Graphdiyne-Ivy fiber neural scaffold promotes stem cell directed differentiation and neuronal maturation

神经干细胞 化学 细胞生物学 干细胞 脚手架 细胞分化 纤维 胚胎干细胞 诱导多能干细胞 生物 内皮干细胞 神经科学 细胞 间充质干细胞 成体干细胞 细胞培养
作者
Haiyang Zhang,Junbo Jiang,Cailing Zhang,Yi Zhang,Chen Gao,Yuxing Kuang,Guangqing Xu,Yue Lan
出处
期刊:Materials today bio [Elsevier BV]
卷期号:38: 103022-103022
标识
DOI:10.1016/j.mtbio.2026.103022
摘要

Conductive nerve scaffolds have emerged as a promising alternative to autologous grafts for promoting nerve regeneration. However, the optimization of scaffold materials and the elucidation of their regulatory mechanisms on neural stem cell (NSC) differentiation remain critical research priorities. Graphdiyne (GDY), a novel two-dimensional carbon allotrope, exhibits excellent electrical conductivity and favorable biocompatibility, yet its application in the neural field is still in its infancy. In this study, a structurally synergistic GDY/polycaprolactone (GDY/PCL) conductive composite scaffold-termed the GDY-Ivy Fiber Neural Scaffold-was fabricated using a combined electrospinning-freeze-drying strategy. This approach enabled efficient GDY loading while preserving its intrinsic properties. The resulting scaffold demonstrated superior electrical conductivity, mechanical strength, structural stability, and cytocompatibility. In vitro experiments further confirmed that the GDY-Ivy Fiber Scaffold significantly promoted NSC differentiation into neurons, inhibited glial activation, and enhanced synapse formation and the generation of functionally mature neurons. RNA-Seq analysis revealed that the scaffold orchestrated multiple key signaling pathways, including neurotrophic factor and Wnt-related pathways, thereby promoting NSC neuronal differentiation and functional maturation. In vivo experiments demonstrated that the GDY-Ivy Fiber Neural Scaffold enhances guidance for axonal oriented growth and Schwann cell activation, and promotes neovascularization, thereby improving the repair quality of peripheral nerve injury. Overall, the GDY-Ivy Fiber Neural Scaffold developed in this study establishes an optimized electrophysiological and structural microenvironment that promotes neuronal growth. These findings not only expand the application scope of carbon-based materials in neuroregenerative medicine but also offer novel design strategies for neural repair scaffolds.

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