脊髓
脊髓损伤
自愈水凝胶
明胶
再生(生物学)
轴突
组织工程
生物材料
材料科学
细胞外基质
生物医学工程
化学
细胞生物学
神经科学
纳米技术
医学
生物
生物化学
高分子化学
作者
Caixia Fan,Wen Yang,Lulu Zhang,Hongbin Cai,Yan Zhuang,Yanyan Chen,Yannan Zhao,Jianwu Dai
出处
期刊:Biomaterials
[Elsevier]
日期:2022-07-21
卷期号:288: 121689-121689
被引量:38
标识
DOI:10.1016/j.biomaterials.2022.121689
摘要
Spinal cord injury (SCI) represents a central nervous system disaster, resulting in the destruction of spinal cord structure and function and the formation of an adverse microenvironment at the SCI site. Various biomaterial-based therapeutic strategies have been developed to repair SCI by bridging spinal cord lesions. However, constructing a favorable biophysical microenvironment with biomaterials for spinal cord regeneration remains challenging because of the unmatched mechanical and electrical transmission properties with native spinal cords and the supra- or subtherapeutic dose release of biological molecules independent of SCI activity. Herein, we developed a new hydrogel with mechanical properties and conductivities comparable to those of native spinal cords by controlling gelatin and PPy concentrations. To endow the hydrogel with a biological function, glutathione (GSH) was conjugated on the hydrogel through gelatin-derived amine groups and GSH-derived sulfhydryl groups to prepare an MMP-responsive hydrogel with a recombinant protein, GST-TIMP-bFGF. The MMP-responsive conductive hydrogel could release bFGF on-demand in response to the SCI microenvironment and provide a favorable biophysical microenvironment with comparable mechanical and electrical properties to native spinal cords. In SCI model rats, the MMP-responsive bionic mechanical and conductive hydrogel could inhibit MMPs levels, promote axon regeneration and angiogenesis, and improve locomotion function recovery after SCI.
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