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Shaping Up Zn-Doped Magnetite Nanoparticles from Mono- and Bimetallic Oleates: The Impact of Zn Content, Fe Vacancies, and Morphology on Magnetic Hyperthermia Performance

[Image: see text] The currently existing magnetic hyperthermia treatments usually need to employ very large doses of magnetic nanoparticles (MNPs) and/or excessively high excitation conditions (H × f > 10(10) A/m s) to reach the therapeutic temperature range that triggers cancer cell death. To ma...

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Autores principales: Castellanos-Rubio, Idoia, Arriortua, Oihane, Marcano, Lourdes, Rodrigo, Irati, Iglesias-Rojas, Daniela, Barón, Ander, Olazagoitia-Garmendia, Ane, Olivi, Luca, Plazaola, Fernando, Fdez-Gubieda, M. Luisa, Castellanos-Rubio, Ainara, Garitaonandia, José S., Orue, Iñaki, Insausti, Maite
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8451613/
https://www.ncbi.nlm.nih.gov/pubmed/34556898
http://dx.doi.org/10.1021/acs.chemmater.0c04794
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author Castellanos-Rubio, Idoia
Arriortua, Oihane
Marcano, Lourdes
Rodrigo, Irati
Iglesias-Rojas, Daniela
Barón, Ander
Olazagoitia-Garmendia, Ane
Olivi, Luca
Plazaola, Fernando
Fdez-Gubieda, M. Luisa
Castellanos-Rubio, Ainara
Garitaonandia, José S.
Orue, Iñaki
Insausti, Maite
author_facet Castellanos-Rubio, Idoia
Arriortua, Oihane
Marcano, Lourdes
Rodrigo, Irati
Iglesias-Rojas, Daniela
Barón, Ander
Olazagoitia-Garmendia, Ane
Olivi, Luca
Plazaola, Fernando
Fdez-Gubieda, M. Luisa
Castellanos-Rubio, Ainara
Garitaonandia, José S.
Orue, Iñaki
Insausti, Maite
author_sort Castellanos-Rubio, Idoia
collection PubMed
description [Image: see text] The currently existing magnetic hyperthermia treatments usually need to employ very large doses of magnetic nanoparticles (MNPs) and/or excessively high excitation conditions (H × f > 10(10) A/m s) to reach the therapeutic temperature range that triggers cancer cell death. To make this anticancer therapy truly minimally invasive, it is crucial the development of improved chemical routes that give rise to monodisperse MNPs with high saturation magnetization and negligible dipolar interactions. Herein, we present an innovative chemical route to synthesize Zn-doped magnetite NPs based on the thermolysis of two kinds of organometallic precursors: (i) a mixture of two monometallic oleates (FeOl + ZnOl), and (ii) a bimetallic iron-zinc oleate (Fe(3–y)Zn(y)Ol). These approaches have allowed tailoring the size (10–50 nm), morphology (spherical, cubic, and cuboctahedral), and zinc content (Zn(x)Fe(3–x)O(4), 0.05 < x < 0.25) of MNPs with high saturation magnetization (≥90 Am(2)/kg at RT). The oxidation state and the local symmetry of Zn(2+) and Fe(2+/3+) cations have been investigated by means of X-ray absorption near-edge structure (XANES) spectroscopy, while the Fe center distribution and vacancies within the ferrite lattice have been examined in detail through Mössbauer spectroscopy, which has led to an accurate determination of the stoichiometry in each sample. To achieve good biocompatibility and colloidal stability in physiological conditions, the Zn(x)Fe(3–x)O(4) NPs have been coated with high-molecular-weight poly(ethylene glycol) (PEG). The magnetothermal efficiency of Zn(x)Fe(3–x)O(4)@PEG samples has been systematically analyzed in terms of composition, size, and morphology, making use of the latest-generation AC magnetometer that is able to reach 90 mT. The heating capacity of Zn(0.06)Fe(2.9)(4)O(4) cuboctahedrons of 25 nm reaches a maximum value of 3652 W/g (at 40 kA/m and 605 kHz), but most importantly, they reach a highly satisfactory value (600 W/g) under strict safety excitation conditions (at 36 kA/m and 125 kHz). Additionally, the excellent heating power of the system is kept identical both immobilized in agar and in the cellular environment, proving the great potential and reliability of this platform for magnetic hyperthermia therapies.
