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一种用色散校正密度泛函理论研究地塞米松与β-环糊精包合作用的方法及对其抗 COVID-19 潜在活性的分子对接研究。

A Dispersion Corrected DFT Investigation of the Inclusion Complexation of Dexamethasone with β-Cyclodextrin and Molecular Docking Study of Its Potential Activity against COVID-19.

机构信息

Department of Petrochemical and Process Engineering, Faculty of Technology, 20 August 1955 University of Skikda, El Hadaik Road, P.O. Box 26, Skikda 21000, Algeria.

Department of Chemistry, College of Science and Arts, Qassim University, Ar Rass, Saudi Arabia.

出版信息

Molecules. 2021 Dec 15;26(24):7622. doi: 10.3390/molecules26247622.

Abstract

The encapsulation mode of dexamethasone (Dex) into the cavity of β-cyclodextrin (β-CD), as well as its potential as an inhibitor of the COVID-19 main protease, were investigated using density functional theory with the recent dispersion corrections D4 and molecular docking calculations. Independent gradient model and natural bond orbital approaches allowed for the characterization of the host-guest interactions in the studied systems. Structural and energetic computation results revealed that hydrogen bonds and van der Waals interactions played significant roles in the stabilization of the formed Dex@β-CD complex. The complexation energy significantly decreased from -179.50 kJ/mol in the gas phase to -74.14 kJ/mol in the aqueous phase. A molecular docking study was performed to investigate the inhibitory activity of dexamethasone against the COVID-19 target protein (PDB ID: 6LU7). The dexamethasone showed potential therapeutic activity as a SARS CoV-2 main protease inhibitor due to its strong binding to the active sites of the protein target, with predicted free energy of binding values of -29.97 and -32.19 kJ/mol as calculated from AutoDock4 and AutoDock Vina, respectively. This study was intended to explore the potential use of the Dex@β-CD complex in drug delivery to enhance dexamethasone dissolution, thus improving its bioavailability and reducing its side effects.

摘要

使用带有最新弥散校正 D4 的密度泛函理论和分子对接计算研究了地塞米松(Dex)包封在β-环糊精(β-CD)腔中的模式及其作为 COVID-19 主蛋白酶抑制剂的潜力。独立梯度模型和自然键轨道方法允许对研究体系中的主客体相互作用进行特征描述。结构和能量计算结果表明,氢键和范德华相互作用在形成的 Dex@β-CD 配合物的稳定化中起着重要作用。配合物能量从气相中的-179.50 kJ/mol显著降低至水相中的-74.14 kJ/mol。进行了分子对接研究,以研究地塞米松对 COVID-19 靶蛋白(PDB ID:6LU7)的抑制活性。由于地塞米松与蛋白质靶标活性位点的强结合,其显示出作为 SARS CoV-2 主蛋白酶抑制剂的潜在治疗活性,预测的结合自由能值分别为-29.97 和-32.19 kJ/mol,分别来自 AutoDock4 和 AutoDock Vina。本研究旨在探索 Dex@β-CD 配合物在药物输送中的潜在用途,以提高地塞米松的溶解度,从而提高其生物利用度并降低其副作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/203c/8708408/e78599933c48/molecules-26-07622-g001.jpg

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