Cargando…

Grid Block Design Based on Monte Carlo Simulated Dosimetry, the Linear Quadratic and Hug–Kellerer Radiobiological Models

PURPOSE: The clinical efficacy of Grid therapy has been examined by several investigators. In this project, the hole diameter and hole spacing in Grid blocks were examined to determine the optimum parameters that give a therapeutic advantage. METHODS: The evaluations were performed using Monte Carlo...

Descripción completa

Detalles Bibliográficos
Autores principales: Gholami, Somayeh, Nedaie, Hassan Ali, Longo, Francesco, Ay, Mohammad Reza, Dini, Sharifeh A., Meigooni, Ali S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Medknow Publications & Media Pvt Ltd 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5744449/
https://www.ncbi.nlm.nih.gov/pubmed/29296035
http://dx.doi.org/10.4103/jmp.JMP_38_17
_version_ 1783288747357372416
author Gholami, Somayeh
Nedaie, Hassan Ali
Longo, Francesco
Ay, Mohammad Reza
Dini, Sharifeh A.
Meigooni, Ali S.
author_facet Gholami, Somayeh
Nedaie, Hassan Ali
Longo, Francesco
Ay, Mohammad Reza
Dini, Sharifeh A.
Meigooni, Ali S.
author_sort Gholami, Somayeh
collection PubMed
description PURPOSE: The clinical efficacy of Grid therapy has been examined by several investigators. In this project, the hole diameter and hole spacing in Grid blocks were examined to determine the optimum parameters that give a therapeutic advantage. METHODS: The evaluations were performed using Monte Carlo (MC) simulation and commonly used radiobiological models. The Geant4 MC code was used to simulate the dose distributions for 25 different Grid blocks with different hole diameters and center-to-center spacing. The therapeutic parameters of these blocks, namely, the therapeutic ratio (TR) and geometrical sparing factor (GSF) were calculated using two different radiobiological models, including the linear quadratic and Hug–Kellerer models. In addition, the ratio of the open to blocked area (ROTBA) is also used as a geometrical parameter for each block design. Comparisons of the TR, GSF, and ROTBA for all of the blocks were used to derive the parameters for an optimum Grid block with the maximum TR, minimum GSF, and optimal ROTBA. A sample of the optimum Grid block was fabricated at our institution. Dosimetric characteristics of this Grid block were measured using an ionization chamber in water phantom, Gafchromic film, and thermoluminescent dosimeters in Solid Water™ phantom materials. RESULTS: The results of these investigations indicated that Grid blocks with hole diameters between 1.00 and 1.25 cm and spacing of 1.7 or 1.8 cm have optimal therapeutic parameters (TR > 1.3 and GSF~0.90). The measured dosimetric characteristics of the optimum Grid blocks including dose profiles, percentage depth dose, dose output factor (cGy/MU), and valley-to-peak ratio were in good agreement (±5%) with the simulated data. CONCLUSION: In summary, using MC-based dosimetry, two radiobiological models, and previously published clinical data, we have introduced a method to design a Grid block with optimum therapeutic response. The simulated data were reproduced by experimental data.
format Online
Article
Text
id pubmed-5744449
institution National Center for Biotechnology Information
language English
publishDate 2017
publisher Medknow Publications & Media Pvt Ltd
record_format MEDLINE/PubMed
spelling pubmed-57444492018-01-02 Grid Block Design Based on Monte Carlo Simulated Dosimetry, the Linear Quadratic and Hug–Kellerer Radiobiological Models Gholami, Somayeh Nedaie, Hassan Ali Longo, Francesco Ay, Mohammad Reza Dini, Sharifeh A. Meigooni, Ali S. J Med Phys Original Article PURPOSE: The clinical efficacy of Grid therapy has been examined by several investigators. In this project, the hole diameter and hole spacing in Grid blocks were examined to determine the optimum parameters that give a therapeutic advantage. METHODS: The evaluations were performed using Monte Carlo (MC) simulation and commonly used radiobiological models. The Geant4 MC code was used to simulate the dose