Zhang Fengshi, Ma Bo, Li Qicheng, Zhang Meng, Kou Yuhui
Department of Orthopedics and Trauma, Peking University People's Hospital, Beijing 100044, China.
Key Laboratory of Trauma and Neural Regeneration, Peking University, Beijing 100044, China.
J Funct Biomater. 2023 Aug 28;14(9):442. doi: 10.3390/jfb14090442.
Severe peripheral nerve injuries, such as deficits over long distances or proximal nerve trunk injuries, pose complex reconstruction challenges that often result in unfavorable outcomes. Innovative techniques, such as nerve transposition repair with conduit suturing, can be employed to successfully treat severe peripheral nerve damage. However, cylindrical nerve guides are typically unsuitable for nerve transposition repair. Furthermore, angiogenic and neurotrophic factors are necessary to stimulate the emergence of axonal lateral sprouts, proximal growth, and the rehabilitation of neuron structures and functions. In the current study, we used chitosan to make chitin conduits with different inner diameters at both ends, combined with gelatin methacrylate hydrogels that can continuously release dual growth factors, namely, the vascular endothelial growth factor (VEGF) and the nerve growth factor (NGF), and evaluated its impact on nerve transposition repair in rats. At 16 weeks after the operation, our findings showed that the conduit combined with the dual growth factor hydrogel significantly improved the restoration of both motor and conduction functions of the nerve. In addition, histological analysis showed significant recovery of nerve fibers, target muscles, and neurons. In conclusion, the combination of chitin conduits with different inner diameters and dual growth factor hydrogels can significantly improve the effect of nerve transposition repair, which has important potential clinical value.
严重的周围神经损伤,如长距离缺损或近端神经干损伤,带来了复杂的重建挑战,常常导致不良后果。创新技术,如带导管缝合的神经转位修复术,可用于成功治疗严重的周围神经损伤。然而,圆柱形神经导管通常不适用于神经转位修复。此外,血管生成和神经营养因子对于刺激轴突侧支芽的出现、近端生长以及神经元结构和功能的恢复是必要的。在本研究中,我们使用壳聚糖制作两端内径不同的几丁质导管,并结合可持续释放血管内皮生长因子(VEGF)和神经生长因子(NGF)这两种生长因子的甲基丙烯酸明胶水凝胶,并评估其对大鼠神经转位修复的影响。术后16周,我们的研究结果表明,导管与双生长因子水凝胶相结合显著改善了神经运动和传导功能的恢复。此外,组织学分析显示神经纤维、靶肌肉和神经元有明显恢复。总之,不同内径的几丁质导管与双生长因子水凝胶相结合可显著提高神经转位修复效果,具有重要的潜在临床价值。