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A phase response curve based model: Effect of vagal and sympathetic stimulation and interaction on a pacemaker cell

机译:基于相位响应曲线的模型:迷走神经和交感神经刺激及相互作用对起搏器细胞的影响

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This study introduces a simple mathematical model for a pacemaker cell affected by an external parasympathetic and/or sympathetic input. The model presented is based on the two most important functional properties of the cardiac pacemaker cells. The first property is the intrinsic pacemaker cycle length, an "internal" parameter of the cell. The second basic property is the phase response curve (PRC), a function which reflects the various interactions of the pacemaker cell with the outside world (i.e. interaction with surrounding cells, external stimulus). The vagal stimulus is simulated as affecting the pacemaker cycle length via a PRC, while the sympathetic input is expressed in the model as a continuous reduction in the pacemaker cycle length. When combined vagal and sympathetic activation is allowed, our model shows that autonomic systems are also capable of interacting. First, we studied the entrainment phenomena resulting from a repetitively applied vagal stimulus. Various complex patterns of dynamic interaction between the pacemaker cell and the vagal input were simulated. The PRC parameters appear to be an important factor in the prediction of the entrainment phenomena. Specifically, they permit a quantitative description of the limits of a 1:1 synchronization zone. Next, we apply this model to qualitatively investigate the phenomenon of "accentuated antagonism" between parasympathetic and sympathetic autonomic branches. We examined the various options for this interaction in regulating the pacemaker periodicity. Although this model is a simplified reflection of the biological system, we conclude that it can mimic many aspects of the dynamic autonomic control and of the possible interactions between vagal and sympathetic stimulation of a pacemaker cell. (C) 1998 Academic Press. [References: 40]
机译:这项研究为受外部副交感神经和/或交感神经输入影响的起搏器细胞引入了简单的数学模型。提出的模型基于心脏起搏器细胞的两个最重要的功能特性。第一个属性是固有的起搏器周期长度,即细胞的“内部”参数。第二个基本属性是相位响应曲线(PRC),该函数反映起搏器细胞与外界的各种相互作用(即与周围细胞的相互作用,外部刺激)。迷走神经刺激被模拟为通过PRC影响起搏器周期长度,而交感神经输入在模型中表示为起搏器周期长度的持续减少。当允许迷走神经和交感神经共同激活时,我们的模型表明自主系统也能够相互作用。首先,我们研究了重复应用迷走神经刺激引起的夹带现象。模拟了起搏器细胞和迷走神经输入之间动态相互作用的各种复杂模式。 PRC参数似乎是预测夹带现象的重要因素。具体而言,它们允许对1:1同步区域的限制进行定量描述。接下来,我们将此模型用于定性研究副交感神经和交感神经自主分支之间的“加剧拮抗”现象。我们研究了在调节起搏器周期性中这种相互作用的各种选择。尽管此模型是对生物系统的简化反映,但我们得出的结论是,它可以模拟动态自主控制的许多方面,以及起搏器细胞的迷走神经和交感神经刺激之间可能的相互作用。 (C)1998年学术出版社。 [参考:40]

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