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Benchmarking halcyon ring delivery system for hypofractionated breast radiotherapy: Validation and clinical implementation of the fast‐forward trial

PURPOSE: The aim of this study was to demonstrate the feasibility and efficacy of an iterative CBCT‐guided breast radiotherapy with Fast‐Forward trial of 26 Gy in five fractions on a Halcyon Linac. This study quantifies Halcyon plan quality, treatment delivery accuracy and efficacy by comparison wit...

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Autores principales: Pokhrel, Damodar, Smith, Mason, Volk, Alexander, Bernard, Mark E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10476987/
https://www.ncbi.nlm.nih.gov/pubmed/37221949
http://dx.doi.org/10.1002/acm2.14047
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author Pokhrel, Damodar
Smith, Mason
Volk, Alexander
Bernard, Mark E.
author_facet Pokhrel, Damodar
Smith, Mason
Volk, Alexander
Bernard, Mark E.
author_sort Pokhrel, Damodar
collection PubMed
description PURPOSE: The aim of this study was to demonstrate the feasibility and efficacy of an iterative CBCT‐guided breast radiotherapy with Fast‐Forward trial of 26 Gy in five fractions on a Halcyon Linac. This study quantifies Halcyon plan quality, treatment delivery accuracy and efficacy by comparison with those of clinical TrueBeam plans. MATERIALS AND METHODS: Ten accelerated partial breast irradiation (APBI) patients (four right, six left) who underwent Fast‐Forward trial at our institute on TrueBeam (6MV beam) were re‐planned on Halcyon (6MV‐FFF). Three site‐specific partial coplanar VMAT arcs and an Acuros‐based dose engine were used. For benchmarking, PTV coverage, organs‐at‐risk (OAR) doses, beam‐on time, and quality assurance (QA) results were compared for both plans. RESULTS: The average PTV was 806 cc. Compared to TrueBeam plans, Halcyon provided highly conformal and homogeneous plans with similar mean PTVD95 (25.72  vs. 25.73 Gy), both global maximum hotspot < 110% (p = 0.954) and similar mean GTV dose (27.04  vs. 26.80 Gy, p = 0.093). Halcyon provided lower volume of ipsilateral lung receiving 8 Gy (6.34% vs. 8.18%, p = 0.021), similar heart V1.5 Gy (16.75% vs. 16.92%, p = 0.872), V7Gy (0% vs. 0%), mean heart dose (0.96  vs. 0.9 Gy, p = 0.228), lower maximum dose to contralateral breast (3.2  vs. 3.6 Gy, p = 0.174), and nipple (19.6  vs. 20.1 Gy, p = 0.363). Compared to TrueBeam, Halcyon plans provided similar patient‐specific QA pass rates and independent in‐house Monte Carlo second check results of 99.6% vs. 97.9% (3%/2 mm gamma criteria) and 98.6% versus 99.2%, respectively, suggesting similar treatment delivery accuracy. Halcyon provided shorter beam‐on time (1.49  vs. 1.68 min, p = 0.036). CONCLUSION: Compared to the SBRT‐dedicated TrueBeam, Halcyon VMAT plans provided similar plan quality and treatment delivery accuracy, yet potentially faster treatment via one‐step patient setup and verification with no patient collision issues. Rapid delivery of daily APBI on Fast‐Forward trial on Halcyon with door‐to‐door patient time < 10 min, could reduce intrafraction motion errors, and improve patient comfort and compliance. We have started treating APBI on Halcyon. Clinical follow‐up results are warranted. We recommend Halcyon users consider implementing the protocol to remote and underserved APBI patients in Halcyon‐only clinics.
