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二氢喹唑啉-4(1H)-酮衍生物作为糖尿病治疗的新型潜在先导化合物。

Dihydroquinazolin-4(1H)-one derivatives as novel and potential leads for diabetic management.

作者信息

Babatunde Oluwatoyin, Hameed Shehryar, Salar Uzma, Chigurupati Sridevi, Wadood Abdul, Rehman Ashfaq Ur, Venugopal Vijayan, Khan Khalid Mohammed, Taha Muhammad, Perveen Shahnaz

机构信息

H. E. J. Research Institute of Chemistry, International Center for Chemical and Biological Sciences, University of Karachi, Karachi, 75270, Pakistan.

Department of Chemical Sciences, Ajayi Crowther University, Oyo, P.M.B 1066, Nigeria.

出版信息

Mol Divers. 2022 Apr;26(2):849-868. doi: 10.1007/s11030-021-10196-5. Epub 2021 Mar 1.

Abstract

A variety of dihydroquinazolin-4(1H)-one derivatives (1-37) were synthesized via "one-pot" three-component reaction scheme by treating aniline and different aromatic aldehydes with isatoic anhydride in the presence of acetic acid. Chemical structures of compounds were deduced by different spectroscopic techniques including EI-MS, HREI-MS, H-, and C-NMR. Compounds were subjected to α-amylase and α-glucosidase inhibitory activities. A number of derivatives exhibited significant to moderate inhibition potential against α-amylase (IC = 23.33 ± 0.02-88.65 ± 0.23 μM) and α-glucosidase (IC = 25.01 ± 0.12-89.99 ± 0.09 μM) enzymes, respectively. Results were compared with the standard acarbose (IC = 17.08 ± 0.07 μM for α-amylase and IC = 17.67 ± 0.09 μM for α-glucosidase). Structure-activity relationship (SAR) was rationalized by analyzing the substituents effects on inhibitory potential. Kinetic studies were implemented to find the mode of inhibition by compounds which revealed competitive inhibition for α-amylase and non-competitive inhibition for α-glucosidase. However, in silico study identified several important binding interactions of ligands (synthetic analogues) with the active site of both enzymes.

摘要

通过在乙酸存在下,用邻氨基苯甲酸酐处理苯胺和不同的芳香醛,采用“一锅法”三组分反应方案合成了多种二氢喹唑啉-4(1H)-酮衍生物(1-37)。通过包括EI-MS、HREI-MS、H-和C-NMR在内的不同光谱技术推导化合物的化学结构。对化合物进行了α-淀粉酶和α-葡萄糖苷酶抑制活性测试。许多衍生物分别对α-淀粉酶(IC = 23.33±0.02-88.65±0.23 μM)和α-葡萄糖苷酶(IC = 25.01±0.12-89.99±0.09 μM)表现出显著到中等的抑制潜力。将结果与标准阿卡波糖(α-淀粉酶的IC = 17.08±0.07 μM,α-葡萄糖苷酶的IC = 17.67±0.09 μM)进行比较。通过分析取代基对抑制潜力的影响,对构效关系(SAR)进行了合理化分析。进行了动力学研究以确定化合物的抑制模式,结果表明对α-淀粉酶为竞争性抑制,对α-葡萄糖苷酶为非竞争性抑制。然而,计算机模拟研究确定了配体(合成类似物)与两种酶活性位点的几种重要结合相互作用。

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