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首页> 外文期刊>Journal of King Saud University >Quantum chemical studies on molecular structure, AIM, ELF, RDG and antiviral activities of hybrid hydroxychloroquine in the treatment of COVID-19: Molecular docking and DFT calculations
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Quantum chemical studies on molecular structure, AIM, ELF, RDG and antiviral activities of hybrid hydroxychloroquine in the treatment of COVID-19: Molecular docking and DFT calculations

机译:杂种羟基氯喹的分子结构,AIM,ELF,RDG和抗病毒活性的量子化学研究在Covid-19:分子对接和DFT计算

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摘要

Structure?activity relationships for hydroxychloroquine compound and its derivatives resulted in a potent antiviral activity. Where hydroxychloroquine derivatives showed an apparent efficacy against coronavirus related pneumonia. For this reason, the current study is focused on the structural properties of hydroxychloroquine and hydroxychloroquine sulfate. Optimized structures of these molecules have been reported by using DFT method at B3LYP/6-31G* level of theory. The geometric were determined and compared with the experimental crystal structure. The intra and intermolecular interactions which exist within these compounds are analyzed by different methods namely the topological analysis AIM, ELF and the reduced gradient of the density. These approaches make it possible in particular to study the properties of hydrogen bonds. The highest occupied molecular orbital and the lowest unoccupied molecular orbital energy levels are constructed and the corresponding frontier energy gaps are determined to realize the charge transfer within the molecule. The densities of state diagrams were determined to calculate contributions to the molecular orbitals. The molecular electrostatic potential surfaces are determined to give a visual representation of charge distribution of these ligands and to provide information linked to electrophilic and nucleophilic sites localization. Finally, these derivatives were evaluated for the inhibition of COVID-19 activity by using the molecular docking method.
机译:结构?羟氯喹化合物的活性关系及其衍生物导致有效的抗病毒活性。羟基氯喹蛋白衍生物对冠状病毒相关肺炎的表观疗效表现出明显的疗效。因此,目前的研究专注于羟基氯喹和羟基硫酸羟基硫酸盐的结构性。通过在B3LYP / 6-31G *理论水平下使用DFT方法报道了这些分子的优化结构。几何测定并与实验晶体结构进行比较。通过不同的方法分析这些化合物内存在的内分子间相互作用,即拓扑分析目的,ELF和密度降低的梯度。这些方法尤其可以研究氢键的性质。构造了最高占用的分子轨道和最低的未占用分子轨道能量,并且确定了相应的前沿能量间隙以实现分子内的电荷转移。确定状态图的密度是计算对分子轨道的贡献。确定分子静电电位表面以提供这些配体的电荷分布的视觉表示,并提供链接到亲电子和亲核位点定位的信息。最后,通过使用分子对接方法评估这些衍生物用于抑制Covid-19活性。

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