神经再支配
再生(生物学)
轴突
神经科学
周围神经损伤
材料科学
再生医学
纳米技术
生物
干细胞
细胞生物学
作者
Weixian Zhou,Muhammad Saif Ur Rahman,Chengmei Sun,Shilin Li,Nuozi Zhang,Hao Chen,Charles C. Han,Shanshan Xu,Ying Liu
标识
DOI:10.1002/adma.202307805
摘要
Abstract Peripheral nerve injury potentially destroys the quality of life by inducing functional movement disorders and sensory capacity loss, which results in severe disability and substantial psychological, social, and financial burdens. Autologous nerve grafting has been commonly used as treatment in the clinic; however, its rare donor availability limits its application. A series of artificial nerve guidance conduits (NGCs) with advanced architectures are also proposed to promote injured peripheral nerve regeneration, which is a complicated process from axon sprouting to targeted muscle reinnervation. Therefore, exploring the interactions between sophisticated NGC complexes and versatile cells during each process including axon sprouting, Schwann cell dedifferentiation, nerve myelination, and muscle reinnervation is necessary. This review highlights the contribution of functional NGCs and the influence of microscale biomaterial architecture on biological processes of nerve repair. Progressive NGCs with chemical molecule induction, heterogenous topographical morphology, electroactive, anisotropic assembly microstructure, and self‐powered electroactive and magnetic‐sensitive NGCs are also collected, and they are expected to be pioneering features in future multifunctional and effective NGCs.
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