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设计和合成新型吡唑-苯基半缩氨脲衍生物作为潜在的α-葡萄糖苷酶抑制剂:动力学和分子动力学模拟研究。

Design and synthesis of novel pyrazole-phenyl semicarbazone derivatives as potential α-glucosidase inhibitor: Kinetics and molecular dynamics simulation study.

机构信息

Department of Medicinal Chemistry, Faculty of Pharmacy and Pharmaceutical Science, Isfahan University of Medical Science, Hezar Jerib, 817416-73461, Isfahan, Iran.

School of Chemistry, University College of Science, University of Tehran, P.O. Box 14155-6455, Tehran, Iran.

出版信息

Int J Biol Macromol. 2021 Jan 1;166:1082-1095. doi: 10.1016/j.ijbiomac.2020.10.263. Epub 2020 Nov 4.

Abstract

A series of novel pyrazole-phenyl semicarbazone derivatives were designed, synthesized, and screened for in vitro α-glucosidase inhibitory activity. Given the importance of hydrogen bonding in promoting the α-glucosidase inhibitory activity, pharmacophore modification was established. The docking results rationalized the idea of the design. All newly synthesized compounds exhibited excellent in vitro yeast α-glucosidase inhibition (IC values in the range of 65.1-695.0 μM) even much more potent than standard drug acarbose (IC = 750.0 μM). Among them, compounds 8o displayed the most potent α-glucosidase inhibitory activity (IC = 65.1 ± 0.3 μM). Kinetic study of compound 8o revealed that it inhibited α-glucosidase in a competitive mode (Ki = 87.0 μM). Limited SAR suggested that electronic properties of substitutions have little effect on inhibitory potential of compounds. Cytotoxic studies demonstrated that the active compounds (8o, 8k, 8p, 8l, 8i, and 8a) compounds are also non-cytotoxic. The binding modes of the most potent compounds 8o, 8k, 8p, 8l and 8i was studied through in silico docking studies. Molecular dynamic simulations have been performed in order to explain the dynamic behavior and structural changes of the systems by the calculation of the root mean square deviation (RMSD) and root mean square fluctuation (RMSF).

摘要

设计、合成并筛选了一系列新型吡唑-苯基半缩氨脲衍生物,以评估其体外α-葡萄糖苷酶抑制活性。鉴于氢键在促进α-葡萄糖苷酶抑制活性方面的重要性,对药效团进行了修饰。对接结果合理化了设计理念。所有新合成的化合物均表现出优异的体外酵母α-葡萄糖苷酶抑制活性(IC 值在 65.1-695.0 μM 范围内),甚至比标准药物阿卡波糖(IC = 750.0 μM)更为有效。其中,化合物 8o 表现出最强的α-葡萄糖苷酶抑制活性(IC = 65.1 ± 0.3 μM)。8o 化合物的动力学研究表明,它以竞争性模式抑制α-葡萄糖苷酶(Ki = 87.0 μM)。有限的 SAR 表明,取代基的电子性质对化合物的抑制潜力影响不大。细胞毒性研究表明,活性化合物(8o、8k、8p、8l、8i 和 8a)对细胞也无毒性。通过计算机对接研究,研究了最有效化合物 8o、8k、8p、8l 和 8i 的结合模式。为了解释系统的动态行为和结构变化,进行了分子动力学模拟,通过均方根偏差(RMSD)和均方根波动(RMSF)的计算来进行。

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