铂加合物(分别为Pt - GG和Pt - GNG)。尽管大多数链内交联可通过核苷酸切除修复(NER)去除,但剩余的交联可在染色体复制过程中通过跨损伤DNA合成(TLS)导致突变。为了了解顺铂在人类细胞中诱变的精确机制,构建了在lacZ基因中位点特异性携带单个Pt - GG或1,3 - d(GpTpG)交联(Pt - GTG)的质粒,并在NER缺陷的着色性干皮病细胞中繁殖。从细胞中回收的质粒被引入指示细菌细胞中,以评估TLS和突变的频率。实验表明,Pt - GTG比Pt - GG更强烈地阻断DNA复制,并导致更多的突变(29.1%)比Pt - GG(1.7%)。大多数突变是Pt - GTG交联中5' G残基处的G到A或T碱基变化。这些结果表明,Pt - GTG交联成为癌细胞分裂的有效障碍,并且对顺铂癌症治疗具有重要作用。