Key Laboratory of Exercise and Health Sciences of Ministry of Education, Shanghai University of Sport, Shanghai, China; School of Exercise and Health, Shanghai University of Sport, Shanghai, China; School of Sport and Health, Shandong Sport University, Jinan, China.
Key Laboratory of Exercise and Health Sciences of Ministry of Education, Shanghai University of Sport, Shanghai, China; School of Exercise and Health, Shanghai University of Sport, Shanghai, China.
Brain Stimul. 2024 Mar-Apr;17(2):245-257. doi: 10.1016/j.brs.2024.02.014. Epub 2024 Feb 29.
Temporal interference (TI) electric field brain stimulation is a novel neuromodulation technique that enables the non-invasive modulation of deep brain regions, but few advances about TI stimulation effectiveness and mechanisms have been reported. Conventional transcranial alternating current stimulation (tACS) can enhance motor skills, whether TI stimulation has an effect on motor skills in mice has not been elucidated. In the present study, TI stimulation was proved to stimulating noninvasively primary motor cortex (M1) of mice, and that TI stimulation with an envelope wave frequency of 20 Hz (Δ f = 20 Hz) once a day for 20 min for 7 consecutive days significantly improved the motor skills of mice. The mechanism of action may be related to regulating of neurotransmitter metabolism, increasing the expression of synapse-related proteins, promoting neurotransmitter release, increasing dendritic spine density, enhancing the number of synaptic vesicles and the thickness of postsynaptic dense material, and ultimately enhance neuronal excitability and plasticity. It is the first report about TI stimulation promoting motor skills of mice and describing its mechanisms.
时变干扰(TI)电场脑刺激是一种新的神经调节技术,可实现对深部脑区的非侵入性调节,但关于 TI 刺激的效果和机制的研究进展甚少。传统的经颅交流电刺激(tACS)可以增强运动技能,那么 TI 刺激是否对小鼠的运动技能有影响还没有阐明。在本研究中,证明了 TI 刺激可以非侵入性地刺激小鼠的初级运动皮层(M1),并且每天一次,以 20Hz 的包络波频率(Δf=20Hz)进行 20 分钟,连续 7 天的 TI 刺激显著改善了小鼠的运动技能。其作用机制可能与调节神经递质代谢、增加突触相关蛋白的表达、促进神经递质释放、增加树突棘密度、增强突触小泡数量和增加突触后致密物质的厚度有关,最终增强神经元的兴奋性和可塑性。这是关于 TI 刺激促进小鼠运动技能及其机制的首次报道。