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动作电位和兴奋性突触后电位超线性总和所需突触的空间定位。

Spatial localization of synapses required for supralinear summation of action potentials and EPSPs.

作者信息

Urakubo Hidetoshi, Aihara Takeshi, Kuroda Shinya, Watanabe Masataka, Kondo Shunsuke

机构信息

Department of Quantum Engineering and Systems Science, Graduate School of Engineering, University of Tokyo, Hongo 7-3-1, Bunkyo-ku, Tokyo, 113-0033 Japan.

出版信息

J Comput Neurosci. 2004 May-Jun;16(3):251-65. doi: 10.1023/B:JCNS.0000025688.64836.df.

Abstract

Although the supralinear summation of synchronizing excitatory postsynaptic potentials (EPSPs) and backpropagating action potentials (APs) is important for spike-timing-dependent synaptic plasticity (STDP), the spatial conditions of the amplification in the divergent dendritic structure have yet to be analyzed. In the present study, we simulated the coincidence of APs with EPSPs at randomly determined synaptic sites of a morphologically reconstructed hippocampal CA1 pyramidal model neuron and clarified the spatial condition of the amplifying synapses. In the case of uniform conductance inputs, the amplifying synapses were localized in the middle apical dendrites and distal basal dendrites with small diameters, and the ratio of synapses was unexpectedly small: 8-16% in both apical and basal dendrites. This was because the appearance of strong amplification requires the coincidence of both APs of 3-30 mV and EPSPs of over 6 mV, both of which depend on the dendritic location of synaptic sites. We found that the localization of amplifying synapses depends on A-type K+ channel distribution because backpropagating APs depend on the A-type K+ channel distribution, and that the localizations of amplifying synapses were similar within a range of physiological synaptic conductances. We also quantified the spread of membrane amplification in dendrites, indicating that the neighboring synapses can also show the amplification. These findings allowed us to computationally illustrate the spatial localization of synapses for supralinear summation of APs and EPSPs within thin dendritic branches where patch clamp experiments cannot be easily conducted.

摘要

尽管同步兴奋性突触后电位(EPSP)和反向传播动作电位(AP)的超线性总和对于 spike 时间依赖性突触可塑性(STDP)很重要,但在发散的树突结构中放大的空间条件尚未得到分析。在本研究中,我们在形态重建的海马 CA1 锥体模型神经元的随机确定的突触位点模拟了 AP 与 EPSP 的重合,并阐明了放大突触的空间条件。在均匀电导输入的情况下,放大突触位于直径较小的顶叶中部树突和远端基底树突中,突触比例出乎意料地小:顶叶和基底树突中均为 8-16%。这是因为强放大的出现需要 3-30 mV 的 AP 和超过 6 mV 的 EPSP 同时重合,这两者都取决于突触位点的树突位置。我们发现放大突触的定位取决于 A 型钾通道分布,因为反向传播的 AP 取决于 A 型钾通道分布,并且在生理突触电导范围内放大突触的定位相似。我们还量化了树突中膜放大的传播,表明相邻突触也可以显示放大。这些发现使我们能够通过计算说明在难以进行膜片钳实验的细树突分支内 AP 和 EPSP 超线性总和的突触空间定位。

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