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Multisite electrophysiological recordings by self-assembled loose-patch-like junctions between cultured hippocampal neurons and mushroom-shaped microelectrodes

机译:培养的海马神经元与蘑菇状微电极之间自组装的散斑状连接的多位电生理记录

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摘要

Substrate integrated planar microelectrode arrays is the “gold standard” method for millisecond-resolution, long-term, large-scale, cell-noninvasive electrophysiological recordings from mammalian neuronal networks. Nevertheless, these devices suffer from drawbacks that are solved by spike-detecting, spike-sorting and signal-averaging techniques which rely on estimated parameters that require user supervision to correct errors, merge clusters and remove outliers. Here we show that primary rat hippocampal neurons grown on micrometer sized gold mushroom-shaped microelectrodes (gMμE) functionalized simply by poly-ethylene-imine/laminin undergo self-assembly processes to form loose patch-like hybrid structures. More than 90% of the hybrids formed in this way record monophasic positive action potentials (APs). Of these, 34.5% record APs with amplitudes above 300 μV and up to 5,085 μV. This self-assembled neuron-gMμE configuration improves the recording quality as compared to planar MEA. This study characterizes and analyzes the electrophysiological signaling repertoire generated by the neurons-gMμE configuration, and discusses prospects to further improve the technology.
机译:基板集成平面微电极阵列是从哺乳动物神经元网络中毫秒级分辨率,长期,大规模,细胞无创电生理记录的“金标准”方法。然而,这些设备的缺点是可以通过尖峰检测,尖峰分类和信号平均技术来解决,这些技术依赖于估计参数,这些参数需要用户监督以纠正错误,合并簇并消除异常值。在这里,我们显示了简单地通过聚乙烯亚胺/层粘连蛋白功能化的微米级金蘑菇形微电极(gMμE)上生长的原代大鼠海马神经元经历了自组装过程,形成了松散的斑块状杂化结构。以这种方式形成的杂种中有90%以上具有单相正向动作电位(APs)。其中,有34.5%的记录AP的幅度在300µV以上,最高可达5,085µV。与平面MEA相比,这种自组装的Neuron-gMμE配置可提高记录质量。这项研究表征和分析由神经元-gMμE配置生成的电生理信号库,并讨论进一步改进该技术的前景。

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