Cai Yuting, Wang Penghui, Li Yaxuan, Tang Tsz Wing, Zhang Linjie, Shu Hongxin, Wong Hoilun, Li Yuyin, Li Jingwei, Arias Ana Claudia, Zhang Chenguang, Jin Guorui, Huang Qun, Luo Zhengtang
Department of Chemical and Biological Engineering, and William Mong Institute of Nano Science and Technology, and Hong Kong Branch of Chinese National Engineering Research Center for Tissue Restoration and Reconstruction, The Hong Kong University of Science and Technology, Kowloon, Hong Kong 999077, China.
Department of Electrical Engineering and Computer Science, University of California Berkeley, Berkeley, California 94720-1770, United States.
ACS Nano. 2025 Jun 24;19(24):22163-22178. doi: 10.1021/acsnano.5c03215. Epub 2025 Jun 12.
Multichannel nerve guidance conduits (NGCs) have demonstrated superior efficacy in the regeneration of large nerve defects. Here, we present the incorporation of three synergistic guiding cues into a single multichannel hydrogel conduit: topographical guidance, a conductivity gradient, and a nerve growth factor (NGF) gradient. The aligned hydrogel conduit is fabricated through directional lyophilization of a graphene oxide (GO)/poly(vinyl alcohol) (PVA) solution. The conductivity gradient is achieved via the dopamine-induced reduction of GO, during which amino groups with a concentration gradient are simultaneously generated, facilitating the eventual formation of an NGF gradient. experiments validate the excellent guidance effect and promotion of neuritogenesis by the NGF-gradient/aligned PVA/reduced graphene oxide (rGO)/polydopamine (PDA)/heparin hydrogel conduit (denoted as NGF-AGHC) on PC12 neuronal cells. Furthermore, testing reveals that NGF-AGHC exhibits a stronger longitudinal attraction to axons and promotes remyelination. Additionally, functional recovery assessments, histological analyses, and morphological evaluations all indicate that NGF-AGHC significantly enhances peripheral nerve regeneration, with performance comparable to that of the autograft group. Altogether, through a straightforward preparation method integrating topographical guidance, conductivity gradients, and NGF gradients, our NGCs offer a promising approach to peripheral nerve repair.
多通道神经引导导管(NGCs)已在大神经缺损的再生中显示出卓越的功效。在此,我们展示了将三种协同引导线索整合到单一的多通道水凝胶导管中:拓扑引导、电导率梯度和神经生长因子(NGF)梯度。通过对氧化石墨烯(GO)/聚乙烯醇(PVA)溶液进行定向冻干来制备排列好的水凝胶导管。通过多巴胺诱导的GO还原实现电导率梯度,在此过程中同时产生具有浓度梯度的氨基,促进最终形成NGF梯度。实验验证了NGF梯度/排列好的PVA/还原氧化石墨烯(rGO)/聚多巴胺(PDA)/肝素水凝胶导管(记为NGF-AGHC)对PC12神经元细胞具有优异的引导效果并促进神经突生长。此外,测试表明NGF-AGHC对轴突表现出更强的纵向吸引力并促进髓鞘再生。另外,功能恢复评估、组织学分析和形态学评估均表明NGF-AGHC显著增强周围神经再生,其性能与自体移植组相当。总之,通过一种整合拓扑引导、电导率梯度和NGF梯度的简单制备方法,我们的NGCs为周围神经修复提供了一种有前景的方法。