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Published in: Radiological Physics and Technology 2/2013

01-07-2013

A revision of proton machine quality assurance for wobbled-proton-beam therapy

Authors: Yuki Kase, Haruo Yamashita, Masumi Numano, Hiroshi Fuji, Shigeyuki Murayama

Published in: Radiological Physics and Technology | Issue 2/2013

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Abstract

Periodic checks for proton machine quality assurance (QA) are significant for machine users safely and accurately to provide proton-beam treatment for cancer. Our aim in this study was to describe a revision to proton machine QA procedures for wobbled-proton-beam therapy at the Shizuoka Cancer Center (SCC) in Japan. The previous daily, monthly, and annual QA procedures were determined by reference to our past operational experience and to QA papers for medical accelerators. The revised QA procedures were initiated in May 2011 after preliminary measurements to decide baselines for the QA procedures. This paper presents the proton machine QA procedures and the results of representative QA measurements. Three action levels were decided on by reference to the American Association of Physicists in Medicine Task Group 142 report. Tolerances of inspection action were decided on based on the provisional operational results and actual fluctuations of the QA measurement for a year, and those of scheduled action and stop-treatment action were determined by reference to the machine QA papers and those of the inspection action. No deviation from the tolerance of the scheduled action has been observed so far. Although a few QA procedures exceeded the tolerance of the inspection action, these excesses were resolved by inspection and improvement of the respective measuring procedure within the designated QA time. Hereafter, the proton machine QA procedures proposed in this study will be performed continuously at the SCC to assure patient safety and accurate operation of proton therapy.
Literature
1.
go back to reference Wilson RR. Radiological use of fast protons. Radiology. 1946;47:487–91.PubMed Wilson RR. Radiological use of fast protons. Radiology. 1946;47:487–91.PubMed
2.
go back to reference ICRU. Prescribing, recording, and reporting proton-beam therapy. ICRU Report 78, Oxford University Press; 2007. ICRU. Prescribing, recording, and reporting proton-beam therapy. ICRU Report 78, Oxford University Press; 2007.
3.
go back to reference Arjomandy B, Sahoo N, Zhu XR, Zullo JR, Wu RY, Zhu M, Ding X, Martin C, Ciangaru G, Gillin MT. An overview of the comprehensive proton therapy machine quality assurance procedures implemented at The University of Texas M. D. Anderson Cancer Center Proton Therapy Center-Houston. Med Phys. 2009;36:2269–82.PubMedCrossRef Arjomandy B, Sahoo N, Zhu XR, Zullo JR, Wu RY, Zhu M, Ding X, Martin C, Ciangaru G, Gillin MT. An overview of the comprehensive proton therapy machine quality assurance procedures implemented at The University of Texas M. D. Anderson Cancer Center Proton Therapy Center-Houston. Med Phys. 2009;36:2269–82.PubMedCrossRef
4.
go back to reference Klein EE, Hanley J, Bayouth J, Yin F, Simon W, Dresser S, Serago C, Aguirre F, Ma L, Arjomandy B, Liu C, Sandin C, Holmes T. Task Group 142 report: quality assurance of medical accelerators. Med Phys. 2009;36:4197–212.PubMedCrossRef Klein EE, Hanley J, Bayouth J, Yin F, Simon W, Dresser S, Serago C, Aguirre F, Ma L, Arjomandy B, Liu C, Sandin C, Holmes T. Task Group 142 report: quality assurance of medical accelerators. Med Phys. 2009;36:4197–212.PubMedCrossRef
5.
go back to reference Kanai T, et al. Guidelines of physical and technological quality assurance for particle beam therapy. Japanese Society of Medical Physics, National Institute of Radiological Sciences; 2005. Kanai T, et al. Guidelines of physical and technological quality assurance for particle beam therapy. Japanese Society of Medical Physics, National Institute of Radiological Sciences; 2005.
6.
