[用分子力学和量子力学方法分析沃森-克里克双组分的构象特征]。

Biofizika Pub Date : 2016-03-01
V I Poltev, V M Anisimov, C Sanchez, A Deriabina, E Gonzalez, D Garcia, F Rivas, N A Polteva
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引用次数: 0

摘要

人们普遍认为,沃森-克里克双相的重要特征源于其亚基的分子结构。然而,仍然需要阐明每个亚基的哪些特性负责DNA结构的重要特征。利用密度泛函理论计算了与na离子的脱氧二核苷单磷酸配合物,揭示了单链最小片段的DNA构象性质在沃森-克里克双相的独特特征发展中的关键作用。结合嘌呤和嘧啶的不同,我们发现了磷酸糖主链的方向性和其扭角的适宜范围。在环碱基中,定义沃森-克里克双工的三维结构对核苷酸碱基序列的依赖性。在这项工作中,我们将这些密度泛函理论计算扩展到DNA双工的最小片段,与na离子互补的脱氧二核苷单磷酸配合物。使用几种计算方法和各种功能,我们对具有不同核苷序列的互补去氧二核苷单磷酸配合物的bi构象的能量最小值进行了搜索。在MP2/6-31++G**理论水平上对两个序列进行从头算优化。对优化后结构的扭角、糖环褶皱和互碱基位置的分析表明,与na离子互补的去氧二核苷单磷酸配合物的构象特征特征保持在BI范围内,与沃森-克里克双晶的相应特征特征更加接近。定性地说,当使用不同的计算方法时,所研究的每个互补脱氧二核苷单磷酸配合物的主要特征特征保持不变,尽管一些构象参数的定量值可能在相应家族的典型范围内变化。我们观察到密度泛函理论计算中流行的泛函导致了碱基对之间距离的高估,而MP2计算和较新的复杂泛函产生了原子-原子接触过近的结构。对一些与na离子互补的单磷酸去氧二核苷配合物的详细研究表明,存在与bi构象相对应的几个能量极小值,即互补的单磷酸去氧二核苷配合物势能面起伏模式的复杂性。这解释了具有相同碱基序列的双片段构象参数的可变性。常用的分子力学力场AMBER和CHARMM再现了去氧二核苷单磷酸酯及其与na离子互补配合物的大部分构象特征,但未能再现沃森-克里克双构象对核苷酸序列依赖性的一些细节。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
[Analysis of Conformational Features of Watson-Crick Duplex Fragments by Molecular Mechanics and Quantum Mechanics Methods].

It is generally accepted that the important characteristic features of the Watson-Crick duplex originate from the molecular structure of its subunits. However, it still remains to elucidate what properties of each subunit are responsible for the significant characteristic features of the DNA structure. The computations of desoxydinucleoside monophosphates complexes with Na-ions using density functional theory revealed a pivotal role of DNA conformational properties of single-chain minimal fragments in the development of unique features of the Watson-Crick duplex. We found that directionality of the sugar-phosphate backbone and the preferable ranges of its torsion angles, combined with the difference between purines and pyrimidines. in ring bases, define the dependence of three-dimensional structure of the Watson-Crick duplex on nucleotide base sequence. In this work, we extended these density functional theory computations to the minimal' fragments of DNA duplex, complementary desoxydinucleoside monophosphates complexes with Na-ions. Using several computational methods and various functionals, we performed a search for energy minima of BI-conformation for complementary desoxydinucleoside monophosphates complexes with different nucleoside sequences. Two sequences are optimized using ab initio method at the MP2/6-31++G** level of theory. The analysis of torsion angles, sugar ring puckering and mutual base positions of optimized structures demonstrates that the conformational characteristic features of complementary desoxydinucleoside monophosphates complexes with Na-ions remain within BI ranges and become closer to the corresponding characteristic features of the Watson-Crick duplex crystals. Qualitatively, the main characteristic features of each studied complementary desoxydinucleoside monophosphates complex remain invariant when different computational methods are used, although the quantitative values of some conformational parameters could vary lying within the limits typical for the corresponding family. We observe that popular functionals in density functional theory calculations lead to the overestimated distances between base pairs, while MP2 computations and the newer complex functionals produce the structures that have too close atom-atom contacts. A detailed study of some complementary desoxydinucleoside monophosphate complexes with Na-ions highlights the existence of several energy minima corresponding to BI-conformations, in other words, the complexity of the relief pattern of the potential energy surface of complementary desoxydinucleoside monophosphate complexes. This accounts for variability of conformational parameters of duplex fragments with the same base sequence. Popular molecular mechanics force fields AMBER and CHARMM reproduce most of the conformational characteristics of desoxydinucleoside monophosphates and their complementary complexes with Na-ions but fail to reproduce some details of the dependence of the Watson-Crick duplex conformation on the nucleotide sequence.

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