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使用低强度、低频超声对神经回路进行远程激发。

Remote excitation of neuronal circuits using low-intensity, low-frequency ultrasound.

作者信息

Tyler William J, Tufail Yusuf, Finsterwald Michael, Tauchmann Monica L, Olson Emily J, Majestic Cassondra

机构信息

School of Life Sciences, Arizona State University, Tempe, Arizona, USA.

出版信息

PLoS One. 2008;3(10):e3511. doi: 10.1371/journal.pone.0003511. Epub 2008 Oct 29.

Abstract

Possessing the ability to noninvasively elicit brain circuit activity yields immense experimental and therapeutic power. Most currently employed neurostimulation methods rely on the somewhat invasive use of stimulating electrodes or photon-emitting devices. Due to its ability to noninvasively propagate through bone and other tissues in a focused manner, the implementation of ultrasound (US) represents a compelling alternative approach to current neuromodulation strategies. Here, we investigated the influence of low-intensity, low-frequency ultrasound (LILFU) on neuronal activity. By transmitting US waveforms through hippocampal slice cultures and ex vivo mouse brains, we determined LILFU is capable of remotely and noninvasively exciting neurons and network activity. Our results illustrate that LILFU can stimulate electrical activity in neurons by activating voltage-gated sodium channels, as well as voltage-gated calcium channels. The LILFU-induced changes in neuronal activity were sufficient to trigger SNARE-mediated exocytosis and synaptic transmission in hippocampal circuits. Because LILFU can stimulate electrical activity and calcium signaling in neurons as well as central synaptic transmission we conclude US provides a powerful tool for remotely modulating brain circuit activity.

摘要

具备以非侵入性方式引发脑回路活动的能力具有巨大的实验和治疗潜力。目前大多数使用的神经刺激方法依赖于对刺激电极或光子发射设备的某种侵入性使用。由于超声(US)能够以聚焦的方式非侵入性地穿过骨骼和其他组织,因此超声的应用代表了一种有吸引力的替代当前神经调节策略的方法。在此,我们研究了低强度、低频超声(LILFU)对神经元活动的影响。通过将超声波形传输通过海马切片培养物和离体小鼠大脑,我们确定LILFU能够远程且非侵入性地激发神经元和网络活动。我们的结果表明,LILFU可以通过激活电压门控钠通道以及电压门控钙通道来刺激神经元中的电活动。LILFU诱导的神经元活动变化足以触发海马回路中SNARE介导的胞吐作用和突触传递。由于LILFU可以刺激神经元中的电活动和钙信号传导以及中枢突触传递,我们得出结论,超声为远程调节脑回路活动提供了一种强大的工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4bdd/2568804/49d90a683cae/pone.0003511.g001.jpg

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