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Single-Cell Electrical Stimulation Using CMOS-Based High-Density Microelectrode Arrays

机译:使用基于CMOS的高密度微电极阵列的单细胞电刺激。

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Non-invasive electrical stimulation can be used to study and control neural activity in the brain or to alleviate somatosensory dysfunctions. One intriguing prospect is to precisely stimulate individual targeted neurons. Here, we investigated single-neuron current and voltage stimulation in vitro using high-density microelectrode arrays featuring 26,400 bidirectional electrodes at a pitch of 17.5 μm and an electrode area of 5 × 9 μm ~(2). We determined optimal waveforms, amplitudes and durations for both stimulation modes. Owing to the high spatial resolution of our arrays and the close proximity of the electrodes to the respective neurons, we were able to stimulate the axon initial segments (AIS) with charges of less than 2 pC. This resulted in minimal artifact production and reliable readout of stimulation efficiency directly at the soma of the stimulated cell. Stimulation signals as low as 70 mV or 100 nA, with pulse durations as short as 18 μs, yielded measurable action potential initiation and propagation. We found that the required stimulation signal amplitudes decreased with cell growth and development and that stimulation efficiency did not improve at higher electric fields generated by simultaneous multi-electrode stimulation.
机译:非侵入性电刺激可用于研究和控制大脑中的神经活动或减轻体感功能障碍。一种有趣的前景是精确刺激单个目标神经元。在这里,我们使用高密度微电极阵列研究了单神经元电流和电压的体外刺激,该阵列具有26400个双向电极,间距为17.5μm,电极面积为5×9μm​​〜(2)。我们确定了两种刺激模式的最佳波形,幅度和持续时间。由于我们阵列的高空间分辨率以及电极与各个神经元的紧密接近,我们能够以小于2 pC的电荷刺激轴突起始节段(AIS)。这导致最少的伪影产生以及直接在被刺激细胞的体细胞上可靠地读出刺激效率。脉冲持续时间短至18μs的低至70 mV或100 nA的刺激信号,产生了可测量的动作电位起始和传播。我们发现所需的刺激信号幅度随着细胞的生长和发育而降低,并且刺激效率在同时多电极刺激产生的较高电场下并未提高。

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