低强度经颅超声刺激通过调节海马神经活动抑制运动皮质癫痫发作

IF 4.8 2区 医学 Q2 ENGINEERING, BIOMEDICAL
Na Pang;Qianqian Wang;Jiamin Pei;Hailin Zhang;Yi Yuan;Jiaqing Yan
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引用次数: 0

摘要

先前的研究表明,低强度经颅超声刺激海马可以抑制癫痫发作。然而,目前尚不清楚TUS如何调节海马神经活动,以及是否以及如何通过调节海马神经活动来抑制运动皮层的癫痫放电。为了探索上述问题的答案,我们利用超声在实验过程中通过刺激青霉素诱导癫痫小鼠海马,同时记录海马和运动皮质(M1)的局部场电位(lfp),来研究对上述问题的反应。结果表明:1)TUS降低了海马和M1中LFPs中$\boldsymbol {\theta } $频段的振幅和强度;2)海马中$\boldsymbol {\delta }$ - $\boldsymbol {\gamma } $、$\boldsymbol {\theta } $ - $\boldsymbol {\gamma }$和$\boldsymbol {\alpha } $ - $\boldsymbol {\gamma } $频段与M1的耦合强度降低;3)减弱海马与M1神经活动的相关性。上述结果表明,TUS有效抑制了海马内异常的慢速神经振荡,对慢速神经振荡有明显的解耦作用,降低了海马-皮质神经活动的相关性。海马的TUS可能通过海马-皮质回路抑制M1异常的神经放电活动。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Low-Intensity Transcranial Ultrasound Stimulation Inhibits Epileptic Seizures in Motor Cortex by Modulating Hippocampus Neural Activity
Prior studies indicate that applying low-intensity transcranial ultrasound stimulation (TUS) to the hippocampus can suppress epileptic seizures. Nevertheless, it is unclear how TUS regulates hippocampal neural activity, and whether and how epileptic discharges in the motor cortex are suppressed by modulating hippocampal neural activity. To explore the answers of above questions, ultrasound was utilized to investigate the responses to the aforementioned inquiries by stimulating the hippocampus of mice with penicillin-induced epilepsy, while simultaneously recording the local field potentials (LFPs) in the hippocampus and the motor cortex (M1) throughout the experiment. The results showed that TUS: 1) reduced the amplitude and the strength of the $\boldsymbol {\theta } $ frequency band in LFPs in the hippocampus and M1; 2) decreased the coupling strength of the $\boldsymbol {\delta }$ - $\boldsymbol {\gamma } $ , $\boldsymbol {\theta } $ - $\boldsymbol {\gamma }$ and $\boldsymbol {\alpha } $ - $\boldsymbol {\gamma } $ frequency bands in the hippocampus and M1; and 3) weakened the correlation of neural activity between the hippocampus and M1. The above results indicated that TUS effectively suppressed abnormal slow neural oscillations in the hippocampus, had a significant decoupling effect on slow-fast neural oscillations, and reduced the correlation of hippocampus-cortical neural activity. TUS of the hippocampus may be through the hippocampus-cortical circuits to suppress abnormal neural firing activity in M1.
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来源期刊
CiteScore
8.60
自引率
8.20%
发文量
479
审稿时长
6-12 weeks
期刊介绍: Rehabilitative and neural aspects of biomedical engineering, including functional electrical stimulation, acoustic dynamics, human performance measurement and analysis, nerve stimulation, electromyography, motor control and stimulation; and hardware and software applications for rehabilitation engineering and assistive devices.
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