Ahn Hong-Sun, Hwang Ji-Young, Kim Min Soo, Lee Ja-Yeon, Kim Jong-Wan, Kim Hyun-Soo, Shin Ueon Sang, Knowles Jonathan C, Kim Hae-Won, Hyun Jung Keun
Department of Nanobiomedical Science and BK21 PLUS NBM Global Research Center for Regenerative Medicine, Dankook University, Cheonan 330-714, Republic of Korea; Institute of Tissue Regeneration Engineering, Dankook University, Cheonan 330-714, Republic of Korea.
Institute of Tissue Regeneration Engineering, Dankook University, Cheonan 330-714, Republic of Korea.
Acta Biomater. 2015 Feb;13:324-34. doi: 10.1016/j.actbio.2014.11.026. Epub 2014 Nov 21.
Carbon nanotubes (CNTs), with their unique and unprecedented properties, have become very popular for the repair of tissues, particularly for those requiring electrical stimuli. Whilst most reports have demonstrated in vitro neural cell responses of the CNTs, few studies have been performed on the in vivo efficacy of CNT-interfaced biomaterials in the repair and regeneration of neural tissues. Thus, we report here for the first time the in vivo functions of CNT-interfaced nerve conduits in the regeneration of transected rat sciatic nerve. Aminated CNTs were chemically tethered onto the surface of aligned phosphate glass microfibers (PGFs) and CNT-interfaced PGFs (CNT-PGFs) were successfully placed into three-dimensional poly(L/D-lactic acid) (PLDLA) tubes. An in vitro study confirmed that neurites of dorsal root ganglion outgrew actively along the aligned CNT-PGFs and that the CNT interfacing significantly increased the maximal neurite length. Sixteen weeks after implantation of a CNT-PGF nerve conduit into the 10 mm gap of a transected rat sciatic nerve, the number of regenerating axons crossing the scaffold, the cross-sectional area of the re-innervated muscles and the electrophysiological findings were all significantly improved by the interfacing with CNTs. This first in vivo effect of using a CNT-interfaced scaffold in the regeneration process of a transected rat sciatic nerve strongly supports the potential use of CNT-interfaced PGFs at the interface between the nerve conduit and peripheral neural tissues.
碳纳米管(CNTs)具有独特且前所未有的特性,在组织修复中变得非常受欢迎,特别是对于那些需要电刺激的组织。虽然大多数报告展示了碳纳米管在体外对神经细胞的反应,但关于碳纳米管界面生物材料在神经组织修复和再生中的体内功效的研究却很少。因此,我们在此首次报告碳纳米管界面神经导管在大鼠坐骨神经横断再生中的体内功能。将胺化碳纳米管化学连接到排列的磷酸盐玻璃微纤维(PGFs)表面,并将碳纳米管界面的PGFs(CNT-PGFs)成功放置到三维聚(L/D-乳酸)(PLDLA)管中。一项体外研究证实,背根神经节的神经突沿着排列的CNT-PGFs积极生长,并且碳纳米管界面显著增加了最大神经突长度。将CNT-PGF神经导管植入大鼠坐骨神经10毫米间隙16周后,与碳纳米管的界面连接使穿过支架的再生轴突数量、再支配肌肉的横截面积以及电生理结果均得到显著改善。在大鼠坐骨神经横断再生过程中使用碳纳米管界面支架的这一首次体内效应有力地支持了碳纳米管界面PGFs在神经导管与周围神经组织界面的潜在应用。