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Hadron Therapy, Magnetic Nanoparticles and Hyperthermia: A Promising Combined Tool for Pancreatic Cancer Treatment

A combination of carbon ions/photons irradiation and hyperthermia as a novel therapeutic approach for the in-vitro treatment of pancreatic cancer BxPC3 cells is presented. The radiation doses used are 0–2 Gy for carbon ions and 0–7 Gy for 6 MV photons. Hyperthermia is realized via a standard heating...

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Autores principales: Brero, Francesca, Albino, Martin, Antoccia, Antonio, Arosio, Paolo, Avolio, Matteo, Berardinelli, Francesco, Bettega, Daniela, Calzolari, Paola, Ciocca, Mario, Corti, Maurizio, Facoetti, Angelica, Gallo, Salvatore, Groppi, Flavia, Guerrini, Andrea, Innocenti, Claudia, Lenardi, Cristina, Locarno, Silvia, Manenti, Simone, Marchesini, Renato, Mariani, Manuel, Orsini, Francesco, Pignoli, Emanuele, Sangregorio, Claudio, Veronese, Ivan, Lascialfari, Alessandro
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7600442/
https://www.ncbi.nlm.nih.gov/pubmed/32993001
http://dx.doi.org/10.3390/nano10101919
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author Brero, Francesca
Albino, Martin
Antoccia, Antonio
Arosio, Paolo
Avolio, Matteo
Berardinelli, Francesco
Bettega, Daniela
Calzolari, Paola
Ciocca, Mario
Corti, Maurizio
Facoetti, Angelica
Gallo, Salvatore
Groppi, Flavia
Guerrini, Andrea
Innocenti, Claudia
Lenardi, Cristina
Locarno, Silvia
Manenti, Simone
Marchesini, Renato
Mariani, Manuel
Orsini, Francesco
Pignoli, Emanuele
Sangregorio, Claudio
Veronese, Ivan
Lascialfari, Alessandro
author_facet Brero, Francesca
Albino, Martin
Antoccia, Antonio
Arosio, Paolo
Avolio, Matteo
Berardinelli, Francesco
Bettega, Daniela
Calzolari, Paola
Ciocca, Mario
Corti, Maurizio
Facoetti, Angelica
Gallo, Salvatore
Groppi, Flavia
Guerrini, Andrea
Innocenti, Claudia
Lenardi, Cristina
Locarno, Silvia
Manenti, Simone
Marchesini, Renato
Mariani, Manuel
Orsini, Francesco
Pignoli, Emanuele
Sangregorio, Claudio
Veronese, Ivan
Lascialfari, Alessandro
author_sort Brero, Francesca
collection PubMed
description A combination of carbon ions/photons irradiation and hyperthermia as a novel therapeutic approach for the in-vitro treatment of pancreatic cancer BxPC3 cells is presented. The radiation doses used are 0–2 Gy for carbon ions and 0–7 Gy for 6 MV photons. Hyperthermia is realized via a standard heating bath, assisted by magnetic fluid hyperthermia (MFH) that utilizes magnetic nanoparticles (MNPs) exposed to an alternating magnetic field of amplitude 19.5 mTesla and frequency 109.8 kHz. Starting from 37 °C, the temperature is gradually increased and the sample is kept at 42 °C for 30 min. For MFH, MNPs with a mean diameter of 19 nm and specific absorption rate of 110 ± 30 W/g(Fe3)o(4) coated with a biocompatible ligand to ensure stability in physiological media are used. Irradiation diminishes the clonogenic survival at an extent that depends on the radiation type, and its decrease is amplified both by the MNPs cellular uptake and the hyperthermia protocol. Significant increases in DNA double-strand breaks at 6 h are observed in samples exposed to MNP uptake, treated with 0.75 Gy carbon-ion irradiation and hyperthermia. The proposed experimental protocol, based on the combination of hadron irradiation and hyperthermia, represents a first step towards an innovative clinical option for pancreatic cancer.
