Alhomrani Majid, Alsanie Walaa F, Alamri Abdulhakeem S, Alyami Hussain, Habeeballah Hamza, Alkhatabi Heba A, Felimban Raed I, Haynes John M, Shakya Sonam, Raafat Bassem M, Refat Moamen S, Gaber Ahmed
Department of Clinical Laboratories Sciences, The Faculty of Applied Medical Sciences, Taif University, P.O. Box 11099, Taif 21944, Saudi Arabia.
Centre of Biomedical Sciences Research (CBSR), Deanship of Scientific Research, Taif University, P.O. Box 11099, Taif 21944, Saudi Arabia.
Pharmaceuticals (Basel). 2022 Feb 24;15(3):285. doi: 10.3390/ph15030285.
The aim of this study was to assess the utility of inexpensive techniques in evaluating the interactions of risperidone (Ris) with different traditional π-acceptors, with subsequent application of the findings into a Ris pharmaceutical formulation with improved therapeutic properties. Molecular docking calculations were performed using Ris and its different charge-transfer complexes (CT) with picric acid (PA), 2,3-dichloro-5,6-dicyanop-benzoquinon (DDQ), tetracyanoquinodimethane (TCNQ), tetracyano ethylene (TCNE), tetrabromo-pquinon (BL), and tetrachloro-p-quinon (CL), as donors, and three receptors (serotonin, dopamine, and adrenergic) as acceptors to study the comparative interactions among them. To refine the docking results and further investigate the molecular processes of receptor-ligand interactions, a molecular dynamics simulation was run with output obtained from AutoDock Vina. Among all investigated complexes, the [(Ris) (PA)]-serotonin (CTcS) complex showed the highest binding energy. Molecular dynamics simulation of the 100 ns run revealed that both the Ris-serotonin (RisS) and CTcS complexes had a stable conformation; however, the CTcS complex was more stable.
本研究的目的是评估廉价技术在评价利培酮(Ris)与不同传统π-受体相互作用方面的效用,并将研究结果应用于具有改善治疗特性的利培酮药物制剂。使用利培酮及其与苦味酸(PA)、2,3-二氯-5,6-二氰基对苯醌(DDQ)、四氰基对苯二醌二甲烷(TCNQ)、四氰基乙烯(TCNE)、四溴对苯醌(BL)和四氯对苯醌(CL)形成的不同电荷转移络合物(CT)作为供体,以及三种受体(5-羟色胺、多巴胺和肾上腺素能受体)作为受体进行分子对接计算,以研究它们之间的比较相互作用。为了优化对接结果并进一步研究受体-配体相互作用的分子过程,利用从AutoDock Vina获得的输出结果进行了分子动力学模拟。在所有研究的络合物中,[(Ris) (PA)]-5-羟色胺(CTcS)络合物显示出最高的结合能。100纳秒运行的分子动力学模拟表明,利培酮-5-羟色胺(RisS)和CTcS络合物均具有稳定的构象;然而,CTcS络合物更稳定。