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5-Fluorouracil Dimers in Aqueous Solution: Molecular Dynamics in Water and Continuum Solvation

机译:5-氟尿嘧啶二聚物在水溶液中:在水中的分子动力学和连续溶剂化

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The interactions established in aqueous solution by a variety of 5-fluorouracil (FU) dimers in water were examined to elucidate the strength of drug-solvent interactions. Molecular dynamics simulations for clusters made up of the FU dimer alone or embedded in 4, 12, and 100 waters at high temperature, followed by simulated annealing, allowed comparing the dimer structures in the different environments, the solute-solvent radial distribution functions and the cluster energetics. The statistics were consistent with those obtained from a 10 ns MD simulation in the NPT ensemble in 385 waters. Interestingly, the F atom was never preferred to O as H-bond acceptor either in the dimer or in water. The interactions within the dimers turned out to be remarkably affected by the presence of the solvent: stacked structures, unfavorable in the gas phase, prevailed even in the presence of four water molecules. The presence of real water molecules in thus of paramount importance to stabilize the system, using molecular dynamics or, alternatively, if affordable, the MP2 level. Geometry optimizations of the clusters at the B3LYP/6-31G~* or HF/6-31G~* level, in fact, though starting from a stacked hydrated arrangement of the FU dimer, produced almost exactly the same seashell structure. The polarizable continuum model is convenient to compute the solvation free energy of the dimers and clusters at the HF or MP2 level. Also, the partial charge distribution of the clusters can profitably be used to evaluate the solvent effect in the continuum framework.
机译:检查了水溶液中各种5-氟尿嘧啶(FU)二聚体在水溶液中的相互作用,以阐明药物-溶剂相互作用的强度。对仅由FU二聚体组成的簇或在高温下嵌入4、12和100水中的FU进行分子动力学模拟,然后进行模拟退火,从而可以比较不同环境中的二聚体结构,溶质-溶剂的径向分布函数和集群能量学。统计数据与在385个水域的NPT集合中通过10 ns MD模拟获得的数据一致。有趣的是,无论是在二聚体还是在水中,F原子都不比O更优选作为H键受体。事实证明,二聚体中的相互作用受到溶剂的存在的显着影响:即使在存在四个水分子的情况下,在气相中不利的堆叠结构仍占优势。因此,真正的水分子的存在对于利用分子动力学或MP2水平(如果可以负担的话)来稳定系统至关重要。实际上,尽管从FU二聚体的堆叠水合排列开始,但在B3LYP / 6-31G〜*或HF / 6-31G〜*级别上的团簇的几何优化产生了几乎完全相同的贝壳结构。可极化的连续体模型便于计算HF或MP2级别的二聚体和簇的溶剂化自由能。同样,簇的部分电荷分布可有益地用于评估连续体框架中的溶剂效应。

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