4.5 Article

Aligned graphene/silk fibroin conductive fibrous scaffolds for guiding neurite outgrowth in rat spinal cord neurons

期刊

出版社

WILEY
DOI: 10.1002/jbm.a.37031

关键词

alignment; conductive; graphene; neurite outgrowth; silk fibroin

资金

  1. Fundamental Research Funds for the Central Universities
  2. International Joint Research Center of Aerospace Biotechnology and Medical Engineering from Ministry of Science and Technology of China, 111 Project [B13003]
  3. National Key Technology RD Program [2016YFC1100704, 2016YFC1101101]
  4. National Natural Science Foundation of China (NSFC) [31771058, 31971238, 31470938, 51574246, 11421202]
  5. Research Fund for the Doctoral Program of Higher Education of China [20131102130004]
  6. The transformation project for major achievements of Central Universities in Beijing [ZDZH20141000601]

向作者/读者索取更多资源

This study developed aligned conductive scaffolds made of graphene and silk fibroin, with mechanical and electrochemical properties improving as graphene content increased, but declining when graphene concentration exceeded 4%. Cell experiments showed that aligned G/SF scaffolds were not neurotoxic to primary spinal cord neurons and promoted neurite elongation through upregulation of Netrin-1 expression. Among all scaffolds tested, the A3% G/SF scaffold demonstrated optimal mechanical and electrochemical performance along with enhanced neurite outgrowth, making it a promising candidate for electrically active tissue scaffolding in neural regeneration or engineering.
Graphene, as a highly conducting material, incorporated into silk fibroin (SF) substrates is promising to fabricate an electroactive flexible scaffold toward neural tissue engineering. It is well known that aligned morphology could promote cell adhesion and directional growth. The purpose of this study was to develop aligned conductive scaffolds made of graphene and SF (G/SF) by electrospinning technique for neural tissue engineering applications. The physicochemical characterization of scaffolds revealed that the mechanical and electrochemical property of aligned G/SF scaffolds continually raised with the increasing contents of graphene (A0% G/SF, A1% G/SF, A2% G/SF, and A3% G/SF), but the mechanical property descended when the graphene concentration reached to 4% (the A4% G/SF group). The results of the cell experiment in vitro indicated that all the aligned G/SF scaffolds were no neurotoxic to primary cultured spinal cord neurons. In addition, the neurite elongation in all aligned groups was significantly enhanced by the upregulation of Netrin-1 expression compared to them in the control group. Thus, A3% G/SF scaffolds not only possessed the optimal property based on the mechanical and electrochemical performances but also displayed the beneficial capability to neurite outgrowth, which might perform a suitable candidate to successfully scaffold electrically active tissues during neural regeneration or engineering.

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