Yin Xiaonan, Xu Guizhi, Zhu Haijun, Fu Rui, Li Yang, Ding Chong
State Key Laboratory of Reliability and Intelligence of Electrical Equipment, School of Electrical Engineering, Hebei University of Technology, Tianjin 300130, P.R.China.
Tianjin Key Laboratory of Bioelectromagnetic Technology and Intelligent Health, Hebei University of Technology, Tianjin 300130, P.R.China.
Sheng Wu Yi Xue Gong Cheng Xue Za Zhi. 2021 Apr 25;38(2):224-231. doi: 10.7507/1001-5515.202009047.
As a noninvasive neuromodulation technique, transcranial magnetic stimulation (TMS) is widely used in the clinical treatment of neurological and psychiatric diseases, but the mechanism of its action is still unclear. The purpose of this paper is to investigate the effects of different frequencies of magnetic stimulation (MS) on neuronal excitability and voltage-gated potassium channels in the brain slices from the electrophysiological perspective of neurons. The experiment was divided into stimulus groups and control group, and acute isolated mice brain slices were applied to MS with the same intensity (0.3 T) at different frequencies (20 Hz and 0.5 Hz, 500 pulses) respectively in the stimulus groups. The whole-cell patch clamp technique was used to record the resting membrane potential (RMP), action potential (AP), voltage-gated potassium channels current of hippocampal dentate gyrus (DG) granule cells. The results showed that 20 Hz MS significantly increased the number of APs released and the maximum slope of a single AP, reduced the threshold of AP, half width and time to AP peak amplitude, and improved the excitability of hippocampal neurons. The peak currents of potassium channels were decreased, the inactivation curve of transient outward potassium channels shifted to the left significantly, and the time constant of recovery after inactivation increased significantly. 0.5 Hz MS significantly inhibited neuronal excitability and increased the peak currents of potassium channels, but the dynamic characteristics of potassium channels had little change. The results suggest that the dynamic characteristics of voltage-gated potassium channels and the excitability of hippocampal DG granule neurons may be one of the potential mechanisms of neuromodulation by MS.
作为一种非侵入性神经调节技术,经颅磁刺激(TMS)广泛应用于神经和精神疾病的临床治疗,但其作用机制仍不清楚。本文旨在从神经元电生理学角度研究不同频率磁刺激(MS)对脑片神经元兴奋性和电压门控钾通道的影响。实验分为刺激组和对照组,刺激组分别对急性分离的小鼠脑片施加相同强度(0.3 T)、不同频率(20 Hz和0.5 Hz,500个脉冲)的MS。采用全细胞膜片钳技术记录海马齿状回(DG)颗粒细胞的静息膜电位(RMP)、动作电位(AP)、电压门控钾通道电流。结果显示,20 Hz MS显著增加了AP发放数量和单个AP的最大斜率,降低了AP阈值、半宽度和AP峰值幅度时间,提高了海马神经元的兴奋性。钾通道的峰值电流降低,瞬时外向钾通道的失活曲线显著左移,失活后恢复的时间常数显著增加。0.5 Hz MS显著抑制神经元兴奋性并增加钾通道的峰值电流,但钾通道的动力学特性变化不大。结果表明,电压门控钾通道的动力学特性和海马DG颗粒神经元的兴奋性可能是MS神经调节的潜在机制之一。