化学信息学
数量结构-活动关系
药品
化学
虚拟筛选
利什曼病
对接(动物)
药代动力学
分子力学
药理学
计算生物学
组合化学
药物发现
计算化学
立体化学
分子动力学
医学
生物化学
生物
免疫学
护理部
作者
Fabian Audu Ugbe,Gideon Adamu Shallangwa,Adamu Uzairu,Ibrahim Abdulkadir,Emmanuel Israel Edache,Wafa Abdullah I. Al-Megrin,Samia T. Al‐Shouli,Ying Wang,Mohnad Abdalla
标识
DOI:10.1080/07391102.2023.2279269
摘要
Leishmaniasis affects more than 12 million humans globally and a further 1 billion people are at risk in leishmaniasis endemic areas. The lack of a vaccine for leishmaniasis coupled with the limitations of existing anti-leishmanial therapies prompted this study. Cheminformatic techniques are widely used in screening large libraries of compounds, studying protein-ligand interactions, analysing pharmacokinetic properties, and designing new drug molecules with great speed, accuracy, and precision. This study was undertaken to evaluate the anti-leishmanial potential of some organoselenium compounds by quantitative structure-activity relationship (QSAR) modeling, molecular docking, pharmacokinetic analysis, and molecular dynamic (MD) simulation. The built QSAR model was validated (R2train = 0.8646, R2test = 0.8864, Q2 = 0.5773) and the predicted inhibitory activity (pIC50) values of the newly designed compounds were higher than that of the template (Compound 6). The new analogues (6a, 6b, and 6c) showed good binding interactions with the target protein (Pyridoxal kinase, PdxK) while also presenting excellent drug-likeness and pharmacokinetic profiles. The results of density functional theory, MD simulation, and molecular mechanics generalized Born surface area (MM/GBSA) analyses suggest the favourability and stability of protein-ligand interactions of the new analogues with PdxK, comparing favourably well with the reference drug (Pentamidine). Conclusively, the newly designed compounds could be synthesized and tested experimentally as potential anti-leishmanial drug molecules.Communicated by Ramaswamy H. Sarma.
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