纳米团簇
抗辐射性
化学
离解(化学)
密度泛函理论
电子转移
生物物理学
放射治疗
电子
催化作用
氧气
联轴节(管道)
肿瘤微环境
活性氧
纳米技术
级联
缺氧(环境)
纳米颗粒
辐射
肿瘤缺氧
材料科学
放射增敏剂
肿瘤消融
激进的
电子束处理
作者
Shuna Wang,Zejin Ju,Yingwu Wang,Yingwu Wang,Zijie Liu,X. Rosalind Wang,Hua Jiao,Minhua Cao,Yude Wang,Yude Wang,Wenyan Yin,Yuliang Zhao
出处
期刊:ACS Nano
[American Chemical Society]
日期:2026-03-30
卷期号:20 (14): 11254-11273
标识
DOI:10.1021/acsnano.6c00367
摘要
Nanozymes suffer from insufficient catalytic activity and sluggish electron transfer, while hypoxic tumor microenvironment (TME)-induced radioresistance and limited reactive oxygen species accumulation hinder radiotherapy efficacy. Existing nanozyme radiosensitizers often require high-dose radiotherapy or combined drugs to achieve only a modest efficacy. Herein, we report a Pt-anchored MoOx (MPP) nanozyme synthesized via a surface defect-ligand reduction strategy with Pt nanoclusters loading up to 34.39 ± 0.92 wt %. It features a gradient electron-transfer interface constructed by strong Pt–O–Mo interactions, which enables atomic-level integration of Pt0/Pt2+ nanoclusters with MoOx and the simultaneous introduction of oxygen vacancies and an interfacial electron pool. Density functional theory calculations confirm the interface upshifts MoOx’s d-band center, accelerates Mo → Pt electron transfer, and reduces the H2O2 dissociation barrier to 0.18 eV. Consequently, MPP achieves a catalase-like specific activity of 3884.53 U mg–1 (2-fold natural catalase, 7528-fold MnO2) and a turnover number (TON) of 25.7021 s–1. Additionally, MPP exhibits a quantitative factor for electron transfer efficiency of 1.75, exceeding reported nanozymes. In the acidic TME, MPP orchestrates a catalase/superoxide dismutase/oxidase cascade to relieve hypoxia and generate •O2–/1O2. Synergized with Pt’s high-Z effect, MPP amplifies the efficacy of 6 Gy with low-dose radiotherapy, achieving 75.24% tumor inhibition rate without inducing systemic toxicity. This gradient electron-transfer interface strategy provides a promising paradigm for high-efficacy, low-toxicity tumor-specific therapy.
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