去细胞化
脊髓损伤
材料科学
间充质干细胞
再生(生物学)
脚手架
生物医学工程
神经干细胞
干细胞
组织工程
细胞外基质
祖细胞
再生医学
透明质酸
脊髓
细胞生物学
医学
病理
解剖
生物
精神科
作者
Eun Ji Roh,Da‐Seul Kim,Jun Hyuk Kim,Chang Su Lim,Hyemin Choi,Su Yeon Kwon,So Yeon Park,Jun Yong Kim,Hyun‐Mun Kim,Dong‐Youn Hwang,Dong Keun Han,Inbo Han
出处
期刊:Biomaterials
[Elsevier]
日期:2023-05-11
卷期号:299: 122160-122160
被引量:17
标识
DOI:10.1016/j.biomaterials.2023.122160
摘要
Traumatic spinal cord injury results in permanent and serious neurological impairment, but there is no effective treatment yet. Tissue engineering approaches offer great potential for the treatment of SCI, but spinal cord complexity poses great challenges. In this study, the composite scaffold consists of a hyaluronic acid-based hydrogel, decellularized brain matrix (DBM), and bioactive compounds such as polydeoxyribonucleotide (PDRN), tumor necrosis factor-α/interferon-γ primed mesenchymal stem cell-derived extracellular vesicles (TI-EVs), and human embryonic stem cell-derived neural progenitor cells (NPC). The composite scaffold showed significant effects on regenerative prosses including angiogenesis, anti-inflammation, anti-apoptosis, and neural differentiation. In addition, the composite scaffold (DBM/PDRN/TI-EV/NPC@Gel) induced an effective spinal cord regeneration in a rat spinal cord transection model. Therefore, this multimodal approach using an integrated bioactive scaffold coupled with biochemical cues from PDRN and TI-EVs could be used as an advanced tissue engineering platform for spinal cord regeneration.
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