distributions for 25 different Grid blocks with different hole diameters and center-to-center spacing. The therapeutic parameters of these blocks, namely, the therapeutic ratio (TR) and geometrical sparing factor (GSF) were calculated using two different radiobiological models, including the linear quadratic and Hug–Kellerer models. In addition, the ratio of the open to blocked area (ROTBA) is also used as a geometrical parameter for each block design. Comparisons of the TR, GSF, and ROTBA for all of the blocks were used to derive the parameters for an optimum Grid block with the maximum TR, minimum GSF, and optimal ROTBA. A sample of the optimum Grid block was fabricated at our institution. Dosimetric characteristics of this Grid block were measured using an ionization chamber in water phantom, Gafchromic film, and thermoluminescent dosimeters in Solid Water™ phantom materials. RESULTS: The results of these investigations indicated that Grid blocks with hole diameters between 1.00 and 1.25 cm and spacing of 1.7 or 1.8 cm have optimal therapeutic parameters (TR > 1.3 and GSF~0.90). The measured dosimetric characteristics of the optimum Grid blocks including dose profiles, percentage depth dose, dose output factor (cGy/MU), and valley-to-peak ratio were in good agreement (±5%) with the simulated data. CONCLUSION: In summary, using MC-based dosimetry, two radiobiological models, and previously published clinical data, we have introduced a method to design a Grid block with optimum therapeutic response. The simulated data were reproduced by experimental data. Medknow Publications & Media Pvt Ltd 2017 /pmc/articles/PMC5744449/ /pubmed/29296035 http://dx.doi.org/10.4103/jmp.JMP_38_17 Text en Copyright: © 2017 Journal of Medical Physics http://creativecommons.org/licenses/by-nc-sa/3.0 This is an open access article distributed under the terms of the Creative Commons Attribution-NonCommercial-ShareAlike 3.0 License, which allows others to remix, tweak, and build upon the work non-commercially, as long as the author is credited and the new creations are licensed under the identical terms.
spellingShingle Original Article
Gholami, Somayeh
Nedaie, Hassan Ali
Longo, Francesco
Ay, Mohammad Reza
Dini, Sharifeh A.
Meigooni, Ali S.
Grid Block Design Based on Monte Carlo Simulated Dosimetry, the Linear Quadratic and Hug–Kellerer Radiobiological Models
title Grid Block Design Based on Monte Carlo Simulated Dosimetry, the Linear Quadratic and Hug–Kellerer Radiobiological Models
title_full Grid Block Design Based on Monte Carlo Simulated Dosimetry, the Linear Quadratic and Hug–Kellerer Radiobiological Models
title_fullStr Grid Block Design Based on Monte Carlo Simulated Dosimetry, the Linear Quadratic and Hug–Kellerer Radiobiological Models
title_full_unstemmed Grid Block Design Based on Monte Carlo Simulated Dosimetry, the Linear Quadratic and Hug–Kellerer Radiobiological Models
title_short Grid Block Design Based on Monte Carlo Simulated Dosimetry, the Linear Quadratic and Hug–Kellerer Radiobiological Models
title_sort grid block design based on monte carlo simulated dosimetry, the linear quadratic and hug–kellerer radiobiological models
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5744449/
https://www.ncbi.nlm.nih.gov/pubmed/29296035
http://dx.doi.org/10.4103/jmp.JMP_38_17
work_keys_str_mv AT gholamisomayeh gridblockdesignbasedonmontecarlosimulateddosimetrythelinearquadraticandhugkellererradiobiologicalmodels
AT nedaiehassanali gridblockdesignbasedonmontecarlosimulateddosimetrythelinearquadraticandhugkellererradiobiologicalmodels
AT longofrancesco gridblockdesignbasedonmontecarlosimulateddosimetrythelinearquadraticandhugkellererradiobiologicalmodels
AT aymohammadreza gridblockdesignbasedonmontecarlosimulateddosimetrythelinearquadraticandhugkellererradiobiologicalmodels
AT dinisharifeha gridblockdesignbasedonmontecarlosimulateddosimetrythelinearquadraticandhugkellererradiobiologicalmodels
AT meigoonialis gridblockdesignbasedonmontecarlosimulateddosimetrythelinearquadraticandhugkellererradiobiologicalmodels