Department of Materials Science and Engineering, Yonsei University, Seoul 03722, Republic of Korea.
Brain Korea 21 Plus Project for Medical Science, Department of Physiology, Yonsei University College of Medicine, Seoul 03722, Republic of Korea.
Nanoscale. 2020 Feb 20;12(7):4709-4718. doi: 10.1039/c9nr10559j.
Elucidating cellular dynamics at the level of a single neuron and its associated role within neuronal circuits is essential for interpreting the complex nature of the brain. To investigate the operation of neural activity within its network, it is necessary to precisely manipulate the activation of each neuron and verify its propagation path via the synaptic connection. In this study, by exploiting the intrinsic physical and electrical advantages of a nanoelectrode, a vertical nanowire multi electrode array (VNMEA) is developed as a neuronal activation platform presenting the spatially confined effect on the intracellular space of individual cells. VNMEA makes a distinct difference between the interior and exterior cell potential and the current density, deriving the superior effects on activating Ca2+ responses compared to extracellular methods under the same conditions, with about 2.9-fold higher amplitude of Ca2+ elevation and a 2.6-fold faster recovery rate. Moreover, the synchronized propagation of evoked activities is shown in connected neurons implying cell-to-cell communications following the intracellular stimulation. The simulation and experimental consequences prove the outstanding property of temporal/spatial confinement of VNMEA-mediated intracellular stimulation to activate a single neuron and show its potential in localizing spiking neurons within neuronal populations, which may be utilized to reveal the connection and activation modalities of neural networks.
阐明单个神经元及其在神经元回路中的相关作用的细胞动力学对于解释大脑的复杂性质至关重要。为了研究神经网络中神经活动的运作,有必要精确地控制每个神经元的激活,并通过突触连接验证其传播路径。在这项研究中,通过利用纳米电极的固有物理和电气优势,开发了一种垂直纳米线多电极阵列 (VNMEA),作为一种神经元激活平台,对单个细胞的细胞内空间呈现出空间限制效应。VNMEA 使细胞内外电位和电流密度产生明显差异,与相同条件下的细胞外方法相比,它在激活 Ca2+ 反应方面具有优越的效果,Ca2+ 升高的幅度约高 2.9 倍,恢复速率快 2.6 倍。此外,在连接的神经元中显示出诱发活动的同步传播,这意味着在细胞内刺激后会发生细胞间通讯。模拟和实验结果证明了 VNMEA 介导的细胞内刺激的时空限制的卓越特性,可用于激活单个神经元,并展示其在定位神经元群体中的尖峰神经元方面的潜力,这可能用于揭示神经网络的连接和激活方式。