Molecular Docking and Dynamic Simulation Studies of Cu(II) Metal Complexes with Covid-19 main Protease

S. Kumaraswamy, K. J. Pampa, S. Nagashree, P. Mallu, V. Chandramohan, L. N. Krishnappagowda
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引用次数: 1

Abstract

Although the vaccine against the COVID-19 pandemic has been achieved, therapeutics still have to design to treat the infected patients. Several studies by the scientific communities are involved all over the world to develop a novel therapeutic agent against the COVID-19 virus. This study screened four β-diketone-based Cu(II) complexes against COVID-19 main protease to study their potential as an antiviral drug molecule. A molecular docking study revealed the excellent inhibitory activity of Cu(II) complexes with good binding energy values. Molecular dynamics simulation studies were carried out for 50ns to explore the selectivity profiles, conformational stability, and fluctuations of protein-ligand complexes during the simulation. Using DFT calculation, the highest occupied and lowest unoccupied molecular orbitals, electronic properties, and molecular electrostatic potential were investigated and compared with the docking results.
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Cu(II)金属配合物与新冠病毒主蛋白酶的分子对接及动态模拟研究
尽管针对COVID-19大流行的疫苗已经研制成功,但仍然需要设计治疗方法来治疗受感染的患者。世界各地的科学界正在进行几项研究,以开发一种针对COVID-19病毒的新型治疗剂。本研究筛选了4个以β-二酮为基础的Cu(II)复合物,以抗COVID-19主要蛋白酶,研究其作为抗病毒药物分子的潜力。分子对接研究表明,具有良好结合能的Cu(II)配合物具有良好的抑制活性。进行了50ns的分子动力学模拟研究,探讨了模拟过程中蛋白质-配体复合物的选择性、构象稳定性和波动。利用DFT计算,研究了分子轨道的最高占位和最低未占位、电子性质和分子静电势,并与对接结果进行了比较。
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