材料科学
生物相容性
间充质干细胞
骨愈合
生物医学工程
成骨细胞
生物物理学
脚手架
活性氧
纳米技术
抗氧化剂
静电纺丝
自愈水凝胶
膜
骨整合
谷胱甘肽
仿生合成
氧化磷酸化
生物活性玻璃
NADPH氧化酶
组织工程
体外
骨髓
破骨细胞
作者
Zhenqian Sun,Juan Wang,Shidong Wang,Zhongjie Ji,刁成鹏,Tao Tang,Linyang Song,Xin Liu,Hongliang Wang,Yunhao You,Guangjun Jiao,Yunzhen Chen
摘要
ABSTRACT Treating infected bone defects remains a formidable clinical challenge due to robust bacterial antioxidant resistance and severe microenvironmental deterioration. Herein, an antibacterial biomimetic periosteum (ABP) is rationally engineered by in situ anchoring ultrasmall CaMoO 4 /Mo 3 N 2 heterojunctions onto a porous bioactive glass fiber membrane (CMO/MN) via a sol‐gel electrospinning and nitridation strategy. These hierarchical ABPs transform passive bone implants into active metabolic modulators. Under near‐infrared irradiation, the CaMoO 4 /Mo 3 N 2 engine initiates localized hyperthermia alongside a sophisticated multienzyme cascade. Specifically, peroxidase‐like activity generates a wide range of highly toxic reactive oxygen species, while intrinsic glutathione oxidase and L‐cysteine oxidase activities persistently deplete bacterial antioxidants, effectively dismantling fundamental oxidative defenses. In addition, catalase‐like activity continuously decomposes endogenous H 2 O 2 into O 2 , mitigating localized tissue hypoxia and inflammatory oxidative stress. Furthermore, this biomimetic three‐dimensional fiber network achieves a powerful osteogenic induction effect by continuously releasing therapeutic calcium ions and silicate ions. In vitro experiments have confirmed the excellent biocompatibility of ABPs and their ability to promote the osteogenic differentiation of bone marrow mesenchymal stem cells, while simultaneously exhibiting potent bactericidal activity against bacteria. Consistently, ABPs have also demonstrated superior therapeutic performance in the treatment of both uncomplicated bone defects and infection‐compromised bone defects.
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