活性氧
急性肾损伤
氧化应激
纳米材料基催化剂
化学
细胞内
肾
氧化磷酸化
细胞生物学
芬顿反应
生物物理学
癌症研究
药理学
迷迭香酸
线粒体
催化作用
氧化损伤
细胞外
平衡
医学
生物相容性材料
氧化还原
肾功能
纳米技术
正电子发射断层摄影术
氧气
过氧化氢
作者
Yajie Zhao,Lu Hao,Jessica C. Hsu,Ying Peng,Zhisheng Luo,Shijun Xiang,Yilan Wang,Jonathan W. Engle,Xingchen Zhou,Shuo Hu,Peng Liu,Weibo Cai
标识
DOI:10.1016/j.bioactmat.2026.08.002
摘要
Acute kidney injury (AKI) is driven by a vicious interplay among excessive reactive oxygen species (ROS) accumulation and persistent renal hypoxia, which collectively disrupt redox homeostasis and exacerbate tubular injury. However, current therapeutic strategies primarily provide supportive care and fail to simultaneously modulate these interconnected pathological stressors. Herein, we report a cerium-doped rosmarinic acid nanosystem (RA/Ce NPs) formed via self-polymerization that catalytically eliminates ROS while simultaneously generating oxygen to reprogram the pathological renal microenvironment. The ultrasmall RA/Ce NPs enable efficient chelator-free 89 Zr radiolabeling for positron emission tomography (PET) imaging. Redox-switchable Ce 3+ /Ce 4+ centers confer robust catalytic activity and ROS-responsive biodegradation, ensuring potent antioxidation with safe clearance. RA/Ce NPs suppress intracellular ROS, preserve mitochondrial membrane potential, and protect against oxidative injury in vitro. In rhabdomyolysis-induced AKI mice, PET imaging reveals pronounced renal accumulation, while treatment markedly alleviates tubular damage, oxidative stress and hypoxia, leading to restored renal function with excellent biocompatibility. This work presents a natural-product-derived catalytic nanoplatform integrating antioxidation, oxygenation, imaging and biodegradability, offering a promising strategy for precision therapy of AKI.
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