细胞包封
材料科学
封装(网络)
纳米孔
聚合物
泊洛沙姆
纳米技术
自愈水凝胶
共聚物
高分子化学
复合材料
计算机科学
计算机网络
作者
Qingsheng Liu,Xi Wang,Alan Chiu,Wanjun Liu,Stephanie Fuchs,Bo Wang,Longhai Wang,James A. Flanders,Yidan Zhang,Kai Wang,Juan M. Melero‐Martin,Minglin Ma
标识
DOI:10.1002/adma.202102852
摘要
Encapsulation of insulin-producing cells is a promising strategy for treatment of type 1 diabetes. However, engineering an encapsulation device that is both safe (i.e., no cell escape and no breakage) and functional (i.e., low foreign-body response (FBR) and high mass transfer) remains a challenge. Here, a family of zwitterionic polyurethanes (ZPU) with sulfobetaine groups in the polymer backbone is developed, which are fabricated into encapsulation devices with tunable nanoporous structures via electrospinning. The ZPU encapsulation device is hydrophilic and fouling-resistant, exhibits robust mechanical properties, and prevents cell escape while still allowing efficient mass transfer. The ZPU device also induces a much lower FBR or cellular overgrowth upon intraperitoneal implantation in C57BL/6 mice for up to 6 months compared to devices made of similar polyurethane without the zwitterionic modification. The therapeutic potential of the ZPU device is shown for islet encapsulation and diabetes correction in mice for ≈3 months is demonstrated. As a proof of concept, the scalability and retrievability of the ZPU device in pigs and dogs are further demonstrated. Collectively, these attributes make ZPU devices attractive candidates for cell encapsulation therapies.
科研通智能强力驱动
Strongly Powered by AbleSci AI