Wu Lei, Niu Yao, Liu Fei, Tian Jiongling, Ma Zhilin, Yang Jiahui, Guo Xiaomeng, Sun Yaogui
College of Life Sciences, Shanxi Agricultural University, Taigu, Jinzhong 030801, China.
College of Veterinary Medicine, Shanxi Agricultural University, Taigu, Jinzhong 030801, China.
Foods. 2025 Jul 7;14(13):2402. doi: 10.3390/foods14132402.
Mao Jian Green Tea flavonoids (MJGT_F) contain luteolin, luteolin-7-O-glucoside, eriodictyol, and eriodictyol-7-O-glucoside, among which the first three components have hypoglycemic effects; however, the overall hypoglycemic potential of MJGT_F remains unclear. This study demonstrated that MJGT_F inhibited α-glucosidase in vitro and improved metabolic parameters in a dose-dependent manner in T2DM (type 2 diabetes mellitus) rats (reducing blood glucose, triglyceride, total cholesterol, low-density lipoprotein, insulin, and the homeostatic model assessment of insulin resistance; increasing high-density lipoprotein, insulin sensitivity index, and glucagon-like peptide-1). High-dose MJGT_F (MJGT_F_H) showed optimal efficacy. Mechanistically, MJGT_F_H activated the AMPK pathway, evidenced by a significant increase in the p-AMPK/AMPK ratio and downregulation of hepatic gluconeogenic enzymes G6Pase and PEPCK. These coordinated effects collectively suggest enhanced hepatic glucose utilization and suppression of glucose overproduction. MJGT_F_H also modulated gut microbiota by enriching beneficial taxa (e.g., , 11.17-fold vs. metformin) and reducing pathogens like Enterobacteriaceae. These findings highlight MJGT_F's dual regulatory roles in glucose metabolism and microbiota, supporting its potential for diabetes management.
毛尖绿茶黄酮类化合物(MJGT_F)含有木犀草素、木犀草素-7-O-葡萄糖苷、圣草酚和圣草酚-7-O-葡萄糖苷,其中前三种成分具有降血糖作用;然而,MJGT_F的整体降血糖潜力仍不清楚。本研究表明,MJGT_F在体外抑制α-葡萄糖苷酶,并以剂量依赖的方式改善2型糖尿病(T2DM)大鼠的代谢参数(降低血糖、甘油三酯、总胆固醇、低密度脂蛋白、胰岛素和胰岛素抵抗的稳态模型评估;增加高密度脂蛋白、胰岛素敏感性指数和胰高血糖素样肽-1)。高剂量MJGT_F(MJGT_F_H)显示出最佳疗效。从机制上讲,MJGT_F_H激活了AMPK途径,p-AMPK/AMPK比值显著增加以及肝糖异生酶G6Pase和PEPCK的下调证明了这一点。这些协同作用共同表明肝脏葡萄糖利用率提高和葡萄糖过度生成受到抑制。MJGT_F_H还通过丰富有益菌群(例如,与二甲双胍相比增加11.17倍)和减少肠杆菌科等病原体来调节肠道微生物群。这些发现突出了MJGT_F在葡萄糖代谢和微生物群中的双重调节作用,支持其在糖尿病管理中的潜力。