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树突中细长刺神经元 L5A 锥体神经元生理动作电位输出的反向传播。

Back-Propagation of Physiological Action Potential Output in Dendrites of Slender-Tufted L5A Pyramidal Neurons.

机构信息

Department of Cell Physiology, Max Planck Institute for Medical Research Heidelberg, Germany.

出版信息

Front Cell Neurosci. 2010 May 18;4:13. doi: 10.3389/fncel.2010.00013. eCollection 2010.

Abstract

Pyramidal neurons of layer 5A are a major neocortical output type and clearly distinguished from layer 5B pyramidal neurons with respect to morphology, in vivo firing patterns, and connectivity; yet knowledge of their dendritic properties is scant. We used a combination of whole-cell recordings and Ca(2+) imaging techniques in vitro to explore the specific dendritic signaling role of physiological action potential patterns recorded in vivo in layer 5A pyramidal neurons of the whisker-related 'barrel cortex'. Our data provide evidence that the temporal structure of physiological action potential patterns is crucial for an effective invasion of the main apical dendrites up to the major branch point. Both the critical frequency enabling action potential trains to invade efficiently and the dendritic calcium profile changed during postnatal development. In contrast to the main apical dendrite, the more passive properties of the short basal and apical tuft dendrites prevented an efficient back-propagation. Various Ca(2+) channel types contributed to the enhanced calcium signals during high-frequency firing activity, whereas A-type K(+) and BK(Ca) channels strongly suppressed it. Our data support models in which the interaction of synaptic input with action potential output is a function of the timing, rate and pattern of action potentials, and dendritic location.

摘要

5A 层的锥体神经元是主要的新皮层输出类型,其形态、体内放电模式和连接性与 5B 层的锥体神经元明显不同;然而,它们的树突特性知之甚少。我们在体外使用全细胞膜片钳记录和 Ca(2+)成像技术,探索在与胡须相关的“桶状皮层”5A 层锥体神经元中体内记录的生理动作电位模式的特定树突信号作用。我们的数据提供了证据,表明生理动作电位模式的时间结构对于有效入侵主顶树突直至主要分支点至关重要。能够使动作电位序列有效入侵的临界频率以及在出生后发育过程中改变的树突钙谱都发生了变化。与主顶树突相反,短基树突和顶树突的被动特性阻止了有效逆行传播。各种 Ca(2+)通道类型在高频放电活动期间对增强的钙信号有贡献,而 A 型 K(+)和 BK(Ca)通道则强烈抑制了钙信号。我们的数据支持这样的模型,即突触输入与动作电位输出的相互作用是动作电位的时间、速率和模式以及树突位置的函数。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f5f2/2876869/d05a2a5762d6/fncel-04-00013-g001.jpg

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