Abramovich-Sivan S, Akselrod S
Abramson Institute of Medical Physics, Sackler Faculty of Exact Sciences, Tel Aviv University, Israel.
Biol Cybern. 1998 Jul;79(1):67-76. doi: 10.1007/s004220050459.
A single pacemaker cell model and its response to repetitive external depolarization stimulations is described in this paper. This model is a simple model based on the two most important functional properties of the cardiac pacemaker cells. The first property is the intrinsic pacemaker cycle length, which is an 'internal' parameter of the cell, describing the most important feature of a pacemaker cell. The second functional property is the phase response curve (PRC), which is an 'overall collective' function: it contains all the 'information' about the possible interactions of the pacemaker cell with the outside world (external stimulus, interaction with surrounding cells, etc.). This study demonstrates that by representing the pacemaker cell only by two fundamental features, and by applying a simple physical-mathematical model, a global picture of the system can be achieved, allowing us to explore qualitatively various physiological phenomena related to the pacemaker function. For example, we demonstrated that the PRC is a crucial parameter in the prediction of the entrainment phenomena of a single pacemaker cell in response to a periodic train of depolarization pulses. Specifically, the PRC permits a quantitative determination of the 1:1 synchronization range for a single pacemaker cell and an external depolarization pulse. Moreover, we show that the PRC can be used to represent the type of external stimulus applied to the pacemaker (e.g. depolarization pulse) and its intensity. Therefore, the PRC emerges as an important determinant and a useful 'tool' for the understanding of the dynamic interaction of pacemaker cells with the outside world. As a result of our simulations, we unveil a new important parameter: the 'degree of influence', which determines the range of 1:1 synchronization between an external depolarization pulse and a pacemaker cell. This interaction parameter is a direct function of the PRC parameters. It appears to be a helpful 'tool' for the understanding of synchronization and mutual entrainment mechanisms between the pacemaker cell and an external stimulus, and therefore it supports the basic importance of the PRC in the description and determination of these mechanisms.
本文描述了单个起搏器细胞模型及其对重复性外部去极化刺激的响应。该模型是一个基于心脏起搏器细胞两个最重要功能特性的简单模型。第一个特性是固有起搏器周期长度,它是细胞的一个“内部”参数,描述了起搏器细胞的最重要特征。第二个功能特性是相位响应曲线(PRC),它是一个“整体集合”函数:它包含了关于起搏器细胞与外界(外部刺激、与周围细胞的相互作用等)可能相互作用的所有“信息”。本研究表明,通过仅用两个基本特征来表示起搏器细胞,并应用一个简单的物理 - 数学模型,可以获得系统的全局图像,从而使我们能够定性地探索与起搏器功能相关的各种生理现象。例如,我们证明了PRC是预测单个起搏器细胞对周期性去极化脉冲序列的捕获现象的关键参数。具体而言,PRC允许定量确定单个起搏器细胞与外部去极化脉冲的1:1同步范围。此外,我们表明PRC可用于表示施加到起搏器的外部刺激的类型(例如去极化脉冲)及其强度。因此,PRC成为理解起搏器细胞与外界动态相互作用的重要决定因素和有用“工具”。作为我们模拟的结果,我们揭示了一个新的重要参数:“影响程度”,它决定了外部去极化脉冲与起搏器细胞之间的1:1同步范围。这个相互作用参数是PRC参数的直接函数。它似乎是理解起搏器细胞与外部刺激之间的同步和相互捕获机制的有用“工具”,因此它支持了PRC在描述和确定这些机制方面的基本重要性。