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Biophysically based mathematical modeling of interstitial cells of Cajal slow wave activity generated from a discrete unitary potential basis.

机译:基于离散unit势产生的Cajal慢波活动的间质细胞的基于生物物理学的数学建模。

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Spontaneously rhythmic pacemaker activity produced by interstitial cells of Cajal (ICC) is the result of the entrainment of unitary potential depolarizations generated at intracellular sites termed pacemaker units. In this study, we present a mathematical modeling framework that quantitatively represents the transmembrane ion flows and intracellular Ca2+ dynamics from a single ICC operating over the physiological membrane potential range. The mathematical model presented here extends our recently developed biophysically based pacemaker unit modeling framework by including mechanisms necessary for coordinating unitary potential events, such as a T-Type Ca2+ current, Vm-dependent K+ currents, and global Ca2+ diffusion. Model simulations produce spontaneously rhythmic slow wave depolarizations with an amplitude of 65 mV at a frequency of 17.4 cpm. Our model predicts that activity at the spatial scale of the pacemaker unit is fundamental for ICC slow wave generation, and Ca2+ influx from activation of the T-Type Ca2+ current is required for unitary potential entrainment. These results suggest that intracellular Ca2+ levels, particularly in the region local to the mitochondria and endoplasmic reticulum, significantly influence pacing frequency and synchronization of pacemaker unit discharge. Moreover, numerical investigations show that our ICC model is capable of qualitatively replicating a wide range of experimental observations.
机译:由Cajal的间质细胞(ICC)产生的自律性起搏器活动是在称为起搏器单位的细胞内部位产生的单一电位去极化作用的结果。在这项研究中,我们提出了一个数学建模框架,该框架定量地代表了跨膜离子流和来自单个ICC的跨膜离子流以及在生理膜电位范围内的动态变化。这里介绍的数学模型通过包括协调单一潜在事件(例如T型Ca2 +电流,Vm依赖性K +电流和整体Ca2 +扩散)所需的机制,扩展了我们最近开发的基于生物物理学的起搏器单位建模框架。模型仿真会以17.4 cpm的频率自发产生有节奏的慢波去极化,振幅为65 mV。我们的模型预测,起搏器单元的空间尺度上的活动对于ICC慢波的产生至关重要,而从T型Ca2 +电流激活中产生的Ca2 +涌入对于单一的潜在夹带是必需的。这些结果表明,细胞内Ca2 +的水平,特别是线粒体和内质网局部的区域,会显着影响起搏频率和起搏器单位放电的同步性。此外,数值研究表明,我们的ICC模型能够定性地复制各种实验观察结果。

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