1 Department of Chemical and Petroleum Engineering, Sharif University of Technology, Tehran, Iran.
2 Department of Petroleum and Chemical Engineering, Science and Research Branch, Islamic Azad University, Tehran, Iran.
J Biomater Appl. 2018 Nov;33(5):619-629. doi: 10.1177/0885328218808917. Epub 2018 Nov 2.
Peripheral nervous system in contrary to central one has the potential for regeneration, but its regrowth requires proper environmental conditions and supporting growth factors. The aim of this study is to design and fabricate a conductive polyaniline/graphene nanoparticles incorporated gelatin nanofibrous scaffolds suitable for peripheral nervous system regeneration. The scaffolds were fabricated with electrospinning and the fabrication process was designed with Design-Expert software via response surface methodology. The effect of process parameters including applied voltage (kV), syringe pump flow rate (cm/h), and PAG concentration (wt%), on the scaffold conductivity, nanofibers diameter, and cell viability were investigated. The obtained results showed that the scaffold conductivity and cell viability are affected by polyaniline/graphene concentration while nanofiber diameter is more affected by the applied voltage and syringe pump flow rate. Optimum scaffold with maximum conductivity (0.031 ± 0.0013 S/cm) and cell compatibility and suitable diameter were electrospun according to the software introduced values for the process parameters (voltage of 13 kV, flow rate of 0.1 cm/h, and PAG wt.% of 1.3) and its morphology, cell compatibility, and biodegradability were further investigated, which showed its potential for applying in peripheral nervous system injury regeneration.
与中枢神经系统相反,周围神经系统具有再生的潜力,但它的再生需要适当的环境条件和支持生长的因子。本研究旨在设计和制造一种适合周围神经系统再生的导电聚苯胺/石墨烯纳米粒子复合明胶纳米纤维支架。支架采用静电纺丝法制备,通过响应面法(Response Surface Methodology),使用 Design-Expert 软件设计了制造工艺。研究了工艺参数(施加电压(kV)、注射器泵流速(cm/h)和 PAG 浓度(wt%))对支架导电性、纳米纤维直径和细胞活力的影响。结果表明,支架的导电性和细胞活力受聚苯胺/石墨烯浓度的影响,而纳米纤维直径受施加电压和注射器泵流速的影响更大。根据软件介绍的工艺参数值(电压 13 kV、流速 0.1 cm/h 和 PAG wt.%为 1.3),最佳支架具有最大的导电性(0.031 ± 0.0013 S/cm)和细胞相容性以及合适的直径,进一步研究了其形态、细胞相容性和生物降解性,表明其在周围神经系统损伤再生中的应用潜力。