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Direction Control of Information Transfer between Neuronal Populations with Asymmetric Three-Dimensional Microstructure

机译:具有不对称三维微观结构的神经元群体之间信息传递的方向控制

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Information transfer among neuronal populations has a directional bias. Some past studies demonstrated that microstructure could bias the direction of information transfer at a cellular level. However, the transfer at a population level has hardly been controlled to date. In order to control the information transfer, we attempt to bias the direction of neurite outgrowth of cultured neurons using a three-dimensional asymmetric microstructure. The proposed microstructure is an embossed barrier with a right-triangle cross section, namely, an ascending slope and vertical wall. Because of the asymmetricity, the neurite growth rate from the wall-side to the slope-side is expected to be lower than that of the slope-to-wall. We fabricated the microstructure on a polystyrene substrate by hot pressing, simultaneously embedding line electrodes for probing stimulation. To confirm the impact of the microstructure on neurite outgrowth, and thus the signal transfer direction between neuronal populations separated by the structure, we stimulated cultured neurons on both sides of the structure. There was a difference in neuronal responses to wall-side stimulation and slope-side stimulation, demonstrating the directional characteristic of information transfer.
机译:神经元群体之间的信息传递具有方向性偏向。过去的一些研究表明,微结构可能会在细胞水平上偏向信息传递的方向。但是,到目前为止,人口转移几乎没有得到控制。为了控制信息传递,我们尝试使用三维非对称微结构来偏向培养神经元的神经突向外生长方向。提出的微结构是具有直角横截面的压花屏障,即上升的坡度和垂直的壁。由于不对称性,预期从壁侧到倾斜侧的神经突生长速率低于倾斜到壁的神经突生长速率。我们通过热压在聚苯乙烯基板上制造微结构,同时嵌入线电极以探测刺激。为了确认微结构对神经突向外生长的影响,从而确认由结构分隔的神经元群体之间的信号传递方向,我们刺激了结构两侧的培养神经元。神经元对壁侧刺激和斜坡侧刺激的反应有所不同,证明了信息传递的方向特征。

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