海马聚焦超声刺激后内侧前额叶皮层θ和γ振荡的变化

Jiwon Baek, Younghee Seo, Bong-Soo Kim, Young Cheol Na, Won Seok Chang
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摘要

目的:神经调控是一个快速发展的治疗领域,包括植入式和非侵入式技术方法。聚焦超声(FUS)是一种非侵入性方法,它可以根据声波对骨骼和软组织的穿透力,在空间上精确调节大脑深部区域的神经活动。然而,神经调制因无法实时确认调制而受到限制。要克服这一局限,需要电生理技术。本研究旨在使用 Neuropixel 电极确认 FUS 声波治疗过程中的神经活动。研究方法对六只雄性 C57BL/6 小鼠的海马进行超声波治疗。同时使用 Neuropixel 电极进行局部场电位(LFP)测量。实验组被分为三类:FUS超声治疗前、治疗中和治疗后,并对各组的LFP测量数据进行比较。结果从记录的 LFP 数据中提取了θ波和γ波,并进行了组间比较。FUS 声波治疗后,θ 波和γ 波的振荡与治疗前相比发生了变化。θ波图在治疗前和治疗期间组之间以及治疗期间和治疗后组之间均有显著变化(θ波:4-8赫兹,F=23.91,P<0.0001)。然而,伽马图在任何组别中都未显示出显著变化(伽马:30-50 赫兹)。此外,神经元活动标志物 c-fos 的表达在 FUS 声波处理后有所增加。结论尽管还需要进一步的研究--包括在 FUS 声波治疗后进行更长时间的 LFP 随访测量和收集更多的 LFP 数据--但可以考虑将 FUS 神经调控用于其他神经疾病模型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Changes in theta and gamma oscillations of the medial prefrontal cortex following hippocampal-focused ultrasound stimulation
Objective: Neuromodulation is a rapidly growing field of treatment, encompassing implantable and noninvasive technology-based approaches. Focused ultrasound (FUS), a noninvasive method, has the potential to modulate neural activity in deep brain regions with spatial precision based on the penetrance of sound waves into the bone and soft tissue. However, neuromodulation is limited by the inability to confirm modulation in real-time. Electrophysiological technology is required to overcome this limitation. In this study, we aimed to confirm neural activity using Neuropixel electrodes during FUS sonication. Methods: Six male C57BL/6 mice were subjected to ultrasound sonication in the hippocampus. Simultaneously, local field potential (LFP) measurements were performed using Neuropixel electrodes. The experimental groups were divided into three categories: before, during, and after FUS sonication and the measured LFP data were compared between groups. Results: Theta and gamma waves were extracted from the recorded LFP data and compared between the groups. The theta and gamma oscillations changed after FUS sonication compared to before. The theta graph showed significant changes between the pre-and during-treatment groups and between the during-and post-treatment groups (theta: 4–8 Hz, F=23.91, p<0.0001). However, the gamma graph did not show significant changes in any groups (gamma: 30–50 Hz). Additionally, the expression of c-fos, a marker of neuronal activity, increased after FUS sonication. Conclusion: Although further research is needed—including longer follow-up LFP measurements after FUS sonication and the collection of more LFP data— neuromodulation with FUS can be considered usable in other neurological disease models.
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