A conductive supramolecular hydrogel creates ideal endogenous niches to promote spinal cord injury repair

自愈水凝胶 生物相容性 神经发生 神经干细胞 神经组织工程 生物医学工程 脊髓损伤 体内 组织工程 材料科学 细胞生物学 脊髓 生物物理学 化学 纳米技术 干细胞 神经科学 生物 医学 高分子化学 冶金 生物技术
作者
Baoyu Yang,Chengzhen Liang,Di Chen,Feng Cheng,Yuang Zhang,Shaoke Wang,Jiawei Shu,Xianpeng Huang,Jingkai Wang,Kaishun Xia,Liwei Ying,Kesi Shi,Chenggui Wang,Xuhua Wang,Fangcai Li,Qian Zhao,Qixin Chen
出处
期刊:Bioactive Materials [Elsevier]
卷期号:15: 103-119 被引量:27
标识
DOI:10.1016/j.bioactmat.2021.11.032
摘要

The current effective method for treatment of spinal cord injury (SCI) is to reconstruct the biological microenvironment by filling the injured cavity area and increasing neuronal differentiation of neural stem cells (NSCs) to repair SCI. However, the method is characterized by several challenges including irregular wounds, and mechanical and electrical mismatch of the material-tissue interface. In the current study, a unique and facile agarose/gelatin/polypyrrole (Aga/Gel/PPy, AGP3) hydrogel with similar conductivity and modulus as the spinal cord was developed by altering the concentration of Aga and PPy. The gelation occurred through non-covalent interactions, and the physically crosslinked features made the AGP3 hydrogels injectable. In vitro cultures showed that AGP3 hydrogel exhibited excellent biocompatibility, and promoted differentiation of NSCs toward neurons whereas it inhibited over-proliferation of astrocytes. The in vivo implanted AGP3 hydrogel completely covered the tissue defects and reduced injured cavity areas. In vivo studies further showed that the AGP3 hydrogel provided a biocompatible microenvironment for promoting endogenous neurogenesis rather than glial fibrosis formation, resulting in significant functional recovery. RNA sequencing analysis further indicated that AGP3 hydrogel significantly modulated expression of neurogenesis-related genes through intracellular Ca2+ signaling cascades. Overall, this supramolecular strategy produces AGP3 hydrogel that can be used as favorable biomaterials for SCI repair by filling the cavity and imitating the physiological properties of the spinal cord.
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