Graphdiyne-loaded polycaprolactone nanofiber scaffold for peripheral nerve regeneration

聚己内酯 脚手架 再生(生物学) 神经导管 生物相容性 周围神经损伤 轴突 坐骨神经 体内 材料科学 纳米纤维 组织工程 纳米材料 生物医学工程 神经再生 化学 细胞生物学 纳米技术 解剖 医学 生物 复合材料 冶金 聚合物 生物技术
作者
Xiao Li,Ning He,Xiaojing Li,Xu Wang,Lei Zhan,Weien Yuan,Jialin Song,Yuanming Ouyang
出处
期刊:Journal of Colloid and Interface Science [Elsevier BV]
卷期号:646: 399-412 被引量:31
标识
DOI:10.1016/j.jcis.2023.05.054
摘要

Graphdiyne (GDY) is a kind of nanomaterial from the graphene carbon family with excellent physical and chemical properties. Despite some applications in medical engineering, GDY has not been used as an electroactive scaffold for tissue regeneration because of its unclear in vitro and in vivo biosafety profiles. Here, a conductive GDY nanomaterial-loaded polycaprolactone (PCL) scaffold was prepared by electrospinning technique. For the first time, the biocompatibility of GDY-based scaffold was assessed at the cellular and animal levels in a peripheral nerve injury (PNI) model. The findings indicated that the conductive three-dimensional (3D) GDY/PCL nerve guide conduits (NGCs) could significantly improve the proliferation, adhesion and glial expression of Schwann cells (SCs). The conduits were implanted into a rat 10-mm sciatic nerve defect model for 3 months in vivo. The toxicity of scaffolds to the organs was negligible, while the GDY/PCL NGCs significantly promoted myelination and axonal growth by upregulating the expression levels of SC marker (S100 β protein), Myelin basic protein (MBP), and axon regeneration marker (β3-tubulin protein (Tuj1) and neurofilament protein 200 (NF200)). In addition, upregulation of vascular factor expression in GDY/PCL NGC group suggested the potential role in angiogenesis to improve nerve repair by GDY nanomaterials. Our findings provide new perspectives on biocompatibility and effectiveness of GDY nanomaterial scaffold in peripheral nerve regeneration for preclinical application.
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