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Neuronal Alignment and Outgrowth on Microwrinkled Conducting Polymer Substrates

机译:微调导电聚合物基材上的神经元对准和产过

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We report on the results of culturing SH-SY5Y neuron-like cells on PEDOT:PSS wrinkled surfaces fabricated by thermally-induced shrinking of commercial polystyrene sheets. Such smart biointerfaces combine the functional properties of conducting polymers with the topographic patterning at the micro- and sub-microscale, as a result of surface wrinkling. By imposing mechanical constraints during shrinking, anisotropic topographic features are formed, with a spatial periodicity in the range 0.7 - 1.2 μm, tunable by varying the thickness of the PEDOT:PSS thin film. The effectiveness of wrinkled surfaces in enhancing and orientating the outgrowth of neurites is demonstrated by a 42% increase in length and by the 85% of neurites aligned along wrinkles direction (angle 0 < θ < 15°), after 5 days of differentiation. Furthermore, the conductive properties of the PEDOT:PSS film are retained after the surface wrinkling, opening the way for the exploitation of these smart biointerfaces for the electrical stimulation of cells.
机译:我们报告了在PEDOT上培养SH-SY5Y神经元样细胞的结果:PSS通过热诱导的商业聚苯乙烯片的收缩而制造的PSS皱褶表面。这种智能生物界面将导电聚合物的功能特性与微型和亚微观尺寸的形状图案化相结合,由于表面皱纹。通过在收缩期间施加机械约束,形成各向异性地形特征,其空间周期性在0.7-1.2μm的范围内,通过改变佩特特的厚度来调谐:PSS薄膜。皱纹表面在增强和定向神经胶质的生长方面的有效性被证明了42%的长度增加,并且通过沿着皱纹方向(角度0 <θ<15°)对准的85%的神经菌素,在5天的分化后。此外,PEDOT的导电性能:PSS膜在表面皱纹之后保持,为用于电池电刺激的电刺激开来开启这些智能生物界面的方式。

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