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Ion channel density and threshold dynamics of repetitive firing in a cortical neuron model

机译:皮层神经元模型中的重复发射的离子通道密度和阈值动力学

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摘要

Modifying the density and distribution of ion channels in a neuron (by natural up- and down-regulation, by pharmacological intervention or by spontaneous mutations) changes its activity pattern. In the present investigation, we analyze how the impulse patterns are regulated by the density of voltage-gated channels in a model neuron, based on voltage clamp measurements of hippocampal interneurons. At least three distinct oscillatory patterns, associated with three distinct regions in the Na–K channel density plane, were found. A stability analysis showed that the different regions are characterized by saddle-node, double-orbit, and Hopf bifurcation threshold dynamics, respectively. Single strongly graded action potentials occur in an area outside the oscillatory regions, but less graded action potentials occur together with repetitive firing over a considerable range of channel densities. The presently found relationship between channel densities and oscillatory behavior may be relevance for understanding principal spiking patterns of cortical neurons (regular firing and fast spiking). It may also be of relevance for understanding the action of pharmacological compounds on brain oscillatory activity.
机译:修改神经元中离子通道的密度和分布(通过自然上调和下调,通过药理学干预或通过自发突变)会改变其活动模式。在本研究中,我们基于海马中间神经元的电压钳位测量,分析了模型神经元中电压门控通道的密度如何调节脉冲模式。发现至少三个不同的振荡模式,与Na–K通道密度平面中的三个不同区域相关。稳定性分析表明,不同区域的特征分别是鞍节点,双轨道和Hopf分叉阈值动力学。在振荡区域之外的区域中会出现单个强梯度动作电位,但在相当大的通道密度范围内,重复梯度触发会产生较低梯度动作电位。目前发现的通道密度和振荡行为之间的关系可能与了解皮层神经元的主要尖峰模式(正常放电和快速尖峰)有关。这可能与理解药理化合物对脑部振荡活动的作用有关。

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