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Excitation of central nervous system neurons by nonuniform electric fields.

机译:不均匀电场对中枢神经系统神经元的激励。

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摘要

The goal of this study was to determine which neural elements are excited by microstimulation of the central nervous system. A cable model of a neuron including an axon, initial segment, axon hillock, soma, and simplified dendritic tree was used to study excitation with an extracellular point source electrode. The model reproduced a wide range of experimentally documented extracellular excitation patterns. The site of action potential initiation (API) was a function of the electrode position, stimulus duration, and stimulus polarity. The axon or initial segment was always the site of API at threshold. When the electrode was positioned near the cell body, the site of excitation was dependent on the stimulus amplitude. With the electrode in close proximity to the neuron, short-duration cathodic pulses produced lower thresholds with the electrode positioned over the axon than over the cell body, and long-duration stimuli produced opposite relative thresholds. This result was robust to alterations in either the maximum conductances or the intracellular resistivities of the model. The site of maximum depolarization was not always an accurate predictor of the site of API, and the temporal evolution of the changes in membrane potential played a strong role in determining the site of excitation.
机译:这项研究的目的是确定中枢神经系统的微刺激能激发哪些神经元。神经元的电缆模型包括轴突,初始节段,轴突岗,躯体和简化的树状树被用于研究细胞外点源电极的激发。该模型复制了大量实验记录的细胞外激发模式。动作电位起始位点(API)是电极位置,刺激持续时间和刺激极性的函数。轴突或初始段始终是API处于阈值的位置。当电极位于细胞体附近时,激发的位置取决于刺激幅度。当电极紧邻神经元时,短时阴极脉冲产生的阈值较低,电极位于轴突上方,而不是细胞体上方,而长时刺激则产生相反的相对阈值。该结果对于模型的最大电导率或细胞内电阻率的改变是鲁棒的。最大去极化位点并不总是准确预测API的位点,膜电位变化的时间演变在确定激发位点方面起着重要作用。

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