椎间盘
活性氧
细胞生物学
变性(医学)
化学
再生(生物学)
机制(生物学)
抗氧化剂
调解人
核心
生物物理学
炎症
一氧化氮
基质金属蛋白酶
细胞周期
促炎细胞因子
细胞
双重角色
组织修复
材料科学
椎间盘
细胞因子
氧化应激
间充质干细胞
细胞生长
铈
S-亚硝基谷胱甘肽
下调和上调
作者
Yanqiu Wang,Lu Tan,Yi Yang,Duan Hongli,Liu Chao,Jing Zhao,Yue Zhou,Changqing Li,Ming-Han Liu,Yanqiu Wang,Lu Tan,Yi Yang,Duan Hongli,Liu Chao,Jing Zhao,Yue Zhou,Changqing Li,Ming-Han Liu
标识
DOI:10.1038/s41467-025-66116-w
摘要
Intervertebral disc degeneration is a major cause of low back pain and is driven by a vicious cycle of reactive oxygen species (ROS), ferroptosis, and inflammation, afflicting millions of people worldwide. Breaking this cycle represents a significant therapeutic challenge. Here, we develop a ROS-responsive hydrogel loading a resident nanozyme system composed of nucleus pulposus cell membrane-coated black phosphorus@cerium oxide to disrupt this degenerative cascade. Specifically, the nanozyme exhibits a self-sustaining cerium redox cycle due to the incorporation of black phosphorus nanosheets into cerium oxide, conferring durable antioxidant capacity for scavenging ROS. Furthermore, it suppresses the inflammatory cytokine IL6 by inhibiting HuR-mediated mRNA stabilization, thereby blocking the pro-inflammatory and pro-ferroptotic IL6/STAT3 axis. Together, this dual mechanism enables our nanozyme-functionalized hydrogel to break the ROS-ferroptosis-inflammation feedback loop, thus effectively promoting structural and functional disc repair.
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