Quercetin-derived carbon dots-modified ZIF-8 and M2 macrophage-derived migrasomes-functionalized microenvironment-responsive nanocomposite hydrogel for osteoporotic bone defects regeneration

纳米复合材料 活性氧 化学 自愈水凝胶 再生(生物学) 透明质酸 骨愈合 材料科学 间质细胞 生物医学工程 促炎细胞因子 成骨细胞 生物物理学 细胞生物学 炎症 破骨细胞 抗氧化剂 氧化应激 骨形态发生蛋白2
作者
Han Yin,Yuguo Li,Yanbin Zhu,Zineng Yan,Yuanyuan Han,Fangyan Cheng,Jinglue Hu,Jiangtao Ma,Xin Xing,Cao Yang,Hongtao Tian,Wei Chen,Yingze Zhang
出处
期刊:Bioactive Materials [Elsevier BV]
卷期号:68: 1-26
标识
DOI:10.1016/j.bioactmat.2026.07.029
摘要

The impaired regenerative capacity of osteoporotic individuals poses a significant challenge to the repair of bone defects. In the osteoporotic microenvironment, low pH, excessive reactive oxygen species (ROS), and chronic inflammation create a self-perpetuating vicious cycle that impedes healing. However, conventional therapies fail to sustainably improve the damaged microenvironment. Here, a pH/ROS dual responsive nanocomposite hydrogel (Z-QCDs@M2-Migs@OHA-PP) was developed based on oxidized hyaluronic acid (OHA), phenylboronic acid-grafted ε-polylysine (PP), quercetin-derived carbon dots (QCDs) loaded ZIF-8 (Z-QCDs) and M2 macrophage-derived migrasomes (M2-Migs), which possesses intrinsic antioxidant and osteogenic differentiation-promoting capabilities. Due to the presence of dynamic. Schiff base bonds and boronate bonds, the hydrogel exhibited injectability and pH/ROS dual responsiveness. OHA-PP releases Z-QCDs and M2-Migs on demand in response to changes in pH and ROS levels. Z-QCDs exhibit strong antioxidant and nanozyme activity, capable of scavenging ROS, suppressing inflammatory responses, and promoting M2 macrophage polarization. Furthermore, the introduction of M2-Migs as an osteogenic activator further enhances the capacity for osteogenic differentiation. Transcriptomic and Western blot analyses revealed that the hydrogel promotes osteogenic differentiation by activating the PI3K-AKT signaling pathway. In a mouse osteoporotic bone defect model, the nanocomposite hydrogel effectively inhibited ferroptosis, modulated inflammation, and promoted new bone formation. Therefore, this hydrogel system, which combines therapeutic rationale with microenvironmental regulation, offers a promising strategy for the regeneration of osteoporotic bone defects.
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