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极低频磁场对基于电导的神经元模型响应的影响。

Effects of extremely low-frequency magnetic fields on the response of a conductance-based neuron model.

机构信息

School of Electrical Engineering and Automation, Tianjin University, Tianjin 300072, P. R. China.

出版信息

Int J Neural Syst. 2014 Feb;24(1):1450007. doi: 10.1142/S0129065714500075. Epub 2013 Dec 11.

Abstract

To provide insights into the modulation of neuronal activity by extremely low-frequency (ELF) magnetic field (MF), we present a conductance-based neuron model and introduce ELF sinusoidal MF as an additive voltage input. By analyzing spike times and spiking frequency, it is observed that neuron with distinct spiking patterns exhibits different response properties in the presence of MF exposure. For tonic spiking neuron, the perturbations of MF exposure on spike times is maximized at the harmonics of neuronal intrinsic spiking frequency, while it is maximized at the harmonics of bursting frequency for burst spiking neuron. As MF intensity increases, the perturbations also increase. Compared with tonic spiking, bursting dynamics are less sensitive to the perturbations of ELF MF exposure. Further, ELF MF exposure is more prone to perturb neuronal spike times relative to spiking frequency. Our finding suggests that the resonance may be one of the neural mechanisms underlying the modulatory effects of the low-intensity ELF MFs on neuronal activities. The results highlight the impacts of ELF MFs exposure on neuronal activity from the single cell level, and demonstrate various factors including ELF MF properties and neuronal spiking characteristics could determine the outcome of exposure. These insights into the mechanism of MF exposure may be relevant for the design of multi-intensity magnetic stimulus protocols, and may even contribute to the interpretation of MF effects on the central nervous systems.

摘要

为了深入了解极低频率(ELF)磁场(MF)对神经元活动的调制作用,我们提出了一个基于电导的神经元模型,并将 ELF 正弦 MF 作为附加电压输入。通过分析尖峰时间和尖峰频率,我们观察到具有不同尖峰模式的神经元在 MF 暴露下表现出不同的响应特性。对于持续放电神经元,MF 暴露对尖峰时间的干扰在神经元固有尖峰频率的谐波处达到最大值,而对于爆发放电神经元则在爆发频率的谐波处达到最大值。随着 MF 强度的增加,干扰也会增加。与持续放电相比,爆发动力学对 ELF MF 暴露的干扰不太敏感。此外,ELF MF 暴露更倾向于干扰神经元的尖峰时间,而不是尖峰频率。我们的发现表明,共振可能是低强度 ELF MF 对神经元活动的调制作用的神经机制之一。该结果从单细胞水平强调了 ELF MF 暴露对神经元活动的影响,并表明包括 ELF MF 特性和神经元尖峰特征在内的各种因素可能决定暴露的结果。这些对 MF 暴露机制的深入了解可能与多强度磁刺激方案的设计相关,甚至有助于解释 MF 对中枢神经系统的影响。

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