再髓鞘化
轴突
再生(生物学)
脊髓损伤
脊髓
细胞外基质
去细胞化
生物物理学
神经科学
材料科学
层粘连蛋白
化学
细胞生物学
生物
中枢神经系统
髓鞘
作者
Zhenni Chen,Zheng Sun,Yongheng Fan,Meng Yin,Jin Chen,Bo Guo,Yanyun Yin,Rui Quan,Shuaijing Zhao,Shuyu Han,Xiaokang Cheng,Weiyuan Liu,Bing Chen,Zhifeng Xiao,Jianwu Dai,Yannan Zhao
出处
期刊:ACS Nano
[American Chemical Society]
日期:2023-12-11
卷期号:17 (24): 25591-25613
被引量:5
标识
DOI:10.1021/acsnano.3c09892
摘要
Spinal cord injury (SCI) causes tissue structure damage and composition changes of the neural parenchyma, resulting in severe consequences for spinal cord function. Mimicking the components and microstructure of spinal cord tissues holds promise for restoring the regenerative microenvironment after SCI. Here, we have utilized electrospinning technology to develop aligned decellularized spinal cord fibers (A-DSCF) without requiring synthetic polymers or organic solvents. A-DSCF preserves multiple types of spinal cord extracellular matrix proteins and forms a parallel-oriented structure. Compared to aligned collagen fibers (A-CF), A-DSCF exhibits stronger mechanical properties, improved enzymatic stability, and superior functionality in the adhesion, proliferation, axonal extension, and myelination of differentiated neural progenitor cells (NPCs). Notably, axon extension or myelination has been primarily linked to Agrin (AGRN), Laminin (LN), or Collagen type IV (COL IV) proteins in A-DSCF. When transplanted into rats with complete SCI, A-DSCF loaded with NPCs improves the survival, maturation, axon regeneration, and motor function of the SCI rats. These findings highlight the potential of structurally and compositionally biomimetic scaffolds to promote axonal extension and remyelination after SCI.
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