Investigation of a novel algorithm for true 4D-VMAT planning with comparison to tracked, gated and static delivery

被引:23
作者
Chin, Erika [1 ,2 ]
Otto, Karl [1 ]
机构
[1] Univ British Columbia, Vancouver, BC V6T 1Z1, Canada
[2] BC Canc Agcy Vancouver Ctr, Vancouver, BC V5Z 4E6, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
VMAT; arc therapy; 4D treatment planning; IMRT; CELL LUNG-CANCER; MODULATED ARC THERAPY; DIRECT-APERTURE OPTIMIZATION; CONFORMAL RADIATION-THERAPY; CONE-BEAM CT; RESPIRATORY MOTION; TUMOR-CONTROL; DOSE DISTRIBUTION; RADIOTHERAPY; VOLUME;
D O I
10.1118/1.3578608
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: A novel 4D volumetric modulated arc therapy (4D-VMAT) planning system is presented where radiation sparing of organs at risk (OARs) is enhanced by exploiting respiratory motion of tumor and healthy tissues. Methods: In conventional radiation therapy, a motion encompassing margin is normally added to the clinical target volume (CTV) to ensure the tumor receives the planned treatment dose. This results in a substantial increase in dose to the OARs. Our 4D-VMAT algorithm aims to reduce OAR dose by incorporating 4D volumetric target and OAR motions directly into the optimization process. During optimization, phase correlated beam samples are progressively added throughout the full range of gantry rotation. The resulting treatment plans have respiratory phase-optimized apertures whose deliveries are synchronized to the patient's respiratory cycle. 4D-VMAT plans reduce dose to the OAR by: (1) eliminating the motion margin, (2) selectively redistributing OAR dose over the OAR volume, and (3) timing larger dose contributions (MU) to respiratory phases where greater separations between the target and OAR occur. Our 4D-VMAT algorithm was tested by simulating a variety of tumor motion amplitudes (0.5-2 cm) in the superior/inferior and anterior/posterior directions. 4D-VMAT's performance was compared against 3D-VMAT, gated VMAT and dynamic multileaf collimator (DMLC) ideal-tracking VMAT. Results: Results show that OAR sparing of 4D-VMAT was greater than 3D-VMAT in all cases due to the smaller PTV margin. Compared to DMLC ideal-tracking VMAT, 4D-VMAT's OAR sparing is superior only when the relative distance between the PTV and OAR is changing. For gated VMAT, results compared to 4D-VMAT are phantom dependent. There was negligible difference in plan qualities for the tested case of motion along the anterior/posterior axis. For motions along the superior/inferior axis, gated VMAT's narrow beam-on window reduces the OAR volume directly irradiated by the linac but also allows higher dose accumulation in the exposed OAR. In contrast, 4D-VMAT can reduce the OAR volume exposed to high doses but at the cost of redistributing the OAR dose over a larger volume. Finally for 4D-VMAT, an increase in tumor motion no longer resulted in greater irradiation of the OAR as seen in conventional 3D radiation therapy. OAR dose levels were preserved for increasing target motion along the anterior/posterior axis. For increasing superior/inferior motion, the volume of OAR exposed to high doses actually decreased due to dose redistribution. Conclusions: Our investigation demonstrated that the 4D-VMAT system has the potential to improve radiation therapy of periodically moving tumors over 3D-VMAT, gating or tracking methods. (C) 2011 American Association of Physicists in Medicine. [DOI: 10.1118/1.3578608]
引用
收藏
页码:2698 / 2707
页数:10
相关论文
共 57 条
  • [41] Respiratory correlated cone beam CT
    Sonke, JJ
    Zijp, L
    Remeijer, P
    van Herk, M
    [J]. MEDICAL PHYSICS, 2005, 32 (04) : 1176 - 1186
  • [42] Calculation of the absorbed dose distribution due to irregularly shaped photon beams using pencil beam kernels derived from basic beam data
    Storchi, P
    Woudstra, E
    [J]. PHYSICS IN MEDICINE AND BIOLOGY, 1996, 41 (04) : 637 - 656
  • [43] Calculation of a pencil beam kernel from measured photon beam data
    Storchi, PRM
    van Battum, LJ
    Woudstra, E
    [J]. PHYSICS IN MEDICINE AND BIOLOGY, 1999, 44 (12) : 2917 - 2928
  • [44] An analysis of thoracic and abdominal tumour motion for stereotactic body radiotherapy patients
    Suh, Yelin
    Dieterich, Sonja
    Cho, Byungchul
    Keall, Paul J.
    [J]. PHYSICS IN MEDICINE AND BIOLOGY, 2008, 53 (13) : 3623 - 3640
  • [45] Temporo-spatial IMRT optimization: concepts, implementation and initial results
    Trofimov, A
    Rietzel, E
    Lu, HM
    Martin, B
    Jiang, S
    Chen, GTY
    Bortfeld, T
    [J]. PHYSICS IN MEDICINE AND BIOLOGY, 2005, 50 (12) : 2779 - 2798
  • [46] Development of an optimization concept for arc-modulated cone beam therapy
    Ulrich, Silke
    Nill, Simeon
    Oelfke, Uwe
    [J]. PHYSICS IN MEDICINE AND BIOLOGY, 2007, 52 (14) : 4099 - 4119
  • [47] Errors and margins in radiotherapy
    van Herk, M
    [J]. SEMINARS IN RADIATION ONCOLOGY, 2004, 14 (01) : 52 - 64
  • [48] Biologic and physical fractionation effects of random geometric errors
    van Herk, M
    Witte, M
    van Der Geer, J
    Schneider, C
    Lebesque, JV
    [J]. INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 2003, 57 (05): : 1460 - 1471
  • [49] Determining parameters for respiration-gated radiotherapy
    Vedam, SS
    Keall, PJ
    Kini, VR
    Mohan, R
    [J]. MEDICAL PHYSICS, 2001, 28 (10) : 2139 - 2146
  • [50] Development and preliminary evaluation of a prototype audiovisual biofeedback device incorporating a patient-specific guiding waveform
    Venkat, Raghu B.
    Sawant, Amit
    Suh, Yelin
    George, Rohini
    Keall, Paul J.
    [J]. PHYSICS IN MEDICINE AND BIOLOGY, 2008, 53 (11) : N197 - N208