间充质干细胞
干细胞
移植
脊髓损伤
材料科学
神经干细胞
再生(生物学)
干细胞疗法
活性氧
脊髓
细胞生物学
化学
医学
神经科学
生物
内科学
作者
Liming Li,Bing Xiao,Jiafu Mu,Yu Zhang,Chenyang Zhang,Hongcui Cao,Rongjun Chen,Hirak K. Patra,Bo Yang,Shiqing Feng,Yasuhiko Tabata,Nigel K.H. Slater,Jianbin Tang,Youqing Shen,Jianqing Gao
出处
期刊:ACS Nano
[American Chemical Society]
日期:2019-11-26
卷期号:13 (12): 14283-14293
被引量:193
标识
DOI:10.1021/acsnano.9b07598
摘要
Spinal cord injury (SCI) is one of the most debilitating injuries, and transplantation of stem cells in a scaffold is a promising strategy for treatment. However, stem cell treatment of SCI has been severely impaired by the increased generation of reactive oxygen species in the lesion microenvironment, which can lead to a high level of stem cell death and dysfunction. Herein, a MnO2 nanoparticle (NP)-dotted hydrogel is prepared through dispersion of MnO2 NPs in a PPFLMLLKGSTR peptide modified hyaluronic acid hydrogel. The peptide-modified hydrogel enables the adhesive growth of mesenchymal stem cells (MSCs) and nerve tissue bridging. The MnO2 NPs alleviate the oxidative environment, thereby effectively improving the viability of MSCs. Transplantation of MSCs in the multifunctional gel generates a significant motor function restoration on a long-span rat spinal cord transection model and induces an in vivo integration as well as neural differentiation of the implanted MSCs, leading to a highly efficient regeneration of central nervous spinal cord tissue. Therefore, the MnO2 NP-dotted hydrogel represents a promising strategy for stem-cell-based therapies of central nervous system diseases through the comprehensive regulation of pathological microenvironment complications.
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