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A High-Density Array of 3D Microneedle-Electrodes for Evaluation of Spatial Resolution of Neuronal Activity

机译:高密度的3D微针电极阵列,用于评估神经元活动的空间分辨率

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To understand how the brain works, it is necessary to explore the behavior of the micro-scale neural network with a high spatial resolution. Here, we propose silicon growth-based microneedle-electrode arrays with the minimum electrode’s interval of 150 µm. To evaluate the spatial resolution of the neuronal signal, a 1 × 7 array of microneedle-electrodes penetrated into barrel cortex of a mouse. The spike signals recorded via the needle-electrode array were analyzed using the spike firing-rates. As the results, spatial resolution of the spike signals in the mouse’s cortex is smaller than the electrode interval of 150 µm. Therefore, such high-density array of needle-electrodes are necessary to study the micro-scale neuronal network in the brain tissue.
机译:要了解大脑的工作原理,有必要探索具有高空间分辨率的微型神经网络的行为。在这里,我们提出了基于硅生长的微针电极阵列,其最小电极间隔为150 µm。为了评估神经元信号的空间分辨率,将1×7的微针电极阵列穿透到小鼠的桶状皮质中。使用尖峰发射率分析通过针电极阵列记录的尖峰信号。结果,鼠标皮质中尖峰信号的空间分辨率小于150 µm的电极间隔。因此,这种高密度的针电极阵列对于研究脑组织中的微尺度神经元网络是必需的。

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