重编程
化学
癌症治疗
活性氧
催化作用
葡萄糖氧化酶
纳米技术
癌细胞
氧化应激
细胞生物学
生物物理学
氧化磷酸化
NADPH氧化酶
级联反应
肿瘤微环境
激进的
纳米反应器
生物化学
限制
酶
调节器
微泡
表面改性
免疫系统
作者
Fangman Chen,Xiaochun Xie,Hanyao Huang,Ka Hong Wong,J R Liu,Hui Fang,S Q Wang,Jianfang Cao,Y R Tao,Mingqiang Li,Chao Yang,Wen Sun,Dan Shao,Yunlu Dai
摘要
ABSTRACT Mechanoenzymes, featuring catalytic activity controlled by mechanical stimuli, play key roles in maintaining metabolic order and cellular homeostasis. However, artificial nanozymes with strict spatiotemporal regulation are still rare, limiting their effectiveness in complex biological environments. Here, we introduce a mechanically regulated nanozyme (MRNZ) by integrating mechano‐responsive ferrocene (Fc) units into a flexible framework. Similar to natural enzymatic activation, acoustic shear forces cause sub‐nanostructural transformations of Fc units, leading to decreased electron density and reduced steric hindrance at Fe active sites, reinforcing metabolic peroxidase (POD)‐like activity. This mechanical activation enables precise modulation of metabolic reprogramming by controlled generation of low‐dose hydroxyl radicals (•OH) as second messengers, improving stem cells resilience to oxidative stress for safer and more effective therapeutic interventions. Using this mechanically regulated method, we encapsulated glucose oxidase (GOx) inside hollow MRNZ to create a multienzyme regulated nanoreactor (MRNZ@GOx) that orchestrates a cascade GOx‐POD reaction under ultrasound stimulation. Such a cascade reactive oxygen species generation in tumor microenvironments potentiates chemodynamic therapy combined with immune activation. Our work introduces a mechanically responsive strategy for regulating nanozyme activity, expanding the horizons of next‐generation remote and smart catalytic technologies for precise disease treatments.
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