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Monte Carlo Study on Dose Distributions Around (192)Ir, (169)Yb, and (125)I Brachytherapy Sources Using EGSnrc-based egs_brachy User-code

INTRODUCTION: As per the recommendations of the American Association of Physicists in Medicine Task Group 43, Monte Carlo (MC) investigators should reproduce previously published dose distributions whenever new features of the code are explored. The purpose of the present study is to benchmark the T...

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Autores principales: Mishra, Subhalaxmi, Mishra, Bibekananda, Selvam, T. Palani, Deshpande, Sudesh, Pathan, Munir Shabbir, Kumar, Rajesh
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Wolters Kluwer - Medknow 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9847004/
https://www.ncbi.nlm.nih.gov/pubmed/36684701
http://dx.doi.org/10.4103/jmp.jmp_16_22
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author Mishra, Subhalaxmi
Mishra, Bibekananda
Selvam, T. Palani
Deshpande, Sudesh
Pathan, Munir Shabbir
Kumar, Rajesh
author_facet Mishra, Subhalaxmi
Mishra, Bibekananda
Selvam, T. Palani
Deshpande, Sudesh
Pathan, Munir Shabbir
Kumar, Rajesh
author_sort Mishra, Subhalaxmi
collection PubMed
description INTRODUCTION: As per the recommendations of the American Association of Physicists in Medicine Task Group 43, Monte Carlo (MC) investigators should reproduce previously published dose distributions whenever new features of the code are explored. The purpose of the present study is to benchmark the TG-43 dosimetric parameters calculated using the new MC user-code egs_brachy of EGSnrc code system for three different radionuclides (192)Ir, (169)Yb, and (125)I which represent high-, intermediate-, and low-energy sources, respectively. MATERIALS AND METHODS: Brachytherapy sources investigated in this study are high-dose rate (HDR) (192)Ir VariSource (Model VS2000), (169)Yb HDR (Model 4140), and (125)I -low-dose-rate (LDR) (Model OcuProsta). The TG-43 dosimetric parameters such as air-kerma strength, S(k), dose rate constant, Λ, radial dose function, g(r) and anisotropy function, F(r,θ) and two-dimensional (2D) absorbed dose rate data (along-away table) are calculated in a cylindrical water phantom of mass density 0.998 g/cm(3) using the MC code egs_brachy. Dimensions of phantom considered for (192)Ir VS2000 and (169)Yb sources are 80 cm diameter ×80 cm height, whereas for (125)I OcuProsta source, 30 cm diameter ×30 cm height cylindrical water phantom is considered for MC calculations. RESULTS: The dosimetric parameters calculated using egs_brachy are compared against the values published in the literature. The calculated values of dose rate constants from this study agree with the published values within statistical uncertainties for all investigated sources. Good agreement is found between the egs_brachy calculated radial dose functions, g(r), anisotropy functions, and 2D dose rate data with the published values (within 2%) for the same phantom dimensions. For (192)Ir VS2000 source, difference of about 28% is observed in g(r) value at 18 cm from the source which is due to differences in the phantom dimensions. CONCLUSION: The study validates TG-43 dose parameters calculated using egs_brachy for (192)Ir, (169)Yb, and (125)I brachytherapy sources with the values published in the literature.
