小岛
移植
脚手架
血管生成
生物医学工程
血管内皮生长因子
化学
细胞生物学
血管内皮生长因子受体
医学
癌症研究
内科学
生物
胰岛素
作者
Giulia Marchioli,Andrea Di Luca,Eelco J.P. de Koning,Marten A. Engelse,Clemens van Blitterswijk,Marcel Karperien,Aart A. van Apeldoorn,Lorenzo Moroni
标识
DOI:10.1002/adhm.201600058
摘要
Although regarded as a promising treatment for type 1 diabetes, clinical islet transplantation in the portal vein is still hindered by a low transplantation outcome. Alternative transplantation sites have been proposed, but the survival of extra-hepatically transplanted islets of Langerhans critically depends on quick revascularization after engraftment. This study aims at developing a new 3D scaffold platform that can actively boost vascularization and may find an application for extra-hepatic islet transplantation. The construct consists of a 3D ring-shaped polycaprolactone (PCL) scaffold with heparinized surface to electrostatically bind vascular endothelial growth factor (VEGF), surrounding a hydrogel core for islets encapsulation. Heparin immobilization improves the amount of VEGF retained by the construct, up to 3.6 fold, compared to untreated PCL scaffolds. In a chicken chorioallanthoic membrane model, VEGF immobilized on the construct enhances angiogenesis in close proximity and on the surface of the scaffolds. After 7 days, islets encapsulated in the alginate core show functional response to glucose stimuli comparable to free-floating islets. Thus, the developed platform has the potential to support rapid vascularization and islet endocrine function.
科研通智能强力驱动
Strongly Powered by AbleSci AI