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Nanoelectrode-mediated single neuron activation

机译:Nanoelectrode-mediated单一神经元的激活

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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.
机译:阐明细胞动力学的水平在单神经元及其相关作用神经回路对解释至关重要大脑的复杂性。在其神经活动的操作网络,需要精确操作每个神经元的激活并验证它传播路径通过突触连接。这项研究中,利用固有的物理和电气nanoelectrode优势,垂直纳米线多电极阵列(VNMEA)作为神经元激活平台开发展示空间局限的影响单个细胞的胞内空间。内部之间的一个明显的区别和外部细胞潜力和电流密度,推导上的影响激活Ca2 +反应相比细胞外的方法在相同的条件下,Ca2 +幅度高出约2.9倍海拔和更快的恢复率2.6倍。此外,诱发的同步传播活动连接神经元暗示所示后细胞间通讯细胞内刺激。实验结果证明突出房地产的时间/空间约束VNMEA-mediated细胞内刺激单个神经元激活并显示其潜力在本地化飙升神经元在神经人群,这可能是用来揭示了连接和激活模式的神经网络。

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