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spelling pubmed-98470042023-01-19 Monte Carlo Study on Dose Distributions Around (192)Ir, (169)Yb, and (125)I Brachytherapy Sources Using EGSnrc-based egs_brachy User-code Mishra, Subhalaxmi Mishra, Bibekananda Selvam, T. Palani Deshpande, Sudesh Pathan, Munir Shabbir Kumar, Rajesh J Med Phys Original Article INTRODUCTION: As per the recommendations of the American Association of Physicists in Medicine Task Group 43, Monte Carlo (MC) investigators should reproduce previously published dose distributions whenever new features of the code are explored. The purpose of the present study is to benchmark the TG-43 dosimetric parameters calculated using the new MC user-code egs_brachy of EGSnrc code system for three different radionuclides (192)Ir, (169)Yb, and (125)I which represent high-, intermediate-, and low-energy sources, respectively. MATERIALS AND METHODS: Brachytherapy sources investigated in this study are high-dose rate (HDR) (192)Ir VariSource (Model VS2000), (169)Yb HDR (Model 4140), and (125)I -low-dose-rate (LDR) (Model OcuProsta). The TG-43 dosimetric parameters such as air-kerma strength, S(k), dose rate constant, Λ, radial dose function, g(r) and anisotropy function, F(r,θ) and two-dimensional (2D) absorbed dose rate data (along-away table) are calculated in a cylindrical water phantom of mass density 0.998 g/cm(3) using the MC code egs_brachy. Dimensions of phantom considered for (192)Ir VS2000 and (169)Yb sources are 80 cm diameter ×80 cm height, whereas for (125)I OcuProsta source, 30 cm diameter ×30 cm height cylindrical water phantom is considered for MC calculations. RESULTS: The dosimetric parameters calculated using egs_brachy are compared against the values published in the literature. The calculated values of dose rate constants from this study agree with the published values within statistical uncertainties for all investigated sources. Good agreement is found between the egs_brachy calculated radial dose functions, g(r), anisotropy functions, and 2D dose rate data with the published values (within 2%) for the same phantom dimensions. For (192)Ir VS2000 source, difference of about 28% is observed in g(r) value at 18 cm from the source which is due to differences in the phantom dimensions. CONCLUSION: The study validates TG-43 dose parameters calculated using egs_brachy for (192)Ir, (169)Yb, and (125)I brachytherapy sources with the values published in the literature. Wolters Kluwer - Medknow 2022 2022-11-08 /pmc/articles/PMC9847004/ /pubmed/36684701 http://dx.doi.org/10.4103/jmp.jmp_16_22 Text en Copyright: © 2022 Journal of Medical Physics https://creativecommons.org/licenses/by-nc-sa/4.0/This is an open access journal, and articles are distributed under the terms of the Creative Commons Attribution-NonCommercial-ShareAlike 4.0 License, which allows others to remix, tweak, and build upon the work non-commercially, as long as appropriate credit is given and the new creations are licensed under the identical terms.
spellingShingle Original Article
Mishra, Subhalaxmi
Mishra, Bibekananda
Selvam, T. Palani
Deshpande, Sudesh
Pathan, Munir Shabbir
Kumar, Rajesh
Monte Carlo Study on Dose Distributions Around (192)Ir, (169)Yb, and (125)I Brachytherapy Sources Using EGSnrc-based egs_brachy User-code
title Monte Carlo Study on Dose Distributions Around (192)Ir, (169)Yb, and (125)I Brachytherapy Sources Using EGSnrc-based egs_brachy User-code
title_full Monte Carlo Study on Dose Distributions Around (192)Ir, (169)Yb, and (125)I Brachytherapy Sources Using EGSnrc-based egs_brachy User-code
title_fullStr Monte Carlo Study on Dose Distributions Around (192)Ir, (169)Yb, and (125)I Brachytherapy Sources Using EGSnrc-based egs_brachy User-code
title_full_unstemmed Monte Carlo Study on Dose Distributions Around (192)Ir, (169)Yb, and (125)I Brachytherapy Sources Using EGSnrc-based egs_brachy User-code
title_short Monte Carlo Study on Dose Distributions Around (192)Ir, (169)Yb, and (125)I Brachytherapy Sources Using EGSnrc-based egs_brachy User-code
title_sort monte carlo study on dose distributions around (192)ir, (169)yb, and (125)i brachytherapy sources using egsnrc-based egs_brachy user-code
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9847004/
https://www.ncbi.nlm.nih.gov/pubmed/36684701
http://dx.doi.org/10.4103/jmp.jmp_16_22
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