Beijing National Laboratory for Molecular Sciences, Institute of Chemistry, Chinese Academy of Sciences, Beijing 100190, P. R. China.
University of Chinese Academy of Sciences, Beijing 100048, P. R. China.
J Phys Chem A. 2020 Jul 23;124(29):6076-6083. doi: 10.1021/acs.jpca.0c03748. Epub 2020 Jul 9.
Proton transfer is regarded as a fundamental process in chemical reactions of DNA molecules and continues to be an active research theme due to the connection with charge transport and oxidation damage of DNA. For the guanine radical cation (G) derived from one-electron oxidation, experiments suggest a facile proton transfer within the G:C base pair, and a rapid deprotonation from N1 in free base or single-strand DNA. To address the deprotonation mechanism, we perform a thorough investigation on deprotonation of G in free G base by combining density functional theory (DFT) and laser flash photolysis spectroscopy. Experimentally, kinetics of deprotonation is monitored at temperatures varying from 280 to 298 K, from which the activation energy of 15.1 ± 1.5 kJ/mol is determined for the first time. Theoretically, four solvation models incorporating explicit waters and the polarized continuum model (PCM), i.e., 3HO-PCM, 4HO-PCM, 5HO-PCM, and 7HO-PCM models are used to calculate deprotonation potential energy profile, and the barriers of 5.5, 13.4, 14.4, and 13.7 kJ/mol are obtained, respectively. It is shown that at least four explicit waters are required for properly simulating the deprotonation reaction, where the participation of protonated water cluster plays key roles in facilitating the proton release from G.
质子转移被认为是 DNA 分子化学反应中的一个基本过程,由于与电荷传输和 DNA 氧化损伤有关,因此它仍然是一个活跃的研究主题。对于单电子氧化衍生的鸟嘌呤自由基阳离子(G),实验表明在 G:C 碱基对中质子转移很容易发生,并且在游离碱基或单链 DNA 中从 N1 快速去质子化。为了解决去质子化机制的问题,我们通过结合密度泛函理论(DFT)和激光闪光光解光谱法对游离 G 碱基中 G 的去质子化进行了彻底的研究。实验上,在 280 至 298 K 的温度范围内监测去质子化的动力学,首次确定了 15.1 ± 1.5 kJ/mol 的活化能。从理论上讲,使用了四个包含显式水分子和极化连续体模型(PCM)的溶剂化模型,即 3HO-PCM、4HO-PCM、5HO-PCM 和 7HO-PCM 模型来计算去质子化势能曲线,分别得到 5.5、13.4、14.4 和 13.7 kJ/mol 的势垒。结果表明,至少需要四个显式水分子才能正确模拟去质子化反应,其中质子化水簇的参与在促进 G 中质子释放方面起着关键作用。