Gu Jiande, Xie Yaoming, Schaefer Iii Henry F
Drug Design & Discovery Center, Shanghai Institute of Materia Medica, Shanghai Institutes for Biological Sciences, CAS, Shanghai 201203 PR China.
J Phys Chem B. 2006 Oct 5;110(39):19696-703. doi: 10.1021/jp064852i.
Electron attachment to the 2'-deoxythymidine-5'-monophosphate-adenine pairs (5'-dTMPH-A and 5'-dTMP(-)-A) has been investigated at a carefully calibrated level of theory (B3LYP/DZP++) to investigate the electron-accepting properties of thymine (T) in the DNA double helix under physiological conditions. All molecular structures have been fully optimized in vacuo and in solution. The adiabatic electron affinity of 5'-dTMPH-A in the gas phase has been predicted to be 0.67 eV. Solvent effects greatly increase the electron capture ability of 5'-dTMPH-A. In fact, the adiabatic electron affinity increases to 2.04 eV with solvation. The influence of the solvent environment on the electron-attracting properties of 5'-dTMPH-A arises not only from the stabilization of the corresponding radical anion through charge-dipole interactions, but also by changing the distribution of the unpaired electron in the molecular system. The unpaired electron is covalently bound even during vertical attachment, due to the solvent effects. Solvent effects also weaken the pairing interaction in the thymidine monophosphate-adenine complexes. The phosphate deprotonation is found to have a relatively minor influence on the capture of electrons by the 5'-dTMPH-A species in aqueous solution. The electron distributions, natural population analysis, and geometrical features of the models examined illustrate that the influence of the phosphate deprotonation is limited to the phosphate moiety in aqueous solution. Therefore, it is reasonable to expect that electron attachment to nucleotides will be independent of monovalent counterions in the vicinity of the phosphate group in aqueous solution.
在经过仔细校准的理论水平(B3LYP/DZP++)下,对2'-脱氧胸苷-5'-单磷酸-腺嘌呤对(5'-dTMPH-A和5'-dTMP(-)-A)的电子附着进行了研究,以探究生理条件下DNA双螺旋中胸腺嘧啶(T)的电子接受特性。所有分子结构均已在真空和溶液中进行了完全优化。预测气相中5'-dTMPH-A的绝热电子亲和能为0.67 eV。溶剂效应极大地提高了5'-dTMPH-A的电子捕获能力。实际上,溶剂化后绝热电子亲和能增加到2.04 eV。溶剂环境对5'-dTMPH-A电子吸引特性的影响不仅源于通过电荷-偶极相互作用使相应自由基阴离子稳定,还源于改变分子体系中未成对电子的分布。由于溶剂效应,即使在垂直附着过程中未成对电子也是共价结合的。溶剂效应还削弱了单磷酸胸苷-腺嘌呤复合物中的配对相互作用。发现磷酸去质子化对水溶液中5'-dTMPH-A物种捕获电子的影响相对较小。所研究模型的电子分布、自然布居分析和几何特征表明,磷酸去质子化的影响仅限于水溶液中的磷酸部分。因此,可以合理预期在水溶液中,电子附着到核苷酸上将与磷酸基团附近的单价抗衡离子无关。