Elyahoodayan Sahar, Jiang Wenxuan, Lee Curtis D, Shao Xiecheng, Weiland Gregory, Whalen John J, Petrossians Artin, Song Dong
Department of Biomedical Engineering, Center for Neural Engineering, University of Southern California, Los Angeles, CA, United States.
Epic Medical, Inc., Pasadena, CA, United States.
Front Neurosci. 2021 Feb 24;15:616063. doi: 10.3389/fnins.2021.616063. eCollection 2021.
Same-electrode stimulation and recording with high spatial resolution, signal quality, and power efficiency is highly desirable in neuroscience and neural engineering. High spatial resolution and signal-to-noise ratio is necessary for obtaining unitary activities and delivering focal stimulations. Power efficiency is critical for battery-operated implantable neural interfaces. This study demonstrates the capability of recording single units as well as evoked potentials in response to a wide range of electrochemically safe stimulation pulses through high-resolution microelectrodes coated with co-deposition of Pt-Ir. It also compares signal-to-noise ratio, single unit activity, and power efficiencies between Pt-Ir coated and uncoated microelectrodes. To enable stimulation and recording with the same microelectrodes, microelectrode arrays were treated with electrodeposited platinum-iridium coating (EPIC) and tested in the CA1 cell body layer of rat hippocampi. The electrodes' ability to (1) inject a large range of electrochemically reversable stimulation pulses to the tissue, and (2) record evoked potentials and single unit activities were quantitively assessed over an acute time period. Compared to uncoated electrodes, EPIC electrodes recorded signals with higher signal-to-noise ratios (coated: 9.77 ± 1.95 dB; uncoated: 1.95 ± 0.40 dB) and generated lower voltages (coated: 100 mV; uncoated: 650 mV) for a given stimulus (5 μA). The improved performance corresponded to lower energy consumptions and electrochemically safe stimulation above 5 μA (>0.38 mC/cm), which enabled elicitation of field excitatory post synaptic potentials and population spikes. Spontaneous single unit activities were also modulated by varying stimulation intensities and monitored through the same electrodes. This work represents an example of stimulation and recording single unit activities from the same microelectrode, which provides a powerful tool for monitoring and manipulating neural circuits at the single neuron level.
在神经科学和神经工程领域,非常需要具有高空间分辨率、信号质量和功率效率的同电极刺激与记录技术。高空间分辨率和信噪比对于获取单个神经元活动以及进行局部刺激是必要的。功率效率对于电池供电的植入式神经接口至关重要。本研究展示了通过涂覆有铂铱共沉积的高分辨率微电极记录单个神经元以及对各种电化学安全刺激脉冲做出响应的诱发电位的能力。它还比较了涂覆铂铱和未涂覆铂铱的微电极之间的信噪比、单个神经元活动和功率效率。为了能够使用同一微电极进行刺激和记录,对微电极阵列进行了电沉积铂铱涂层(EPIC)处理,并在大鼠海马体的CA1细胞体层进行了测试。在急性时间段内定量评估了电极(1)向组织注入大范围电化学可逆刺激脉冲的能力,以及(2)记录诱发电位和单个神经元活动的能力。与未涂覆电极相比,对于给定刺激(5μA),EPIC电极记录的信号具有更高的信噪比(涂覆:9.77±1.95dB;未涂覆:1.95±0.40dB),并且产生的电压更低(涂覆:100mV;未涂覆:650mV)。性能的改善对应于更低的能量消耗以及5μA以上(>0.38mC/cm)的电化学安全刺激,这能够引发场兴奋性突触后电位和群体峰电位。自发的单个神经元活动也通过改变刺激强度进行调制,并通过同一电极进行监测。这项工作代表了从同一微电极刺激和记录单个神经元活动的一个实例,为在单个神经元水平监测和操纵神经回路提供了一个强大的工具。