Commissioning and beam characterization of the first gantry-mounted accelerator pencil beam scanning proton system

被引:40
|
作者
Kang, M. [1 ]
Cessac, Rob [2 ]
Pang, D. [1 ]
机构
[1] Georgetown Univ Hosp, Dept Radiat Med, Washington, DC 20007 USA
[2] Mevion Med Syst Inc, Littleton, MA USA
关键词
adaptive aperture; beam commissioning; compart PBS system; gantry-mounted accelerator; HYPERSCAN; pencil beam scanning; MONTE-CARLO; THERAPY; INTERPLAY; LUNG; DELIVERY; CANCER; MOTION; PATIENT; IMPACT; TUMOR;
D O I
10.1002/mp.13972
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
1002 ; 100207 ; 1009 ;
摘要
Purpose: To present and discuss beam characteristics and commissioning process of the first gantry-mounted accelerator single-room pencil beam scanning (PBS) proton system. Methods: The Mevion HYPERSCAN employs a design configuration with a synchrocyclotron mounted on the gantry to eliminate the traditional beamline and a nozzle that contains the dosimetry monitoring chambers, the energy modulator [energy selector (ES)], and an adaptive aperture (AA). To characterize the beam, we measured the integrated depth dose (IDD) for 12 energies. from the highest energy of 227 MeV down to 28 MeV with a range difference similar to 2 cm between the adjacent energies, using a large radius Bragg peak chamber; single spot profiles in air at five locations along the beam central axis using radiochromic EBT3 film and cross compared with a scintillation detector; and determined the output using a densely packed spot map. To access the performance of AA, we measured interleaf leakage and the penumbra reduction effect. Monte Carlo simulation using TOPAS was performed to study spot size variation along the beam path, beam divergence, and energy spectrum. Results: This proton system is calibrated to deliver 1 Gy dose at 5 cm depth in water using the highest beam energy by delivering 1 MU/spot to a 10 x 10 cm(2) map with a 2.5 mm spot spacing. The spot size in air at isocenter for a maximum range beam of 227 MeV is 4.1 mm. This system is able to reduce the beam range all the way to the patient surface; the lowest energy beam measured was 28 MeV which has a spot size of 15.7 mm. The beam divergence is 2.4 mrad at 227 MeV and 52.7 mrad for the superficial 28 MeV beam. The binary design of the ES has resulted in shifts of the effective SSD toward the isocenter as the energy is modulated lower. The pristine Bragg peaks have a constant 80%-80% width of 8.4 mm at all energies. The interleaf leakage of the AA is less than 1.5% at the highest energy. The AA reduces field penumbras. For a 10x10 optimized field, the 227 MeV beam penumbra measured at isocenter with a 5 cm air gap went from 6.8 to 4.7 mm and the 28 MeV beam penumbra went from 21.4 to 7.5 mm. Conclusions: The HYPERSCAN proton system has a unique design, which is reflected in the Bragg peak shapes, the variation of spot sizes with energy and the penumbra sharpening effect of the AA. The combination of the ES and AA makes PBS implementation possible without using a beam transport line and supplemental range shifter devices. In commissioning the TPS and designing plans these differences need to be considered. (C) 2020 American Association of Physicists in Medicine
引用
收藏
页码:3496 / 3510
页数:15
相关论文
共 50 条
  • [31] Contour scanning for penumbra improvement in pencil beam scanned proton therapy
    Meier, G.
    Leiser, D.
    Besson, R.
    Mayor, A.
    Safai, S.
    Weber, D. C.
    Lomax, A. J.
    PHYSICS IN MEDICINE AND BIOLOGY, 2017, 62 (06) : 2398 - 2416
  • [32] Comparison of clinical outcomes between passive scattering versus pencil -beam scanning proton beam therapy for hepatocellular carcinoma
    Yoo, Gyu Sang
    Yu, Jeong Il
    Cho, Sungkoo
    Jung, Sang Hoon
    Han, Youngyih
    Park, Seyjoon
    Oh, Yoonjin
    Lee, Boram
    Park, Hee Chul
    Lim, Do Hoon
    Choi, Moon Seok
    Won, Hojeong
    RADIOTHERAPY AND ONCOLOGY, 2020, 146 : 187 - 193
  • [33] Spot decomposition in a novel pencil beam scanning proton Computed Tomography
    Zhou, J.
