螺旋神经节
自愈水凝胶
细菌纤维素
化学
层状结构
细胞生物学
神经突
生物物理学
石墨烯
材料科学
纳米技术
转导(生物物理学)
神经节
纳米纤维素
神经细胞
纤维
生物医学工程
纤维素
脚手架
纳米纤维
基质(化学分析)
信号转导
细胞外基质
解剖
复合数
神经纤维
神经生长因子
生物材料
作者
Lin Shi,Guodong Hong,Chuntao Chen,Xue–Qian Li,Heng Zhang,Renjie Chai,Dongping Sun
标识
DOI:10.1016/j.carbpol.2023.120749
摘要
The damage or degeneration of spiral ganglion neurons (SGNs) can impair the auditory signals transduction from hair cells to the central auditory system, and cause significant hearing loss. Herein, a new form of bioactive hydrogel incorporating topological graphene oxide (GO) and TEMPO-oxidized bacterial cellulose (GO/TOBC hydrogel) was developed to provide a favorable microenvironment for SGN neurite outgrowth. As the network structure of lamellar interspersed fiber cross-linked by GO/TOBC hydrogels well simulated the structure and morphology of ECM, with the controllable hydrophilic property and appropriate Young's modulus well met those requirements of SGNs microenvironment, the GO/TOBC hybrid matrix exhibited great potential to promote the growth of SGNs. The quantitative real-time PCR result confirmed that the GO/TOBC hydrogel can significantly accelerate the development of growth cones and filopodia, by increasing the mRNA expression levels of diap3, fscn2, and integrin β1. These results suggest that GO/TOBC hydrogel scaffolds have the potential to be used to construct biomimetic nerve grafts for repairing or replacing nerve defects.
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