化学
普鲁士蓝
催化作用
生物物理学
活性氧
氧化还原
电子转移
激进的
谷胱甘肽
光化学
基质(水族馆)
细胞内
血红素
氧气
电子传输链
三磷酸腺苷
刺激
胞浆
一氧化氮
抗氧化剂
生物化学
金属有机骨架
羟基自由基
辅因子
生物能学
电子顺磁共振
氧化磷酸化
纳米材料
作者
Wenting Li,Jian Jiang,Mengshu Xu,Menghan Liu,Yao Meng,Chunyu Yang,Zhuoran Yang,Lei Wang,Wei Guo
标识
DOI:10.1016/j.nanoms.2026.04.008
摘要
Multi-enzyme nanozymes that integrate catalytic regulation and physical stimulation are highly desirable for efficient ferroptosis therapy. This study reports a hollow Cu–Mn Prussian blue nanozyme (CMP) that couples multi-enzyme activity with ultrasound (U) responsiveness for redox-activated tumor therapy. The incorporation of Cu creates a mixed-valence catalytic network that facilitates rapid electron transfer and synergistic peroxidase-, catalase-, and glutathione (GSH) oxidase-like reactions. The hollow architecture improves mass diffusion and substrate accessibility, whereas U irradiation accelerates charge separation and exposes the internal active sites, leading to amplified hydroxyl radical (•OH) generation, GSH depletion, and O 2 production. Furthermore, the mitochondrial respiration inhibitor atovaquone is integrated to form a composite system (CMPA), which disrupts electron transport and adenosine triphosphate synthesis, thereby increasing intracellular O 2 availability and reinforcing reactive oxygen species accumulation. Consequently, CMPA + U achieved a 90.9% tumor suppression rate without systemic toxicity. Overall, this study establishes a general strategy for constructing U-responsive redox-catalytic nanozymes that couple multi-enzyme catalysis with ferroptosis-immune synergistic therapy.
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