小岛
移植
医学
胰岛细胞移植
细胞培养
男科
细胞生物学
活力测定
内分泌学
内科学
生物
糖尿病
遗传学
作者
Keiko Omori,Meirigeng Qi,Mayra Salgado,Nelson Gonzalez,Lauren T. Hui,Kuan-Tsen Chen,Jeffrey Rawson,Lynn Miao,Hirotake Komatsu,Jeffrey S. Isenberg,Ismail H. Al-Abdullah,Yoko Mullen,Fouad Kandeel
标识
DOI:10.1016/j.ajt.2023.10.001
摘要
Abstract
Present-day islet culture methods provide short-term maintenance of cell viability and function, limiting access to islet transplantation. Attempts to lengthen culture intervals remain unsuccessful. A new method was developed to permit the long-term culture of islets. Human islets were embedded in polysaccharide 3D-hydrogel in cell culture inserts or gas-permeable chambers with serum-free CMRL 1066 supplemented media for up to 8 weeks. The long-term cultured islets maintained better morphology, cell mass, and viability at 4 weeks than islets in conventional suspension culture. In fact, islets cultured in the 3D-hydrogel retained β cell mass and function on par with freshly isolated islets in vitro and, when transplanted into diabetic mice, restored glucose balance similar to fresh islets. Using gas-permeable chambers, the 3D-hydrogel culture method was scaled up over 10-fold and maintained islet viability and function, although the cell mass recovery rate was 50%. Additional optimization of scale-up methods continues. If successful, this technology could afford flexibility and expand access to islet transplantation, especially single-donor islet-after-kidney transplantation.
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