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An Acidity‐Unlocked Magnetic Nanoplatform Enables Self‐Boosting ROS Generation through Upregulation of Lactate for Imaging‐Guided Highly Specific Chemodynamic Therapy
- Source :
- Angewandte Chemie. 133:9648-9658
- Publication Year :
- 2021
- Publisher :
- Wiley, 2021.
-
Abstract
- Chemodynamic therapy is an emerging tumor therapeutic strategy. However, the anticancer effects are greatly limited by the strong acidity requirements for effective Fenton-like reaction, and the inevitably "off-target" toxicity. Herein, we develop an acidity-unlocked nanoplatform (FePt@FeOx @TAM-PEG) that can accurately perform the high-efficient and tumor-specific catalysis for anticancer treatment, through dual pathway of cyclic amplification strategy. Notably, the pH-responsive peculiarity of tamoxifen (TAM) drug allows for the catalytic activity of FePt@FeOx to be "turn-on" in acidic tumor microenvironments, while keeping silence in neutral condition. Importantly, the released TAM within cancer cells is able to inhibit mitochondrial complex I, leading to the upregulated lactate content and thereby the accumulated intracellular H+ , which can overcome the intrinsically insufficient acidity of tumor. Through the positive feedback loop, large amount of active FePt@FeOx nanocatalyzers are released and able to access to the endogenous H2 O2 , exerting the improved Fenton-like reaction within the more acidic condition. Finally, such smart nanoplatform enables self-boosting generation of reactive oxygen species (ROS) and induces strong intracellular oxidative stress, leading to the substantial anticancer outcomes in vivo, which may provide a new insight for tumor-specific cascade catalytic therapy and reducing the "off-target" toxicity to surrounding normal tissues.
- Subjects :
- Endogeny
Breast Neoplasms
010402 general chemistry
medicine.disease_cause
01 natural sciences
Catalysis
Mice
Downregulation and upregulation
In vivo
Cell Line, Tumor
medicine
Animals
Particle Size
Magnetite Nanoparticles
chemistry.chemical_classification
Tumor microenvironment
Reactive oxygen species
Molecular Structure
010405 organic chemistry
Chemistry
General Chemistry
General Medicine
Hydrogen-Ion Concentration
0104 chemical sciences
Cell biology
Up-Regulation
Oxidative Stress
Photochemotherapy
Cancer cell
Reactive Oxygen Species
Oxidative stress
Intracellular
Subjects
Details
- ISSN :
- 15213757 and 00448249
- Volume :
- 133
- Database :
- OpenAIRE
- Journal :
- Angewandte Chemie
- Accession number :
- edsair.doi.dedup.....6b6fd9a09dcdc728e2411d30ae89cd1b
- Full Text :
- https://doi.org/10.1002/ange.202014415