Yueh-Hung Cheng, Po-Chun Chen, Zakhele M. Dlamini, Jia-Wei Li, Bongani S. Dlamini, Yu-Kuo Chen, Chi-I Chang
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引用次数: 0
摘要
抑制α-葡萄糖苷酶是一种被广泛认可的治疗高血糖的方法,特别是餐后血糖峰值。本研究采用对硝基酚-α- d -葡萄糖苷(pNPG)生物测定和分子对接的方法,对高良姜根茎中分离的芳香族化合物的α-葡萄糖苷酶抑制活性及其相互作用机制进行了研究。与阳性对照阿卡波糖(IC50 = 1236.42±1.30µM)相比,分离得到的芳香族化合物(1 ~ 4)具有明显的α-葡萄糖苷酶抑制活性,IC50值在25 ~ 104µM之间。实验结果表明,α-葡萄糖苷酶抑制剂(E)-对香豆醇-γ- o -甲基醚(3)的抑制作用为混合型,IC50值为25.00±1.01µM。分子对接表明,化合物3通过竞争性结合活性口袋,阻断底物,从而降低α-葡萄糖苷酶的催化效率。结合活性主要由氢键和疏水相互作用介导。结果提示,高良姜中这些芳香族化合物可作为控制餐后高血糖和治疗2型糖尿病的潜在药物。
α-Glucosidase inhibitory activities of aromatic compounds from the rhizomes of Alpinia galanga
Inhibition of α-glucosidase is a widely recognized approach for managing hyperglycemia, particularly postprandial glucose spikes. In this study, the α-glucosidase inhibitory activity and interaction mechanisms of aromatic compounds isolated from the rhizomes of Alpinia galanga were investigated using the p-nitrophenol-α-D-glucopyranoside (pNPG) bioassay and molecular docking. The isolated aromatic compounds (1–4) showed significant α-glucosidase inhibitory activity with IC50 values between 25 and 104 µM compared to the positive control acarbose (IC50 = 1236.42 ± 1.30 µM). The experimental data showed that the most potent inhibitor of α-glucosidase (E)-p-coumaryl alcohol-γ-O-methyl ether (3) inhibited the enzyme via a mixed-type mechanism, with an IC50 value of 25.00 ± 1.01 µM. Molecular docking indicated that compound 3 decreased the catalytic efficiency of α-glucosidase by competitively binding to the active pocket, thereby blocking the substrate. The binding activity is mainly mediated by hydrogen bonds and hydrophobic interactions. The results suggest that these aromatic compounds from A. galanga could serve as potential therapeutic agents for the control of postprandial hyperglycemia and the treatment of type 2 diabetes.
期刊介绍:
Medicinal Chemistry Research (MCRE) publishes papers on a wide range of topics, favoring research with significant, new, and up-to-date information. Although the journal has a demanding peer review process, MCRE still boasts rapid publication, due in part, to the length of the submissions. The journal publishes significant research on various topics, many of which emphasize the structure-activity relationships of molecular biology.