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Cortical neuron activation induced by electromagnetic stimulation: a quantitative analysis via modelling and simulation

机译:电磁刺激引起的皮质神经元活化:通过建模和仿真进行定量分析

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Previous simulation works concerned with the mechanism of non-invasive neuromodulation has isolated many of the factors that can influence stimulation potency, but an inclusive account of the interplay between these factors on realistic neurons is still lacking. To give a comprehensive investigation on the stimulation-evoked neuronal activation, we developed a simulation scheme which incorporates highly detailed physiological and morphological properties of pyramidal cells. The model was implemented on a multitude of neurons; their thresholds and corresponding activation points with respect to various field directions and pulse waveforms were recorded. The results showed that the simulated thresholds had a minor anisotropy and reached minimum when the field direction was parallel to the dendritic-somatic axis; the layer 5 pyramidal cells always had lower thresholds but substantial variances were also observed within layers; reducing pulse length could magnify the threshold values as well as the variance; tortuosity and arborization of axonal segments could obstruct action potential initiation. The dependence of the initiation sites on both the orientation and the duration of the stimulus implies that the cellular excitability might represent the result of the competition between various firing-capable axonal components, each with a unique susceptibility determined by the local geometry. Moreover, the measurements obtained in simulation intimately resemble recordings in physiological and clinical studies, which seems to suggest that, with minimum simplification of the neuron model, the cable theory-based simulation approach can have sufficient verisimilitude to give quantitatively accurate evaluation of cell activities in response to the externally applied field.
机译:先前有关非侵入性神经调节机制的模拟工作已经隔离了许多可能影响刺激效能的因素,但仍然缺乏这些因素在现实神经元之间相互作用的包容性说明。为了对刺激引起的神经元激活进行全面研究,我们开发了一种模拟方案,其中包含了锥体细胞高度详细的生理和形态特性。该模型是在大量神经元上实现的。记录了它们关于各种场方向和脉冲波形的阈值和相应的激活点。结果表明,当电场方向平行于树枝状体轴时,模拟阈值具有较小的各向异性,并达到最小。第5层锥体细胞始终具有较低的阈值,但在各层中也观察到很大的差异。减小脉冲长度可以放大阈值和方差;轴突节段的曲折和乔木化可能会阻碍动作电位的启动。起始位点对刺激的方向和持续时间的依赖性暗示细胞的兴奋性可能代表了各种具有发射能力的轴突成分之间竞争的结果,每个轴突成分都具有由局部几何形状决定的独特的磁化率。此外,在模拟中获得的测量值与生理学和临床研究中的记录极为相似,这似乎表明,在最小化神经元模型的情况下,基于电缆理论的模拟方法可以具有足够的准确性,可以定量准确地评估细胞的活动性。对外部应用领域的回应。

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