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具有不同孔隙密度的随机神经膜模型中的放电行为。

Firing behaviour in stochastic nerve membrane models with different pore densities.

作者信息

Skaugen E

出版信息

Acta Physiol Scand. 1980 Jan;108(1):49-60. doi: 10.1111/j.1748-1716.1980.tb06499.x.

Abstract

A stochastic nerve membrane model with a two-state pore system was investigated by computer simulation in the uniform (space-clamped) case. The model was based upon the Hodgkin-Huxley equations for the giant axon in squid, but where both the maximal membrane conductances and the rate constants were changed systematically. This was done in order to simulate nerve membranes of small axons, where both of these parameters are smaller than in squid. It was found that the effects upon the firing behaviour due to a finite number of pores were not greatly affected by changes in these parameters. When the specific injected current was calculated relative to the maximal membrane conductances, the threshold for firing was increased somewhat, and the frequency-current relationship became slightly more linear when the maximal conductances (or pore density) were decreased, or the rate constants increased. In the discussion it is shown how the results obtained could be applied qualitatively to the firing behaviour of nerve cells, and that firing in small nerve cells should be significantly influenced by the stochastic effects of a finite number of pores. Gating currents were also discussed, and their effects were found to be insignificant in small nerve cells.

摘要

在均匀(空间钳位)情况下,通过计算机模拟研究了具有双态孔系统的随机神经膜模型。该模型基于鱿鱼巨轴突的霍奇金 - 赫胥黎方程,但最大膜电导和速率常数均系统地发生了变化。这样做是为了模拟小轴突的神经膜,其中这两个参数都比鱿鱼中的小。结果发现,有限数量的孔对放电行为的影响并未因这些参数的变化而受到很大影响。当相对于最大膜电导计算特定注入电流时,放电阈值有所增加,并且当最大电导(或孔密度)降低或速率常数增加时,频率 - 电流关系变得略微更线性。在讨论中表明,所获得的结果如何能够定性地应用于神经细胞的放电行为,并且小神经细胞中的放电应受到有限数量孔的随机效应的显著影响。还讨论了门控电流,发现它们在小神经细胞中的影响微不足道。

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