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Exploring action potential initiation in neurons exposed to DC electric fields through dynamical analysis of conductance-based model

机译:通过基于电导的模型的动力学分析探索暴露于直流电场的神经元中的动作电位启动

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摘要

Noninvasive direct current (DC) electric stimulation of central nervous system is today a promising therapeutic option to alleviate the symptoms of a number of neurological disorders. Despite widespread use of this noninvasive brain modulation technique, a generaliz-able explanation of its biophysical basis has not been described which seriously restricts its application and development. This paper investigated the dynamical behaviors of Hodg-kin's three classes of neurons exposed to DC electric field based on a conductance-based neuron model. With phase plane and bifurcation analysis, the different responses of each class of neuron to the same stimulation are shown to derive from distinct spike initiating dynamics. Under the effects of negative DC electric field, class 1 neuron generates repetitive spike through a saddle-node on invariant circle (SNIC) bifurcation, while it ceases this repetitive behavior through a Hopf bifurcation; Class 2 neuron generates repetitive spike through a Hopf bifurcation, meanwhile it ceases this repetitive behavior also by a Hopf bifurcation; Class 3 neuron can generate single spike through a quasi-separatrix-crossing (QSC) at first, then it generates repetitive spike through a Hopf bifurcation, while it ceases this repetitive behavior through a SNIC bifurcation. Furthermore, three classes of neurons' spiking frequency f-electric field £ (f-E) curves all have parabolic shape. Our results highlight the effects of external DC electric field on neuronal activity from the biophysical modeling point of view. It can contribute to the application and development of noninvasive DC brain modulation technique.
机译:如今,中枢神经系统的无创直流电(DC)电刺激是减轻许多神经系统疾病症状的一种有前途的治疗选择。尽管这种无创性大脑调节技术得到了广泛的应用,但尚未对其生物物理基础进行可概括的解释,这严重限制了其应用和发展。本文基于基于电导的神经元模型,研究了霍奇金的三类暴露于直流电场的神经元的动力学行为。通过相平面和分叉分析,显示出每类神经元对相同刺激的不同响应均源自不同的尖峰启动动力学。在负直流电场的作用下,第1类神经元通过不变圆(SNIC)分叉上的鞍形节点产生重复性尖峰,而通过Hopf分叉停止这种重复性行为。第2类神经元通过Hopf分叉产生重复性尖峰,与此同时,它通过Hopf分叉也停止了这种重复行为。第3类神经元首先可以通过准交叉交叉(QSC)产生单个尖峰,然后通过Hopf分叉产生重复性尖峰,而通过SNIC分叉停止这种重复性行为。此外,三类神经元的峰值频率f电场曲线(f-E)均呈抛物线形。我们的结果从生物物理模型的角度突出了外部直流电场对神经元活动的影响。它可以为无创直流脑调制技术的应用和发展做出贡献。

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    School of Electrical Engineering and Automation, Tianjin University, No. 92 Weijin Road, Tianjin 300072, China;

    School of Electrical Engineering and Automation, Tianjin University, No. 92 Weijin Road, Tianjin 300072, China;

    School of Automation and Electrical Engineering, Tianjin University of Technology and Education, Tianjin 300222, China;

    School of Electrical Engineering and Automation, Tianjin University, No. 92 Weijin Road, Tianjin 300072, China;

    School of Electrical Engineering and Automation, Tianjin University, No. 92 Weijin Road, Tianjin 300072, China;

    School of Electrical Engineering and Automation, Tianjin University, No. 92 Weijin Road, Tianjin 300072, China;

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  • 正文语种 eng
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  • 关键词

    DC electric field; Three classes of neurons; Dynamical behavior; Bifurcation;

    机译:直流电场;三类神经元;动态行为;分叉;

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