Motion mitigation in scanned ion beam therapy through 4D-optimization

被引:75
作者
Graeff, Christian [1 ]
机构
[1] GSI Helmholzzentrum Schwerionenforsch GmbH, Darmstadt, Germany
来源
PHYSICA MEDICA-EUROPEAN JOURNAL OF MEDICAL PHYSICS | 2014年 / 30卷 / 05期
关键词
Treatment planning; 4D-optimization; Motion mitigation; Intrafractional motion; BREATHING-SYNCHRONIZED DELIVERY; MODULATED ARC THERAPY; PARTICLE THERAPY; RESPIRATORY MOTION; TRACKING SYSTEM; TUMOR MOTION; PROTON-BEAM; RADIOTHERAPY; OPTIMIZATION; MANAGEMENT;
D O I
10.1016/j.ejmp.2014.03.011
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
The treatment of moving tumors remains challenging, especially with scanned ion beam therapy due to interplay effects and the strong range dependence. This is especially true in the context of radiosurgery with high dose delivered in few or single fractions. Inverse treatment planning on the entire 4D-CT may result in conformal plans inherently adapted to the moving anatomy of the patient. Existing studies on this topic for photon therapy are reviewed, but arguably the benefits for ion beam therapy can be even greater. Compared to the main conformal mitigation technique of beam tracking, 4D-optimization permits a) easier, offline handling of range changes, b) handling of complex motion patterns, and c) improved dose shaping capabilities outside of the target. Different approaches for 4D-optimization in scanned ion beam therapy are proposed and compared, together with delivery methods that provide the necessary synchronization between irradiation and detected patient motion. Potential solutions for the improvement of robustness in 4D-optimization are discussed. A method for delivery of homogenous doses to each motion phase is presented that might be a potential solution for robust conformal dose delivery for future clinical use. In an exemplary lung cancer patient case with a large motion amplitude, 4D-optimization resulted in conformal dose coverage while beam tracking did not. In conclusion, different strategies of 4D-optimization could provide increased OAR sparing and highly conformal dose delivery for targets with complex motion patterns and large amplitudes. (C) 2014 Associazione Italiana di Fisica Medica. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:570 / 577
页数:8
相关论文
共 50 条
[21]   Assessment of Uncertainties in Treatment Planning for Scanned Ion Beam Therapy of Moving Tumors [J].
Hild, Sebastian ;
Durante, Marco ;
Bert, Christoph .
INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 2013, 85 (02) :528-535
[22]   4D particle therapy PET simulation for moving targets irradiated with scanned ion beams [J].
Laube, K. ;
Menkel, S. ;
Bert, C. ;
Enghardt, W. ;
Helmbrecht, S. ;
Saito, N. ;
Fiedler, F. .
PHYSICS IN MEDICINE AND BIOLOGY, 2013, 58 (03) :513-533
[23]   Worst case optimization for interfractional motion mitigation in carbon ion therapy of pancreatic cancer [J].
Julian Steitz ;
Patrick Naumann ;
Silke Ulrich ;
Matthias F. Haefner ;
Florian Sterzing ;
Uwe Oelfke ;
Mark Bangert .
Radiation Oncology, 11
[24]   First 4D In-beam PET Measurement for Beam Tracking of a Moving Phantom with a Scanned Carbon Ion Beam [J].
Parodi, K. ;
Saito, N. ;
Richter, C. ;
Chaudhri, N. ;
Enghardt, W. ;
Rietzel, E. ;
Bert, C. .
2008 IEEE NUCLEAR SCIENCE SYMPOSIUM AND MEDICAL IMAGING CONFERENCE (2008 NSS/MIC), VOLS 1-9, 2009, :3794-+
[25]   Beam-specific planning target volumes incorporating 4D CT for pencil beam scanning proton therapy of thoracic tumors [J].
Lin, Liyong ;
Kang, Minglei ;
Huang, Sheng ;
Mayer, Rulon ;
Thomas, Andrew ;
Solberg, Timothy D. ;
McDonough, Jame E. ;
Simone, Charles B., II .
JOURNAL OF APPLIED CLINICAL MEDICAL PHYSICS, 2015, 16 (06) :281-292
[26]   Advanced treatment planning using direct 4D optimisation for pencil-beam scanned particle therapy [J].
Bernatowicz, Kinga ;
Zhang, Ye ;
Perrin, Rosalind ;
Weber, Damien C. ;
Lomax, Antony J. .
PHYSICS IN MEDICINE AND BIOLOGY, 2017, 62 (16) :6595-6609
[27]   Quality assurance for a treatment planning system in scanned ion beam therapy [J].
Jäkel, O ;
Hartmann, GH ;
Karger, CP ;
Heeg, P ;
Rassow, J .
MEDICAL PHYSICS, 2000, 27 (07) :1588-1600
[28]   Respiratory liver motion estimation and its effect on scanned proton beam therapy [J].
Zhang, Ye ;
Boye, D. ;
Tanner, C. ;
Lomax, A. J. ;
Knopf, A. .
PHYSICS IN MEDICINE AND BIOLOGY, 2012, 57 (07) :1779-1795
[29]   FLUKA particle therapy tool for Monte Carlo independent calculation of scanned proton and carbon ion beam therapy [J].
Kozlowska, Wioletta S. ;
Bohlen, Till T. ;
Cuccagna, Caterina ;
Ferrari, Alfredo ;
Fracchiolla, Francesco ;
Magro, Giuseppe ;
Mairani, Andrea ;
Schwarz, Marco ;
Vlachoudis, Vasilis ;
Georg, Dietmar .
PHYSICS IN MEDICINE AND BIOLOGY, 2019, 64 (07)
[30]   3D online compensation of target motion with scanned particle beam [J].
Grözinger, SO ;
Li, Q ;
Rietzel, E ;
Haberer, T ;
Kraft, G .
RADIOTHERAPY AND ONCOLOGY, 2004, 73 :S77-S79