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机械敏感离子通道 Piezo1 和 Piezo2 在经颅聚焦超声刺激啮齿动物大脑运动皮层过程中,介导体内运动反应。

Mechanosensitive Ion Channels Piezo1 and Piezo2 Mediate Motor Responses In Vivo During Transcranial Focused Ultrasound Stimulation of the Rodent Cerebral Motor Cortex.

出版信息

IEEE Trans Biomed Eng. 2024 Oct;71(10):2900-2910. doi: 10.1109/TBME.2024.3401136. Epub 2024 Sep 19.

DOI:10.1109/TBME.2024.3401136
PMID:38748529
Abstract

OBJECTIVE

Transcranial focused ultrasound (tFUS) neuromodulation offers a noninvasive, safe, deep brain stimulation with high precision, presenting potential in understanding neural circuits and treating brain disorders. This in vivo study investigated the mechanism of tFUS in activating the opening of the mechanosensitive ion channels Piezo1 and Piezo2 in the mouse motor cortex to induce motor responses.

METHODS

Piezo1 and Piezo2 were knocked down separately in the mouse motor cortex, followed by EMG and motor cortex immunofluorescence comparisons before and after knockdown under tFUS stimulation.

RESULTS

The results demonstrated that the stimulation-induced motor response success rates in Piezo knockdown mice were lower compared to the control group (Piezo1 knockdown: 57.63% ± 14.62%, Piezo2 knockdown: 73.71% ± 13.10%, Control mice: 85.69% ± 10.23%). Both Piezo1 and Piezo2 knockdowns showed prolonged motor response times (Piezo1 knockdown: 0.62 ± 0.19 s, Piezo2 knockdown: 0.60 ± 0.13 s, Control mice: 0.44 ± 0.12 s) compared to controls. Additionally, Piezo knockdown animals subjected to tFUS showed reduced immunofluorescent c-Fos expression in the target area when measured in terms of cells per unit area compared to the control group.

CONCLUSION

This in vivo study confirms the pivotal role of Piezo channels in tFUS-induced neuromodulation, highlighting their influence on motor response efficacy and timing.

SIGNIFICANCE

This study provides insights into the mechanistic underpinnings of noninvasive brain stimulation techniques and opens avenues for developing targeted therapies for neural disorders.

摘要

目的

经颅聚焦超声(tFUS)神经调节提供了一种非侵入性、安全、高精度的深部脑刺激,具有潜在的理解神经回路和治疗脑部疾病的能力。本活体研究旨在探讨 tFUS 激活机械敏感离子通道 Piezo1 和 Piezo2 以在小鼠运动皮层中诱导运动反应的机制。

方法

分别敲除小鼠运动皮层中的 Piezo1 和 Piezo2,然后在 tFUS 刺激前后进行 EMG 和运动皮层免疫荧光比较。

结果

结果表明,与对照组相比,Piezo 敲低小鼠的刺激诱导运动反应成功率较低(Piezo1 敲低:57.63%±14.62%,Piezo2 敲低:73.71%±13.10%,对照组:85.69%±10.23%)。Piezo1 和 Piezo2 敲低组的运动反应时间均延长(Piezo1 敲低:0.62±0.19 s,Piezo2 敲低:0.60±0.13 s,对照组:0.44±0.12 s)。此外,与对照组相比,接受 tFUS 的 Piezo 敲低动物在目标区域的免疫荧光 c-Fos 表达减少,以单位面积的细胞数来衡量。

结论

本活体研究证实了 Piezo 通道在 tFUS 诱导的神经调节中的关键作用,强调了它们对运动反应效果和时间的影响。

意义

本研究为非侵入性脑刺激技术的机制提供了深入了解,并为开发针对神经疾病的靶向治疗方法开辟了途径。

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