Yesylevskyy S, Cardey Bruno, Kraszewski S, Foley Sarah, Enescu Mironel, da Silva Antônio M, Dos Santos Hélio F, Ramseyer Christophe
Department of Physics of Biological Systems, Institute of Physics of the National Academy of Sciences of Ukraine, Prospect Nauky 46, Kiev-28, 03680, Ukraine.
Laboratoire Chrono Environnement UMR CNRS 6249, Université de Franche-Comté, 16 route de Gray, 25030, Besançon Cedex, France.
J Mol Model. 2015 Oct;21(10):268. doi: 10.1007/s00894-015-2812-0. Epub 2015 Sep 19.
Parameterization of molecular complexes containing a metallic compound, such as cisplatin, is challenging due to the unconventional coordination nature of the bonds which involve platinum atoms. In this work, we develop a new methodology of parameterization for such compounds based on quantum dynamics (QD) calculations. We show that the coordination bonds and angles are more flexible than in normal covalent compounds. The influence of explicit solvent is also shown to be crucial to determine the flexibility of cisplatin in quantum dynamics simulations. Two empirical topologies of cisplatin were produced by fitting its atomic fluctuations against QD in vacuum and QD with explicit first solvation shell of water molecules respectively. A third topology built in a standard way from the static optimized structure was used for comparison. The later one leads to an excessively rigid molecule and exhibits much smaller fluctuations of the bonds and angles than QD reveals. It is shown that accounting for the high flexibility of cisplatin molecule is needed for adequate description of its first hydration shell. MD simulations with flexible QD-based topology also reveal a significant decrease of the barrier of passive diffusion of cisplatin accross the model lipid bilayer. These results confirm that flexibility of organometallic compounds is an important feature to be considered in classical molecular dynamics topologies. Proposed methodology based on QD simulations provides a systematic way of building such topologies.
对含有金属化合物(如顺铂)的分子复合物进行参数化具有挑战性,这是因为涉及铂原子的键具有非常规的配位性质。在这项工作中,我们基于量子动力学(QD)计算开发了一种针对此类化合物的新参数化方法。我们表明,配位键和角度比普通共价化合物中的更灵活。在量子动力学模拟中,显式溶剂的影响对于确定顺铂的灵活性也至关重要。通过分别将其原子涨落与真空中的量子动力学以及具有明确的水分子第一溶剂化层的量子动力学进行拟合,生成了顺铂的两种经验拓扑结构。以标准方式从静态优化结构构建的第三种拓扑结构用于比较。后者导致分子过于刚性,并且显示出比量子动力学所揭示的更小的键和角度涨落。结果表明,为了充分描述顺铂的第一水合层,需要考虑顺铂分子的高灵活性。基于灵活的量子动力学拓扑结构的分子动力学模拟还揭示了顺铂跨模型脂质双层的被动扩散势垒显著降低。这些结果证实,有机金属化合物的灵活性是经典分子动力学拓扑结构中需要考虑的一个重要特征。基于量子动力学模拟提出的方法提供了构建此类拓扑结构的系统方法。