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Small spot size versus large spot size: Effect on plan quality for lung cancer in pencil beam scanning proton therapy

PURPOSE: The purpose of the current study was to evaluate the impact of spot size on the interplay effect, plan robustness, and dose to the organs at risk for lung cancer plans in pencil beam scanning (PBS) proton therapy METHODS: The current retrospective study included 13 lung cancer patients. For...

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Detalles Bibliográficos
Autores principales: Rana, Suresh, Rosenfeld, Anatoly B.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8833272/
https://www.ncbi.nlm.nih.gov/pubmed/34989458
http://dx.doi.org/10.1002/acm2.13512
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author Rana, Suresh
Rosenfeld, Anatoly B.
author_facet Rana, Suresh
Rosenfeld, Anatoly B.
author_sort Rana, Suresh
collection PubMed
description PURPOSE: The purpose of the current study was to evaluate the impact of spot size on the interplay effect, plan robustness, and dose to the organs at risk for lung cancer plans in pencil beam scanning (PBS) proton therapy METHODS: The current retrospective study included 13 lung cancer patients. For each patient, small spot (∼3 mm) plans and large spot (∼8 mm) plans were generated. The Monte Carlo algorithm was used for both robust plan optimization and final dose calculations. Each plan was normalized, such that 99% of the clinical target volume (CTV) received 99% of the prescription dose. Interplay effect was evaluated for treatment delivery starting in two different breathing phases (T0 and T50). Plan robustness was investigated for 12 perturbed scenarios, which combined the isocenter shift and range uncertainty. The nominal and worst‐case scenario (WCS) results were recorded for each treatment plan. Equivalent uniform dose (EUD) and normal tissue complication probability (NTCP) were evaluated for the total lung, heart, and esophagus. RESULTS: In comparison to large spot plans, the WCS values of small spot plans at CTV D(95%), D(96%), D(97%), D(98%), and D(99%) were higher with the average differences of 2.2% (range, 0.3%–3.7%), 2.3% (range, 0.5%–4.0%), 2.6% (range, 0.6%–4.4%), 2.7% (range, 0.9%–5.2%), and 2.7% (range, 0.3%–6.0%), respectively. The nominal and WCS mean dose and EUD for the esophagus, heart, and total lung were higher in large spot plans. The difference in NTCP between large spot and small spot plans was up to 1.9% for the total lung, up to 0.3% for the heart, and up to 32.8% for the esophagus. For robustness acceptance criteria of CTV D(95%) ≥ 98% of the prescription dose, seven small spot plans had all 12 perturbed scenarios meeting the criteria, whereas, for 13 large spot plans, there were ≥2 scenarios failing to meet the criteria. Interplay results showed that, on average, the target coverage in large spot plans was higher by 1.5% and 0.4% in non‐volumetric and volumetric repainting plans, respectively. CONCLUSION: For robustly optimized PBS lung cancer plans in our study, a small spot machine resulted in a more robust CTV against the setup and range errors when compared to a large spot machine. In the absence of volumetric repainting, large spot PBS lung plans were more robust against the interplay effect. The use of a volumetric repainting technique in both small and large spot PBS lung plans led to comparable interplay target coverage.
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spelling pubmed-88332722022-02-14 Small spot size versus large spot size: Effect on plan quality for lung cancer in pencil beam scanning proton therapy Rana, Suresh Rosenfeld, Anatoly B. J Appl Clin Med Phys Radiation Oncology Physics PURPOSE: The purpose of the current study was to evaluate the impact of spot size on the interplay effect, plan robustness, and dose to the organs at risk for lung cancer plans in pencil beam scanning (PBS) proton therapy METHODS: The current retrospective study included 13 lung cancer patients. For each patient, small spot (∼3 mm) plans and large spot (∼8 mm) plans were generated. The Monte Carlo algorithm was used for both robust plan optimization and final dose calculations. Each plan was normalized, such that 99% of the clinical target volume (CTV) received 99% of the prescription dose. Interplay effect was evaluated for treatment delivery starting in two different breathing phases (T0 and T50). Plan robustness was investigated for 12 perturbed scenarios, which combined the isocenter shift and range uncertainty. The nominal and worst‐case scenario (WCS) results were recorded for each treatment plan. Equivalent uniform dose (EUD) and normal tissue complication probability (NTCP) were evaluated for the total lung, heart, and esophagus. RESULTS: In comparison to large spot plans, the WCS values of small spot plans at CTV D(95%), D(96%), D(97%), D(98%), and D(99%) were higher with the average differences of 2.2% (range, 0.3%–3.7%), 2.3% (range, 0.5%–4.0%), 2.6% (range, 0.6%–4.4%), 2.7% (range, 0.9%–5.2%), and 2.7% (range, 0.3%–6.0%), respectively. The nominal and WCS mean dose and EUD for the esophagus, heart, and total lung were higher in large spot plans. The difference in NTCP between large spot and small spot plans was up to 1.9% for the total lung, up to 0.3% for the heart, and up to 32.8% for the esophagus. For robustness acceptance criteria of CTV D(95%) ≥ 98% of the prescription dose, seven small spot plans had all 12 perturbed scenarios meeting the criteria, whereas, for 13 large spot plans, there were ≥2 scenarios failing to meet the criteria. Interplay results showed that, on average, the target coverage in large spot plans was higher by 1.5% and 0.4% in non‐volumetric and volumetric repainting plans, respectively. CONCLUSION: For robustly optimized PBS lung cancer plans in our study, a small spot machine resulted in a more robust CTV against the setup and range errors when compared to a large spot machine. In the absence of volumetric repainting, large spot PBS lung plans were more robust against the interplay effect. The use of a volumetric repainting technique in both small and large spot PBS lung plans led to comparable interplay target coverage. John Wiley and Sons Inc. 2022-01-06 /pmc/articles/PMC8833272/ /pubmed/34989458 http://dx.doi.org/10.1002/acm2.13512 Text en © 2022 The Authors. Journal of Applied Clinical Medical Physics published by Wiley Periodicals, LLC on behalf of The American Association of Physicists in Medicine https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Radiation Oncology Physics
Rana, Suresh
Rosenfeld, Anatoly B.
Small spot size versus large spot size: Effect on plan quality for lung cancer in pencil beam scanning proton therapy
title Small spot size versus large spot size: Effect on plan quality for lung cancer in pencil beam scanning proton therapy
title_full Small spot size versus large spot size: Effect on plan quality for lung cancer in pencil beam scanning proton therapy
title_fullStr Small spot size versus large spot size: Effect on plan quality for lung cancer in pencil beam scanning proton therapy
title_full_unstemmed Small spot size versus large spot size: Effect on plan quality for lung cancer in pencil beam scanning proton therapy
title_short Small spot size versus large spot size: Effect on plan quality for lung cancer in pencil beam scanning proton therapy
title_sort small spot size versus large spot size: effect on plan quality for lung cancer in pencil beam scanning proton therapy
topic Radiation Oncology Physics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8833272/
https://www.ncbi.nlm.nih.gov/pubmed/34989458
http://dx.doi.org/10.1002/acm2.13512
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