Xie Ping, Hao Yingying, Chen Xiaoling, Jin Ziqiang, Cheng Shengcui, Li Xin, Liu Lanxiang, Yuan Yi, Li Xiaoli
Key Laboratory of Measurement Technology and Instrumentation of Hebei Province, Institute of Electric Engineering, Yanshan University, Qinhuangdao, Hebei, People's Republic of China.
Key Laboratory of Intelligent Rehabilitation and Neuromodulation of Hebei Province, Institute of Electric Engineering, Yanshan University, Qinhuangdao, Hebei, People's Republic of China.
J Neural Eng. 2022 Mar 29;19(2). doi: 10.1088/1741-2552/ac5c8b.
Transcranial ultrasound stimulation (TUS), a large penetration depth and high spatial resolution technology, has developed rapidly in recent years. This study aimed to explore and evaluate the neuromodulation effects of TUS on mouse motor neural circuits under different parameters.Our study used functional corticomuscular coupling (FCMC) as an index to explore the modulation mechanism for movement control under different TUS parameters (intensity [Isppa] and stimulation duration). We collected local field potential (LFP) and tail electromyographic (EMG) data under TUS in healthy mice and then introduced the time-frequency coherence method to analyze the FCMC before and after TUS in the time-frequency domain. After that, we defined the relative coherence area to quantify the coherence between LFP and EMG under TUS.. The FCMC at theta, alpha, beta, and gamma bands was enhanced after TUS, and the neuromodulation efficacy mainly occurred in the lower frequency band (theta and alpha band). After TUS with different parameters, the FCMC in all selected frequency bands showed a tendency of increasing first and then decreasing. Further analysis showed that the maximum coupling value of theta band appeared from 0.2 to 0.4 s, and that the maximum coupling value in alpha and gamma band appeared from 0 to 0.2 s.. The aforementioned results demonstrate that FCMC in the motor cortex could be modulated by TUS. We provide a theoretical basis for further exploring the modulation mechanism of TUS parameters and clinical application.
经颅超声刺激(TUS)是一种具有大穿透深度和高空间分辨率的技术,近年来发展迅速。本研究旨在探索和评估不同参数下TUS对小鼠运动神经回路的神经调节作用。我们的研究使用功能皮质-肌肉耦合(FCMC)作为指标,以探究不同TUS参数(强度[Isppa]和刺激持续时间)下运动控制的调节机制。我们在健康小鼠接受TUS刺激时收集局部场电位(LFP)和尾部肌电图(EMG)数据,然后引入时频相干方法在时频域分析TUS前后的FCMC。之后,我们定义相对相干面积来量化TUS下LFP与EMG之间的相干性。TUS后,θ、α、β和γ频段的FCMC增强,且神经调节效果主要发生在低频段(θ和α频段)。在不同参数的TUS刺激后,所有选定频段的FCMC均呈现先升高后降低的趋势。进一步分析表明,θ频段的最大耦合值出现在0.2至0.4秒,α和γ频段的最大耦合值出现在0至0.2秒。上述结果表明,运动皮层中的FCMC可被TUS调节。我们为进一步探索TUS参数的调节机制及临床应用提供了理论依据。