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Complete patient exposure during paediatric brain cancer treatment for photon and proton therapy techniques including imaging procedures

BACKGROUND: In radiotherapy, especially when treating children, minimising exposure of healthy tissue can prevent the development of adverse outcomes, including second cancers. In this study we propose a validated Monte Carlo framework to evaluate the complete patient exposure during paediatric brai...

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Autores principales: De Saint-Hubert, Marijke, Boissonnat, Guillaume, Schneider, Uwe, Bäumer, Christian, Verbeek, Nico, Esser, Johannes, Wulff, Jörg, Stuckmann, Florian, Suesselbeck, Finja, Nabha, Racell, Dabin, Jérémie, Vasi, Fabiano, Radonic, Stephan, Rodriguez, Miguel, Simon, Anne Catherine, Journy, Neige, Timmermann, Beate, Thierry-Chef, Isabelle, Brualla, Lorenzo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10546320/
https://www.ncbi.nlm.nih.gov/pubmed/37795436
http://dx.doi.org/10.3389/fonc.2023.1222800
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author De Saint-Hubert, Marijke
Boissonnat, Guillaume
Schneider, Uwe
Bäumer, Christian
Verbeek, Nico
Esser, Johannes
Wulff, Jörg
Stuckmann, Florian
Suesselbeck, Finja
Nabha, Racell
Dabin, Jérémie
Vasi, Fabiano
Radonic, Stephan
Rodriguez, Miguel
Simon, Anne Catherine
Journy, Neige
Timmermann, Beate
Thierry-Chef, Isabelle
Brualla, Lorenzo
author_facet De Saint-Hubert, Marijke
Boissonnat, Guillaume
Schneider, Uwe
Bäumer, Christian
Verbeek, Nico
Esser, Johannes
Wulff, Jörg
Stuckmann, Florian
Suesselbeck, Finja
Nabha, Racell
Dabin, Jérémie
Vasi, Fabiano
Radonic, Stephan
Rodriguez, Miguel
Simon, Anne Catherine
Journy, Neige
Timmermann, Beate
Thierry-Chef, Isabelle
Brualla, Lorenzo
author_sort De Saint-Hubert, Marijke
collection PubMed
description BACKGROUND: In radiotherapy, especially when treating children, minimising exposure of healthy tissue can prevent the development of adverse outcomes, including second cancers. In this study we propose a validated Monte Carlo framework to evaluate the complete patient exposure during paediatric brain cancer treatment. MATERIALS AND METHODS: Organ doses were calculated for treatment of a diffuse midline glioma (50.4 Gy with 1.8 Gy per fraction) on a 5-year-old anthropomorphic phantom with 3D-conformal radiotherapy, intensity modulated radiotherapy (IMRT), volumetric modulated arc therapy (VMAT) and intensity modulated pencil beam scanning (PBS) proton therapy. Doses from computed tomography (CT) for planning and on-board imaging for positioning (kV-cone beam CT and X-ray imaging) accounted for the estimate of the exposure of the patient including imaging therapeutic dose. For dose calculations we used validated Monte Carlo-based tools (PRIMO, TOPAS, PENELOPE), while lifetime attributable risk (LAR) was estimated from dose-response relationships for cancer induction, proposed by Schneider et al. RESULTS: Out-of-field organ dose equivalent data of proton therapy are lower, with doses between 0.6 mSv (testes) and 120 mSv (thyroid), when compared to photon therapy revealing the highest out-of-field doses for IMRT ranging between 43 mSv (testes) and 575 mSv (thyroid). Dose delivered by CT ranged between 0.01 mSv (testes) and 72 mSv (scapula) while a single imaging positioning ranged between 2 (μ)Sv (testes) and 1.3 mSv (thyroid) for CBCT and 0.03 (μ)Sv (testes) and 48 (μ)Sv (scapula) for X-ray. Adding imaging dose from CT and daily CBCT to the therapeutic demonstrated an important contribution of imaging to the overall radiation burden in the course of treatment, which is subsequently used to predict the LAR, for selected organs. CONCLUSION: The complete patient exposure during paediatric brain cancer treatment was estimated by combining the results from different Monte Carlo-based dosimetry tools, showing that proton therapy allows significant reduction of the out-of-field doses and secondary cancer risk in selected organs.
