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首页> 外文期刊>IEEE Transactions on Biomedical Engineering >Effect of variation in membrane excitability on propagation velocity of simulated action potentials for cardiac muscle and smooth muscle in the electric field model for cell-to-cell transmission of excitation
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Effect of variation in membrane excitability on propagation velocity of simulated action potentials for cardiac muscle and smooth muscle in the electric field model for cell-to-cell transmission of excitation

机译:膜兴奋性的变化对激励的细胞间传递电场模型中心肌和平滑肌模拟动作电位的传播速度的影响

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We have previously published several studies on the propagation of simulated action potentials (APs) of cardiac muscle and smooth muscle using the PSpice program. Those studies were done on single chains of five to ten cells in length to examine longitudinal propagation between the cells, either not connected by gap-junction (g.j) channels or connected by various numbers of channels. In addition, transverse propagation was examined between parallel chains (two to five chains) not connected by g.j. channels. In all those studies, the myocardial cells and smooth muscle cells (SMCs) were unintentionally somewhat hyperexcitable by virtue of the values inserted into the GTABLEs of the PSpice program. Because transmission of excitation from cell to cell occurred very well in the absence of g.j. channels, by virtue of the electric field (EF) generated in the narrow junctional clefts (negative cleft potential VJC), the present study was carried out, in which the cells were made hypo-excitable by altering the GTABLE values. Three levels of excitability of the cardiac cells and SMC were examined: 1) high; 2) intermediate; and 3) low. It was found that propagation of excitation, both longitudinally and transversely, can occur by the EF mechanism alone, even when the excitability of the cells was low. Therefore, the EF mechanism alone can account for propagation of excitation in cardiac muscles and smooth muscles that do not possess gap junctions. In those cases in which gap junctions do exist and are functioning, the EF mechanism would act in parallel and thereby increase the safety factor for conduction.
机译:我们之前已经发表了一些使用PSpice程序进行的心肌和平滑肌模拟动作电位(AP)传播的研究。这些研究是在长度为5至10个单元的单链上进行的,以检查单元之间的纵向传播,这些单元不是通过缝隙连接(g.j)通道连接的,还是通过各种数量的通道连接的。另外,检查了未通过g.j连接的平行链(2至5条链)之间的横向传播。渠道。在所有这些研究中,借助于插入到PSpice程序的GTABLEs中的值,心肌细胞和平滑肌细胞(SMC)在某种程度上是无意兴奋的。因为在没有g.j的情况下,细胞之间的激发传递非常好。通过在狭窄的交界裂隙中产生的电场(EF)(负裂隙电势VJC),通过改变GTABLE值使细胞具有低兴奋性。检查了心脏细胞和SMC的三个兴奋性水平:1)高; 2)中级; 3)低。已经发现,即使当细胞的兴奋性低时,也可以仅通过EF机理来发生激发的纵向和横向传播。因此,仅EF机制可以解释兴奋在没有间隙连接的心肌和平滑肌中的传播。在确实存在间隙连接并起作用的那些情况下,EF机制将并行起作用,从而增加了传导的安全系数。

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