a Faculty of Pharmacy, Department of Medicinal Chemistry , Isfahan University of Medical Sciences , 81746-73461 Isfahan , Iran.
b Faculty of Pharmacy, Department of Medicinal Chemistry , Drug Design and Development Research Center, Tehran University of Medical Sciences , Tehran , Iran.
J Biomol Struct Dyn. 2018 May;36(6):1463-1478. doi: 10.1080/07391102.2017.1326319. Epub 2017 May 24.
Heat shock protein 90(Hsp90), as a molecular chaperone, play a crucial role in folding and proper function of many proteins. Hsp90 inhibitors containing isoxazole scaffold are currently being used in the treatment of cancer as tumor suppressers. Here in the present studies, new compounds based on isoxazole scaffold were predicted using a combination of molecular modeling techniques including three-dimensional quantitative structure-activity relationship (3D-QSAR), molecular docking and molecular dynamic (MD) simulations. Comparative molecular field analysis (CoMFA) and comparative molecular similarity indices analysis (CoMSIA) were also done. The steric and electrostatic contour map of CoMFA and CoMSIA were created. Hydrophobic, hydrogen bond donor and acceptor of CoMSIA model also were generated, and new compounds were predicted by CoMFA and CoMSIA contour maps. To investigate the binding modes of the predicted compounds in the active site of Hsp90, a molecular docking simulation was carried out. MD simulations were also conducted to evaluate the obtained results on the best predicted compound and the best reported Hsp90 inhibitors in the 3D-QSAR model. Findings indicate that the predicted ligands were stable in the active site of Hsp90.
热休克蛋白 90(Hsp90)作为一种分子伴侣,在许多蛋白质的折叠和正常功能中起着至关重要的作用。含有异恶唑骨架的 Hsp90 抑制剂目前被用作肿瘤抑制剂来治疗癌症。在本研究中,使用包括三维定量构效关系(3D-QSAR)、分子对接和分子动力学(MD)模拟在内的多种分子建模技术,预测了基于异恶唑骨架的新型化合物。还进行了比较分子场分析(CoMFA)和比较分子相似性指数分析(CoMSIA)。绘制了 CoMFA 和 CoMSIA 的立体和静电轮廓图。还生成了 CoMSIA 模型的疏水性、氢键供体和受体,并通过 CoMFA 和 CoMSIA 轮廓图对新化合物进行了预测。为了研究预测化合物在 Hsp90 活性部位的结合模式,进行了分子对接模拟。还进行了 MD 模拟,以评估在 3D-QSAR 模型中获得的最佳预测化合物和最佳报道的 Hsp90 抑制剂的结果。研究结果表明,预测的配体在 Hsp90 的活性部位稳定。