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Conducting Polymer Scaffolds Based on Poly(34-ethylenedioxythiophene)and Xanthan Gum for Live-Cell Monitoring

机译:基于聚(34-乙撑二氧噻吩)的导电聚合物支架和黄原胶用于活细胞监测

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摘要

Conducting polymer scaffolds can promote cell growth by electrical stimulation, which is advantageous for some specific type of cells such as neurons, muscle, or cardiac cells. As an additional feature, the measure of their impedance has been demonstrated as a tool to monitor cell growth within the scaffold. In this work, we present innovative conducting polymer porous scaffolds based on poly(3,4-ethylenedioxythiophene) (PEDOT):xanthan gum instead of the well-known PEDOT:polystyrene sulfonate scaffolds. These novel scaffolds combine the conductivity of PEDOT and the mechanical support and biocompatibility provided by a polysaccharide, xanthan gum. For this purpose, first, the oxidative chemical polymerization of 3,4-ethylenedioxythiophene was carried out in the presence of polysaccharides leading to stable PEDOT:xanthan gum aqueous dispersions. Then, by a simple freeze-drying process, porous scaffolds were prepared from these dispersions. Our results indicated that the porosity of the scaffolds and mechanical properties are tuned by the solid content and formulation of the initial PEDOT:polysaccharide dispersion. Scaffoldsshowed interconnected pore structure with tunable sizes ranging between10 and 150 μm and Young’s moduli between 10 and 45 kPa.These scaffolds successfully support three-dimensional cell culturesof MDCK II eGFP and MDCK II LifeAct epithelial cells, achieving goodcell attachment with very high degree of pore coverage. Interestingly,by measuring the impedance of the synthesized PEDOT scaffolds, thegrowth of the cells could be monitored.
机译:导电聚合物支架可以通过电刺激促进细胞生长,这对于某些特定类型的细胞(例如神经元,肌肉或心脏细胞)是有利的。作为一项附加功能,已证明了其阻抗的测量结果可作为监测支架内细胞生长的工具。在这项工作中,我们介绍了基于聚(3,4-乙撑二氧噻吩)(PEDOT):黄原胶的创新型导电聚合物多孔支架,而不是众所周知的PEDOT:聚苯乙烯磺酸盐支架。这些新型支架结合了PEDOT的电导率以及多糖黄原胶提供的机械支持和生物相容性。为此目的,首先,在多糖存在下进行3,4-乙撑二氧噻吩的氧化化学聚合,得到稳定的PEDOT:黄原胶水分散体。然后,通过简单的冷冻干燥方法,由这些分散体制备多孔支架。我们的结果表明,支架的孔隙率和机械性能受初始PEDOT:多糖分散体的固体含量和配方的影响。脚手架显示相互连接的孔结构,大小可调10和150μm,杨氏模量在10和45 kPa之间。这些支架成功支持三维细胞培养MDCK II eGFP和MDCK II LifeAct上皮细胞的分离细胞附着,孔覆盖率很高。有趣的是通过测量合成的PEDOT支架的阻抗,可以监测细胞的生长。

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