首页> 外文期刊>Neuroscience Letters: An International Multidisciplinary Journal Devoted to the Rapid Publication of Basic Research in the Brain Sciences >Foundational dendritic processing that is independent of the cell type-specific structure in model primary neurons
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Foundational dendritic processing that is independent of the cell type-specific structure in model primary neurons

机译:独立于模型原发性神经元中的细胞类型特异性结构的基本树枝状处理

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It has long been known that primary neurons in the brain and spinal cord exhibit very distinctive dendritic structures. However, it remains unclear whether dendritic processing for signal propagation and channel activation over dendrites is a function of the cell type-specific dendritic structure. By applying an extended analysis of signal attenuation for the physiological distributions of synaptic inputs and active channels on dendritic branches, we first demonstrate that regardless of their specific structure, all anatomically reconstructed models of primary neurons display a similar pattern of directional signal attenuation and locational channel activation over their dendrites. Then, using a novel modeling approach that allows direct comparison of the anatomically reconstructed primary neurons with their reduced models that exclusively retain anatomical dendritic signaling without being associated with structural specificity, we show that the reduced model can accurately predict dendritic excitability of the anatomical model in both passive and active mode. These results indicate that the directional signaling, locational excitability and their relationship are foundational features of dendritic processing that are independent of the cell type-specific structure across primary neurons. (C) 2015 Elsevier Ireland Ltd. All rights reserved.
机译:众所周知,大脑和脊髓中的原代神经元表现出非常独特的树突结构。然而,它仍然不明确用于信号传播的树突状处理和枝晶的信道激活是细胞类型特异性树突结构的函数。通过对树突分支上的突触输入和有源通道的生理分布进行扩展分析,我们首先证明了无论其特定结构如何,所有解剖学重建的主要神经元模型都会显示出类似的方向信号衰减和位置通道的模式激活他们的树枝状体。然后,使用一种新型建模方法,允许将解剖学重建的主神经元直接比较,其特征在于不与结构特异性相关的解剖树枝状信号传导的缩小模型,我们表明减少的模型可以准确地预测解剖模型的树突兴奋性无源和活动模式。这些结果表明,定向信号传导,位置兴奋性及其关系是树枝状处理的基本特征,其与跨导神经元的细胞类型特异性结构无关。 (c)2015 Elsevier Ireland Ltd.保留所有权利。

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