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Pulsed Ultrasound Differentially Stimulates Somatosensory Circuits in Humans as Indicated by EEG and fMRI

机译:脑电图和功能磁共振成像表明,脉冲超声可差异地刺激人体的体感电路

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摘要

Peripheral somatosensory circuits are known to respond to diverse stimulus modalities. The energy modalities capable of eliciting somatosensory responses traditionally belong to mechanical, thermal, electromagnetic, and photonic domains. Ultrasound (US) applied to the periphery has also been reported to evoke diverse somatosensations. These observations however have been based primarily on subjective reports and lack neurophysiological descriptions. To investigate the effects of peripherally applied US on human somatosensory brain circuit activity we recorded evoked potentials using electroencephalography and conducted functional magnetic resonance imaging of blood oxygen level-dependent (BOLD) responses to fingertip stimulation with pulsed US. We found a pulsed US waveform designed to elicit a mild vibration sensation reliably triggered evoked potentials having distinct waveform morphologies including a large double-peaked vertex potential. Fingertip stimulation with this pulsed US waveform also led to the appearance of BOLD signals in brain regions responsible for somatosensory discrimination including the primary somatosensory cortex and parietal operculum, as well as brain regions involved in hierarchical somatosensory processing, such as the insula, anterior middle cingulate cortex, and supramarginal gyrus. By changing the energy profile of the pulsed US stimulus waveform we observed pulsed US can differentially activate somatosensory circuits and alter subjective reports that are concomitant with changes in evoked potential morphology and BOLD response patterns. Based on these observations we conclude pulsed US can functionally stimulate different somatosensory fibers and receptors, which may permit new approaches to the study and diagnosis of peripheral nerve injury, dysfunction, and disease.
机译:已知外围体感电路对各种刺激方式有反应。能够引发体感反应的能量模式传统上属于机械,热,电磁和光子领域。也有报道称,将超声(US)应用于周围会引起多种躯体感觉。然而,这些观察主要基于主观报告并且缺乏神经生理学描述。为了研究外围应用US对人体体感大脑电路活动的影响,我们使用脑电图记录了诱发电位,并对脉冲US对指尖刺激进行血氧水平依赖性(BOLD)反应的功能磁共振成像。我们发现了一个脉冲式US波形,旨在引起轻微的振动感觉,该波形可靠地触发了诱发电位,该诱发电位具有明显的波形形态,包括大的双峰顶点电位。用这种脉冲的US波形进行指尖刺激还导致在负责体感识别的大脑区域(包括主要体感皮层和顶盖)以及参与分层体感处理的大脑区域(例如,岛,前中扣带)出现BOLD信号。皮质和上颌上回。通过改变脉冲式US刺激波形的能量分布,我们观察到脉冲式US可以差异地激活体感电路,并改变与诱发电位形态和BOLD响应模式相关的主观报告。根据这些观察结果,我们得出结论,脉冲式US可以在功能上刺激不同的体感纤维和受体,这可能为研究和诊断周围神经损伤,功能障碍和疾病提供了新的方法。

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