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首页> 外文期刊>Invertebrate neuroscience >Action potential shape change in an electrically coupled network during propagation: a computer simulation.
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Action potential shape change in an electrically coupled network during propagation: a computer simulation.

机译:传播过程中电耦合网络中动作电位形状的变化:计算机模拟。

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摘要

We applied compartmental computer modeling to test a model of spike shape change in the jellyfish, Polyorchis penicillatus, to determine whether adaptive spike shortening can be attributed to the inactivation properties of a potassium channel. We modeled the jellyfish outer nerve-ring as a continuous linear segment, using ion channel and membrane properties derived in earlier studies. The model supported action potentials that shortened as they propagated away from the site of initiation and this was found to be largely independent of potassium channel inactivation. Spike broadening near the site of initiation was found to be due to a depolarization plateau that collapsed as two spikes spread from the point of initiation. The lifetime of this plateau was found to depend critically on the inward current flux and the space constant of the membrane. These data suggest that the spike shape changes may be due not only to potassium channel inactivation, but also to the passive properties of the membrane.
机译:我们应用隔室计算机建模来测试海el Polyorchis penicillatus中穗状形状变化的模型,以确定是否可以将自适应性穗缩短缩短归因于钾通道的失活特性。我们使用早期研究中得出的离子通道和膜特性,将水母外神经环建模为连续的线性段。该模型支持的动作电位随着它们远离起始位点的传播而缩短,并且被发现在很大程度上与钾通道失活无关。发现尖峰在起始点附近变宽是由于去极化平稳期,当从起始点开始扩散两个尖峰时,该极化峰崩溃了。发现该平台的寿命主要取决于内向通量和膜的空间常数。这些数据表明,尖峰形状的变化不仅可能是由于钾通道失活,而且还由于膜的被动性质。

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