School of Chemistry, College of Science, University of Tehran, Tehran, Iran.
Cellular and Molecular Biology Research Center, Health Research Institute, Babol University of Medical Sciences, Babol, Iran.
Med Chem. 2021;17(3):264-272. doi: 10.2174/1573406416666200826101205.
α-Glucosidase is a hydrolyzing enzyme that plays a crucial role in the degradation of carbohydrates and starch to glucose. Hence, α-glucosidase is an important target in carbohydrate mediated diseases such as diabetes mellitus.
In this study, novel coumarin containing dithiocarbamate derivatives 4a-n were synthesized and evaluated against α-glucosidase in vitro and in silico.
These compounds were obtained from the reaction between 4-(bromomethyl)-7- methoxy-2H-chromen-2-one 1, carbon disulfide 2, and primary or secondary amines 3a-n in the presence of potassium hydroxide and ethanol at room temperature. In vitro α-glucosidase inhibition and kinetic study of these compounds were performed. Furthermore, a docking study of the most potent compounds was also performed by Auto Dock Tools (version 1.5.6).
Obtained results showed that all the synthesized compounds exhibited prominent inhibitory activities (IC50 = 85.0 ± 4.0-566.6 ± 8.6 μM) in comparison to acarbose as a standard inhibitor (IC50 = 750.0 ± 9.0 μM). Among them, the secondary amine derivative 4d with pendant indole group was the most potent inhibitor. Enzyme kinetic study of the compound 4d revealed that this compound competes with a substrate to connect to the active site of α-glucosidase and therefore is a competitive inhibitor. Moreover, a molecular docking study predicted that this compound interacted with the α-glucosidase active site pocket.
Our results suggest that the coumarin-dithiocarbamate scaffold can be a promising lead structure for designing potent α-glucosidase inhibitors for the treatment of type 2 diabetes.
α-葡萄糖苷酶是一种水解酶,在碳水化合物和淀粉降解为葡萄糖的过程中起着至关重要的作用。因此,α-葡萄糖苷酶是糖尿病等碳水化合物介导疾病的重要靶点。
本研究合成了新型含香豆素的二硫代氨基甲酸酯衍生物 4a-n,并在体外和体内评估了它们对α-葡萄糖苷酶的抑制作用。
这些化合物是通过 4-(溴甲基)-7-甲氧基-2H-色烯-2-酮 1、二硫化碳 2 和伯胺或仲胺 3a-n 在氢氧化钾和乙醇存在下,在室温下反应得到的。对这些化合物进行了体外α-葡萄糖苷酶抑制和动力学研究。此外,还通过 Auto Dock Tools(版本 1.5.6)对最有效的化合物进行了对接研究。
结果表明,与标准抑制剂阿卡波糖(IC50=750.0±9.0 μM)相比,所有合成的化合物都表现出明显的抑制活性(IC50=85.0±4.0-566.6±8.6 μM)。其中,带有吲哚侧链的仲胺衍生物 4d 是最有效的抑制剂。化合物 4d 的酶动力学研究表明,该化合物与底物竞争连接到α-葡萄糖苷酶的活性位点,因此是一种竞争性抑制剂。此外,分子对接研究预测该化合物与α-葡萄糖苷酶的活性位点口袋相互作用。
我们的研究结果表明,香豆素-二硫代氨基甲酸酯支架可以作为设计新型α-葡萄糖苷酶抑制剂的潜在先导结构,用于治疗 2 型糖尿病。