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Stepwise pattern modification of neuronal network in photo-thermally-etched agarose architecture on multi-electrode array chip for individual-cell-based electrophysiological measurement

机译:多电极阵列芯片上光热蚀刻琼脂糖结构中神经元网络的逐步模式修饰,用于基于单个细胞的电生理测量

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摘要

We have developed a procedure for stepwise topographical control of network patterns and neurite connection directions between adjacent living neurons using an individual-cell-based on-chip multi-electrode array (MEA) cell cultivation system with an agarose microchamber (AMC) array. This procedure enables flexible and precise control of the cell positions and easy and flexible control of the pattern modification of connections between the cells in AMCs through stepwise photo-thermal etching in which a portion of the agarose layer on the chip is melted with a 1480 nm infrared laser beam even during cultivation. With adequate laser power and this stepwise procedue, we can fabricate narrow micrometer-order grooves (microchannels) during cultivation in a stepwise manner. Using this procedure, we controlled the direction of elongation of axons and dendrites selectively and confirmed the direction by immunostaining. We also demonstrated electrophysiological one-way transmission of signals among aligned hippocampal neurons in which the directions of the neurite connections were controlled using this stepwise photo-thermal etching procedure. These results demonstrate the potential of full direction control of neurite connections between neurons using stepwise photo-thermal etching to form microchannels one by one in an on-chip AMC/MEA cell cultivation system. We can thus better understand the meaning of neuronal network patterns and connection directions.
机译:我们已经开发了一种程序,用于使用带有琼脂糖微腔(AMC)阵列的基于单个细胞的芯片上多电极阵列(MEA)细胞培养系统,对相邻的活动神经元之间的网络模式和神经突连接方向进行逐步的地形控制。通过逐步进行光热蚀刻,芯片上的部分琼脂糖层以1480 nm的温度融化,此过程可以灵活,精确地控制单元位置,并且可以轻松,灵活地控制AMC中单元之间连接的图案修改。红外激光束甚至在耕作过程中。有了足够的激光功率和逐步的过程,我们可以在培养过程中以逐步的方式制造出狭窄的微米级凹槽(微通道)。使用此程序,我们控制轴突和树突的方向选择性地选择,并通过免疫染色确认了方向。我们还演示了对齐海马神经元之间信号的电生理单向传输,其中神经突连接的方向使用此逐步光热蚀刻程序进行控制。这些结果证明了在片上AMC / MEA细胞培养系统中使用逐步光热蚀刻形成微通道一个接一个地完全控制神经元之间神经突连接的潜力。因此,我们可以更好地理解神经元网络模式和连接方向的含义。

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