| Literature DB >> 30694176 |
Jia Zhao1, Weijian Zong1,2, Yiwen Zhao1, Dongzhou Gou1, Shenghui Liang1, Jiayu Shen1, Yi Wu3, Xuan Zheng1, Runlong Wu4, Xu Wang1, Fuzeng Niu5, Aimin Wang5, Yunfeng Zhang4, Jing-Wei Xiong1, Liangyi Chen1, Yanmei Liu1,6.
Abstract
How pancreatic β-cells acquire function in vivo is a long-standing mystery due to the lack of technology to visualize β-cell function in living animals. Here, we applied a high-resolution two-photon light-sheet microscope for the first in vivo imaging of Ca2+activity of every β-cell in Tg (ins:Rcamp1.07) zebrafish. We reveal that the heterogeneity of β-cell functional development in vivo occurred as two waves propagating from the islet mantle to the core, coordinated by islet vascularization. Increasing amounts of glucose induced functional acquisition and enhancement of β-cells via activating calcineurin/nuclear factor of activated T-cells (NFAT) signaling. Conserved in mammalians, calcineurin/NFAT prompted high-glucose-stimulated insulin secretion of neonatal mouse islets cultured in vitro. However, the reduction in low-glucose-stimulated insulin secretion was dependent on optimal glucose but independent of calcineurin/NFAT. Thus, combination of optimal glucose and calcineurin activation represents a previously unexplored strategy for promoting functional maturation of stem cell-derived β-like cells in vitro.Entities:
Keywords: 2P3A-DSLM; Calcineurin/NFAT; developmental biology; functionality of β-cells in vivo; glucose; ins:Rcamp1.07 zebrafish; microcirculation; mouse; regenerative medicine; stem cells; zebrafish
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Year: 2019 PMID: 30694176 PMCID: PMC6395064 DOI: 10.7554/eLife.41540
Source DB: PubMed Journal: Elife ISSN: 2050-084X Impact factor: 8.140