小岛
单体
共聚物
化学
聚合物
移植
细胞包封
封装(网络)
生物物理学
透氧性
材料科学
聚乙二醇化
纳米技术
化学工程
丙烯酰胺
渗透
聚合
高分子化学
自愈水凝胶
胰岛
作者
Danyang Chen,Hongying Wang,Yipeng Tang,Jinghui Li,Xu Tian,Yudi Pang,Siyu Bao,Liping Lang,Zhuoya Wang,Haolun Wang,Qiao Li,Yongmao Li,Wenguang Liu,Jianhai Yang
标识
DOI:10.1016/j.bioactmat.2026.07.057
摘要
Islet encapsulation is a transformative strategy for type 1 diabetes (T1D) cellular therapy, enabling islet transplantation without lifelong immunosuppression. However, macroscale encapsulation faces prominent challenges: poor surgical retrieval, hypoxia, and foreign body response (FBR)–induced fibrosis, which severely compromise clinical translation. Herein, we develop a sea-island microstructured zwitterionic-silicone hydrogel device via copolymerization of siloxane monomer SiGMA, zwitterionic monomer carboxybetaine acrylamide (CBAA), and hydrogen-bonding monomer N-acryloyl glycinamide (NAGA). Notably, NAGA enhances hydrogel structural stability via strong H-bonds, reinforcing network and mechanical integrity to facilitate safe retrieval; importantly, NAGA's hydrogen bonding crosslinks allow the hydrogel device to be heat-sealed, preventing cell leakage and maintaining immunoisolation. The incorporation of SiGMA induces hydrophobic phase separation, generating silicone-rich polymer microdomains that enhance oxygen permeability to alleviate islet hypoxia, while zwitterionic CBAA significantly improves antifouling performance and mitigates fibrotic encapsulation by suppressing the host FBR. After 8 weeks of implantation in mice and beagle dogs, the device exhibits minimal fibrotic encapsulation and can be readily retrieved. Notably, even without pre-vascularization or immunosuppression, the transplanted islets in diabetic mice sustain normoglycemia for up to 400 days. These results demonstrate a robust retrievable encapsulation device that addresses key bottlenecks in islet transplantation, advancing its potential translation for T1D.
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