Impact of transverse magnetic fields on water equivalent ratios in carbon-ion radiotherapy

被引:3
|
作者
Akbari, M. [1 ]
Karimian, A. [2 ]
机构
[1] Univ Isfahan, Dept Nucl Engn, Hezar Jarib St, Esfahan, Iran
[2] Univ Isfahan, Dept Biomed Engn, Hezar Jarib St, Esfahan, Iran
关键词
Dosimetry concepts and apparatus; Radiotherapy concepts; Instrumentation for heavyion therapy; Models and simulations; THERAPY; PROTON; FLUKA; THICKNESS; BEAMS; CODE;
D O I
10.1088/1748-0221/15/05/T05006
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
The correct estimation of water equivalent ratio (WER) and the associated errors is highly important for the delivery of carbon-ion (C-ion) beams. In the case of MRI-guided C-ion radiotherapy (MRgCT) scenario, as a therapeutic approach for future potential MR-guided particle therapy, C-ion beam will be deflected in the presence of the magnetic field. The curvature of the track causes a retraction of the range. This range variation might be different in various materials, which leads to change the WER values. To evaluate the WER variations versus magnetic field strength, in this research work, WER of some materials, including bladder, brain, prostate, muscle, bone, polymethylmethacrylate (PMMA), polyoxymethylene (POM), polyethyleneterephthalate (PET), titanium (Ti), gold (Au), platinum (Pt); potentially encountered in C-ion radiotherapy dosimetry were assessed. A mono-energetic C-ion beam, incident on a volume containing materials as mentioned above, was simulated using the FLUKA Monte Carlo code. To validate the simulated C-ion beams, the ion ranges in the water at the calculated energies (100-400 MeV/n) were compared with experimental and analytical data reported in the literature. Moreover, the calculated WER results were compared with available experimental data in the absence of the magnetic field. The WER values were calculated for the materials mentioned above in the presence of 0.35, 1.5, and 3 T magnetic fields and compared to the case without a magnetic field. Good agreement with the experimental data regarding range prediction in water was achieved. No change in the WER value was observed at 100 MeV/n and 0.35 T for all the studied materials and energies. In the case of bladder, brain, and prostate, and muscle materials, no change in WER values was observed by changing the magnetic field strength up to 3 T at the range of the studied energies. The maximum change in WER values by applying the magnetic fields is relevant to the Ti material (-0.4%), which occurs at 400 MeV/n energy and 3 T magnetic field. Considering the potential encounter of the studied materials in the clinical practice of MRgCT, in the form of phantoms, dosimeters, detectors, fiducial markers, radio-opaque clips, patient anatomies, etc., the results of this study highly contribute to assess the variation of WER values of the studied dosimetric materials and the changes in C-ion ranges within these materials when the transverse magnetic fields are applied to the materials subject to study.
引用
收藏
页数:16
相关论文
共 50 条
  • [21] Evaluation of hybrid depth scanning for carbon-ion radiotherapy
    Inaniwa, Taku
    Furukawa, Takuji
    Kanematsu, Nobuyuki
    Mori, Shinichiro
    Mizushima, Kota
    Sato, Shinji
    Toshito, Toshiyuki
    Shirai, Toshiyuki
    Noda, Koji
    [J]. MEDICAL PHYSICS, 2012, 39 (05) : 2820 - 2825
  • [22] Cervical spine osteosarcorna treated with carbon-ion radiotherapy
    Imai, Reiko
    Kamada, Tadashi
    Tsuji, Hiroshi
    Tsujii, Hirohiko
    Tsuburai, Yoshiharu
    Tatezaki, Shin-ichiro
    [J]. LANCET ONCOLOGY, 2006, 7 (12): : 1034 - 1035
  • [23] Carbon-ion radiotherapy in osteosarcoma of the mandible: a case report
    Ha, Tae-Wook
    Park, Slmaro
    Youn, Min Yeong
    Kim, Dong Wook
    Kim, Hyung Jun
    [J]. JOURNAL OF THE KOREAN ASSOCIATION OF ORAL AND MAXILLOFACIAL SURGEONS, 2021, 47 (04) : 315 - 320
  • [24] Carbon-ion radiotherapy for clear cell odontogenic carcinomas
    Ikawa, Hiroaki
    Koto, Masashi
    Fugo, Kazunori
    Takiyama, Hirotoshi
    Isozaki, Tetsuro
    Shinoto, Makoto
    Yamada, Shigeru
    Ishikawa, Hitoshi
    [J]. WORLD JOURNAL OF SURGICAL ONCOLOGY, 2024, 22 (01)
  • [25] Current status and future perspective of carbon-ion radiotherapy
    Inaniwa, T.
    [J]. RADIOTHERAPY AND ONCOLOGY, 2019, 141 : S29 - S29
  • [26] Synergistic Effects of Melatonin on Radiosensitization in Carbon-ion Radiotherapy
    Ju, Mengyang
    Minami, Kazumasa
    Katsuki, Shohei
    Takenaka, Wataru
    Tatekawa, Shotaro
    Tamari, Keisuke
    Koizumi, Masahiko
    Takahashi, Yutaka
    Ogawa, Kazuhiko
    [J]. ANTICANCER RESEARCH, 2024, 44 (08) : 3295 - 3306
  • [27] Carbon-ion radiotherapy: clinical aspects and related dosimetry
    Fukumura, A.
    Tsujii, H.
    Kamada, T.
    Baba, M.
    Tsuji, H.
    Kato, H.
    Kato, S.
    Yamada, S.
    Yasuda, S.
    Yanagi, T.
    Kato, H.
    Hara, R.
    Yamamoto, N.
    Mizoe, J.
    Akahane, K.
    Fukuda, S.
    Furusawa, Y.
    Iwata, Y.
    Kanai, T.
    Kanematsu, N.
    Kitagawa, A.
    Matsufuji, N.
    Minohara, S.
    Miyahara, N.
    Mizuno, H.
    Murakami, T.
    Nishizawa, K.
    Noda, K.
    Takada, E.
    Yonai, S.
    [J]. RADIATION PROTECTION DOSIMETRY, 2009, 137 (1-2) : 149 - 155
  • [28] Primary cardiac angiosarcoma treated with carbon-ion radiotherapy
    Aoka, Y
    Kamada, T
    Kawana, M
    Yamada, Y
    Nishikawa, T
    Kasanuki, H
    Tsujii, H
    [J]. LANCET ONCOLOGY, 2004, 5 (10): : 636 - 638
  • [29] Estimation of the medical need for carbon-ion radiotherapy in Korea
    Cho, Ilsung
    Seo, Young Seok
    Jung, WonGyun
    Kim, Mi-sook
    [J]. JOURNAL OF RADIATION RESEARCH, 2018, 59 (05) : 588 - 592
  • [30] Carbon-ion radiotherapy for hepatocellular carcinoma with vascular invasion
    Makishima, H.
    Yasuda, S.
    Kato, H.
    Kaneko, T.
    Sato, H.
    Chang, T.
    Kasuya, G.
    Yamada, S.
    Tsuji, H.
    [J]. RADIOTHERAPY AND ONCOLOGY, 2020, 152 : S570 - S571