透明质酸
撕脱
臂丛神经
化学
神经保护
臂丛神经损伤
撕脱伤
医学
再髓鞘化
体内
肌肉萎缩
前肢
肽
髓鞘
生物医学工程
解剖
病理
外科
再生(生物学)
中枢神经系统
药理学
自愈水凝胶
脊髓
组织工程
伤口愈合
作者
Fubing Xiao,Ying Ding,Cong Ning,Yu Peng,Wenyi Li,Zijian Xiao,Heng Wu,Shuangxi Chen
摘要
ABSTRACT Brachial plexus root avulsion (BPRA) results in extensive motor neurons (MNs) loss, muscle atrophy, and irreversible motor dysfunction. Current surgical strategies with reimplantation fail to promote the motor recovery often leading to poor clinical outcomes, because of the too slow re‐growth of the axons of MNs to re‐innervate the target muscles before atrophy happens. To reconstruct the neuroprotective microenvironment to reduce the MNs death following BPRA, we developed an injectable dual‐network HGα composite hydrogel encapsulating a 6′‐sialyllactose (6′‐SL) mimetic peptide. The HGα hydrogel was formed via Zn 2+ ‐induced self‐assembly of glycyrrhizic acid (GA) to establish a primary physical network, combined with photocrosslinking of methacryloyl hyaluronic acid (HAMA) and 6′‐SL mimetic peptide to form a secondary covalent network. In vitro studies demonstrated that HGα exhibits favorable injectability and tissue adhesiveness. HGα showed potent antioxidant capacity. In a rat BPRA model, at week 8, 50% of rats in the HGα‐treated group achieved a Terzis Grooming Test score of 5, HGα hydrogel significantly improved in forelimb motor function, modulated the local inflammatory microenvironment to preserve the spinal MNs, promoted remyelination of musculocutaneous nerve, attenuated muscle atrophy, offering a promising strategy to restore motor function.
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