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首页> 外文期刊>Biophysical Journal >Spatially Organized beta-Cell Subpopulations Control Electrical Dynamics across Islets of Langerhans
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Spatially Organized beta-Cell Subpopulations Control Electrical Dynamics across Islets of Langerhans

机译:空间组织的β-细胞亚步骤控制横跨朗格汉兰岛的电气动力学

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Understanding how heterogeneous cells within a multicellular system interact and affect overall function is difficult without a means of perturbing individual cells or subpopulations. Here we apply optogenetics to understand how subpopulations of beta-cells control the overall [Ca2+]i response and insulin secretion dynamics of the islets of Langerhans. We spatiotempdrally perturbed electrical activity in beta-cells of channelrhodopsin2-expressing islets, mapped the [Ca2+]i response, and correlated this with the cellular metabolic activity and an in silico electrophysiology model. We discovered organized regions of metabolic activity across the islet, and these affect the way in which beta-cells electrically interact. Specific regions acted as pacemakers by initiating calcium wave propagation. Our findings reveal the functional architecture of the islet, and show how distinct subpopulations of cells can disproportionality affect function. These results also suggest ways in which other neuroendocrine systems can be regulated, and demonstrate how optogenetic tools can discern their functional architecture.
机译:了解多细胞系统内的异构细胞如何相互作用,并且在没有扰动单个细胞或亚步骤的手段的情况下难以困难。在这里,我们应用光源以了解β细胞的亚群对朗格汉斯胰岛的总体[Ca2 +] I反应和胰岛素分泌动态。我们在肠系β-表达胰岛的β细胞中暂存扰动的电气活性,映射了[Ca2 +] I反应,并将其与细胞代谢活性和在硅电生理学模型中相关。我们发现了胰岛上的组织区域的代谢活动,这些区域影响了β-细胞电相互作用的方式。通过启动钙波传播,具体区域作为起搏器。我们的研究结果揭示了胰岛的功能架构,并展示了细胞的不同亚流量如何不成比例地影响功能。这些结果还提出了可以调节其他神经内分泌系统的方式,并演示了光学工具如何辨别其功能架构。

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