College of Food Science and Engineering, Northwest A & F University, Yangling, Shaanxi Province 712100, China.
School of Mongolian Medicine, Inner Mongolia University of Nationalities, Tongliao, Inner Mongolia 028000, China.
Food Funct. 2021 Jan 7;12(1):215-229. doi: 10.1039/d0fo02689a. Epub 2020 Dec 9.
The inhibition properties of 10 tea polyphenols against α-glucosidase were studied through inhibition assay, inhibition kinetics, fluorescence quenching and molecular docking. It was found that the inhibitory activity of polyphenols with a 3 and/or 3' galloyl moiety (GM) was much higher than that without a GM. The GM could enter into the active site of α-glucosidase and bind with the catalytic amino acid residues through hydrogen bonding and π-conjugation, thus playing an important role in the competitive inhibition of catechins and theaflavins. The positive linear correlations among the constants characterizing the inhibitory activity and binding affinity of tea polyphenols to α-glucosidase indicate that enzyme inhibition by polyphenols is caused by the binding interactions between them, and that the combination of the characterization methods for polyphenol-glucosidase binding is reasonable. In addition, the in vivo hypoglycemic effects of galloylated polyphenols suggest that the GM may be considered as a pharmaceutical fragment for the alleviation of type II diabetes symptoms through α-glucosidase inhibition.
通过抑制实验、抑制动力学、荧光猝灭和分子对接研究了 10 种茶多酚对α-葡萄糖苷酶的抑制特性。结果表明,具有 3 和/或 3' 没食子酰基(GM)的多酚的抑制活性远高于没有 GM 的多酚。GM 可以进入α-葡萄糖苷酶的活性部位,并通过氢键和π共轭与催化氨基酸残基结合,从而在儿茶素和茶黄素的竞争性抑制中发挥重要作用。表征多酚与α-葡萄糖苷酶结合的抑制活性和结合亲和力常数之间存在正线性相关性,表明多酚对酶的抑制是由它们之间的结合相互作用引起的,并且多酚-葡萄糖苷酶结合的表征方法的结合是合理的。此外,没食子酰化多酚的体内降血糖作用表明,GM 可被视为通过抑制α-葡萄糖苷酶缓解 II 型糖尿病症状的药物片段。