4.5 Article

A new electrospun graphene-silk fibroin composite scaffolds for guiding Schwann cells

Journal

JOURNAL OF BIOMATERIALS SCIENCE-POLYMER EDITION
Volume 28, Issue 18, Pages 2171-2185

Publisher

TAYLOR & FRANCIS LTD
DOI: 10.1080/09205063.2017.1386835

Keywords

Electrospinning; graphene; silk fibroin; electrical conductivity; schwann cells

Funding

  1. Hi-Tech Research and Development Program of China [973 Program] [2014CB542202]
  2. National Key Research and Development Program of China [2016YFC1101603]
  3. National Natural Science Foundation of China [81671823, 81371687, 81701835]
  4. Natural Science Research Program of Nantong [MS12016056]

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Graphene (Gr) has been made of various forms used for repairing peripheral nerve injury with favorable electroactivity, however, graphene-based scaffolds in peripheral nerve regeneration are still rarely reported due to the difficulty of realizing uniform dispersion of graphene and electroactive materials at nanoscale as well as lacking biocompatibility. In this paper, graphene-silk fibroin (SF) composite nanofiber membranes with different mass ratios were prepared via electrospinning. Microscopic observation revealed that electrospun Gr/SF membranes had a nanofibrous structure. Electrochemical analysis provided electroactivity characterization of the Gr/SF membranes. The physiochemical results showed that the physiochemical properties of electrospun Gr/SF membranes could be changed by varying Gr concentration. Swelling ratio and contact angle measurements confirmed that electrospun Gr/SF membranes possessed large absorption capacity and hydrophilic surface, and the mechanical property was improved with increasing Gr concentration. Additionally, in-vitro cytotoxicity with L929 revealed that all the electrospun Gr/SF membranes are biocompatible. Moreover, the morphology and quantity showed that the membranes supported the survival and growth of the cultured Schwann cells. Collectively, all of the results suggest that the electrospun Gr/SF membranes combine the excellent electrically conductivity and mechanical strength of the graphene with biocompatibility property of silk to mimic the natural neural cell micro-environment for nerve development.

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