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基于时间干扰对小鼠运动行为调节的研究

[A study on the regulation of motor behavior in mouse based on temporal interference].

作者信息

Zhu Haoran, Huai Ruituo, Zhang Pingqiu, Wang Hui, Yang Junqing, Yin Tao, Yu Zhihao, Shao Feng

机构信息

College of Electrical Engineering and Automation, Shandong University of Science and Technology, Qingdao, Shangdong 266510, P. R. China.

College of Energy Storage Technology, Shandong University of Science and Technology, Qingdao, Shangdong 266510, P. R. China.

出版信息

Sheng Wu Yi Xue Gong Cheng Xue Za Zhi. 2024 Apr 25;41(2):342-350. doi: 10.7507/1001-5515.202305032.

Abstract

Temporal interference (TI) as a new neuromodulation technique can be applied to non-invasive deep brain stimulation. In order to verify its effectiveness in the regulation of motor behavior in animals, this paper uses the TI method to focus the envelope electric field to the ventral posterior lateral nucleus (VPL) of the thalamus in the deep brain of mouse to regulate left- and right-turning motor behavior. The focusability of TI in the mouse VPL was analyzed by finite element method, and the focus area and volume were obtained by numerical calculation. A stimulator was used to generate TI current to stimulate the mouse VPL to verify the effectiveness of the TI stimulation method, and the accuracy of the focus location was further determined by c-Fos immunofluorescence experiments. The results showed that the electric field generated by TI stimulation was able to focus on the VPL nuclei when the stimulation current reached 800 μA; the mouse were able to make corresponding left and right turns according to the stimulation position; and the c-Fos positive cell markers in the VPL nuclei increased significantly after stimulation. This study confirms the feasibility of TI in regulating animal motor behavior and provides a non-invasive stimulation method for brain tissue for animal robots.

摘要

时间干扰(TI)作为一种新的神经调节技术可应用于非侵入性深部脑刺激。为了验证其对动物运动行为调节的有效性,本文采用TI方法将包络电场聚焦于小鼠深部脑区丘脑腹后外侧核(VPL),以调节左右转向运动行为。通过有限元方法分析了TI在小鼠VPL中的聚焦能力,并通过数值计算得到了聚焦区域和体积。使用刺激器产生TI电流刺激小鼠VPL,以验证TI刺激方法的有效性,并通过c-Fos免疫荧光实验进一步确定聚焦位置的准确性。结果表明,当刺激电流达到800μA时,TI刺激产生的电场能够聚焦于VPL核团;小鼠能够根据刺激位置做出相应的左右转向;刺激后VPL核团中c-Fos阳性细胞标记物显著增加。本研究证实了TI在调节动物运动行为方面的可行性,并为动物机器人的脑组织提供了一种非侵入性刺激方法。

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