    Li, X.
    Kabolizadeh, P.
    Yang, X.
    Yan, D.
    Stevens, C.
    Liu, T.
    Ding, X.
    MEDICAL IMAGING 2019: PHYSICS OF MEDICAL IMAGING, 2019, 10948
  • [34] A Practical Experience of Dose Modeling for Proton Pencil Beam Scanning in KNCC
    Jo, Kwanghyun
    Kim, Mi Young
    Jeong, Jong Hwi
    Jeang, EunHee
    Kim, Haksoo
    Park, Seyjoon
    Park, Jeong-Hoon
    Lim, Young Kyung
    Shin, Dongho
    Lee, Se Byeong
    Jo, Kwanghyun
    Jeong, Chiyoung
    JOURNAL OF THE KOREAN PHYSICAL SOCIETY, 2015, 67 (01) : 108 - 115
  • [35] Comprehensive characterization of proton pencil beam profiles using a novel couch-mounted 2D strip detector system
    Huang, Hsiao-Chieh
    Chen, Hsien-Hsin
    Lin, Chih-Hsun
    Chang, Fu-Xiong
    Kao, Wei-Heng
    Chen, Po-Jui
    Chao, Tsi-Chian
    RADIATION PHYSICS AND CHEMISTRY, 2025, 232
  • [36] Commissioning of a clinical pencil beam scanning proton therapy unit for ultra-high dose rates (FLASH)
    Nesteruk, Konrad P.
    Togno, Michele
    Grossmann, Martin
    Lomax, Anthony J.
    Weber, Damien C.
    Schippers, Jacobus M.
    Safai, Sairos
    Meer, David
    Psoroulas, Serena
    MEDICAL PHYSICS, 2021, 48 (07) : 4017 - 4026
  • [37] A study of the beam-specific interplay effect in proton pencil beam scanning delivery in lung cancer
    Kang, Minglei
    Huang, Sheng
    Solberg, Timothy D.
    Mayer, Rulon
    Thomas, Andy
    Teo, Boon-Keng Kevin
    McDonough, James E.
    Simone, Charles B., II
    Lin, Liyong
    ACTA ONCOLOGICA, 2017, 56 (04) : 531 - 540
  • [38] Proton pencil beam scanning craniospinal irradiation (CSI) with a single posterior brain beam: Dosimetry and efficiency
    Hu, Lei
    Zhai, Anna
    Chen, Qing
    Puri, Vandana
    Chen, Chin-Cheng
    Yu, Francis
    Fox, Jana
    Wolden, Suzanne
    Yang, Jonathan
    Simone II, Charles B.
    Lin, Haibo
    MEDICAL DOSIMETRY, 2024, 49 (01) : 25 - 29
  • [39] Parametric characterization of penumbra reduction for aperture-collimated pencil beam scanning (PBS) proton therapy
    Maes, Dominic
    Regmi, Rajesh
    Taddei, Phillip
    Bloch, Charles
    Bowen, Steven
    Nevitt, Alexander
    Leuro, Erick
    Wong, Tony
    Rosenfeld, Anatoly
    Saini, Jatinder
    BIOMEDICAL PHYSICS & ENGINEERING EXPRESS, 2019, 5 (03):
  • [40] Development of beam monitoring system for proton pencil beam scanning using fiber-optic radiation sensor
    Son, Jaeman
    Koo, Jihye
    Moon, Sunyoung
    Yoon, Myonggeun
    Jeong, Jonghwi
    Kim, Sun-Young
    Lim, Youngkyung
    Lee, Se Byeong
    Shin, Dongho
    Kim, Meyoung
    Kim, Dongwook
    JOURNAL OF THE KOREAN PHYSICAL SOCIETY, 2017, 71 (07) : 438 - 443