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spelling pubmed-104769872023-09-05 Benchmarking halcyon ring delivery system for hypofractionated breast radiotherapy: Validation and clinical implementation of the fast‐forward trial Pokhrel, Damodar Smith, Mason Volk, Alexander Bernard, Mark E. J Appl Clin Med Phys Radiation Oncology Physics PURPOSE: The aim of this study was to demonstrate the feasibility and efficacy of an iterative CBCT‐guided breast radiotherapy with Fast‐Forward trial of 26 Gy in five fractions on a Halcyon Linac. This study quantifies Halcyon plan quality, treatment delivery accuracy and efficacy by comparison with those of clinical TrueBeam plans. MATERIALS AND METHODS: Ten accelerated partial breast irradiation (APBI) patients (four right, six left) who underwent Fast‐Forward trial at our institute on TrueBeam (6MV beam) were re‐planned on Halcyon (6MV‐FFF). Three site‐specific partial coplanar VMAT arcs and an Acuros‐based dose engine were used. For benchmarking, PTV coverage, organs‐at‐risk (OAR) doses, beam‐on time, and quality assurance (QA) results were compared for both plans. RESULTS: The average PTV was 806 cc. Compared to TrueBeam plans, Halcyon provided highly conformal and homogeneous plans with similar mean PTVD95 (25.72  vs. 25.73 Gy), both global maximum hotspot < 110% (p = 0.954) and similar mean GTV dose (27.04  vs. 26.80 Gy, p = 0.093). Halcyon provided lower volume of ipsilateral lung receiving 8 Gy (6.34% vs. 8.18%, p = 0.021), similar heart V1.5 Gy (16.75% vs. 16.92%, p = 0.872), V7Gy (0% vs. 0%), mean heart dose (0.96  vs. 0.9 Gy, p = 0.228), lower maximum dose to contralateral breast (3.2  vs. 3.6 Gy, p = 0.174), and nipple (19.6  vs. 20.1 Gy, p = 0.363). Compared to TrueBeam, Halcyon plans provided similar patient‐specific QA pass rates and independent in‐house Monte Carlo second check results of 99.6% vs. 97.9% (3%/2 mm gamma criteria) and 98.6% versus 99.2%, respectively, suggesting similar treatment delivery accuracy. Halcyon provided shorter beam‐on time (1.49  vs. 1.68 min, p = 0.036). CONCLUSION: Compared to the SBRT‐dedicated TrueBeam, Halcyon VMAT plans provided similar plan quality and treatment delivery accuracy, yet potentially faster treatment via one‐step patient setup and verification with no patient collision issues. Rapid delivery of daily APBI on Fast‐Forward trial on Halcyon with door‐to‐door patient time < 10 min, could reduce intrafraction motion errors, and improve patient comfort and compliance. We have started treating APBI on Halcyon. Clinical follow‐up results are warranted. We recommend Halcyon users consider implementing the protocol to remote and underserved APBI patients in Halcyon‐only clinics. John Wiley and Sons Inc. 2023-05-23 /pmc/articles/PMC10476987/ /pubmed/37221949 http://dx.doi.org/10.1002/acm2.14047 Text en © 2023 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
Pokhrel, Damodar
Smith, Mason
Volk, Alexander
Bernard, Mark E.
Benchmarking halcyon ring delivery system for hypofractionated breast radiotherapy: Validation and clinical implementation of the fast‐forward trial
title Benchmarking halcyon ring delivery system for hypofractionated breast radiotherapy: Validation and clinical implementation of the fast‐forward trial
title_full Benchmarking halcyon ring delivery system for hypofractionated breast radiotherapy: Validation and clinical implementation of the fast‐forward trial
title_fullStr Benchmarking halcyon ring delivery system for hypofractionated breast radiotherapy: Validation and clinical implementation of the fast‐forward trial
title_full_unstemmed Benchmarking halcyon ring delivery system for hypofractionated breast radiotherapy: Validation and clinical implementation of the fast‐forward trial
title_short Benchmarking halcyon ring delivery system for hypofractionated breast radiotherapy: Validation and clinical implementation of the fast‐forward trial
title_sort benchmarking halcyon ring delivery system for hypofractionated breast radiotherapy: validation and clinical implementation of the fast‐forward trial
topic Radiation Oncology Physics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10476987/
https://www.ncbi.nlm.nih.gov/pubmed/37221949
http://dx.doi.org/10.1002/acm2.14047
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