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二尖瓣细胞初级树突中动作电位起始和传播的多种模式。

Multiple modes of action potential initiation and propagation in mitral cell primary dendrite.

作者信息

Chen Wei R, Shen Gongyu Y, Shepherd Gordon M, Hines Michael L, Midtgaard Jens

机构信息

Department of Neurobiology, School of Medicine, Connecticut 06520-8001, USA.

出版信息

J Neurophysiol. 2002 Nov;88(5):2755-64. doi: 10.1152/jn.00057.2002.

Abstract

The mitral cell primary dendrite plays an important role in transmitting distal olfactory nerve input from olfactory glomerulus to the soma-axon initial segment. To understand how dendritic active properties are involved in this transmission, we have combined dual soma and dendritic patch recordings with computational modeling to analyze action-potential initiation and propagation in the primary dendrite. In response to depolarizing current injection or distal olfactory nerve input, fast Na(+) action potentials were recorded along the entire length of the primary dendritic trunk. With weak-to-moderate olfactory nerve input, an action potential was initiated near the soma and then back-propagated into the primary dendrite. As olfactory nerve input increased, the initiation site suddenly shifted to the distal primary dendrite. Multi-compartmental modeling indicated that this abrupt shift of the spike-initiation site reflected an independent thresholding mechanism in the distal dendrite. When strong olfactory nerve excitation was paired with strong inhibition to the mitral cell basal secondary dendrites, a small fast prepotential was recorded at the soma, which indicated that an action potential was initiated in the distal primary dendrite but failed to propagate to the soma. As the inhibition became weaker, a "double-spike" was often observed at the dendritic recording site, corresponding to a single action potential at the soma. Simulation demonstrated that, in the course of forward propagation of the first dendritic spike, the action potential suddenly jumps from the middle of the dendrite to the axonal spike-initiation site, leaving the proximal part of primary dendrite unexcited by this initial dendritic spike. As Na(+) conductances in the proximal dendrite are not activated, they become available to support the back-propagation of the evoked somatic action potential to produce the second dendritic spike. In summary, the balance of spatially distributed excitatory and inhibitory inputs can dynamically switch the mitral cell firing among four different modes: axo-somatic initiation with back-propagation, dendritic initiation either with no forward propagation, forward propagation alone, or forward propagation followed by back-propagation.

摘要

二尖瓣细胞的初级树突在将来自嗅小球的远端嗅神经输入传递到胞体 - 轴突起始段中起着重要作用。为了理解树突活性特性如何参与这种传递,我们将双细胞体和树突膜片钳记录与计算模型相结合,以分析初级树突中动作电位的起始和传播。响应去极化电流注入或远端嗅神经输入,在初级树突主干的整个长度上记录到快速钠(Na⁺)动作电位。在弱至中等强度的嗅神经输入下,动作电位在胞体附近起始,然后反向传播到初级树突。随着嗅神经输入增加,起始位点突然转移到初级树突远端。多房室模型表明,动作电位起始位点的这种突然转变反映了远端树突中的一种独立阈值机制。当强烈的嗅神经兴奋与对二尖瓣细胞基底二级树突的强烈抑制配对时,在胞体处记录到一个小的快速预电位,这表明动作电位在初级树突远端起始但未能传播到胞体。随着抑制作用变弱,在树突记录位点经常观察到“双峰”,对应于胞体处的单个动作电位。模拟表明,在第一个树突峰正向传播过程中,动作电位突然从树突中部跳到轴突动作电位起始位点,使得初级树突近端部分未被这个初始树突峰激发。由于近端树突中的钠(Na⁺)电导未被激活,它们可用于支持诱发的胞体动作电位的反向传播,以产生第二个树突峰。总之,空间分布的兴奋性和抑制性输入的平衡可以在四种不同模式之间动态切换二尖瓣细胞的放电:伴有反向传播的轴突 - 胞体起始、无正向传播的树突起始、仅正向传播或正向传播后接着反向传播。

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