go back to reference Murayama S, Fuji H, Yamashita H, Futami Y, Numano M, Harada H, Kamata M, Nishimura T. Initial clinical experience of proton therapy at Shizuoka Cancer Center. Nippon Igaku Hoshasen Gakkai Zasshi. 2005;65:424–31.PubMed Murayama S, Fuji H, Yamashita H, Futami Y, Numano M, Harada H, Kamata M, Nishimura T. Initial clinical experience of proton therapy at Shizuoka Cancer Center. Nippon Igaku Hoshasen Gakkai Zasshi. 2005;65:424–31.PubMed
7.
go back to reference Akagi T, Higashi A, Tsugami H, Sakamoto H, Masuda Y, Hishikawa Y. Ridge filter design for proton therapy at Hyogo Ion Beam Medical Center. Phys Med Biol. 2003;48:N301–12.PubMedCrossRef Akagi T, Higashi A, Tsugami H, Sakamoto H, Masuda Y, Hishikawa Y. Ridge filter design for proton therapy at Hyogo Ion Beam Medical Center. Phys Med Biol. 2003;48:N301–12.PubMedCrossRef
8.
go back to reference Kanematsu N, Akagi T, Futami Y, Higashi A, Kanai T, Matsufuji N, Tomura H, Yamashita H. A proton dose calculation code for treatment planning based on the pencil beam algorithm. Jpn J Med Phys. 1998;18:88–103. Kanematsu N, Akagi T, Futami Y, Higashi A, Kanai T, Matsufuji N, Tomura H, Yamashita H. A proton dose calculation code for treatment planning based on the pencil beam algorithm. Jpn J Med Phys. 1998;18:88–103.
9.
go back to reference Russell KR, Isacsson U, Saxner M, Ahnesjoe A, Montelius A, Grusell E, Dahlgren C-V, Lorin S, Glimelius B. Implementation of pencil kernel and depth penetration algorithms for treatment planning of proton beams. Phys Med Biol. 2000;45:9–27.PubMedCrossRef Russell KR, Isacsson U, Saxner M, Ahnesjoe A, Montelius A, Grusell E, Dahlgren C-V, Lorin S, Glimelius B. Implementation of pencil kernel and depth penetration algorithms for treatment planning of proton beams. Phys Med Biol. 2000;45:9–27.PubMedCrossRef
10.
go back to reference Kanematsu N, Matsufuji N, Kohno R, Minohara S, Kanai T. A CT calibration method based on the polybinary tissue model for radiotherapy treatment planning. Phys Med Biol. 2003;48:1053–64.PubMedCrossRef Kanematsu N, Matsufuji N, Kohno R, Minohara S, Kanai T. A CT calibration method based on the polybinary tissue model for radiotherapy treatment planning. Phys Med Biol. 2003;48:1053–64.PubMedCrossRef
11.
go back to reference Minohara S, Kanai T, Endo M, Noda K, Kanazawa M. Respiratory gated irradiation system for heavy-ion radiotherapy. Int J Radiat Oncol Biol Phys. 2000;47:1097–103.PubMedCrossRef Minohara S, Kanai T, Endo M, Noda K, Kanazawa M. Respiratory gated irradiation system for heavy-ion radiotherapy. Int J Radiat Oncol Biol Phys. 2000;47:1097–103.PubMedCrossRef
12.
go back to reference Kutcher GJ, Coia L, Gillin M, Hanson WF, Leibel S, Morton RJ, Palta JR, Purdy JA, Reinstein LE, Svensson GK, Weller M, Wingfield L. Comprehensive QA for radiation oncology: report of AAPM Radiation Therapy Committee Task Group 40. Med Phys. 1994;21:581–618.PubMedCrossRef Kutcher GJ, Coia L, Gillin M, Hanson WF, Leibel S, Morton RJ, Palta JR, Purdy JA, Reinstein LE, Svensson GK, Weller M, Wingfield L. Comprehensive QA for radiation oncology: report of AAPM Radiation Therapy Committee Task Group 40. Med Phys. 1994;21:581–618.PubMedCrossRef
13.
go back to reference IAEA. Absorbed dose determination in external beam radiotherapy: an international code of practice for dosimetry based on standards of absorbed dose to water. International Atomic Energy Agency Technical Report Series No. 398, Vienna; 2000. IAEA. Absorbed dose determination in external beam radiotherapy: an international code of practice for dosimetry based on standards of absorbed dose to water. International Atomic Energy Agency Technical Report Series No. 398, Vienna; 2000.
Metadata
Title
A revision of proton machine quality assurance for wobbled-proton-beam therapy
Authors
Yuki Kase
Haruo Yamashita
Masumi Numano
Hiroshi Fuji
Shigeyuki Murayama
Publication date
01-07-2013
Publisher
Springer Japan
Published in
Radiological Physics and Technology / Issue 2/2013
Print ISSN: 1865-0333
Electronic ISSN: 1865-0341
DOI
https://doi.org/10.1007/s12194-013-0217-2

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