Beam characteristics of the first clinical 360° rotational single gantry room scanning pencil beam proton treatment system and comparisons against a multi-room system

被引:5
|
作者
Shang, Charles [1 ]
Evans, Grant [1 ]
Rahman, Mushfiqur [1 ]
Lin, Liyong [2 ]
机构
[1] South Florida Proton Therapy Inst, Delray Beach, FL 33484 USA
[2] Emory Proton Therapy Ctr, Atlanta, GA USA
来源
关键词
commissioning; pencil beam scanning; protons; treatment planning system; DOSE CALCULATION; ALGORITHM;
D O I
10.1002/acm2.12984
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 The purpose of this study was to present the proton beam characteristics of the first clinical single-room ProBeam Compact (TM) proton therapy system (SRPT) and comparison against multi-room ProBeam (TM) system (MRPT). Materials and Methods A newly designed SRPT with proton beam energies ranging from 70 to 220 MeV was commissioned in late 2019. Integrated depth doses (IDDs) were scanned using 81.6 mm diameter Bragg peak chambers and normalized by outputs at 15 mm WET and 1.1 RBE offset, following the methodology of TRS 398. The in-air beam spot profiles were acquired by a planar scintillation device, respectively, at ISO, upper and down streams, fitted with single Gaussian distribution for beam modeling in Eclipse v15.6. The field size effect was adjusted for the best overall accuracy of clinically relevant field QAs. The halo effects at near surface were quantified by a pinpoint ionization chamber. Its major dosimetric characteristics were compared against MRPT comparable beam dataset. Results Contrast to MRPT, an increased proton straggling in the Bragg peak region was found with widened beam distal falloffs and elevated proximal transmission dose values. Integrated depth doses showed 0.105-0.221 MeV (energy sigma) or 0.30-0.94 mm broader Bragg peak widths (R-b80-R-a80) for 130 MeV or higher energy beams and up to 0.48-0.79 mm extended distal falloffs (R-b20-R-b80). Minor differences were identified in beam spot sizes, spot divergences, proton particles/MU, and field size output effects. High passing scores are reported for independent end-to-end dosimetry checks by IROC and for initial 108 field-specific QAs at 3%/3 mm Gamma index with fields regardless with or without range shifters. Conclusions The author highlighted the dosimetry differences in IDDs mainly caused by the shortened beam transport system of SRPT, for which new acceptance criteria were adapted. This report offers a unique reference for future commissioning, beam modeling, planning, and analysis of QA and clinical studies.
引用
收藏
页码:266 / 271
页数:6
相关论文
共 50 条
  • [1] Beam Characteristics of the First Clinical 360°-rotational Compact Scanning Pencil Beam Proton Treatment System and Comparisons against a Multi-Room System
    Shang, C. Y.
    Evans, G.
    Rahman, M.
    Lin, L.
    INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 2020, 108 (03): : E360 - E361
  • [2] Beam Characteristics of the First Clinical 360-Rotational Compact Scanning Pencil Beam Proton Treatment System and Differences From a Multi-Room System
    Shang, C.
    Evans, G.
    Rahman, M.
    Lin, L.
    MEDICAL PHYSICS, 2020, 47 (06) : E709 - E710
  • [3] Commissioning of a Two-Gantry Proton Pencil Beam Scanning System, the First Multi-Room Varian ProBeam360°
    Lee, E.
    Faught, A. M.
    Lee-Poprocki, H.
    Batin, E.
    Ayan, A. S.
    MEDICAL PHYSICS, 2024, 51 (10) : 7722 - 7723
  • [4] Investigating beam matching for multi-room pencil beam scanning proton therapy
    Suresh Rana
    Jaafar Bennouna
    Physical and Engineering Sciences in Medicine, 2020, 43 : 1241 - 1251
  • [5] Investigating beam matching for multi-room pencil beam scanning proton therapy
    Rana, Suresh
    Bennouna, Jaafar
    PHYSICAL AND ENGINEERING SCIENCES IN MEDICINE, 2020, 43 (04) : 1241 - 1251
  • [6] Commissioning and beam characterization of the first gantry-mounted accelerator pencil beam scanning proton system
    Kang, M.
    Cessac, Rob
    Pang, D.
    MEDICAL PHYSICS, 2020, 47 (08) : 3496 - 3510
  • [7] Measurement of stray neutron doses inside the treatment room from a proton pencil beam scanning system
    Mojzeszek, N.
    Farah, J.
    Klodowska, M.
    Ploc, O.
    Stolarczyk, L.
    Waligorski, M. P. R.
    Olko, P.
    PHYSICA MEDICA-EUROPEAN JOURNAL OF MEDICAL PHYSICS, 2017, 34 : 80 - 84
  • [8] An Overview of the Commissioning of a Two-Gantry Proton Pencil Beam Scanning System
    Zhang, Y.
    Lee, E.
    Xiao, Z.
    Lamba, M.
    Mascia, A.
    MEDICAL PHYSICS, 2017, 44 (06) : 2870 - 2870
  • [9] Pencil Beam Scanning (PBS) Proton Therapy in a Fixed-Beam Room for Treatment of Pediatric Brain Tumors
    Hollander, A.
    Kirk, M.
    Both, S.
    Lustig, R. A.
    Tochner, Z.
    Hill-Kayser, C. E.
    INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 2013, 87 (02): : S592 - S593
  • [10] Clinical application of a gantry-attachable plastic scintillating plate dosimetry system in pencil beam scanning proton therapy beam monitoring
    Jeong, Seonghoon
    Yoon, Myonggeun
    Chung, Kwangzoo
    Ahn, Sung Hwan
    Lee, Boram
    Seo, Jaehyeon
    PHYSICA MEDICA-EUROPEAN JOURNAL OF MEDICAL PHYSICS, 2020, 77 : 181 - 186