School of Engineering, Brown University, 184 Hope Street, Providence, RI 02912, USA.
School of Engineering, Brown University, 184 Hope Street, Providence, RI 02912, USA; Center for Neuroprosthetics, Swiss Federal Institute of Technology (EPFL), Lausanne, CH-1015 Vaud, Switzerland.
Neuron. 2014 Dec 17;84(6):1170-82. doi: 10.1016/j.neuron.2014.11.010. Epub 2014 Dec 4.
Brain recordings in large animal models and humans typically rely on a tethered connection, which has restricted the spectrum of accessible experimental and clinical applications. To overcome this limitation, we have engineered a compact, lightweight, high data rate wireless neurosensor capable of recording the full spectrum of electrophysiological signals from the cortex of mobile subjects. The wireless communication system exploits a spatially distributed network of synchronized receivers that is scalable to hundreds of channels and vast environments. To demonstrate the versatility of our wireless neurosensor, we monitored cortical neuron populations in freely behaving nonhuman primates during natural locomotion and sleep-wake transitions in ecologically equivalent settings. The interface is electrically safe and compatible with the majority of existing neural probes, which may support previously inaccessible experimental and clinical research.
脑记录在大型动物模型和人类中通常依赖于有线连接,这限制了可及的实验和临床应用的范围。为了克服这一限制,我们设计了一种紧凑、轻便、高数据率的无线神经传感器,能够从移动对象的皮层记录全频谱的电生理信号。无线通信系统利用空间分布式的同步接收器网络,可扩展到数百个通道和广阔的环境。为了展示我们无线神经传感器的多功能性,我们在自然运动和睡眠-觉醒过渡期间,在生态等效环境中监测自由行为的非人类灵长类动物的皮层神经元群体。该接口是电安全的,与大多数现有的神经探针兼容,这可能支持以前无法访问的实验和临床研究。