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spelling pubmed-105463202023-10-04 Complete patient exposure during paediatric brain cancer treatment for photon and proton therapy techniques including imaging procedures De Saint-Hubert, Marijke Boissonnat, Guillaume Schneider, Uwe Bäumer, Christian Verbeek, Nico Esser, Johannes Wulff, Jörg Stuckmann, Florian Suesselbeck, Finja Nabha, Racell Dabin, Jérémie Vasi, Fabiano Radonic, Stephan Rodriguez, Miguel Simon, Anne Catherine Journy, Neige Timmermann, Beate Thierry-Chef, Isabelle Brualla, Lorenzo Front Oncol Oncology BACKGROUND: In radiotherapy, especially when treating children, minimising exposure of healthy tissue can prevent the development of adverse outcomes, including second cancers. In this study we propose a validated Monte Carlo framework to evaluate the complete patient exposure during paediatric brain cancer treatment. MATERIALS AND METHODS: Organ doses were calculated for treatment of a diffuse midline glioma (50.4 Gy with 1.8 Gy per fraction) on a 5-year-old anthropomorphic phantom with 3D-conformal radiotherapy, intensity modulated radiotherapy (IMRT), volumetric modulated arc therapy (VMAT) and intensity modulated pencil beam scanning (PBS) proton therapy. Doses from computed tomography (CT) for planning and on-board imaging for positioning (kV-cone beam CT and X-ray imaging) accounted for the estimate of the exposure of the patient including imaging therapeutic dose. For dose calculations we used validated Monte Carlo-based tools (PRIMO, TOPAS, PENELOPE), while lifetime attributable risk (LAR) was estimated from dose-response relationships for cancer induction, proposed by Schneider et al. RESULTS: Out-of-field organ dose equivalent data of proton therapy are lower, with doses between 0.6 mSv (testes) and 120 mSv (thyroid), when compared to photon therapy revealing the highest out-of-field doses for IMRT ranging between 43 mSv (testes) and 575 mSv (thyroid). Dose delivered by CT ranged between 0.01 mSv (testes) and 72 mSv (scapula) while a single imaging positioning ranged between 2 (μ)Sv (testes) and 1.3 mSv (thyroid) for CBCT and 0.03 (μ)Sv (testes) and 48 (μ)Sv (scapula) for X-ray. Adding imaging dose from CT and daily CBCT to the therapeutic demonstrated an important contribution of imaging to the overall radiation burden in the course of treatment, which is subsequently used to predict the LAR, for selected organs. CONCLUSION: The complete patient exposure during paediatric brain cancer treatment was estimated by combining the results from different Monte Carlo-based dosimetry tools, showing that proton therapy allows significant reduction of the out-of-field doses and secondary cancer risk in selected organs. Frontiers Media S.A. 2023-09-19 /pmc/articles/PMC10546320/ /pubmed/37795436 http://dx.doi.org/10.3389/fonc.2023.1222800 Text en Copyright © 2023 De Saint-Hubert, Boissonnat, Schneider, Bäumer, Verbeek, Esser, Wulff, Stuckmann, Suesselbeck, Nabha, Dabin, Vasi, Radonic, Rodriguez, Simon, Journy, Timmermann, Thierry-Chef and Brualla https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Oncology
De Saint-Hubert, Marijke
Boissonnat, Guillaume
Schneider, Uwe
Bäumer, Christian
Verbeek, Nico
Esser, Johannes
Wulff, Jörg
Stuckmann, Florian
Suesselbeck, Finja
Nabha, Racell
Dabin, Jérémie
Vasi, Fabiano
Radonic, Stephan
Rodriguez, Miguel
Simon, Anne Catherine
Journy, Neige
Timmermann, Beate
Thierry-Chef, Isabelle
Brualla, Lorenzo
Complete patient exposure during paediatric brain cancer treatment for photon and proton therapy techniques including imaging procedures
title Complete patient exposure during paediatric brain cancer treatment for photon and proton therapy techniques including imaging procedures
title_full Complete patient exposure during paediatric brain cancer treatment for photon and proton therapy techniques including imaging procedures
title_fullStr Complete patient exposure during paediatric brain cancer treatment for photon and proton therapy techniques including imaging procedures
title_full_unstemmed Complete patient exposure during paediatric brain cancer treatment for photon and proton therapy techniques including imaging procedures
title_short Complete patient exposure during paediatric brain cancer treatment for photon and proton therapy techniques including imaging procedures
title_sort complete patient exposure during paediatric brain cancer treatment for photon and proton therapy techniques including imaging procedures
topic Oncology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10546320/
https://www.ncbi.nlm.nih.gov/pubmed/37795436
http://dx.doi.org/10.3389/fonc.2023.1222800
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