Department of Biomedical Engineering, Carnegie Mellon University, Pittsburgh, PA 15213, United States of America.
Neuroscience Institute, Carnegie Mellon University, Pittsburgh, PA 15213, United States of America.
J Neural Eng. 2024 Nov 28;21(6):066018. doi: 10.1088/1741-2552/ad9406.
Low-intensity transcranial focused ultrasound (tFUS) has emerged as a powerful neuromodulation tool characterized by its deep penetration and precise spatial targeting to influence neural activity. Our study directed low-intensity tFUS stimulation onto a region of prefrontal cortex (the frontal eye field, or FEF) of a rhesus macaque to examine its impact on a remote site, the extrastriate visual cortex (area V4) through this top-down modulatory circuit that has been studied extensively with electrical microstimulation.To measure the impact of tFUS stimulation, we recorded local field potentials and multi-unit spiking activities from a multi-electrode array implanted in the visual cortex. To deliver tFUS stimulation, we leveraged a customized 128-element random array ultrasound transducer with precise spatial targeting.We observed that tFUS stimulation in FEF produced modulation of V4 neuronal activity, either through enhancement or suppression, dependent on the pulse repetition frequency of the tFUS stimulation. Electronically steering the transcranial ultrasound focus through the targeted FEF cortical region produced changes in the level of modulation, indicating that the tFUS stimulation was spatially targeted within FEF. Modulation of V4 activity was confined to specific frequency bands, and this modulation was dependent on the presence or absence of a visual stimulus during tFUS stimulation. A control study targeting the insula produced no effect, emphasizing the region-specific nature of tFUS neuromodulation.Our findings shed light on the capacity of tFUS to modulate specific neural pathways and provide a comprehensive understanding of its potential applications for neuromodulation within brain networks.
低强度经颅聚焦超声(tFUS)已成为一种强大的神经调控工具,其特点是具有深度穿透性和精确的空间靶向性,可影响神经活动。我们的研究将低强度 tFUS 刺激施加到猕猴前额叶皮层(额眼区,或 FEF)的一个区域,通过这个已经用电微刺激进行了广泛研究的自上而下的调节回路,来检验其对远程区域——外纹状视觉皮层(V4 区)的影响。为了测量 tFUS 刺激的影响,我们记录了植入视觉皮层的多电极阵列的局部场电位和多单位尖峰活动。为了施加 tFUS 刺激,我们利用了具有精确空间靶向性的定制的 128 元随机阵列超声换能器。我们观察到,FEF 中的 tFUS 刺激会产生 V4 神经元活动的调制,要么增强,要么抑制,这取决于 tFUS 刺激的脉冲重复频率。通过靶向 FEF 皮质区域的电子引导经颅超声焦点产生了调制水平的变化,表明 tFUS 刺激在 FEF 内具有空间靶向性。V4 活动的调制局限于特定的频带,并且这种调制依赖于 tFUS 刺激期间是否存在视觉刺激。针对岛叶的对照研究没有产生效果,这强调了 tFUS 神经调节的区域特异性。我们的发现揭示了 tFUS 调节特定神经通路的能力,并提供了对其在大脑网络中神经调节潜在应用的全面理解。