NRG Oncology Survey of Monte Carlo Dose Calculation Use in US Proton Therapy Centers

被引:12
作者
Lin, Liyong [1 ]
Taylor, Paige A. [2 ]
Shen, Jiajian [3 ]
Saini, Jatinder [4 ]
Kang, Minglei [5 ]
Simone, Charles B. [5 ]
Bradley, Jeffrey D. [1 ]
Li, Zuofeng [6 ]
Xiao, Ying [7 ]
机构
[1] Emory Univ, 1365 Clifton Rd 1-A, Atlanta, GA 30322 USA
[2] MD Anderson Canc Ctr, Houston, TX USA
[3] Mayo Clin Arizona, Phoenix, AZ USA
[4] Seattle Canc Care Alliance Proton Therapy Ctr, Seattle, WA USA
[5] New York Proton Ctr, New York, NY USA
[6] Univ Florida, Coll Med, Dept Radiat Oncol, Gainesville, FL USA
[7] Univ Penn, Philadelphia, PA 19104 USA
关键词
Monte Carlo; proton therapy; DECT; MAR; surgical implant; ENERGY COMPUTED-TOMOGRAPHY; STOPPING POWER RATIOS; RANGE UNCERTAINTIES; RADIATION-THERAPY; TREATMENT PLANS; SCANNED PROTON; CHORDOMAS; CT; CHONDROSARCOMAS; RADIOTHERAPY;
D O I
10.14338/IJPT-D-21-00004
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Purpose/Objective(s): Monte Carlo (MC) dose calculation has appeared in primary commercial treatment-planning systems and various in-house platforms. Dual-energy computed tomography (DECT) and metal artifact reduction (MAR) techniques complement MC capabilities. However, no publications have yet reported how proton therapy centers implement these new technologies, and a national survey is required to determine the feasibility of including MC and companion techniques in cooperative group clinical trials. Materials/Methods: A 9-question survey was designed to query key clinical parameters: scope of MC utilization, validation methods for heterogeneities, clinical site-specific imaging guidance, proton range uncertainties, and how implants are handled. A national survey was distributed to all 29 operational US proton therapy centers on 13 May 2019. Results: We received responses from 25 centers (86% participation). Commercial MC was most commonly used for primary plan optimization (16 centers) or primary dose evaluation (18 centers), while in-house MC was used more frequently for secondary dose evaluation (7 centers). Based on the survey, MC was used infrequently for gastrointestinal, genitourinary, gynecology and extremity compared with other more heterogeneous disease sites (P < .007). Although many centers had published DECT research, only 3/25 centers had implemented DECT clinically, either in the treatment-planning system or to override implant materials. Most centers (64%) treated patients with metal implants on a case-by-case basis, with a variety of methods reported. Twenty-four centers (96%) used MAR images and overrode the surrounding tissue artifacts; however, there was no consensus on how to determine metal dimension, materials density, or stopping powers. Conclusion: The use of MC for primary dose calculation and optimization was prevalent and, therefore, likely feasible for clinical trials. There was consensus to use MAR and override tissues surrounding metals but no consensus about how to use DECT and MAR for human tissues and implants. Development and standardization of these advanced technologies are strongly encouraged for vendors and clinical physicists.
引用
收藏
页码:73 / 81
页数:9
相关论文
共 33 条
  • [1] Evaluation of two commercial CT metal artifact reduction algorithms for use in proton radiotherapy treatment planning in the head and neck area
    Andersson, Karin M.
