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Conducting polymer thin films as substrates for cell cultures

机译:将聚合物薄膜作为细胞培养物的基材

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In biological applications, conjugated polymers offer many advantages compared to inorganic semiconductors, due to their favorable electrical properties and their biocompatibility. Many different parameters affect the cell-substrate interaction and in this work we focus our attention on the role played by the oxidation state and surface morphology of conducting polymer substrates. We realized cell culture substrates using a thin film of a biocompatible conducting polymer widely employed in organic electronics, poly(3,4-ethylene dioxythiophene) doped with poly(styrenesulfonate) (PEDOT:PSS). The oxidation state of the samples was electrochemically modified through the application of a fixed potential, and they were subsequently characterized by atomic force microscopy and optical spectroscopy. Using these techniques we have been able to measure the oxidation state of the polymer films, and to asses that its surface roughness does not depend on its oxidation state. Furthermore, human dermal fibroblast (hDF) were grown on PEDOT:PSS films with different oxidation state, in order to test their efficacy as cell culture substrates and their biocompatibility.
机译:在生物应用中,与无机半导体相比,共轭聚合物由于其有利的电性能及其生物相容性而提供了许多优点。许多不同的参数影响细胞基板相互作用,并且在这项工作中,我们将注意力集中在氧化状态和导电聚合物基材的表面形态所发挥的作用。我们使用广泛采用的生物相容性导电聚合物的薄膜实现了细胞培养基材,该薄膜广泛用于有机电子器件,聚(苯乙烯磺酸盐)(PEDOT:PSS)掺杂聚(3,4-亚乙基二氧噻吩)。通过施加固定电位,电化学改性样品的氧化状态,随后通过原子力显微镜和光学光谱表征。使用这些技术,我们已经能够测量聚合物膜的氧化状态,并赋予其表面粗糙度不依赖于其氧化状态。此外,人的皮肤成纤维细胞(HDF)在PEDOT中生长:PSS膜,具有不同氧化状态,以测试它们作为细胞培养基材的功效及其生物相容性。

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