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HyperArc(TM) Dosimetric Validation for Multiple Targets Using Ionization Chamber and RT-100 Polymer Gel

Multiple brain metastases single-isocenter stereotactic radiosurgery (SRS) treatment is increasingly employed in radiotherapy department. Before its use in clinical routine, it is recommended to perform end-to-end tests. In this work, we report the results of five HyperArc(TM) treatment plans obtain...

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Autores principales: Zirone, Lucia, Bonanno, Elisa, Borzì, Giuseppina Rita, Cavalli, Nina, D’Anna, Alessia, Galvagno, Rosaria, Girlando, Andrea, Gueli, Anna Maria, Pace, Martina, Stella, Giuseppe, Marino, Carmelo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9407338/
https://www.ncbi.nlm.nih.gov/pubmed/36005082
http://dx.doi.org/10.3390/gels8080481
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author Zirone, Lucia
Bonanno, Elisa
Borzì, Giuseppina Rita
Cavalli, Nina
D’Anna, Alessia
Galvagno, Rosaria
Girlando, Andrea
Gueli, Anna Maria
Pace, Martina
Stella, Giuseppe
Marino, Carmelo
author_facet Zirone, Lucia
Bonanno, Elisa
Borzì, Giuseppina Rita
Cavalli, Nina
D’Anna, Alessia
Galvagno, Rosaria
Girlando, Andrea
Gueli, Anna Maria
Pace, Martina
Stella, Giuseppe
Marino, Carmelo
author_sort Zirone, Lucia
collection PubMed
description Multiple brain metastases single-isocenter stereotactic radiosurgery (SRS) treatment is increasingly employed in radiotherapy department. Before its use in clinical routine, it is recommended to perform end-to-end tests. In this work, we report the results of five HyperArc(TM) treatment plans obtained by both ionization chamber (IC) and polymer gel. The end-to-end tests were performed using a water equivalent Mobius Verification Phantom(TM) (MVP) and a 3D-printed anthropomorphic head phantom PseudoPatient(®) (PP) (RTsafe P.C., Athens, Greece); 2D and 3D dose distributions were evaluated on the PP phantom using polymer gel (RTsafe). Gels were read by 1.5T magnetic resonance imaging (MRI). Comparison between calculated and measured distributions was performed using gamma index passing rate evaluation by different criteria (5% 2 mm, 3% 2 mm, 5% 1 mm). Mean point dose differences of 1.01% [min −0.77%–max 2.89%] and 0.23% [min 0.01%–max 2.81%] were found in MVP and PP phantoms, respectively. For each target volume, the obtained results in terms of gamma index passing rate show an agreement >95% with 5% 2 mm and 3% 2 mm criteria for both 2D and 3D distributions. The obtained results confirmed that the use of a single isocenter for multiple lesions reduces the treatment time without compromising accuracy, even in the case of target volumes that are quite distant from the isocenter.
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spelling pubmed-94073382022-08-26 HyperArc(TM) Dosimetric Validation for Multiple Targets Using Ionization Chamber and RT-100 Polymer Gel Zirone, Lucia Bonanno, Elisa Borzì, Giuseppina Rita Cavalli, Nina D’Anna, Alessia Galvagno, Rosaria Girlando, Andrea Gueli, Anna Maria Pace, Martina Stella, Giuseppe Marino, Carmelo Gels Article Multiple brain metastases single-isocenter stereotactic radiosurgery (SRS) treatment is increasingly employed in radiotherapy department. Before its use in clinical routine, it is recommended to perform end-to-end tests. In this work, we report the results of five HyperArc(TM) treatment plans obtained by both ionization chamber (IC) and polymer gel. The end-to-end tests were performed using a water equivalent Mobius Verification Phantom(TM) (MVP) and a 3D-printed anthropomorphic head phantom PseudoPatient(®) (PP) (RTsafe P.C., Athens, Greece); 2D and 3D dose distributions were evaluated on the PP phantom using polymer gel (RTsafe). Gels were read by 1.5T magnetic resonance imaging (MRI). Comparison between calculated and measured distributions was performed using gamma index passing rate evaluation by different criteria (5% 2 mm, 3% 2 mm, 5% 1 mm). Mean point dose differences of 1.01% [min −0.77%–max 2.89%] and 0.23% [min 0.01%–max 2.81%] were found in MVP and PP phantoms, respectively. For each target volume, the obtained results in terms of gamma index passing rate show an agreement >95% with 5% 2 mm and 3% 2 mm criteria for both 2D and 3D distributions. The obtained results confirmed that the use of a single isocenter for multiple lesions reduces the treatment time without compromising accuracy, even in the case of target volumes that are quite distant from the isocenter. MDPI 2022-07-31 /pmc/articles/PMC9407338/ /pubmed/36005082 http://dx.doi.org/10.3390/gels8080481 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Zirone, Lucia
Bonanno, Elisa
Borzì, Giuseppina Rita
Cavalli, Nina
D’Anna, Alessia
Galvagno, Rosaria
Girlando, Andrea
Gueli, Anna Maria
Pace, Martina
Stella, Giuseppe
Marino, Carmelo
HyperArc(TM) Dosimetric Validation for Multiple Targets Using Ionization Chamber and RT-100 Polymer Gel
title HyperArc(TM) Dosimetric Validation for Multiple Targets Using Ionization Chamber and RT-100 Polymer Gel
title_full HyperArc(TM) Dosimetric Validation for Multiple Targets Using Ionization Chamber and RT-100 Polymer Gel
title_fullStr HyperArc(TM) Dosimetric Validation for Multiple Targets Using Ionization Chamber and RT-100 Polymer Gel
title_full_unstemmed HyperArc(TM) Dosimetric Validation for Multiple Targets Using Ionization Chamber and RT-100 Polymer Gel
title_short HyperArc(TM) Dosimetric Validation for Multiple Targets Using Ionization Chamber and RT-100 Polymer Gel
title_sort hyperarc(tm) dosimetric validation for multiple targets using ionization chamber and rt-100 polymer gel
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9407338/
https://www.ncbi.nlm.nih.gov/pubmed/36005082
http://dx.doi.org/10.3390/gels8080481
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