Hyaluronic acid methacryloyl hydrogel with sustained IL-10 release promotes macrophage M2 polarization and motor function after spinal cord injury

巨噬细胞极化 M2巨噬细胞 炎症 脊髓损伤 生物相容性 透明质酸 自愈水凝胶 巨噬细胞 药理学 体内 材料科学 化学 脊髓 免疫学 医学 体外 生物 生物化学 神经科学 解剖 生物技术 高分子化学 冶金
作者
Zhihua Wang,Denghui Li,Yanghao Wang,Ping Yuan,Wan Zhang,Yihe Zhang,Fei He,Jianyi Yang,Hangchuan Bi,Hao Duan
出处
期刊:Journal of Biomaterials Applications [SAGE Publishing]
卷期号:40 (1): 3-19 被引量:6
标识
DOI:10.1177/08853282251329302
摘要

(1)Background: Inflammation plays a key role in spinal cord injury (SCI), where excessive inflammatory responses exacerbate neural damage and hinder regeneration. Modulating macrophage polarization, particularly through the sustained release of IL-10 to promote the anti-inflammatory M2 phenotype, represents a promising strategy to mitigate inflammation. In this study we developed a Hyaluronic Acid Methacryloyl (HAMA) hydrogel capable of sustained IL-10 release to regulate macrophage polarization and explore its therapeutic potential. (2)Methods: A photo-curable HAMA hydrogel was synthesized via methacrylation and designed for the sustained release of IL-10. The structural and functional properties were characterized using NMR and FT-IR. In vitro assays, including immunofluorescence, flow cytometry, and Western blotting, were performed to evaluate IL-10’s effect on macrophage polarization. The anti-inflammatory and reparative effects of the hydrogel were further validated in a rat SCI. (3)Results: The HAMA hydrogel with sustained IL-10 release demonstrated excellent biocompatibility. It significantly promoted macrophage polarization to the anti-inflammatory M2 phenotype by increasing the expression of CD206. In vivo studies demonstrated that the group treated by HAMA with IL-10 exhibited recovery of sensory and motor functions, along with improvement of the inflammatory microenvironment at the site of injury. (4)Conclusion: The HAMA hydrogel with sustained IL-10 release effectively alleviates inflammation, enhances motor function after SCI, and serves as a promising immunomodulatory platform. This novel approach presents considerable potential for improving neural regeneration.
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