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皮层锥体神经元中树突I(h)介导兴奋性突触后电位时程的位置独立性。

Site independence of EPSP time course is mediated by dendritic I(h) in neocortical pyramidal neurons.

作者信息

Williams S R, Stuart G J

机构信息

Division of Neuroscience, John Curtin School of Medical Research, Australian National University, Canberra, ACT 0200, Australia.

出版信息

J Neurophysiol. 2000 May;83(5):3177-82. doi: 10.1152/jn.2000.83.5.3177.

Abstract

Neocortical layer 5 pyramidal neurons possess long apical dendrites that receive a significant portion of the neurons excitatory synaptic input. Passive neuronal models indicate that the time course of excitatory postsynaptic potentials (EPSPs) generated in the apical dendrite will be prolonged as they propagate toward the soma. EPSP propagation may, however, be influenced by the recruitment of dendritic voltage-activated channels. Here we investigate the properties and distribution of I(h) channels in the axon, soma, and apical dendrites of neocortical layer 5 pyramidal neurons, and their effect on EPSP time course. We find a linear increase (9 pA/100 microm) in the density of dendritic I(h) channels with distance from soma. This nonuniform distribution of I(h) channels generates site independence of EPSP time course, such that the half-width at the soma of distally generated EPSPs (up to 435 microm from soma) was similar to somatically generated EPSPs. As a corollary, a normalization of temporal summation of EPSPs was observed. The site independence of somatic EPSP time course was found to collapse after pharmacological blockade of I(h) channels, revealing pronounced temporal summation of distally generated EPSPs, which could be further enhanced by TTX-sensitive sodium channels. These data indicate that an increasing density of apical dendritic I(h) channels mitigates the influence of cable filtering on somatic EPSP time course and temporal summation in neocortical layer 5 pyramidal neurons.

摘要

新皮层第5层锥体神经元拥有长的顶树突,其接收该神经元大部分的兴奋性突触输入。被动神经元模型表明,顶树突中产生的兴奋性突触后电位(EPSP)在向胞体传播时其时间进程会延长。然而,EPSP的传播可能会受到树突电压激活通道募集的影响。在这里,我们研究新皮层第5层锥体神经元的轴突、胞体和顶树突中I(h)通道的特性和分布,以及它们对EPSP时间进程的影响。我们发现,树突I(h)通道的密度随着距胞体距离的增加呈线性增加(9 pA/100微米)。I(h)通道的这种非均匀分布使得EPSP时间进程与位点无关,以至于远端产生的EPSP(距胞体最远达435微米)在胞体处的半宽度与胞体产生的EPSP相似。作为一个推论,我们观察到EPSP时间总和的归一化。在对I(h)通道进行药理学阻断后,发现胞体EPSP时间进程的位点无关性消失,揭示了远端产生的EPSP有明显的时间总和,而TTX敏感的钠通道可进一步增强这种总和。这些数据表明,顶树突I(h)通道密度的增加减轻了电缆滤波对新皮层第5层锥体神经元胞体EPSP时间进程和时间总和的影响。

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