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Phantom design and dosimetric characterization for multiple simultaneous cell irradiations with active pencil beam scanning

A new phantom was designed for in vitro studies on cell lines in horizontal particle beams. The phantom enables simultaneous irradiation at multiple positions along the beam path. The main purpose of this study was the detailed dosimetric characterization of the phantom which consists of various het...

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Autores principales: Clausen, Monika, Khachonkham, Suphalak, Gruber, Sylvia, Kuess, Peter, Seemann, Rolf, Knäusl, Barbara, Mara, Elisabeth, Palmans, Hugo, Dörr, Wolfgang, Georg, Dietmar
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Springer Berlin Heidelberg 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6768893/
https://www.ncbi.nlm.nih.gov/pubmed/31541343
http://dx.doi.org/10.1007/s00411-019-00813-1
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author Clausen, Monika
Khachonkham, Suphalak
Gruber, Sylvia
Kuess, Peter
Seemann, Rolf
Knäusl, Barbara
Mara, Elisabeth
Palmans, Hugo
Dörr, Wolfgang
Georg, Dietmar
author_facet Clausen, Monika
Khachonkham, Suphalak
Gruber, Sylvia
Kuess, Peter
Seemann, Rolf
Knäusl, Barbara
Mara, Elisabeth
Palmans, Hugo
Dörr, Wolfgang
Georg, Dietmar
author_sort Clausen, Monika
collection PubMed
description A new phantom was designed for in vitro studies on cell lines in horizontal particle beams. The phantom enables simultaneous irradiation at multiple positions along the beam path. The main purpose of this study was the detailed dosimetric characterization of the phantom which consists of various heterogeneous structures. The dosimetric measurements described here were performed under non-reference conditions. The experiment involved a CT scan of the phantom, dose calculations performed with the treatment planning system (TPS) RayStation employing both the Pencil Beam (PB) and Monte Carlo (MC) algorithms, and proton beam delivery. Two treatment plans reflecting the typical target location for head and neck cancer and prostate cancer treatment were created. Absorbed dose to water and dose homogeneity were experimentally assessed within the phantom along the Bragg curve with ionization chambers (ICs) and EBT3 films. LET(d) distributions were obtained from the TPS. Measured depth dose distributions were in good agreement with the Monte Carlo-based TPS data. Absorbed dose calculated with the PB algorithm was 4% higher than the absorbed dose measured with ICs at the deepest measurement point along the spread-out Bragg peak. Results of experiments using melanoma (SKMel) cell line are also presented. The study suggested a pronounced correlation between the relative biological effectiveness (RBE) and LET(d), where higher LET(d) leads to elevated cell death and cell inactivation. Obtained RBE values ranged from 1.4 to 1.8 at the survival level of 10% (RBE(10)). It is concluded that dosimetric characterization of a phantom before its use for RBE experiments is essential, since a high dosimetric accuracy contributes to reliable RBE data and allows for a clearer differentiation between physical and biological uncertainties.
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spelling pubmed-67688932019-10-16 Phantom design and dosimetric characterization for multiple simultaneous cell irradiations with active pencil beam scanning Clausen, Monika Khachonkham, Suphalak Gruber, Sylvia Kuess, Peter Seemann, Rolf Knäusl, Barbara Mara, Elisabeth Palmans, Hugo Dörr, Wolfgang Georg, Dietmar Radiat Environ Biophys Original Article A new phantom was designed for in vitro studies on cell lines in horizontal particle beams. The phantom enables simultaneous irradiation at multiple positions along the beam path. The main purpose of this study was the detailed dosimetric characterization of the phantom which consists of various heterogeneous structures. The dosimetric measurements described here were performed under non-reference conditions. The experiment involved a CT scan of the phantom, dose calculations performed with the treatment planning system (TPS) RayStation employing both the Pencil Beam (PB) and Monte Carlo (MC) algorithms, and proton beam delivery. Two treatment plans reflecting the typical target location for head and neck cancer and prostate cancer treatment were created. Absorbed dose to water and dose homogeneity were experimentally assessed within the phantom along the Bragg curve with ionization chambers (ICs) and EBT3 films. LET(d) distributions were obtained from the TPS. Measured depth dose distributions were in good agreement with the Monte Carlo-based TPS data. Absorbed dose calculated with the PB algorithm was 4% higher than the absorbed dose measured with ICs at the deepest measurement point along the spread-out Bragg peak. Results of experiments using melanoma (SKMel) cell line are also presented. The study suggested a pronounced correlation between the relative biological effectiveness (RBE) and LET(d), where higher LET(d) leads to elevated cell death and cell inactivation. Obtained RBE values ranged from 1.4 to 1.8 at the survival level of 10% (RBE(10)). It is concluded that dosimetric characterization of a phantom before its use for RBE experiments is essential, since a high dosimetric accuracy contributes to reliable RBE data and allows for a clearer differentiation between physical and biological uncertainties. Springer Berlin Heidelberg 2019-09-20 2019 /pmc/articles/PMC6768893/ /pubmed/31541343 http://dx.doi.org/10.1007/s00411-019-00813-1 Text en © The Author(s) 2019 Open AccessThis article is distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made.
spellingShingle Original Article
Clausen, Monika
Khachonkham, Suphalak
Gruber, Sylvia
Kuess, Peter
Seemann, Rolf
Knäusl, Barbara
Mara, Elisabeth
Palmans, Hugo
Dörr, Wolfgang
Georg, Dietmar
Phantom design and dosimetric characterization for multiple simultaneous cell irradiations with active pencil beam scanning
title Phantom design and dosimetric characterization for multiple simultaneous cell irradiations with active pencil beam scanning
title_full Phantom design and dosimetric characterization for multiple simultaneous cell irradiations with active pencil beam scanning
title_fullStr Phantom design and dosimetric characterization for multiple simultaneous cell irradiations with active pencil beam scanning
title_full_unstemmed Phantom design and dosimetric characterization for multiple simultaneous cell irradiations with active pencil beam scanning
title_short Phantom design and dosimetric characterization for multiple simultaneous cell irradiations with active pencil beam scanning
title_sort phantom design and dosimetric characterization for multiple simultaneous cell irradiations with active pencil beam scanning
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6768893/
https://www.ncbi.nlm.nih.gov/pubmed/31541343
http://dx.doi.org/10.1007/s00411-019-00813-1
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