纳米反应器
光热治疗
葡萄糖氧化酶
过氧化氢
催化作用
肿瘤微环境
活性氧
生物物理学
化学
过氧化氢酶
癌症研究
组合化学
纳米技术
材料科学
生物化学
肿瘤细胞
生物传感器
酶
纳米颗粒
生物
作者
Li Zhao,Jing Gao,Z T Sun,Jiayan Lv,Fangfang Liu,Pengfei Zhang,Yanyan Jiang
标识
DOI:10.1021/acsanm.4c06187
摘要
The primary challenges for nanozyme-mediated tumor catalytic therapy are the insufficient catalytic activity of nanozymes and inadequate endogenous hydrogen peroxide (H2O2) levels in the tumor microenvironment (TME). To address these challenges, FeMOF/Pt/GOx (FMPG), a TME-responsive cascade nanoreactor, was designed for photothermal-cascade catalytic antitumor therapy. FMPG comprises MIL-100(Fe), an iron-based metal–organic framework material, loaded with ultrasmall platinum nanoparticles (Pt NPs) and glucose oxidase (GOx). Within the TME, FMPG degrades in the presence of high phosphate concentrations, releasing GOx, Fe2+, and Pt NPs. GOx consumes glucose, reducing ATP levels in cells and inducing a starvation state in tumor cells. Subsequently, the H2O2 produced by GOx and overexpressed in tumor cells reacts with Fe2+ to generate hydroxyl radicals, facilitating cascade catalytic therapy. The Pt NPs exhibit catalase-like activity and catalyze the production of oxygen from H2O2, further enhancing starvation. Under 808 nm laser irradiation, the as-prepared composites generate localized heat, enabling effective photothermal therapy. This nanoreactor demonstrates efficient tumor inhibition by in situ consumption and production of compounds, promoting the development of precise synergetic cancer therapies with spatiotemporal controllability.
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