诱导多能干细胞
体内
小岛
细胞生物学
β细胞
体外
生物
细胞分化
BETA(编程语言)
干细胞
细胞培养
化学
胰岛素
内分泌学
生物化学
胚胎干细胞
遗传学
生物技术
基因
计算机科学
程序设计语言
作者
Federica Fantuzzi,Sanna Toivonen,Andréa Alex Schiavo,Heeyoung Chae,Tariq Mohammad,Toshiaki Sawatani,Nathalie Pachera,Ying Cai,Chiara Vinci,Enrico Virgilio,Laurence Ladrière,Mara Suleiman,Piero Marchetti,Jean‐Christophe Jonas,Patrick Gilon,Décio L. Eizirik,Mariana Igoillo‐Esteve,Miriam Cnop
标识
DOI:10.3389/fcell.2022.967765
摘要
In vitro differentiation of human induced pluripotent stem cells (iPSCs) into beta cells represents an important cell source for diabetes research. Here, we fully characterized iPSC-derived beta cell function in vitro and in vivo in humanized mice. Using a 7-stage protocol, human iPSCs were differentiated into islet-like aggregates with a yield of insulin-positive beta cells comparable to that of human islets. The last three stages of differentiation were conducted with two different 3D culture systems, rotating suspension or static microwells. In the latter, homogeneously small-sized islet-like aggregates were obtained, while in rotating suspension size was heterogeneous and aggregates often clumped. In vitro function was assessed by glucose-stimulated insulin secretion, NAD(P)H and calcium fluctuations. Stage 7 aggregates slightly increased insulin release in response to glucose in vitro. Aggregates were transplanted under the kidney capsule of NOD-SCID mice to allow for further in vivo beta cell maturation. In transplanted mice, grafts showed glucose-responsiveness and maintained normoglycemia after streptozotocin injection. In situ kidney perfusion assays showed modulation of human insulin secretion in response to different secretagogues. In conclusion, iPSCs differentiated with equal efficiency into beta cells in microwells compared to rotating suspension, but the former had a higher experimental success rate. In vitro differentiation generated aggregates lacking fully mature beta cell function. In vivo, beta cells acquired the functional characteristics typical of human islets. With this technology an unlimited supply of islet-like organoids can be generated from human iPSCs that will be instrumental to study beta cell biology and dysfunction in diabetes.
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