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H电流确保大鼠小脑平行纤维在高频下的动作电位传导。

The H-current secures action potential transmission at high frequencies in rat cerebellar parallel fibers.

作者信息

Baginskas Armantas, Palani Damodharan, Chiu Kenneth, Raastad Morten

机构信息

Institute for Biomedical Research, Laboratory of Neurophysiology, Kaunas University of Medicine, Kaunas, Lithuania.

出版信息

Eur J Neurosci. 2009 Jan;29(1):87-96. doi: 10.1111/j.1460-9568.2008.06566.x. Epub 2008 Dec 12.

Abstract

Most axons in the mammalian brain are unmyelinated and thin with pre-synaptic specializations (boutons) along their entire paths. The parallel fibers in the cerebellum are examples of such axons. Unlike most thin axons they have only one branch point. The granule cell soma, where they originate, can fire bursts of action potentials with spike intervals of about 2 ms. An important question is whether the axons are able to propagate spikes with similarly short intervals. By using extracellular single-unit and population-recording methods we showed that parallel fibers faithfully conduct spikes at high frequencies over long distances. However, when adding 20 microm ZD7288 or 1 mm Cs(+), or reducing the temperature from 35 to 24 degrees C, the action potentials often failed even when successfully initiated. Ba(2+)(1 mm), which blocks Kir channels, did not reproduce these effects. The conduction velocity was reduced by ZD7288 but not by Ba(2+). This suggests that the parallel fibers have an H-current that is active at rest and that is important for their frequency-following properties. Interestingly, failures occurred only when the action potential had to traverse the axonal branch point, suggesting that the branch point is the weakest point in these axons.

摘要

哺乳动物大脑中的大多数轴突是无髓鞘的,且很细,在其整个路径上都有突触前特化结构(轴突终扣)。小脑的平行纤维就是这类轴突的例子。与大多数细轴突不同,它们只有一个分支点。它们起源的颗粒细胞胞体能够以约2毫秒的峰间隔产生动作电位爆发。一个重要的问题是这些轴突是否能够以类似的短间隔传播动作电位。通过使用细胞外单单位和群体记录方法,我们表明平行纤维能够在长距离上忠实地高频传导动作电位。然而,当加入20微摩尔的ZD7288或1毫摩尔的Cs⁺,或者将温度从35摄氏度降至24摄氏度时,即使动作电位成功起始,也常常会失败。阻断Kir通道的1毫摩尔Ba²⁺并没有重现这些效应。ZD7288降低了传导速度,但Ba²⁺没有。这表明平行纤维具有静息时活跃的H电流,并且这对它们的频率跟随特性很重要。有趣的是,只有当动作电位必须穿过轴突分支点时才会出现传导失败,这表明分支点是这些轴突中最薄弱的点。

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