    Dahlgren, Christina Vallhagen
    Reizenstein, Johan
    Cao, Yang
    Ahnesjoe, Anders
    Thunberg, Per
    [J]. MEDICAL PHYSICS, 2018, 45 (10) : 4329 - 4344
  • [2] Beltran Chris, 2016, Int J Part Ther, V3, P312, DOI 10.14338/IJPT-16-00011.1
  • [3] Practice patterns of image guided particle therapy in Europe: A 2016 survey of the European Particle Therapy Network (EPTN)
    Bolsi, Alessandra
    Peroni, Marta
    Amelio, Dante
    Dasu, Alexandru
    Stock, Markus
    Toma-Dasu, Iuliana
    Nystrom, Petra Witt
    Hoffmann, Aswin
    [J]. RADIOTHERAPY AND ONCOLOGY, 2018, 128 (01) : 4 - 8
  • [4] A standardized commissioning framework of Monte Carlo dose calculation algorithms for proton pencil beam scanning treatment planning systems
    Chang, Chih-Wei
    Huang, Sheng
    Harms, Joseph
    Zhou, Jun
    Zhang, Rongxiao
    Dhabaan, Anees
    Slopsema, Roelf
    Kang, Minglei
    Liu, Tian
    McDonald, Mark
    Langen, Katja
    Lin, Liyong
    [J]. MEDICAL PHYSICS, 2020, 47 (04) : 1545 - 1557
  • [5] A novel proton counting detector and method for the validation of tissue and implant material maps for Monte Carlo dose calculation
    Charyyev, Serdar
    Chang, Chih-Wei
    Harms, Joseph Mark
    Oancea, Cristina
    Yoon, S. Tim
    Yang, Xiaofeng
    Zhang, Tiezhi
    Zhou, Jun
    Lin, Liyong
    [J]. PHYSICS IN MEDICINE AND BIOLOGY, 2021, 66 (04)
  • [6] Long-Term Results of Phase II Study of High Dose Photon/Proton Radiotherapy in the Management of Spine Chordomas, Chondrosarcomas, and Other Sarcomas
    Delaney, Thomas F.
    Liebsch, Norbert J.
    Pedlow, Frank X.
    Adams, Judith
    Weyman, Elizabeth A.
    Yeap, Beow Y.
    Depauw, Nicolas
    Nielsen, G. Petur
    Harmon, David C.
    Yoon, Sam S.
    Chen, Yen-Lin
    Schwab, Joseph H.
    Hornicek, Francis J.
    [J]. JOURNAL OF SURGICAL ONCOLOGY, 2014, 110 (02) : 115 - 122
  • [7] The effect of surgical titanium rods on proton therapy delivered for cervical bone tumors: experimental validation using an anthropomorphic phantom
    Dietlicher, Isabelle
    Casiraghi, Margherita
    Ares, Carmen
    Bolsi, Alessandra
    Weber, Damien C.
    Lomax, Antony J.
    Albertini, Francesca
    [J]. PHYSICS IN MEDICINE AND BIOLOGY, 2014, 59 (23) : 7181 - 7194
  • [8] New horizons in particle therapy systems
    Farr, Jonathan B.
    Flanz, Jacob B.
    Gerbershagen, Alexander
    Moyers, Michael F.
    [J]. MEDICAL PHYSICS, 2018, 45 (11) : E953 - E983
  • [9] A dual-stream deep convolutional network for reducing metal streak artifacts in CT images
    Gjesteby, Lars
    Shan, Hongming
    Yang, Qingsong
    Xi, Yan
    Jin, Yannan
    Giantsoudi, Drosoula
    Paganetti, Harald
    De Man, Bruno
    Wang, Ge
    [J]. PHYSICS IN MEDICINE AND BIOLOGY, 2019, 64 (23)
  • [10] Technical Note: GATE-RTion: a GATE/Geant4 release for clinical applications in scanned ion beam therapy
    Grevillot, L.
    Boersma, D. J.
    Fuchs, H.
    Aitkenhead, A.
    Elia, A.
    Bolsa, M.
    Winterhalter, C.
    Vidal, M.
    Jan, S.
    Pietrzyk, U.
    Maigne, L.
    Sarrut, D.
    [J]. MEDICAL PHYSICS, 2020, 47 (08) : 3675 - 3681