小岛
移植
免疫系统
人工胰腺
化学
纳米载体
1型糖尿病
糖尿病
细胞生物学
胰岛素
医学
免疫学
材料科学
纳米技术
生物
内科学
内分泌学
纳米颗粒
作者
Zheng Yin,Wenyi Yang,Weisong Gao,Xinge Zhang,Zhongming Wu,Mo Wang
标识
DOI:10.1002/marc.202300383
摘要
Abstract Transplantation of microencapsulated islet cells remains a promising strategy for the normalization of glucose metabolism control in type 1 diabetes mellitus. However, vigorous host immunologic rejection, fibrotic overgrowth around the microcapsules, and poor oxygen supply often lead to graft failure. Herein, a bioartificial pancreas is constructed, which incorporates the “stealth effect” based on polyethylene glycol copolymers and the high oxygen‐carrying performance of fluorinated nanoparticles. Polycationic poly( l ‐lysine)‐grafted‐poly(ethylene glycol) is successfully coated on the surface of alginate microcapsules through electrostatic interaction, which can not only resist fibrinogen adhesion and avoid excessive fibrosis around the microcapsules but also isolate the host immune system from attacking, achieving a “stealth effect” of microencapsulated islet cells. Furthermore, the coloading of fluoride‐based O 2 nanocarriers gives them enhanced oxygen‐carrying and continuous oxygen supply capabilities, thereby effectively prolonging the survival of islet cells. The intracapsular islet cells still display similar cell viability and almost normal insulin secretion function even in long‐term culture under hypoxic conditions. Collectively, here a new approach is opened for microencapsulated islets to efficiently evade host immune attack and improve oxygen supply and a promising strategy is provided for islet transplantation in type 1 diabetes mellitus.
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