自噬
安普克
mTORC1型
TFEB
炎症
调节器
医学
生物
脂肪变性
糖尿病
脂肪组织
脂肪肝
浪费的
溶酶体
粒体自噬
雷帕霉素的作用靶点
线粒体
营养感应
AMP活化蛋白激酶
生物信息学
线粒体生物发生
胰岛素抵抗
骨骼肌
胰岛素
神经科学
肌萎缩
PI3K/AKT/mTOR通路
2型糖尿病
细胞生物学
脂质代谢
蛋白质稳态
萎缩
内分泌学
信号转导
代谢途径
肌肉萎缩
癌症研究
代谢综合征
作者
Omid Vakili,Daniel J. Klionsky,Russel J. Reiter,Jun Ren,Aabha Deshpande,Kwang Seok Ahn,William Cho,Kiavash Hushmandi,Alan Prem Kumar
出处
期刊:
[Figshare (United Kingdom)]
日期:2026-01-01
标识
DOI:10.6084/m9.figshare.31397439.v1
摘要
Autophagy, a conserved lysosomal degradation pathway, is increasingly recognized as a central regulator of metabolic health. Its impairment contributes directly to obesity and type 2 diabetes by disrupting nutrient sensing, stress adaptation, and organelle quality control. Hyperactivation of MTORC1 with insufficient AMPK and SIRT1 signaling suppresses autophagic flux, driving lipid accumulation, insulin resistance, and mitochondrial dysfunction. Clinically relevant consequences include adipose inflammation and hypertrophy, hepatic steatosis with impaired β-oxidation, pancreatic β-cell failure from unresolved ER stress, and skeletal muscle atrophy due to loss of proteostasis. Moreover, defective autophagy across the gut – liver – brain axis exacerbates intestinal barrier dysfunction, endotoxemia, and neuroendocrine imbalance, amplifying systemic metabolic deterioration. Emerging interventions that restore autophagic capacity, including exercise-induced AMPK activation, dietary modulation of unsaturated fatty acids, pharmacological inducers, and nanotechnology-based lysosomal re-acidification show promise in preclinical models. However, the tissue-specific duality of autophagy, where suppression may be beneficial in some contexts but harmful in others, highlights the complexity of therapeutic targeting. This review highlights current mechanistic and translational insights to position autophagy as a therapeutic linchpin in obesity-associated metabolic disease. By aligning molecular pathways with clinical outcomes, we herein highlight opportunities to develop precision strategies that harness autophagy to combat the global burden of obesity and metabolic disorders.
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