Wang Juan, Cheng Yuan, Wang Haoyu, Wang Yuhao, Zhang Kuihua, Fan Cunyi, Wang Hongjun, Mo Xiumei
State Key Laboratory for Modification of Chemical Fibers and Polymer Materials College of Chemistry, Chemical Engineering and Biotechnology, Donghua University, Shanghai 201620, China; Shanghai Key Laboratory for Prevention and Treatment of Bone and Joint Diseases Shanghai Institute of Traumatology and Orthopaedics Ruijin Hospital Shanghai Jiao Tong University School of Medicine, Shanghai, China; Department of Biomedical Engineering, Stevens Institute of Technology, Hoboken, NJ 07030, United States.
Department of Orthopaedics, Shanghai Jiao Tong University Affiliated Sixth People's Hospital, Shanghai, China.
Acta Biomater. 2020 Nov;117:180-191. doi: 10.1016/j.actbio.2020.09.037. Epub 2020 Sep 29.
Development of a functional nerve conduit to replace autografts remains a significant challenge particularly considering the compositional complexity and structural hierarchy of native peripheral nerves. In the present study, a multiscale strategy was adopted to fabricate 3D biomimetic nerve conduit from Antheraea pernyi silk fibroin (ApF)/(Poly(L-lactic acid-co-caprolactone)) (PLCL)/graphene oxide (GO) (ApF/PLCL/GO) nanofibers via nanofiber dispersion, template-molding, freeze-drying and crosslinking. The resultant conduits exhibit parallel multichannels (ϕ = 125 µm) surrounded by biomimetic fibrous fragments with tailored degradation rate and improved mechanical properties in comparison with the scaffold without GO. In vitro studies showed that such 3D biomimetic nerve scaffolds had the ability to offer an effective guiding interface for neuronal cell growth. Furthermore, these conduits showed a similarity to autografts in vivo repairing sciatic nerve defects based on a series of analysis (walking track, triceps weight, morphogenesis, vascularization, axonal regrowth and myelination). The conduits almost completely degraded within 12 weeks. These findings demonstrate that the 3D hierarchical nerve guidance conduit (NGC) with fascicle-like structure have great potential for peripheral nerve repair.
开发一种功能性神经导管来替代自体移植物仍然是一项重大挑战,尤其是考虑到天然周围神经的组成复杂性和结构层次。在本研究中,采用多尺度策略,通过纳米纤维分散、模板成型、冷冻干燥和交联,由柞蚕丝素蛋白(ApF)/聚(L-乳酸-共-己内酯)(PLCL)/氧化石墨烯(GO)(ApF/PLCL/GO)纳米纤维制备三维仿生神经导管。所得导管呈现出平行的多通道(直径 = 125 µm),周围环绕着具有定制降解速率的仿生纤维片段,与不含GO的支架相比,其机械性能得到改善。体外研究表明,这种三维仿生神经支架能够为神经元细胞生长提供有效的引导界面。此外,基于一系列分析(行走轨迹、三头肌重量、形态发生、血管化、轴突再生和髓鞘形成),这些导管在体内修复坐骨神经缺损方面与自体移植物相似。导管在12周内几乎完全降解。这些发现表明,具有束状结构的三维分层神经引导导管(NGC)在周围神经修复方面具有巨大潜力。