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2-硫代尿嘧啶、4-硫代尿嘧啶和 2,4-二硫代尿嘧啶的生物分子:水合作用、分子对接和对 DNA:RNA 微螺旋影响的 DFT 研究。

Biomolecules of 2-Thiouracil, 4-Thiouracil and 2,4-Dithiouracil: A DFT Study of the Hydration, Molecular Docking and Effect in DNA:RNAMicrohelixes.

机构信息

Departamento de Química-Física, Facultad de CienciasQuímicas, Universidad Complutense de Madrid, 28040 Madrid, Spain.

PG and Research Department of Physics, N.M.S.S.V.N. College, Madurai 625019, India.

出版信息

Int J Mol Sci. 2019 Jul 15;20(14):3477. doi: 10.3390/ijms20143477.

Abstract

The molecular structure of 2-thiouracil, 4-thiouracil and 2,4-dithiouracil was analyzed under the effect of the first and second hydration shell by using the B3LYP density functional (DFT) method, and the results were compared to those obtained for the uracil molecule. A slight difference in the water distribution appears in these molecules. On the hydration of these molecules several trends in bond lengths and atomic charges were established. The ring in uracil molecule appears easier to be deformed and adapted to different environments as compared to that when it is thio-substituted. Molecular docking calculations of 2-thiouracil against three different pathogens: , and were carried out. Docking calculations of 2,4-dithiouracil ligand with various targeted proteins were also performed. Different DNA: RNA hybrid microhelixes with uridine, 2-thiouridine, 4-thiouridine and 2,4-dithiouridine nucleosides were optimized in a simple model with three nucleotide base pairs. Two main types of microhelixes were analyzed in detail depending on the intramolecular H-bond of the 2'-OH group. The weaker Watson-Crick (WC) base pair formed with thio-substituted uracil than with unsubstituted ones slightly deforms the helical and backbone parameters, especially with 2,4-dithiouridine. However, the thio-substitution significantly increases the dipole moment of the A-type microhelixes, as well as the rise and propeller twist parameters.

摘要

2-硫代尿嘧啶、4-硫代尿嘧啶和 2,4-二硫代尿嘧啶的分子结构在第一层和第二层水合壳的作用下,采用 B3LYP 密度泛函(DFT)方法进行了分析,并将结果与尿嘧啶分子的结果进行了比较。这些分子中出现了水分布的微小差异。在这些分子的水合过程中,确定了键长和原子电荷的几个趋势。与硫代取代时相比,尿嘧啶分子的环似乎更容易变形并适应不同的环境。对 2-硫代尿嘧啶与三种不同病原体:、和进行了分子对接计算。还对 2,4-二硫代尿嘧啶配体与各种靶向蛋白的对接计算进行了研究。在一个简单的模型中,用三个核苷酸碱基对优化了含有尿嘧啶、2-硫代尿嘧啶、4-硫代尿嘧啶和 2,4-二硫代尿嘧啶核苷的不同 DNA:RNA 杂交微螺旋。根据 2'-OH 基团的分子内氢键,详细分析了两种主要类型的微螺旋。与未取代的尿嘧啶相比,硫代取代的尿嘧啶形成的较弱的沃森-克里克(WC)碱基对略微改变了螺旋和骨架参数,尤其是与 2,4-二硫代尿嘧啶。然而,硫代取代显著增加了 A 型微螺旋的偶极矩,以及上升和推进扭曲参数。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/04fb/6678171/d8a8e2903809/ijms-20-03477-g001.jpg

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