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神经生长因子固定化 PCLA 支架浓度梯度对体外神经突生长和大鼠周围神经再生的影响。

The effects of gradients of nerve growth factor immobilized PCLA scaffolds on neurite outgrowth in vitro and peripheral nerve regeneration in rats.

机构信息

DSAPM Lab, PCFM Lab, School of Chemistry and Chemical Engineering, Sun Yat-sen University, Guangzhou 510275, China.

出版信息

Biomaterials. 2013 Sep;34(29):7086-96. doi: 10.1016/j.biomaterials.2013.05.080. Epub 2013 Jun 21.

DOI:10.1016/j.biomaterials.2013.05.080
PMID:23791502
Abstract

Introducing concentration gradients of nerve growth factor (NGF) into conduits for repairing of peripheral nerve injury is crucial for nerve regeneration and guidance. Herein, combining differential adsorption of NGF/silk fibroin (SF) coating, the gradient of NGF-immobilized membranes (G-Ms) and nanofibrous nerve conduits (G-nNCs) were successfully fabricated. The efficacy of NGF gradients was confirmed by a quantitative comparison of dorsal root ganglia (DRG) neurite outgrowth on the G-Ms or uniform NGF-immobilized membranes (U-Ms). Significantly, the neurite turning ratio was 0.48 ± 0.11 for G-M group, but it was close to zero for U-M group. The neurite length of DRGs in the middle of the G-Ms was significantly longer than that of U-M group, even though the average NGF concentration was approximated. Furthermore, 12 weeks after implantation in rats with a 14 mm gap of sciatic nerve injury, G-nNCs achieved satisfying outcomes of nerve regeneration associated with morphological and functional improvements, which was superior to that of the uniform NGF-immobilized nNCs (U-nNCs). Sciatic function index (SFI), compound muscle action potentials (CMAPs), total number of myelinated nerve fibers, thickness of myelin sheath were similar for the G-nNCs and autografts, with the G-nNCs having a higher density of axons than the autografts. Our results demonstrated the significant role of introducing NGF gradients into scaffolds in promoting nerve regeneration.

摘要

将神经生长因子(NGF)浓度梯度引入周围神经损伤修复的导管中对于神经再生和引导至关重要。在此,通过 NGF/丝素(SF)涂层的差分吸附,成功制备了NGF 固定膜(G-Ms)和纳米纤维神经导管(G-nNCs)的梯度。通过对 G-Ms 或均匀 NGF 固定膜(U-Ms)上背根神经节(DRG)突起生长的定量比较,证实了 NGF 梯度的功效。显著的是,G-M 组的突起转向率为 0.48±0.11,而 U-M 组则接近零。G-Ms 中间的 DRG 神经突长度明显长于 U-M 组,尽管平均 NGF 浓度相近。此外,在大鼠坐骨神经 14mm 间隙损伤模型中植入 12 周后,G-nNCs 实现了令人满意的神经再生效果,形态和功能得到改善,优于均匀 NGF 固定 nNCs(U-nNCs)。坐骨神经功能指数(SFI)、复合肌肉动作电位(CMAPs)、有髓神经纤维总数、髓鞘厚度在 G-nNCs 和自体移植物之间相似,G-nNCs 的轴突密度高于自体移植物。我们的结果表明,在支架中引入 NGF 梯度对于促进神经再生具有重要作用。

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