4.7 Article

Electrical stimulation mediated the neurite outgrowth of PC-12 cells on the conductive polylactic acid/reduced graphene oxide/polypyrrole composite nanofibers

期刊

APPLIED SURFACE SCIENCE
卷 560, 期 -, 页码 -

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ELSEVIER
DOI: 10.1016/j.apsusc.2021.149965

关键词

Endogenous electric fields; Electrical stimulation; Conductive PLA; rGO; PPy composite; nanofibers; Neurite growth

资金

  1. Guangdong Innovative and Entrepreneurial Research Team Program [2016ZT06C412]
  2. Hundred Talent Program of Guangdong University of Technology [220418095]

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The study successfully prepared PLA/rGO/PPy composite nanofibers with stable conductivity, dense and continuous PPy on the surface, and significantly improved wettability. With the presence of PPy and rGO, the conductivity and stability of the composite nanofibers increased, and the proliferation and differentiation of PC-12 cells seeded on the surface were enhanced.
The synergistic effect of endogenous electric field and electrical stimulation (ES) has promising application in the repair and regeneration of injured peripheral nerve. Conducting polymers-based (especially polypyrrole (PPy)) nanofibers have received more attention due to the promotive effects on cell behaviors under ES. However, the conductivity of PPy is unstable and the inferior hydrophilicity hinders its broad applications. Herein, the stable conductive polylactic acid/reduced graphene oxide/polypyrrole (PLA/rGO/PPy) composite nanofibers were prepared by incorporating rGO into PLA, by the following in-situ PPy polymerized on the surface of the PLA/rGO nanofibers. The results show that PPy on the surface of composite nanofibers are dense and continuous, the wettability is significantly improved. With the presence of PPy and rGO, the conductivity and stability of PLA/ rGO/PPy composite nanofibers increase, and the conductivity of PLA/rGO 3.5/PPy composite nanofibers was the highest conductivity (1.46 x 10-1 S/cm). The proliferation and differentiation of PC-12 cells seeded on the surface of PLA/rGO3.5/PPy composite nanofibers reach the highest level under 400 mV/cm. These results are beneficial for improving biomaterial properties and provide guidance to ES application in peripheral nerve repair.

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