Zhang Kuihua, Huang Dianwu, Yan Zhiyong, Wang Chunyang
College of Materials and Textile Engineering, Jiaxing University, Jiaxing, 314001, China.
College of Civil Engineering and Architecture, Jiaxing University, Jiaxing, 314001, China.
J Biomed Mater Res A. 2017 Jul;105(7):1900-1910. doi: 10.1002/jbm.a.36053. Epub 2017 Apr 3.
Biomimicing topological structure of natural nerve tissue to direct axon growth and controlling sustained release of moderate neurotrophic factors are extremely propitious to the functional recovery of damaged nervous systems. In this study, the heparin/collagen encapsulating nerve growth factor (NGF) multilayers were coated onto the aligned poly-L-lactide (PLLA) nanofibrous scaffolds via a layer-by-layer (LbL) self-assembly technique to combine biomolecular signals, and physical guidance cues for peripheral nerve regeneration. Scanning electronic microscopy (SEM) revealed that the surface of aligned PLLA nanofibrous scaffolds coated with heparin/collagen multilayers became rougher and appeared some net-like filaments and protuberances in comparison with PLLA nanofibrous scaffolds. The heparin/collagen multilayers did not destroy the alignment of nanofibers. X-ray photoelectron spectroscopy and water contact angles displayed that heparin and collagen were successfully coated onto the aligned PLLA nanofibrous scaffolds and improved its hydrophilicity. Three-dimensional (3 D) confocal microscopy images further demonstrated that collagen, heparin, and NGF were not only coated onto the surface of aligned PLLA nanofibrous scaffolds but also permeated into the inner of scaffolds. Moreover, NGF presented a sustained release for 2 weeks from aligned nanofibrous scaffolds coated with 5.5 bilayers or above and remained good bioactivity. The heparin/collagen encapsulating NGF multilayers coated aligned nanofibrous scaffolds, in particular 5.5 bilayers or above, was more beneficial to Schwann cells (SCs) proliferation and PC12 cells differentiation as well as the SC cytoskeleton and neurite growth along the direction of nanofibrous alignment compared to the aligned PLLA nanofibrous scaffolds. This novel scaffolds combining sustained release of bioactive NGF and aligned nanofibrous topography presented an excellent potential in peripheral nerve regeneration. © 2016 Wiley Periodicals, Inc. J Biomed Mater Res Part A: 105A: 1900-1910, 2017.
模仿天然神经组织的拓扑结构以引导轴突生长并控制适度神经营养因子的持续释放,对受损神经系统的功能恢复极为有利。在本研究中,通过层层自组装技术将包裹神经生长因子(NGF)的肝素/胶原蛋白多层膜涂覆在排列好的聚-L-丙交酯(PLLA)纳米纤维支架上,以结合生物分子信号和用于周围神经再生的物理引导线索。扫描电子显微镜(SEM)显示,与PLLA纳米纤维支架相比,涂覆有肝素/胶原蛋白多层膜的排列好的PLLA纳米纤维支架表面变得更粗糙,出现了一些网状细丝和突起。肝素/胶原蛋白多层膜并未破坏纳米纤维的排列。X射线光电子能谱和水接触角表明,肝素和胶原蛋白成功涂覆在排列好的PLLA纳米纤维支架上并改善了其亲水性。三维(3D)共聚焦显微镜图像进一步表明,胶原蛋白、肝素和NGF不仅涂覆在排列好的PLLA纳米纤维支架表面,还渗透到支架内部。此外,NGF从涂覆有5.5层及以上的排列好的纳米纤维支架中持续释放2周,并保持良好的生物活性。与排列好的PLLA纳米纤维支架相比,涂覆有包裹NGF的肝素/胶原蛋白多层膜的排列好的纳米纤维支架,特别是5.5层及以上,更有利于雪旺细胞(SCs)增殖和PC12细胞分化,以及SCs细胞骨架和神经突沿纳米纤维排列方向生长。这种结合生物活性NGF持续释放和排列好的纳米纤维形貌的新型支架在周围神经再生方面具有巨大潜力。©2016威利期刊公司。《生物医学材料研究杂志》A部分:105A:1900 - 1910,2017。