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Quantitative analysis of treatments using real‐time image gated spot‐scanning with synchrotron‐based proton beam therapy system log data

A synchrotron‐based real‐time image gated spot‐scanning proton beam therapy (RGPT) system with inserted fiducial markers can irradiate a moving tumor with high accuracy. As gated treatments increase the beam delivery time, this study aimed to investigate the frequency of intra‐field adjustments corr...

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Autores principales: Yoshimura, Takaaki, Shimizu, Shinichi, Hashimoto, Takayuki, Nishioka, Kentaro, Katoh, Norio, Taguchi, Hiroshi, Yasuda, Koichi, Matsuura, Taeko, Takao, Seishin, Tamura, Masaya, Tanaka, Sodai, Ito, Yoichi M., Matsuo, Yuto, Tamura, Hiroshi, Horita, Kenji, Umegaki, Kikuo, Shirato, Hiroki
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7769392/
https://www.ncbi.nlm.nih.gov/pubmed/33151643
http://dx.doi.org/10.1002/acm2.13029
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author Yoshimura, Takaaki
Shimizu, Shinichi
Hashimoto, Takayuki
Nishioka, Kentaro
Katoh, Norio
Taguchi, Hiroshi
Yasuda, Koichi
Matsuura, Taeko
Takao, Seishin
Tamura, Masaya
Tanaka, Sodai
Ito, Yoichi M.
Matsuo, Yuto
Tamura, Hiroshi
Horita, Kenji
Umegaki, Kikuo
Shirato, Hiroki
author_facet Yoshimura, Takaaki
Shimizu, Shinichi
Hashimoto, Takayuki
Nishioka, Kentaro
Katoh, Norio
Taguchi, Hiroshi
Yasuda, Koichi
Matsuura, Taeko
Takao, Seishin
Tamura, Masaya
Tanaka, Sodai
Ito, Yoichi M.
Matsuo, Yuto
Tamura, Hiroshi
Horita, Kenji
Umegaki, Kikuo
Shirato, Hiroki
author_sort Yoshimura, Takaaki
collection PubMed
description A synchrotron‐based real‐time image gated spot‐scanning proton beam therapy (RGPT) system with inserted fiducial markers can irradiate a moving tumor with high accuracy. As gated treatments increase the beam delivery time, this study aimed to investigate the frequency of intra‐field adjustments corresponding to the baseline shift or drift and the beam delivery efficiency of a synchrotron‐based RGPT system. Data from 118 patients corresponding to 127 treatment plans and 2810 sessions between October 2016 and March 2019 were collected. We quantitatively analyzed the proton beam delivery time, the difference between the ideal beam delivery time based on a simulated synchrotron magnetic excitation pattern and the actual treatment beam delivery time, frequency corresponding to the baseline shift or drift, and the gating efficiency of the synchrotron‐based RGPT system according to the proton beam delivery machine log data. The mean actual beam delivery time was 7.1 min, and the simulated beam delivery time in an ideal environment with the same treatment plan was 2.9 min. The average difference between the actual and simulated beam delivery time per session was 4.3 min. The average frequency of intra‐field adjustments corresponding to baseline shift or drift and beam delivery efficiency were 21.7% and 61.8%, respectively. Based on our clinical experience with a synchrotron‐based RGPT system, we determined the frequency corresponding to baseline shift or drift and the beam delivery efficiency using the beam delivery machine log data. To maintain treatment accuracy within ± 2.0 mm, intra‐field adjustments corresponding to baseline shift or drift were required in approximately 20% of cases. Further improvements in beam delivery efficiency may be realized by shortening the beam delivery time.
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spelling pubmed-77693922020-12-31 Quantitative analysis of treatments using real‐time image gated spot‐scanning with synchrotron‐based proton beam therapy system log data Yoshimura, Takaaki Shimizu, Shinichi Hashimoto, Takayuki Nishioka, Kentaro Katoh, Norio Taguchi, Hiroshi Yasuda, Koichi Matsuura, Taeko Takao, Seishin Tamura, Masaya Tanaka, Sodai Ito, Yoichi M. Matsuo, Yuto Tamura, Hiroshi Horita, Kenji Umegaki, Kikuo Shirato, Hiroki J Appl Clin Med Phys Radiation Oncology Physics A synchrotron‐based real‐time image gated spot‐scanning proton beam therapy (RGPT) system with inserted fiducial markers can irradiate a moving tumor with high accuracy. As gated treatments increase the beam delivery time, this study aimed to investigate the frequency of intra‐field adjustments corresponding to the baseline shift or drift and the beam delivery efficiency of a synchrotron‐based RGPT system. Data from 118 patients corresponding to 127 treatment plans and 2810 sessions between October 2016 and March 2019 were collected. We quantitatively analyzed the proton beam delivery time, the difference between the ideal beam delivery time based on a simulated synchrotron magnetic excitation pattern and the actual treatment beam delivery time, frequency corresponding to the baseline shift or drift, and the gating efficiency of the synchrotron‐based RGPT system according to the proton beam delivery machine log data. The mean actual beam delivery time was 7.1 min, and the simulated beam delivery time in an ideal environment with the same treatment plan was 2.9 min. The average difference between the actual and simulated beam delivery time per session was 4.3 min. The average frequency of intra‐field adjustments corresponding to baseline shift or drift and beam delivery efficiency were 21.7% and 61.8%, respectively. Based on our clinical experience with a synchrotron‐based RGPT system, we determined the frequency corresponding to baseline shift or drift and the beam delivery efficiency using the beam delivery machine log data. To maintain treatment accuracy within ± 2.0 mm, intra‐field adjustments corresponding to baseline shift or drift were required in approximately 20% of cases. Further improvements in beam delivery efficiency may be realized by shortening the beam delivery time. John Wiley and Sons Inc. 2020-11-05 /pmc/articles/PMC7769392/ /pubmed/33151643 http://dx.doi.org/10.1002/acm2.13029 Text en © 2020 The Authors. Journal of Applied Clinical Medical Physics published by Wiley Periodicals, Inc. on behalf of American Association of Physicists in Medicine This is an open access article under the terms of the http://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
Yoshimura, Takaaki
Shimizu, Shinichi
Hashimoto, Takayuki
Nishioka, Kentaro
Katoh, Norio
Taguchi, Hiroshi
Yasuda, Koichi
Matsuura, Taeko
Takao, Seishin
Tamura, Masaya
Tanaka, Sodai
Ito, Yoichi M.
Matsuo, Yuto
Tamura, Hiroshi
Horita, Kenji
Umegaki, Kikuo
Shirato, Hiroki
Quantitative analysis of treatments using real‐time image gated spot‐scanning with synchrotron‐based proton beam therapy system log data
title Quantitative analysis of treatments using real‐time image gated spot‐scanning with synchrotron‐based proton beam therapy system log data
title_full Quantitative analysis of treatments using real‐time image gated spot‐scanning with synchrotron‐based proton beam therapy system log data
title_fullStr Quantitative analysis of treatments using real‐time image gated spot‐scanning with synchrotron‐based proton beam therapy system log data
title_full_unstemmed Quantitative analysis of treatments using real‐time image gated spot‐scanning with synchrotron‐based proton beam therapy system log data
title_short Quantitative analysis of treatments using real‐time image gated spot‐scanning with synchrotron‐based proton beam therapy system log data
title_sort quantitative analysis of treatments using real‐time image gated spot‐scanning with synchrotron‐based proton beam therapy system log data
topic Radiation Oncology Physics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7769392/
https://www.ncbi.nlm.nih.gov/pubmed/33151643
http://dx.doi.org/10.1002/acm2.13029
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