核酸碱基微水化的分子力学与量子力学比较研究

J. Lino, E. Gonz'alez, A. Deriabina, M. Velasco, V. Poltev
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引用次数: 0

摘要

DNA是最重要的生物分子,它的水合作用对双螺旋的结构和功能起着至关重要的作用。本文采用分子力学(MM)方法,结合Poltev-Malenkov (PM)、AMBER和ops力场,以及MP2/6-31G(d,p)理论水平的从头算量子力学(QM)计算,分析了核酸中单个碱基及其甲基衍生物的微水合作用。将计算得到的相互作用能与质谱法测定的低温下碱的微水化焓进行了比较。用MM得到的每个局部水基相互作用能最小值与用QM得到的最小值相对应。两组方法得到的局部极小值的几何特征在定性上基本一致。与QM方法相比,MM最小值对应的共面结构略多,MM能量绝对值高估了QM方法得到的相应值。腺嘌呤和胸腺嘧啶的QM局域最小能量值更接近PM电位的局域最小能量值(平均0.72 kcal/mol),而AMBER力场的局域最小能量值为1.86 kcal/mol。对于鸟嘌呤和胞嘧啶,MM和QM结果之间的能量差异更为明显,特别是对于水分子与碱基的两个质子受体中心形成氢键的最小值。这样的最小值是通过MM方法得到的最深的最小值,而QM计算得到的是水分子与碱的一个受体和一个给体位点相对应的全局最小值。三甲基化碱基与水分子的计算证实了MM的结果。能量分布是在水分子被冻结的一定自由度下得到的。这些数据将有助于分子力学力场的改进。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Comparative Molecular Mechanics and Quantum Mechanics Study of Microhydration of Nucleic Acid Bases
DNA is the most important biological molecule, and its hydration contributes essentially to the structure and functions of the double helix. We analyze the microhydration of the individual bases of nucleic acids and their methyl derivatives using methods of molecular mechanics (MM) with the Poltev-Malenkov (PM), AMBER and OPLS force fields, as well as ab initio Quantum Mechanics (QM) calculations at MP2/6-31G(d,p) level of theory. A comparison is made between the calculated interaction energies and the experimental enthalpies of microhydration of bases, obtained from mass spectrometry at low temperatures. Each local water-base interaction energy minimum obtained with MM corresponds to the minimum obtained with QM. General qualitative agreement was observed in the geometrical characteristics of the local minima obtained via the two groups of methods. MM minima correspond to slightly more coplanar structures than those obtained via QM methods, and the absolute MM energy values overestimate corresponding values obtained with QM. For Adenine and Thymine the QM local minima energy values are closer to those obtained by the PM potential (average of 0.72 kcal/mol) than by the AMBER force field (1.86 kcal/mol). The differences in energy between MM and QM results are more pronounced for Guanine and Cytosine, especially for minima with the water molecule forming H-bonds with two proton-acceptor centers of the base. Such minima are the deepest ones obtained via MM methods while QM calculations result in the global minima corresponding to water molecule H-bonded to one acceptor and one donor site of the base. Calculations for trimethylated bases with a water molecule corroborate the MM results. The energy profiles were obtained with some degrees of freedom of the water molecule being frozen. This data will contribute to the improvement of the molecular mechanics force fields.
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