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聚己内酯富马酸-聚吡咯支架的材料性能和电刺激方案作为潜在的导电神经导管。

Material properties and electrical stimulation regimens of polycaprolactone fumarate-polypyrrole scaffolds as potential conductive nerve conduits.

机构信息

Paracelsus Medical University, Salzburg, Austria.

出版信息

Acta Biomater. 2011 Mar;7(3):944-53. doi: 10.1016/j.actbio.2010.10.013. Epub 2010 Oct 20.

Abstract

The mechanical and electrical properties of polycaprolactone fumarate-polypyrrole (PCLF-PPy) scaffolds were studied under physiological conditions to evaluate their ability to maintain the material properties necessary for application as conductive nerve conduits. PC12 cells cultured on PCLF-PPy scaffolds were stimulated with regimens of 10 μA of either a constant or a 20 Hz frequency current passed through the scaffolds for 1h per day. PC12 cellular morphologies were analyzed by fluorescence microscopy after 48 h. PCLF-PPy scaffolds exhibited excellent mechanical properties at 37 °C which would allow suturing and flexibility. The surface resistivity of the scaffolds was 2 kΩ and the scaffolds were electrically stable during the application of electrical stimulation (ES). In vitro studies showed significant increases in the percentage of neurite bearing cells, number of neurites per cell and neurite length in the presence of ES compared with no ES. Additionally, extending neurites were observed to align in the direction of the applied current. This study shows that electrically conductive PCLF-PPy scaffolds possess the material properties necessary for application as nerve conduits. Additionally, the capability to significantly enhance and direct neurite extension by passing an electrical current through PCLF-PPy scaffolds renders them even more promising as future therapeutic treatments for severe nerve injuries.

摘要

聚己内酯富马酸-聚吡咯(PCLF-PPy)支架的力学和电学性能在生理条件下进行了研究,以评估其作为导电神经导管应用所需的材料性能的维持能力。将 PC12 细胞培养在 PCLF-PPy 支架上,每天通过支架施加 10 μA 的恒定或 20 Hz 频率的电流 1 小时进行刺激。在 48 小时后通过荧光显微镜分析 PC12 细胞的形态。PCLF-PPy 支架在 37°C 时具有出色的力学性能,允许缝合和灵活性。支架的表面电阻率为 2 kΩ,并且在施加电刺激(ES)期间稳定。体外研究表明,与没有 ES 的情况相比,ES 存在时,具有神经突的细胞的百分比、每个细胞的神经突数量和神经突长度显著增加。此外,观察到延伸的神经突沿施加电流的方向对齐。这项研究表明,具有导电性的 PCLF-PPy 支架具有作为神经导管应用所需的材料性能。此外,通过在 PCLF-PPy 支架中传递电流来显著增强和引导神经突延伸的能力使它们更有前途作为严重神经损伤的未来治疗方法。

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