糖尿病
医学
氧化应激
小岛
低血糖
胰岛素
药理学
细胞
血糖性
潘尼斯电池
内科学
PDX1型
肠促胰岛素
葡萄糖稳态
胰岛细胞移植
细胞损伤
药品
内分泌学
肠内分泌细胞
生物信息学
胰腺
胰岛
抗氧化剂
癌症研究
姜黄素
细胞疗法
血糖
活性氧
化学
作者
Wenyan She,Xiaojuan Jiang,Siying Deng,Lu Hu,Chenxi Huang,Lin Hou
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2026-07-08
卷期号:12 (28): eaed0407-eaed0407
标识
DOI:10.1126/sciadv.aed0407
摘要
Diabetes mellitus remains a global health challenge, as current insulin-based therapies merely control blood glucose without restoring islet β cell function, leaving patients dependent on lifelong medication and vulnerable to hypoglycemia. Antioxidant drugs hold promise for islet β cell repair but are limited by poor gastrointestinal transportation and insufficient pancreatic targetability. Here, we initially identify ferroptosis-associated oxidative stress as a key cause of islet β cell death and develop six stiffness-gradient nanoparticles by embedding bent oleic acid into ordered 1,2-distearoyl- sn -glycero-3-phosphoethanolamine to enhance drug bioavailability. Nanoparticles with intermediate stiffness optimize membrane wrapping and minimize energetic cost, enhancing intestinal M cell transcytosis and macrophage-mediated hitchhiking, thereby increasing pancreatic curcumin accumulation by ~4.5-fold. In diabetic models, this formulation suppresses ferroptosis-associated oxidative stress, promotes in situ islet β cell repair, and restores insulin homeostasis and autonomous glycemic control, maintaining normoglycemia without hypoglycemia even after treatment cessation. This study represents a patient-friendly oral nanotherapy that outperforms insulin therapy in long-standing diabetes management.
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