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PMID: 41814299 已发表 · epublish 英语

Self-disassembling diatomic nanocluster bomb unlock reciprocal synergistic multi-pathway cancer therapy.

Journal of nanobiotechnology ·第 24 卷 ·第 1 期 ·2026-03-11

Qi B, Xiao Z, Zhu Y, Tang S, Zhao Z, Chen G, Li R, Li Z

摘要

The emerging chemodynamic therapy (CDT), which leverages tumour microenvironment (TME)-specific conversion of H₂O₂ into cytotoxic reactive oxygen species (ROS), suffers from limited efficacy due to low-level endogenous H₂O₂, inefficient ROS generation, and oxidative stress adaptation. Herein, we develop self-reporting CuFe nanodetonators (CuFe NCs) as 'nanocluster bomb' to integrate multi-pathway therapeutics for enhanced cancer treatment. Such NCs encapsulate oxygen-vacancy-mediated bandgap engineered CuFe peroxides within TME-responsive shells, which triggers controllable release of peroxides into the tumour cells, enabling high-level endogenous H₂O₂. ROS generation is then amplified through the robust and sustained Cu-Fe dual redox cycling and laser-assisted photothermal effect. CuFe NCs enable trimodal therapy and significantly enhance therapeutic efficacy by 198.8%. Moreover, integrated with dihydrorhodamine 123 (DHR123) as a fluorescence self-reporter, the system allows dynamic intracellular ROS monitoring and precise activation of PTT/PDT. In vitro MDA-MB-468 cells and in vivo BALB/c nude mice validations demonstrate that CuFe NCs potentiate anticancer outcomes through downregulation of Fe-S cluster proteins, upregulation of iron metabolism proteins, and elevated ACSL4 protein levels. This study presents a multivalent dual metal ion-mediated bandgap engineering approach to amplify CDT efficacy and highlights the multi-mechanistic potential of CuFe-based nanotherapeutics.

关键词
Fenton catalysis Metal ions Multimodal therapy Nanomaterials
文献信息
期刊
Journal of nanobiotechnology
期刊简称
J Nanobiotechnology
ISSN
1477-3155
发表日期
2026-03-11
语言
英语
国家/地区
England
NLM ID
101152208
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