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β细胞中的临界和超临界时空钙动力学

Critical and Supercritical Spatiotemporal Calcium Dynamics in Beta Cells.

作者信息

Gosak Marko, Stožer Andraž, Markovič Rene, Dolenšek Jurij, Perc Matjaž, Rupnik Marjan S, Marhl Marko

机构信息

Faculty of Medicine, Institute of Physiology, University of Maribor, Maribor, Slovenia.

Faculty of Natural Sciences and Mathematics, University of Maribor, Maribor, Slovenia.

出版信息

Front Physiol. 2017 Dec 22;8:1106. doi: 10.3389/fphys.2017.01106. eCollection 2017.

Abstract

A coordinated functioning of beta cells within pancreatic islets is mediated by oscillatory membrane depolarization and subsequent changes in cytoplasmic calcium concentration. While gap junctions allow for intraislet information exchange, beta cells within islets form complex syncytia that are intrinsically nonlinear and highly heterogeneous. To study spatiotemporal calcium dynamics within these syncytia, we make use of computational modeling and confocal high-speed functional multicellular imaging. We show that model predictions are in good agreement with experimental data, especially if a high degree of heterogeneity in the intercellular coupling term is assumed. In particular, during the first few minutes after stimulation, the probability distribution of calcium wave sizes is characterized by a power law, thus indicating critical behavior. After this period, the dynamics changes qualitatively such that the number of global intercellular calcium events increases to the point where the behavior becomes supercritical. To better mimic normal conditions, we compare the described behavior during supraphysiological non-oscillatory stimulation with the behavior during exposure to a slightly lower and oscillatory glucose challenge. In the case of this protocol, we observe only critical behavior in both experiment and model. Our results indicate that the loss of oscillatory changes, along with the rise in plasma glucose observed in diabetes, could be associated with a switch to supercritical calcium dynamics and loss of beta cell functionality.

摘要

胰岛内β细胞的协同功能由振荡性膜去极化以及随后细胞质钙浓度的变化介导。虽然间隙连接允许胰岛内的信息交换,但胰岛内的β细胞形成了本质上非线性且高度异质的复杂合体细胞。为了研究这些合体细胞内的时空钙动力学,我们利用了计算建模和共聚焦高速功能性多细胞成像技术。我们表明,模型预测与实验数据高度吻合,尤其是在假设细胞间耦合项存在高度异质性的情况下。特别是,在刺激后的最初几分钟内,钙波大小的概率分布呈现幂律特征,从而表明存在临界行为。在此期间之后,动力学发生定性变化,使得全局细胞间钙事件的数量增加到行为变为超临界的程度。为了更好地模拟正常情况,我们将超生理非振荡刺激期间所描述的行为与暴露于略低且振荡的葡萄糖刺激期间的行为进行了比较。在该方案的情况下,我们在实验和模型中均仅观察到临界行为。我们的结果表明,振荡变化的丧失以及糖尿病中观察到的血浆葡萄糖升高可能与转变为超临界钙动力学以及β细胞功能丧失有关。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/789a/5743929/488c25de24b1/fphys-08-01106-g0001.jpg

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