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首页> 外文期刊>International Journal of Quantum Chemistry >Quantum theoretical study of mechanism of the reaction between guanine radical cation and carbonate radical anion: Formation of 8-oxoguanine
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Quantum theoretical study of mechanism of the reaction between guanine radical cation and carbonate radical anion: Formation of 8-oxoguanine

机译:鸟嘌呤自由基阳离子与碳酸根自由基阴离子反应机理的量子理论研究:8-氧代鸟嘌呤的形成

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摘要

The reaction between guanine radical cation (G ~(+·)) and carbonate radical anion (CO _3 ~(-·)) producing the mutagenic product 8-oxoguanine that has been observed experimentally was investigated using density functional and second-order M?ller-Plesset perturbation (MP2) theories. The structures of reactant, intermediate, and product complexes as well as those of the transition states were fully optimized at the B3LYP/6-31G, B3LYP/AUG-cc-pVDZ, and BHandHLYP/AUG-cc-pVDZ levels of density functional theory in gas phase. Single point energy calculations were performed at the MP2/AUG-cc-pVDZ level using the BHandHLYP/AUG-cc-pVDZ level gas-phase optimized geometries. To obtain the equivalent solvent that would approximately represent the complex medium used in the experimental study, bulk solvent effect on the stability of the reactant complex was studied by single point energy calculations in various solvent media (toluene, chlorobenzene, dichloroethane, acetone dimethylsulfoxide, and water) using the polarizable continuum model. Thus, chlorobenzene was found to represent the experimental medium fairly closely. The calculated Gibbs free barrier and released energies show that the reaction under consideration would occur efficiently.
机译:用密度泛函和二阶M 2考察了通过实验观察到的鸟嘌呤自由基阳离子(G〜(+·))和碳酸根自由基阴离子(CO _3〜(-·)之间的反应,产生了诱变产物8-氧鸟嘌呤。 ller-Plesset摄动(MP2)理论。在密度泛函理论的B3LYP / 6-31G,B3LYP / AUG-cc-pVDZ和BHandHLYP / AUG-cc-pVDZ水平上,对反应物,中间体和产物配合物的结构以及过渡态的结构进行了全面优化。在气相中。使用BHandHLYP / AUG-cc-pVDZ级气相优化的几何结构在MP2 / AUG-cc-pVDZ级进行单点能量计算。为了获得近似代表实验研究中使用的复杂介质的等效溶剂,通过在各种溶剂介质(甲苯,氯苯,二氯乙烷,丙酮二甲亚砜和四氢呋喃中)的单点能量计算研究了本体溶剂对反应物络合物稳定性的影响。水)使用可极化的连续体模型。因此,发现氯苯相当接近地代表了实验介质。计算的吉布斯自由势垒和释放的能量表明,所考虑的反应将有效地发生。

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