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Mathematical Modeling of Heterogeneous Electrophysiological Responses in Human β-Cells

机译:人β细胞异质电生理反应的数学建模

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Electrical activity plays a pivotal role in glucose-stimulated insulin secretion from pancreatic -cells. Recent findings have shown that the electrophysiological characteristics of human -cells differ from their rodent counterparts. We show that the electrophysiological responses in human -cells to a range of ion channels antagonists are heterogeneous. In some cells, inhibition of small-conductance potassium currents has no effect on action potential firing, while it increases the firing frequency dramatically in other cells. Sodium channel block can sometimes reduce action potential amplitude, sometimes abolish electrical activity, and in some cells even change spiking electrical activity to rapid bursting. We show that, in contrast to L-type -channels, P/Q-type -currents are not necessary for action potential generation, and, surprisingly, a P/Q-type -channel antagonist even accelerates action potential firing. By including SK-channels and dynamics in a previous mathematical model of electrical activity in human -cells, we investigate the heterogeneous and nonintuitive electrophysiological responses to ion channel antagonists, and use our findings to obtain insight in previously published insulin secretion measurements. Using our model we also study paracrine signals, and simulate slow oscillations by adding a glycolytic oscillatory component to the electrophysiological model. The heterogenous electrophysiological responses in human -cells must be taken into account for a deeper understanding of the mechanisms underlying insulin secretion in health and disease, and as shown here, the interdisciplinary combination of experiments and modeling increases our understanding of human -cell physiology.
机译:电活动在胰腺细胞的葡萄糖刺激的胰岛素分泌中起关键作用。最近的发现表明,人细胞的电生理特性不同于它们的啮齿动物。我们表明,人类细胞对一系列离子通道拮抗剂的电生理反应是异质的。在某些电池中,抑制小电导钾电流对动作电位的发射没有影响,而在其他电池中则大大提高了发射频率。钠通道阻滞有时可降低动作电位幅度,有时可消除电活动,在某些电池中甚至会将尖峰的电活动改变为快速爆发。我们表明,与L型通道相反,P / Q型通道对于动作电位的产生不是必需的,而且令人惊讶的是,P / Q型通道拮抗剂甚至可以加速动作电位的激发。通过在人类细胞电活动的先前数学模型中包括SK通道和动力学,我们研究了对离子通道拮抗剂的异质性和非直觉性电生理反应,并利用我们的发现获得了以前发表的胰岛素分泌测量的见解。使用我们的模型,我们还研究旁分泌信号,并通过向电生理模型中添加糖酵解振荡成分来模拟缓慢振荡。为了更深入地了解健康和疾病中胰岛素分泌的基本机制,必须考虑人细胞中的异质电生理反应,如此处所示,实验和建模的跨学科组合增强了我们对人细胞生理学的理解。

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