Contour scanning, multi-leaf collimation and the combination thereof for proton pencil beam scanning

被引:13
|
作者
Winterhalter, Carla [1 ,2 ]
Meier, Gabriel [1 ]
Oxley, David [1 ]
Weber, Damien C. [1 ,3 ,4 ]
Lomax, Antony J. [1 ,2 ]
Safai, Sairos [1 ]
机构
[1] Paul Scherrer Inst, Ctr Proton Therapy, Villigen, Switzerland
[2] Swiss Fed Inst Technol, Phys Dept, Zurich, Switzerland
[3] Univ Hosp Bern, Radiat Oncol Dept, Bern, Switzerland
[4] Univ Hosp Zurich, Radiat Oncol Dept, Zurich, Switzerland
关键词
proton therapy; pencil beam scanning; penumbra; collimation; optimisation; PATIENT-SPECIFIC APERTURE; MONTE-CARLO; DYNAMIC COLLIMATION; THERAPY; SYSTEM; RECONSTRUCTION; PENUMBRA; QUALITY; IMPACT;
D O I
10.1088/1361-6560/aaf2e8
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
In proton therapy, the lateral fall-off is often used to spare critical organs. It is therefore crucial to improve the penumbra for proton pencil beam scanning. However, previous work has shown that collimation may not be necessary for depths of >15 cm in water. As such, in this work we investigate the effectiveness of a thin multi leaf collimator (just thick enough to completely stop protons with ranges of <15 cm in water) for energy layer specific collimation in patient geometries, when applied in combination with both grid and contour scanned PBS proton therapy. For this, an analytical model of collimated beam shapes, based solely on data available in the treatment planning system, has been included in the optimization, with the resulting optimised plans then being recalculated using Monte Carlo in order to most accurately simulate the full physics effects of the collimator. For grid based scanning, energy specific collimation has been found to reduce the V30 outside the PTV by 19.8% for an example patient when compared to the same pencil beam placement without collimation. V30 could be even reduced by a further 5.6% when combining collimation and contour scanning. In addition, mixed plans, consisting of contour scanning for deep fields (max range >15 cm WER) and collimated contour scanning for superficial fields (<15 cm), have been created for four patients, by which V30 could be reduced by 0.8% to 8.0% and the mean dose to the brain stem by 1.5% to 3.3%. Target dose homogeneity however is not substantially different when compared to the best un-collimated scenario. In conclusion, we demonstrate the potential advantages of a thin, multi leaf collimator in combination with contour scanning for energy layer specific collimation in PBS proton therapy.
引用
收藏
页数:15
相关论文
共 50 条
  • [21] Biophysical characterization of collimated and uncollimated fields in pencil beam scanning proton therapy
    Nabha, Racell
    De Saint-Hubert, Marijke
    Marichal, Joachim
    Esser, Johannes
    Van Hoey, Olivier
    Baeumer, Christian
    Verbeek, Nico
    Struelens, Lara
    Sterpin, Edmond
    Tabury, Kevin
    Marek, Lukas
    Granja, Carlos
    Timmermann, Beate
    Vanhavere, Filip
    PHYSICS IN MEDICINE AND BIOLOGY, 2023, 68 (06)
  • [22] Proton FLASH: passive scattering or pencil beam scanning?
    Zhang, Guoliang
    Wang, Junliang
    Wang, Yuenan
    Peng, Hao
    PHYSICS IN MEDICINE AND BIOLOGY, 2021, 66 (03)
  • [23] 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):
  • [24] Log file based Monte Carlo calculations for proton pencil beam scanning therapy
    Winterhalter, Carla
    Meier, Gabriel
    Oxley, David
    Weber, Damien C.
    Lomax, Antony J.
    Safai, Sairos
    PHYSICS IN MEDICINE AND BIOLOGY, 2019, 64 (03)
  • [25] Impact of dose engine algorithm in pencil beam scanning proton therapy for breast cancer
    Tommasino, Francesco
    Fellin, Francesco
    Lorentini, Stefano
    Farace, Paolo
    PHYSICA MEDICA-EUROPEAN JOURNAL OF MEDICAL PHYSICS, 2018, 50 : 7 - 12
  • [26] 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
  • [27] Dosimetric comparison of pencil beam scanning proton therapy with or without multi-leaf collimator versus volumetric-modulated arc therapy for treatment of malignant glioma
    Miyata, Junya
    Tominaga, Yuki
    Kondo, Kazuto
    Sonoda, Yasuaki
    Hanazawa, Hideki
    Sakai, Mami
    Itasaka, Satoshi
    Oita, Masataka
    Kuroda, Masahiro
    MEDICAL DOSIMETRY, 2023, 48 (02) : 105 - 112
  • [28] Proton pencil beam scanning for mediastinal lymphoma: the impact of interplay between target motion and beam scanning
    Zeng, C.
    Plastaras, J. P.
    Tochner, Z. A.
    White, B. M.
    Hill-Kayser, C. E.
    Hahn, S. M.
    Both, S.
    PHYSICS IN MEDICINE AND BIOLOGY, 2015, 60 (07) : 3013 - 3029
  • [29] Comment on 'Collimated proton pencil-beam scanning for superficial targets: impact of the order of range shifter and aperture'
    Winterhalter, Carla
    Lomax, Antony J.
    Oxley, David
    Weber, Damien C.
    Safai, Sairos
    PHYSICS IN MEDICINE AND BIOLOGY, 2018, 63 (20)
  • [30] A CASE STUDY IN PROTON PENCIL-BEAM SCANNING DELIVERY
    Kooy, Hanne M.
    Clasie, Benjamin M.
    Lu, Hsiao-Ming
    Madden, Thomas M.
    Bentefour, Hassan
    Depauw, Nicolas
    Adams, Judy A.
    Trofimov, Alexei V.
    Demaret, Denis
    Delaney, Thomas F.
    Flanz, Jacob B.
    INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 2010, 76 (02): : 624 - 630