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Towards deep brain monitoring with superficial EEG sensors plus neuromodulatory focused ultrasound

机译:借助表面EEG传感器和神经调节聚焦超声进行深层大脑监控

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摘要

Noninvasive recordings of electrophysiological activity have limited anatomical specificity and depth. We hypothesized that spatially tagging a small volume of brain with a unique electroencephalogram (EEG) signal induced by pulsed focused ultrasound (pFU) could overcome those limitations. As a first step towards testing this hypothesis, we applied transcranial ultrasound (2 MHz, 200 microsecond-long pulses applied at 1050 Hz for one second at a spatial peak temporal average intensity of 1.4 W/cm2) to the brains of anesthetized rats while simultaneously recording EEG signals. We observed a significant 1050 Hz electrophysiological signal only when ultrasound was applied to living brain. Moreover, amplitude demodulation of the EEG signal at 1050 Hz yielded measurement of gamma band (>30 Hz) brain activity consistent with direct measurements of that activity. These results represent preliminary support for use of pFU as a spatial tagging mechanism for non-invasive EEG-based mapping of deep brain activity with high spatial resolution.
机译:电生理活动的非侵入性记录具有有限的解剖学特异性和深度。我们假设,通过脉冲聚焦超声(pFU)诱发的独特脑电图(EEG)信号在空间上标记少量大脑可以克服这些限制。作为检验该假设的第一步,我们应用了经颅超声检查(2 MHz,以1050 Hz施加200微秒长的脉冲,持续时间为1.4 W / cm 2 的空间峰值时间平均1秒钟)麻醉大鼠的大脑同时记录脑电信号。仅在将超声波应用于活体大脑时,我们才观察到1050 Hz的明显电生理信号。此外,在1050 Hz处对EEG信号进行幅度解调可得到对伽马带(> 30 Hz)脑部活动的测量结果,与该活动的直接测量结果一致。这些结果代表了对使用pFU作为具有高空间分辨率的基于无创EEG的深部大脑活动映射的空间标记机制的初步支持。

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