再生(生物学)
复合数
材料科学
组织工程
生物医学工程
脊髓
情态动词
神经科学
复合材料
细胞生物学
生物
医学
作者
Weitao Man,Shuhui Yang,Zheng Cao,Jiaju Lü,Xiangdong Kong,Xiaodan Sun,Lingyun Zhao,Yi Guo,Shenglian Yao,Guihuai Wang,Xiumei Wang
出处
期刊:Biomaterials
[Elsevier]
日期:2021-07-03
卷期号:276: 120971-120971
被引量:39
标识
DOI:10.1016/j.biomaterials.2021.120971
摘要
Extensive tissue engineering studies have supported the enhanced spinal cord regeneration by implantable scaffolds loaded with bioactive cues. However, scaffolds with single-cue delivery showed unsatisfactory effects, most likely due to the complex nature of hostile niches in the lesion area. In this regard, strategies of multi-modal delivery of multiple heterogeneous cell-regulatory cues are unmet needs for enhancing spinal cord repair, which requires a thorough understanding of the regenerative niche associated with spinal cord injury. Here, by combining hierarchically aligned fibrin hydrogel (AFG) and functionalized self-assembling peptides (fSAP), a novel multifunctional nanofiber composite hydrogel AFG/fSAP characterized with interpenetrating network is designed. Serving as a source of both biophysical and biochemical cues, AFG/fSAP can facilitate spinal cord regeneration via guiding regenerated tissues, accelerating axonal regrowth and remyelination, and promoting angiogenesis. Giving the synergistic effect of multiple cues, AFG/fSAP implantation contributes to anatomical, electrophysiological, and motor functional restorations in rats with spinal cord hemisection. This study provides a novel multi-modal approach for regeneration in central nervous system, which has potentials for clinical practice of spinal cord injury.
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