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spelling pubmed-76004422020-11-01 Hadron Therapy, Magnetic Nanoparticles and Hyperthermia: A Promising Combined Tool for Pancreatic Cancer Treatment Brero, Francesca Albino, Martin Antoccia, Antonio Arosio, Paolo Avolio, Matteo Berardinelli, Francesco Bettega, Daniela Calzolari, Paola Ciocca, Mario Corti, Maurizio Facoetti, Angelica Gallo, Salvatore Groppi, Flavia Guerrini, Andrea Innocenti, Claudia Lenardi, Cristina Locarno, Silvia Manenti, Simone Marchesini, Renato Mariani, Manuel Orsini, Francesco Pignoli, Emanuele Sangregorio, Claudio Veronese, Ivan Lascialfari, Alessandro Nanomaterials (Basel) Article A combination of carbon ions/photons irradiation and hyperthermia as a novel therapeutic approach for the in-vitro treatment of pancreatic cancer BxPC3 cells is presented. The radiation doses used are 0–2 Gy for carbon ions and 0–7 Gy for 6 MV photons. Hyperthermia is realized via a standard heating bath, assisted by magnetic fluid hyperthermia (MFH) that utilizes magnetic nanoparticles (MNPs) exposed to an alternating magnetic field of amplitude 19.5 mTesla and frequency 109.8 kHz. Starting from 37 °C, the temperature is gradually increased and the sample is kept at 42 °C for 30 min. For MFH, MNPs with a mean diameter of 19 nm and specific absorption rate of 110 ± 30 W/g(Fe3)o(4) coated with a biocompatible ligand to ensure stability in physiological media are used. Irradiation diminishes the clonogenic survival at an extent that depends on the radiation type, and its decrease is amplified both by the MNPs cellular uptake and the hyperthermia protocol. Significant increases in DNA double-strand breaks at 6 h are observed in samples exposed to MNP uptake, treated with 0.75 Gy carbon-ion irradiation and hyperthermia. The proposed experimental protocol, based on the combination of hadron irradiation and hyperthermia, represents a first step towards an innovative clinical option for pancreatic cancer. MDPI 2020-09-25 /pmc/articles/PMC7600442/ /pubmed/32993001 http://dx.doi.org/10.3390/nano10101919 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Brero, Francesca
Albino, Martin
Antoccia, Antonio
Arosio, Paolo
Avolio, Matteo
Berardinelli, Francesco
Bettega, Daniela
Calzolari, Paola
Ciocca, Mario
Corti, Maurizio
Facoetti, Angelica
Gallo, Salvatore
Groppi, Flavia
Guerrini, Andrea
Innocenti, Claudia
Lenardi, Cristina
Locarno, Silvia
Manenti, Simone
Marchesini, Renato
Mariani, Manuel
Orsini, Francesco
Pignoli, Emanuele
Sangregorio, Claudio
Veronese, Ivan
Lascialfari, Alessandro
Hadron Therapy, Magnetic Nanoparticles and Hyperthermia: A Promising Combined Tool for Pancreatic Cancer Treatment
title Hadron Therapy, Magnetic Nanoparticles and Hyperthermia: A Promising Combined Tool for Pancreatic Cancer Treatment
title_full Hadron Therapy, Magnetic Nanoparticles and Hyperthermia: A Promising Combined Tool for Pancreatic Cancer Treatment
title_fullStr Hadron Therapy, Magnetic Nanoparticles and Hyperthermia: A Promising Combined Tool for Pancreatic Cancer Treatment
title_full_unstemmed Hadron Therapy, Magnetic Nanoparticles and Hyperthermia: A Promising Combined Tool for Pancreatic Cancer Treatment
title_short Hadron Therapy, Magnetic Nanoparticles and Hyperthermia: A Promising Combined Tool for Pancreatic Cancer Treatment
title_sort hadron therapy, magnetic nanoparticles and hyperthermia: a promising combined tool for pancreatic cancer treatment
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7600442/
https://www.ncbi.nlm.nih.gov/pubmed/32993001
http://dx.doi.org/10.3390/nano10101919
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