神经系统
神经组织工程
生物
神经干细胞
神经科学
轴突引导
材料科学
再生(生物学)
斑马鱼
脊髓
纳米技术
轴突
解剖
细胞生物学
干细胞
基因
生物化学
作者
Zhiwei Li,Ye Qi,Zheng Li,Shaojuan Chen,Huimin Geng,Jinming Han,Jiahao Wang,Wang Zhao-qing,Lei Sun,Bin Huang,Gang Li,Xingang Li,Shaohua Wu,Shilei Ni
出处
期刊:Biomaterials
[Elsevier]
日期:2023-05-05
卷期号:298: 122146-122146
被引量:7
标识
DOI:10.1016/j.biomaterials.2023.122146
摘要
Bioinspired by native nervous tracts, a spinal cord-mimicking model system that was composed of multiple nanofibrous yarns (NYs) ensheathed in a nanofibrous tube was constructed by an innovative electrospinning-based fabrication and integration strategy. The infilling NYs exhibited uniaxially aligned nanofibrous architecture that had a great resemblance to spatially-arranged native nervous tracts, while the outer nanofibrous tubes functioned as an artificial dura matter to provide a stable intraluminal microenvironment. The three-dimensional (3D) NYs were demonstrated to induce alignment, facilitate migration, promote neuronal differentiation, and even phenotypic maturation of seeded neural stem and progenitor cells (NSPCs), while inhibiting gliogenesis. Single-cell transcriptome analysis showed that the NSPC-loaded 3D NY model shared many similarities with native spinal cords, with a great increase in excitatory/inhibitory (EI) neuron ratio. Curcumin, as a model drug, was encapsulated into nanofibers of NYs to exert an antioxidant effect and enhanced axon regeneration. Overall, this study provides a new paradigm for the development of a next-generation in vitro neuronal model system via anatomically accurate nervous tract simulation and constructs a blueprint for the research on NSPC diversification in the biomimetic microenvironment.
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