Department of Chemistry, University of California, Riverside, CA 92521-0403, USA.
Nucleic Acids Res. 2010 Oct;38(19):6774-84. doi: 10.1093/nar/gkq458. Epub 2010 May 27.
Humans are exposed to both endogenous and exogenous N-nitroso compounds (NOCs), and many NOCs can be metabolically activated to generate a highly reactive species, diazoacetate, which is capable of inducing carboxymethylation of nucleobases in DNA. Here we report, for the first time, the chemical syntheses of authentic N(6)-carboxymethyl-2'-deoxyadenosine (N(6)-CMdA) and N(4)-carboxymethyl-2'-deoxycytidine (N(4)-CMdC), liquid chromatography-ESI tandem MS confirmation of their formation in calf thymus DNA upon diazoacetate exposure, and the preparation of oligodeoxyribonucleotides containing a site-specifically incorporated N(6)-CMdA or N(4)-CMdC. Additionally, thermodynamic studies showed that the substitutions of a dA with N(6)-CMdA and dC with N(4)-CMdC in a 12-mer duplex increased Gibbs free energy for duplex formation at 25°C by 5.3 and 6.8 kcal/mol, respectively. Moreover, primer extension assay revealed that N(4)-CMdC was a stronger blockade to Klenow fragment-mediated primer extension than N(6)-CMdA. The polymerase displayed substantial frequency of misincorporation of dAMP opposite N(6)-CMdA and, to a lesser extent, misinsertion of dAMP and dTMP opposite N(4)-CMdC. The formation and the mutagenic potential of N(6)-CMdA and N(4)-CMdC suggest that these lesions may bear important implications in the etiology of NOC-induced tumor development.
人类暴露于内源性和外源性的 N-亚硝胺化合物(NOCs)中,许多 NOC 可以被代谢激活生成一种高反应性的物质,重氮乙酸盐,它能够诱导 DNA 中碱基的羧甲基化。在这里,我们首次报道了 authentic N(6)-carboxymethyl-2'-deoxyadenosine (N(6)-CMdA) 和 N(4)-carboxymethyl-2'-deoxycytidine (N(4)-CMdC) 的化学合成,在重氮乙酸盐暴露于小牛胸腺 DNA 后,通过液相色谱-ESI 串联质谱确认了它们的形成,并制备了含有特异性掺入 N(6)-CMdA 或 N(4)-CMdC 的寡脱氧核苷酸。此外,热力学研究表明,在 12 -mer 双链体中,用 N(6)-CMdA 替代 dA 和用 N(4)-CMdC 替代 dC,分别使双链体形成的吉布斯自由能在 25°C 时增加了 5.3 和 6.8 kcal/mol。此外,引物延伸实验表明,N(4)-CMdC 对 Klenow 片段介导的引物延伸的阻断作用比 N(6)-CMdA 更强。聚合酶对 dAMP 与 N(6)-CMdA 之间的错配掺入具有很大的频率,并且在较小程度上,对 dAMP 和 dTMP 与 N(4)-CMdC 之间的错配插入。N(6)-CMdA 和 N(4)-CMdC 的形成和诱变潜力表明,这些损伤可能在 NOC 诱导的肿瘤发展的病因学中具有重要意义。