点击化学
材料科学
共轭体系
再生(生物学)
肽
周围神经
自愈水凝胶
生物物理学
DNA
组合化学
生物医学工程
纳米技术
高分子化学
聚合物
生物化学
化学
解剖
细胞生物学
生物
复合材料
医学
作者
Zhenyuan Wei,Xiaoxiao Li,Yi-Cheng Chen,Zhaopu Han,Yan Li,Lin Gan,Yang Yang,Yujie Chen,Feng Zhang,Xiaojian Ye,Wenguo Cui
标识
DOI:10.1002/adfm.202419915
摘要
Abstract During peripheral nerve regeneration, current deoxyribonucleic acid (DNA)‐based therapeutic platforms face the challenge of precisely regulating Schwann cells (SCs) fate to sustain their repair phenotype due to their inability to stably and precisely integrate multiple bioactive components. Herein, the strain‐promoted azide–alkyne cycloaddition reaction is utilized to integrate the neurotrophic factor mimetic peptide RGI and the laminin‐derived peptide IKVAV into DNA monomers. Through DNA sequence self‐assembly, a programmable DNA‐peptide conjugated hydrogel is constructed for loading bone marrow mesenchymal stem cell‐derived exosomes. This programmable hydrogel can rapidly, stably, and precisely integrate various bioactive components into the hydrogel network, thereby enabling sequential modulation of peripheral nerve repair. In vitro, studies show that this hydrogel, through sequential modulation mechanisms, can activate the neuregulin‐1 (Nrg1)/ErbB pathway to induce the reprogramming of SCs and promote the recruitment and proliferation of repair SCs. The induced repair SCs promote neuronal axon outgrowth and enhance tube formation in endothelial cells. In vivo, this programmable hydrogel can gelate in situ through intraneural injection in a rat sciatic nerve crush injury model, promoting nerve regeneration and functional recovery. In summary, this work provides an effective and practical strategy for peripheral nerve regeneration.
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