炎症
串扰
伤口愈合
先天免疫系统
免疫系统
巨噬细胞极化
获得性免疫系统
M2巨噬细胞
巨噬细胞
免疫
细胞生物学
化学
免疫学
医学
生物材料
内生
药物输送
壳聚糖
药理学
自愈水凝胶
作者
Tong Shen,Hao Xu,Kai Dai,Jing Wang,Changsheng Liu
标识
DOI:10.1016/j.bioactmat.2025.09.044
摘要
Diabetic wounds struggle to heal due to chronic inflammation and immune dysregulation, in which regulatory T cells (Tregs) are critical for inflammation resolution and tissue repair. However, effective strategies for on-demand Treg recruitment remain elusive. Here, we innovatively integrated sulfated chitosan (SCS)-a chemically modified polysaccharide-with a microneedle structure to engineer an active immunomodulatory delivery system. The engineered sulfation domains confer synergistic cytokine-binding capacity to SCS, thereby equipping the material with enhanced functionality in immunomodulation. Mechanistically, SCS drives macrophage polarization via the IL-4/STAT6-PPARγ cascade, triggering CCL22-dependent Treg chemotaxis. The SCS establishes bidirectional macrophage-Treg crosstalk, enabling self-sustaining inflammation resolution through M2 phenotype stabilization and Treg-mediated feedback loops. This biomaterial-driven coordination between innate and adaptive immunity surpasses passive drug delivery approaches, effectively reducing inflammation and promoting wound healing without the need for exogenous biologics. Our work pioneers endogenous immunity harnessing through biomaterial design, offering a paradigm shift for diabetic wound therapeutics.
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