2型糖尿病骨骼肌代谢改善:GEO数据挖掘与HIIT/MICT运动干预机制解析

2026-03-21 MedSci xAi 发表于广东省
本研究通过GEO数据库挖掘识别2型糖尿病骨骼肌关键基因MSTN,采用db/db小鼠模型比较HIIT和MICT两种运动干预方案对葡萄糖代谢的改善效果。10周干预显示动态强度调整的运动训练能有效调节体重和随机血糖水平,为糖尿病运动治疗提供分子机制依据。
Mining the GEO database for skeletal muscle data from patients with type 2 diabetes, key node genes such as MSTN were identified through bioinformatics analysis as potential molecular targets for improving skeletal muscle glucose metabolism through exercise intervention. Male db/db mice at 8 weeks of age were adaptively fed for 1 week and then randomly divided into a diabetic control group (DC group), a moderate-intensity continuous training (MICT) group, and a high-intensity interval training (HIIT) group. Age-matched db/m mice served as the normal control group (NC group), with 12 mice in each group. After 1 week of adaptive training, the maximum running speed (Vmax) was measured, and a 10-week exercise intervention (5 days per week) was initiated: the HIIT group performed 2 minutes of high-intensity training at 90% Vmax (with 2 minutes of rest between sessions, repeated 10 times), while the MICT group engaged in continuous exercise at 70% Vmax (covering the same total distance as the HIIT group). Both groups included a 5-minute warm-up and a 5-minute cool-down. Vmax was re-measured every 2 weeks to dynamically adjust the exercise intensity. Body weight and random blood glucose levels were monitored weekly, and skeletal muscle tissue samples were collected at the end of the intervention.
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