Literature DB >> 28319041

Practical use of a plastic scintillator for quality assurance of electron beam therapy.

Katsunori Yogo1, Yuya Tatsuno, Masato Tsuneda, Yuki Aono, Daiki Mochizuki, Yoshiki Fujisawa, Akihiro Matsushita, Minoru Ishigami, Hiromichi Ishiyama, Kazushige Hayakawa.   

Abstract

Quality assurance (QA) of clinical electron beams is essential for performing accurate and safe radiation therapy. However, with advances in radiation therapy, QA has become increasingly labor-intensive and time-consuming. In this paper, we propose a tissue-equivalent plastic scintillator for quick and easy QA of clinical electron beams. The proposed tool comprises a plastic scintillator plate and a charge-coupled device camera that enable the scintillation light by electron beams to be recorded with high sensitivity and high spatial resolution. Further, the Cerenkov image is directly subtracted from the scintillation image to discriminate Cerenkov emissions and accurately measure the dose profiles of electron beams with high spatial resolution. Compared with conventional methods, discrepancies in the depth profile improved from 7% to 2% in the buildup region via subtractive corrections. Further, the output brightness showed good linearity with dose, good reproducibility (deviations below 1%), and dose rate independence (within 0.5%). The depth of 50% dose measured with the tool, an index of electron beam quality, was within  ±0.5 mm of that obtained with an ionization chamber. Lateral brightness profiles agreed with the lateral dose profiles to within 4% and no significant improvement was obtained using Cerenkov corrections. Field size agreed to within 0.5 mm with those obtained with ionization chamber. For clinical QA of electron boost treatment, a disk scintillator that mimics the shape of a patient's breast is applied. The brightness distribution and dose, calculated using a treatment planning system, was generally acceptable for clinical use, except in limited zones. Overall, the proposed plastic scintillator plate tool efficiently performs QA for electron beam therapy and enables simultaneous verification of output constancy, beam quality, depth, and lateral dose profiles during monthly QAs at lower doses of irradiation (small monitor units, MUs).

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Year:  2017        PMID: 28319041     DOI: 10.1088/1361-6560/aa67cc

Source DB:  PubMed          Journal:  Phys Med Biol        ISSN: 0031-9155            Impact factor:   3.609


  3 in total

1.  Imaging Cherenkov emission for quality assurance of high-dose-rate brachytherapy.

Authors:  Katsunori Yogo; Akihiro Matsushita; Yuya Tatsuno; Takahiro Shimo; Seiko Hirota; Marika Nozawa; Shuichi Ozawa; Hiromichi Ishiyama; Hiroshi Yasuda; Yasushi Nagata; Kazushige Hayakawa
Journal:  Sci Rep       Date:  2020-02-27       Impact factor: 4.379

2.  Three-dimensional dose-distribution measurement of therapeutic carbon-ion beams using a ZnS scintillator sheet.

Authors:  Katsunori Yogo; Masato Tsuneda; Ryo Horita; Hikaru Souda; Akihiko Matsumura; Hiromichi Ishiyama; Kazushige Hayakawa; Tatsuaki Kanai; Seiichi Yamamoto
Journal:  J Radiat Res       Date:  2021-09-13       Impact factor: 2.724

3.  The Measurement of the Surface Dose in Regular and Small Radiation Therapy Fields Using Cherenkov Imaging.

Authors:  Yi Li; HongJun Liu; Nan Huang; Zhaolu Wang; Chunmin Zhang
Journal:  Technol Cancer Res Treat       Date:  2022 Jan-Dec
  3 in total

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