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  4. Fabrication of anisotropic Cu ferrite-polymer coreshell nanoparticles for photodynamic ablation of cervical cancer cells
 
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Fabrication of anisotropic Cu ferrite-polymer coreshell nanoparticles for photodynamic ablation of cervical cancer cells

Journal
Nanomaterials
Journal Volume
10
Journal Issue
12
Pages
1-19
Date Issued
2020
Author(s)
Kuo S.-H
Wu P.-T
Huang J.-Y
Chiu C.-P
Yu J
Liao M.-Y.
JIASHING YU  
DOI
10.3390/nano10122429
URI
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85097431072&doi=10.3390%2fnano10122429&partnerID=40&md5=fc5518c03b9746abf730aa899a959582
https://scholars.lib.ntu.edu.tw/handle/123456789/576341
Abstract
In this work we developed methylene blue-immobilized copper-iron nanoparticles (MBCuFe NPs) through a facile one-step hydrothermal reaction to achieve a better phototherapeutic effect. The Fe/Cu ratio of the CuFe NPs was controllable by merely changing the loading amount of iron precursor concentration. The CuFe NPs could serve as a Fenton catalyst to convert hydrogen peroxide (H2O2) into reactive oxygen species (ROS), while the superparamagnetic properties also suggest magnetic resonance imaging (MRI) potential. Furthermore, the Food and Drug Administration (FDA)-approved MB photosensitizer could strongly adsorb onto the surface of CuFe NPs to facilitate the drug delivery into cells and improve the photodynamic therapy at 660 nm via significant generation of singlet oxygen species, leading to enhanced cancer cell-damaging efficacy. An MTT (thiazolyl blue tetrazolium bromide) assay proved the low cytotoxicity of the CuFe NPs to cervical cancer cells (HeLa cells), namely above 80% at 25 ppm of the sample dose. A slight dissolution of Cu and Fe ions from the CuFe NPs in an acidic environment was obtained, providing direct evidence for CuFe NPs being degradable without the risk of long-term retention in the body. Moreover, the tremendous photo-to-thermal conversion of CuFe NPs was examined, which might be combined with photodynamic therapy (PDT) for promising development in the depletion of cancer cells after a single pulse of deep-red light irradiation at high laser power. ? 2020 by the authors. Licensee MDPI, Basel, Switzerland.
Subjects
Bimetallic nanoparticles; Cancer treatment; Fenton reaction; Photodynamic therapy; Reactive oxygen species; Superparamagnetic nanoparticles
SDGs

[SDGs]SDG3

Type
journal article

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