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spelling pubmed-84516132021-09-21 Shaping Up Zn-Doped Magnetite Nanoparticles from Mono- and Bimetallic Oleates: The Impact of Zn Content, Fe Vacancies, and Morphology on Magnetic Hyperthermia Performance Castellanos-Rubio, Idoia Arriortua, Oihane Marcano, Lourdes Rodrigo, Irati Iglesias-Rojas, Daniela Barón, Ander Olazagoitia-Garmendia, Ane Olivi, Luca Plazaola, Fernando Fdez-Gubieda, M. Luisa Castellanos-Rubio, Ainara Garitaonandia, José S. Orue, Iñaki Insausti, Maite Chem Mater [Image: see text] The currently existing magnetic hyperthermia treatments usually need to employ very large doses of magnetic nanoparticles (MNPs) and/or excessively high excitation conditions (H × f > 10(10) A/m s) to reach the therapeutic temperature range that triggers cancer cell death. To make this anticancer therapy truly minimally invasive, it is crucial the development of improved chemical routes that give rise to monodisperse MNPs with high saturation magnetization and negligible dipolar interactions. Herein, we present an innovative chemical route to synthesize Zn-doped magnetite NPs based on the thermolysis of two kinds of organometallic precursors: (i) a mixture of two monometallic oleates (FeOl + ZnOl), and (ii) a bimetallic iron-zinc oleate (Fe(3–y)Zn(y)Ol). These approaches have allowed tailoring the size (10–50 nm), morphology (spherical, cubic, and cuboctahedral), and zinc content (Zn(x)Fe(3–x)O(4), 0.05 < x < 0.25) of MNPs with high saturation magnetization (≥90 Am(2)/kg at RT). The oxidation state and the local symmetry of Zn(2+) and Fe(2+/3+) cations have been investigated by means of X-ray absorption near-edge structure (XANES) spectroscopy, while the Fe center distribution and vacancies within the ferrite lattice have been examined in detail through Mössbauer spectroscopy, which has led to an accurate determination of the stoichiometry in each sample. To achieve good biocompatibility and colloidal stability in physiological conditions, the Zn(x)Fe(3–x)O(4) NPs have been coated with high-molecular-weight poly(ethylene glycol) (PEG). The magnetothermal efficiency of Zn(x)Fe(3–x)O(4)@PEG samples has been systematically analyzed in terms of composition, size, and morphology, making use of the latest-generation AC magnetometer that is able to reach 90 mT. The heating capacity of Zn(0.06)Fe(2.9)(4)O(4) cuboctahedrons of 25 nm reaches a maximum value of 3652 W/g (at 40 kA/m and 605 kHz), but most importantly, they reach a highly satisfactory value (600 W/g) under strict safety excitation conditions (at 36 kA/m and 125 kHz). Additionally, the excellent heating power of the system is kept identical both immobilized in agar and in the cellular environment, proving the great potential and reliability of this platform for magnetic hyperthermia therapies. American Chemical Society 2021-04-19 2021-05-11 /pmc/articles/PMC8451613/ /pubmed/34556898 http://dx.doi.org/10.1021/acs.chemmater.0c04794 Text en © 2021 American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Castellanos-Rubio, Idoia
Arriortua, Oihane
Marcano, Lourdes
Rodrigo, Irati
Iglesias-Rojas, Daniela
Barón, Ander
Olazagoitia-Garmendia, Ane
Olivi, Luca
Plazaola, Fernando
Fdez-Gubieda, M. Luisa
Castellanos-Rubio, Ainara
Garitaonandia, José S.
Orue, Iñaki
Insausti, Maite
Shaping Up Zn-Doped Magnetite Nanoparticles from Mono- and Bimetallic Oleates: The Impact of Zn Content, Fe Vacancies, and Morphology on Magnetic Hyperthermia Performance
title Shaping Up Zn-Doped Magnetite Nanoparticles from Mono- and Bimetallic Oleates: The Impact of Zn Content, Fe Vacancies, and Morphology on Magnetic Hyperthermia Performance
title_full Shaping Up Zn-Doped Magnetite Nanoparticles from Mono- and Bimetallic Oleates: The Impact of Zn Content, Fe Vacancies, and Morphology on Magnetic Hyperthermia Performance
title_fullStr Shaping Up Zn-Doped Magnetite Nanoparticles from Mono- and Bimetallic Oleates: The Impact of Zn Content, Fe Vacancies, and Morphology on Magnetic Hyperthermia Performance
title_full_unstemmed Shaping Up Zn-Doped Magnetite Nanoparticles from Mono- and Bimetallic Oleates: The Impact of Zn Content, Fe Vacancies, and Morphology on Magnetic Hyperthermia Performance
title_short Shaping Up Zn-Doped Magnetite Nanoparticles from Mono- and Bimetallic Oleates: The Impact of Zn Content, Fe Vacancies, and Morphology on Magnetic Hyperthermia Performance
title_sort shaping up zn-doped magnetite nanoparticles from mono- and bimetallic oleates: the impact of zn content, fe vacancies, and morphology on magnetic hyperthermia performance
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8451613/
https://www.ncbi.nlm.nih.gov/pubmed/34556898
http://dx.doi.org/10.1021/acs.chemmater.0c04794
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