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Mutagenic effects induced by the attack of NO2 radical to the guanine-cytosine base pair

机译:NO 2自由基攻击鸟嘌呤-胞嘧啶碱基对诱导的致突变作用

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We investigate the attack of the nitrogen dioxide radical (NO2) to the guanine-cytosine (GC) base pair and the subsequent tautomeric reactions able to induce mutations, by means of density functional theory (DFT) calculations. The conducted simulations allow us to identify the most reactive sites of the GC base pair. Indeed, the computed relative energies demonstrate that the addition of the NO2 radical to the C8 position of the guanine base forms to the most stable adduct. Although the initial adducts might evolve to non-canonical structures via inter-base hydrogen bonds rearrangements, the probability for the proton exchange to occur lies in the same range as that observed for undamaged DNA. As a result, tautomeric errors in NO2-attacked DNA arises at the same rate as in canonical DNA, with no macroscopic impact on the overall stability of DNA. The potential mutagenic effects of the GC-NO2 radical adducts likely involve side reactions, e.g., the GC deprotonation to the solvent, rather than proton exchange between guanine and cytosine basis.
机译:我们通过密度泛函理论(DFT)计算研究了对鸟嘌呤-胞嘧啶(GC)碱基对的二氧化氮自由基(NO2)的攻击以及随后的能够诱发突变的互变异构反应。进行的模拟使我们能够识别GC碱基对中反应最活跃的位点。实际上,计算出的相对能量表明,将鸟嘌呤碱基的C8位置上的NO2自由基加成为最稳定的加合物。尽管最初的加合物可能会通过碱基间氢键重排而演变为非规范结构,但质子交换发生的可能性与未损坏的DNA处于相同的范围。结果,NO2攻击的DNA中的互变异构错误的发生率与标准DNA中相同,而对DNA的整体稳定性没有宏观影响。 GC-NO 2自由基加合物的潜在诱变作用可能涉及副反应,例如GC对溶剂的去质子化,而不是鸟嘌呤和胞嘧啶之间的质子交换。

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