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Estimation of relative biological effectiveness for boron neutron capture therapy using the PHITS code coupled with a microdosimetric kinetic model

The absorbed doses deposited by boron neutron capture therapy (BNCT) can be categorized into four components: α and (7)Li particles from the (10)B(n, α)(7)Li reaction, 0.54-MeV protons from the (14)N(n, p)(14)C reaction, the recoiled protons from the (1)H(n, n) (1)H reaction, and photons from the ne...

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Autores principales: Horiguchi, Hironori, Sato, Tatsuhiko, Kumada, Hiroaki, Yamamoto, Tetsuya, Sakae, Takeji
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4380055/
https://www.ncbi.nlm.nih.gov/pubmed/25428243
http://dx.doi.org/10.1093/jrr/rru109
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author Horiguchi, Hironori
Sato, Tatsuhiko
Kumada, Hiroaki
Yamamoto, Tetsuya
Sakae, Takeji
author_facet Horiguchi, Hironori
Sato, Tatsuhiko
Kumada, Hiroaki
Yamamoto, Tetsuya
Sakae, Takeji
author_sort Horiguchi, Hironori
collection PubMed
description The absorbed doses deposited by boron neutron capture therapy (BNCT) can be categorized into four components: α and (7)Li particles from the (10)B(n, α)(7)Li reaction, 0.54-MeV protons from the (14)N(n, p)(14)C reaction, the recoiled protons from the (1)H(n, n) (1)H reaction, and photons from the neutron beam and (1)H(n, γ)(2)H reaction. For evaluating the irradiation effect in tumors and the surrounding normal tissues in BNCT, it is of great importance to estimate the relative biological effectiveness (RBE) for each dose component in the same framework. We have, therefore, established a new method for estimating the RBE of all BNCT dose components on the basis of the microdosimetric kinetic model. This method employs the probability density of lineal energy, y, in a subcellular structure as the index for expressing RBE, which can be calculated using the microdosimetric function implemented in the particle transport simulation code (PHITS). The accuracy of this method was tested by comparing the calculated RBE values with corresponding measured data in a water phantom irradiated with an epithermal neutron beam. The calculation technique developed in this study will be useful for biological dose estimation in treatment planning for BNCT.
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spelling pubmed-43800552015-04-15 Estimation of relative biological effectiveness for boron neutron capture therapy using the PHITS code coupled with a microdosimetric kinetic model Horiguchi, Hironori Sato, Tatsuhiko Kumada, Hiroaki Yamamoto, Tetsuya Sakae, Takeji J Radiat Res Physics The absorbed doses deposited by boron neutron capture therapy (BNCT) can be categorized into four components: α and (7)Li particles from the (10)B(n, α)(7)Li reaction, 0.54-MeV protons from the (14)N(n, p)(14)C reaction, the recoiled protons from the (1)H(n, n) (1)H reaction, and photons from the neutron beam and (1)H(n, γ)(2)H reaction. For evaluating the irradiation effect in tumors and the surrounding normal tissues in BNCT, it is of great importance to estimate the relative biological effectiveness (RBE) for each dose component in the same framework. We have, therefore, established a new method for estimating the RBE of all BNCT dose components on the basis of the microdosimetric kinetic model. This method employs the probability density of lineal energy, y, in a subcellular structure as the index for expressing RBE, which can be calculated using the microdosimetric function implemented in the particle transport simulation code (PHITS). The accuracy of this method was tested by comparing the calculated RBE values with corresponding measured data in a water phantom irradiated with an epithermal neutron beam. The calculation technique developed in this study will be useful for biological dose estimation in treatment planning for BNCT. Oxford University Press 2015-03 2014-11-26 /pmc/articles/PMC4380055/ /pubmed/25428243 http://dx.doi.org/10.1093/jrr/rru109 Text en © The Author 2014. Published by Oxford University Press on behalf of The Japan Radiation Research Society and Japanese Society for Radiation Oncology.
spellingShingle Physics
Horiguchi, Hironori
Sato, Tatsuhiko
Kumada, Hiroaki
Yamamoto, Tetsuya
Sakae, Takeji
Estimation of relative biological effectiveness for boron neutron capture therapy using the PHITS code coupled with a microdosimetric kinetic model
title Estimation of relative biological effectiveness for boron neutron capture therapy using the PHITS code coupled with a microdosimetric kinetic model
title_full Estimation of relative biological effectiveness for boron neutron capture therapy using the PHITS code coupled with a microdosimetric kinetic model
title_fullStr Estimation of relative biological effectiveness for boron neutron capture therapy using the PHITS code coupled with a microdosimetric kinetic model
title_full_unstemmed Estimation of relative biological effectiveness for boron neutron capture therapy using the PHITS code coupled with a microdosimetric kinetic model
title_short Estimation of relative biological effectiveness for boron neutron capture therapy using the PHITS code coupled with a microdosimetric kinetic model
title_sort estimation of relative biological effectiveness for boron neutron capture therapy using the phits code coupled with a microdosimetric kinetic model
topic Physics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4380055/
https://www.ncbi.nlm.nih.gov/pubmed/25428243
http://dx.doi.org/10.1093/jrr/rru109
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