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Weak Magnetic Fields Enhance the Efficacy of Radiation Therapy

PURPOSE: The clinical efficacy of radiation therapy is mechanistically linked to ionization-induced free radicals that cause cell and tissue injury through direct and indirect mechanisms. Free radical reaction dynamics are influenced by many factors and can be manipulated by static weak magnetic fie...

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Autores principales: Iwamoto, Keisuke S., Sandstrom, Robert E., Bryan, Mark, Liu, Yue, Elgart, S. Robin, Sheng, Ke, Steinberg, Michael L., McBride, William H., Low, Daniel A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7966835/
https://www.ncbi.nlm.nih.gov/pubmed/33748547
http://dx.doi.org/10.1016/j.adro.2021.100645
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author Iwamoto, Keisuke S.
Sandstrom, Robert E.
Bryan, Mark
Liu, Yue
Elgart, S. Robin
Sheng, Ke
Steinberg, Michael L.
McBride, William H.
Low, Daniel A.
author_facet Iwamoto, Keisuke S.
Sandstrom, Robert E.
Bryan, Mark
Liu, Yue
Elgart, S. Robin
Sheng, Ke
Steinberg, Michael L.
McBride, William H.
Low, Daniel A.
author_sort Iwamoto, Keisuke S.
collection PubMed
description PURPOSE: The clinical efficacy of radiation therapy is mechanistically linked to ionization-induced free radicals that cause cell and tissue injury through direct and indirect mechanisms. Free radical reaction dynamics are influenced by many factors and can be manipulated by static weak magnetic fields (WMF) that perturb singlet-triplet state interconversion. Our study exploits this phenomenon to directly increase ionizing radiation (IR) dose absorption in tumors by combining WMF with radiation therapy as a new and effective method to improve treatment. METHODS AND MATERIALS: Coils were custom made to produce both homogeneous and gradient magnetic fields. The gradient coil enabled simultaneous in vitro assessment of free radical/reactive oxygen species reactivity across multiple field strengths from 6 to 66 G. First, increases in IR-induced free radical concentrations using oxidant-sensitive fluorescent dyes in a cell-free system were measured and verified. Next, human and murine cancer cell lines were evaluated in in vitro and in vivo models after exposure to clinically relevant doses of IR in combination with WMF. RESULTS: Cellular responses to IR and WMF were field strength and cell line dependent. WMF was able to enhance IR effects on reactive oxygen species formation, DNA double-strand break formation, cell death, and tumor growth. CONCLUSIONS: We demonstrate that the external presence of a magnetic field enhances radiation-induced cancer cell injury and death in vitro and in vivo. The effect extends beyond the timeframe when free radicals are induced in the presence of radiation into the window when endogenous free radicals are produced and therefore extends the applicability of this novel adjunct to cancer therapy in the context of radiation treatment.
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spelling pubmed-79668352021-03-19 Weak Magnetic Fields Enhance the Efficacy of Radiation Therapy Iwamoto, Keisuke S. Sandstrom, Robert E. Bryan, Mark Liu, Yue Elgart, S. Robin Sheng, Ke Steinberg, Michael L. McBride, William H. Low, Daniel A. Adv Radiat Oncol Scientific Article PURPOSE: The clinical efficacy of radiation therapy is mechanistically linked to ionization-induced free radicals that cause cell and tissue injury through direct and indirect mechanisms. Free radical reaction dynamics are influenced by many factors and can be manipulated by static weak magnetic fields (WMF) that perturb singlet-triplet state interconversion. Our study exploits this phenomenon to directly increase ionizing radiation (IR) dose absorption in tumors by combining WMF with radiation therapy as a new and effective method to improve treatment. METHODS AND MATERIALS: Coils were custom made to produce both homogeneous and gradient magnetic fields. The gradient coil enabled simultaneous in vitro assessment of free radical/reactive oxygen species reactivity across multiple field strengths from 6 to 66 G. First, increases in IR-induced free radical concentrations using oxidant-sensitive fluorescent dyes in a cell-free system were measured and verified. Next, human and murine cancer cell lines were evaluated in in vitro and in vivo models after exposure to clinically relevant doses of IR in combination with WMF. RESULTS: Cellular responses to IR and WMF were field strength and cell line dependent. WMF was able to enhance IR effects on reactive oxygen species formation, DNA double-strand break formation, cell death, and tumor growth. CONCLUSIONS: We demonstrate that the external presence of a magnetic field enhances radiation-induced cancer cell injury and death in vitro and in vivo. The effect extends beyond the timeframe when free radicals are induced in the presence of radiation into the window when endogenous free radicals are produced and therefore extends the applicability of this novel adjunct to cancer therapy in the context of radiation treatment. Elsevier 2021-01-16 /pmc/articles/PMC7966835/ /pubmed/33748547 http://dx.doi.org/10.1016/j.adro.2021.100645 Text en © 2021 The Author(s) http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Scientific Article
Iwamoto, Keisuke S.
Sandstrom, Robert E.
Bryan, Mark
Liu, Yue
Elgart, S. Robin
Sheng, Ke
Steinberg, Michael L.
McBride, William H.
Low, Daniel A.
Weak Magnetic Fields Enhance the Efficacy of Radiation Therapy
title Weak Magnetic Fields Enhance the Efficacy of Radiation Therapy
title_full Weak Magnetic Fields Enhance the Efficacy of Radiation Therapy
title_fullStr Weak Magnetic Fields Enhance the Efficacy of Radiation Therapy
title_full_unstemmed Weak Magnetic Fields Enhance the Efficacy of Radiation Therapy
title_short Weak Magnetic Fields Enhance the Efficacy of Radiation Therapy
title_sort weak magnetic fields enhance the efficacy of radiation therapy
topic Scientific Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7966835/
https://www.ncbi.nlm.nih.gov/pubmed/33748547
http://dx.doi.org/10.1016/j.adro.2021.100645
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