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Investigating the Dosimetric Characteristics of Microbeam Radiation Treatment

BACKGROUND: High-radiation therapeutic gain could be achieved by the modern technique of microbeam radiation treatment (MRT). The aim of this study was to investigate the dosimetric properties of MRT. METHODS: The EGSnrc Monte Carlo (MC) code system was used to transport photons and electrons in MRT...

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Autores principales: Zabihzadeh, Mansour, Rabiei, Atefeh, Shahbazian, Hojattollah, Razmjoo, Sasan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Wolters Kluwer - Medknow 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8043115/
https://www.ncbi.nlm.nih.gov/pubmed/34026590
http://dx.doi.org/10.4103/jmss.JMSS_12_19
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author Zabihzadeh, Mansour
Rabiei, Atefeh
Shahbazian, Hojattollah
Razmjoo, Sasan
author_facet Zabihzadeh, Mansour
Rabiei, Atefeh
Shahbazian, Hojattollah
Razmjoo, Sasan
author_sort Zabihzadeh, Mansour
collection PubMed
description BACKGROUND: High-radiation therapeutic gain could be achieved by the modern technique of microbeam radiation treatment (MRT). The aim of this study was to investigate the dosimetric properties of MRT. METHODS: The EGSnrc Monte Carlo (MC) code system was used to transport photons and electrons in MRT. The mono-energetic beams (1 cm × 1 cm array) of 50, 100, and 150 keV and the spectrum photon beam (European Synchrotron Radiation Facility [ESRF]) were modeled to transport through multislit collimators with the aperture's widths of 25 and 50 μm and the center-to-center (c-t-c) distance between two adjacent microbeams (MBs) of 200 μm. The calculated phase spaces at the upper surface of water phantom (1 cm × 1 cm) were implemented in DOSXYZnrc code to calculate the percentage depth dose (PDD), the dose profile curves (in depths of 0–1, 1–2, and 3–4 cm), and the peak-to-valley dose ratios (PVDRs). RESULTS: The PDD, dose profile curves, and PVDRs were calculated for different effective parameters. The more flatness of lateral dose profile was obtained for the ESRF spectrum MB. With constant c-t-c distance, an increase in the MB size increased the peak and valley dose; simultaneously, the PVDR was larger for the 25 μm MB (33.5) compared to 50 μm MB (21.9) beam, due to the decreased scattering photons followed to the lower overlapping of the adjacent MBs. An increase in the depth decreased the PVDRs (i.e., 54.9 in depth of 0–1 cm). CONCLUSION: Our MC model of MRT successfully calculated the effect of dosimetric parameters including photon's energy, beam width, and depth to estimate the dose distribution.
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spelling pubmed-80431152021-05-21 Investigating the Dosimetric Characteristics of Microbeam Radiation Treatment Zabihzadeh, Mansour Rabiei, Atefeh Shahbazian, Hojattollah Razmjoo, Sasan J Med Signals Sens Original Article BACKGROUND: High-radiation therapeutic gain could be achieved by the modern technique of microbeam radiation treatment (MRT). The aim of this study was to investigate the dosimetric properties of MRT. METHODS: The EGSnrc Monte Carlo (MC) code system was used to transport photons and electrons in MRT. The mono-energetic beams (1 cm × 1 cm array) of 50, 100, and 150 keV and the spectrum photon beam (European Synchrotron Radiation Facility [ESRF]) were modeled to transport through multislit collimators with the aperture's widths of 25 and 50 μm and the center-to-center (c-t-c) distance between two adjacent microbeams (MBs) of 200 μm. The calculated phase spaces at the upper surface of water phantom (1 cm × 1 cm) were implemented in DOSXYZnrc code to calculate the percentage depth dose (PDD), the dose profile curves (in depths of 0–1, 1–2, and 3–4 cm), and the peak-to-valley dose ratios (PVDRs). RESULTS: The PDD, dose profile curves, and PVDRs were calculated for different effective parameters. The more flatness of lateral dose profile was obtained for the ESRF spectrum MB. With constant c-t-c distance, an increase in the MB size increased the peak and valley dose; simultaneously, the PVDR was larger for the 25 μm MB (33.5) compared to 50 μm MB (21.9) beam, due to the decreased scattering photons followed to the lower overlapping of the adjacent MBs. An increase in the depth decreased the PVDRs (i.e., 54.9 in depth of 0–1 cm). CONCLUSION: Our MC model of MRT successfully calculated the effect of dosimetric parameters including photon's energy, beam width, and depth to estimate the dose distribution. Wolters Kluwer - Medknow 2021-01-30 /pmc/articles/PMC8043115/ /pubmed/34026590 http://dx.doi.org/10.4103/jmss.JMSS_12_19 Text en Copyright: © 2021 Journal of Medical Signals & Sensors 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
Zabihzadeh, Mansour
Rabiei, Atefeh
Shahbazian, Hojattollah
Razmjoo, Sasan
Investigating the Dosimetric Characteristics of Microbeam Radiation Treatment
title Investigating the Dosimetric Characteristics of Microbeam Radiation Treatment
title_full Investigating the Dosimetric Characteristics of Microbeam Radiation Treatment
title_fullStr Investigating the Dosimetric Characteristics of Microbeam Radiation Treatment
title_full_unstemmed Investigating the Dosimetric Characteristics of Microbeam Radiation Treatment
title_short Investigating the Dosimetric Characteristics of Microbeam Radiation Treatment
title_sort investigating the dosimetric characteristics of microbeam radiation treatment
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8043115/
https://www.ncbi.nlm.nih.gov/pubmed/34026590
http://dx.doi.org/10.4103/jmss.JMSS_12_19
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