Chantzis Agisilaos, Very Thibaut, Despax Stéphane, Issenhuth Jean-Thomas, Boeglin Alex, Hébraud Pascal, Pfeffer Michel, Monari Antonio, Assfeld Xavier
Université de Lorraine Nancy, Théorie, Modélisation, Simulation, SRSMC UMR 7565, Boulevard des Aiguillettes BP 70239, 54506, Vandoeuvre-lès-Nancy, France,
J Mol Model. 2014 Mar;20(3):2082. doi: 10.1007/s00894-014-2082-2. Epub 2014 Feb 22.
The synthesis of a new Ru(II) complex is reported. Its absorption spectrum when interacting with DNA in water was calculated at the hybrid quantum mechanics molecular mechanics level of theory and compared with experimental data. The vertical transitions were computed using time-dependent density functional theory in the linear response approximation. The complex and its environment were treated at the quantum mechanical and molecular mechanical levels, respectively. The effects of the environment were investigated in detail and conveniently classified into electrostatic and polarization effects. The latter were modeled using the computationally inexpensive "electronic response of the surroundings" method. It was found that the main features of the experimental spectrum are nicely reproduced by the theoretical calculations. Moreover, analysis of the most intense transitions utilizing the natural transition orbital formalism revealed important insights into their nature and their potential role in the irreversible oxidation of DNA, a phenomenon that could be relevant in the field of cancer therapy.
报道了一种新型钌(II)配合物的合成。在混合量子力学-分子力学理论水平上计算了其在水中与DNA相互作用时的吸收光谱,并与实验数据进行了比较。使用线性响应近似下的含时密度泛函理论计算垂直跃迁。配合物及其环境分别在量子力学和分子力学水平上进行处理。详细研究了环境的影响,并方便地将其分为静电效应和极化效应。后者使用计算成本较低的“周围环境的电子响应”方法进行建模。结果发现,理论计算很好地再现了实验光谱的主要特征。此外,利用自然跃迁轨道形式对最强跃迁进行分析,揭示了它们的性质及其在DNA不可逆氧化中的潜在作用的重要见解,这一现象可能与癌症治疗领域相关。