Use of a realistic breathing lung phantom to evaluate dose delivery errors

被引:73
作者
Court, Laurence E. [1 ,2 ]
Seco, Joao [3 ]
Lu, Xing-Qi [4 ]
Ebe, Kazuyu [5 ]
Mayo, Charles [6 ]
Ionascu, Dan [7 ]
Winey, Brian [1 ,2 ,3 ]
Giakoumakis, Nikos [1 ,2 ]
Aristophanous, Michalis [1 ,2 ]
Berbeco, Ross [1 ,2 ]
Rottman, Joerg [1 ,2 ]
Bogdanov, Madeleine [1 ,2 ]
Schofield, Deborah [1 ,2 ]
Lingos, Tania [1 ,2 ]
机构
[1] Harvard Univ, Sch Med, Dana Farber Canc Inst, Boston, MA 02115 USA
[2] Harvard Univ, Sch Med, Brigham & Womens Hosp, Boston, MA 02115 USA
[3] Harvard Univ, Sch Med, Massachusetts Gen Hosp, Boston, MA 02114 USA
[4] Harvard Univ, Sch Med, Beth Israel Deaconess Med Ctr, Boston, MA 02130 USA
[5] JA Jouetsu Hosp, Joetsu 3550063, Japan
[6] Univ Massachusetts, Mem Med Ctr, Worcester, MA 01655 USA
[7] William Beaumont Hosp, Royal Oak, MI 48073 USA
关键词
interplay effect; respiratory motion; IMRT; VMAT; rapid prototyping; ORGAN MOTION; INTENSITY MODULATION; RESPIRATORY MOTION; IMRT TREATMENTS; RADIOTHERAPY; TARGETS; TUMORS;
D O I
10.1118/1.3496356
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: To compare the effect of respiration-induced motion on delivered dose (the interplay effect) for different treatment techniques under realistic clinical conditions. Methods: A flexible resin tumor model was created using rapid prototyping techniques based on a computed tomography (CT) image of an actual tumor. Twenty micro-MOSFETs were inserted into the tumor model and the tumor model was inserted into an anthropomorphic breathing phantom. Phantom motion was programed using the motion trajectory of an actual patient. A four-dimensional CT image was obtained and several treatment plans were created using different treatment techniques and planning systems: Conformal (Eclipse), step-and-shoot intensity-modulated radiation therapy (IMRT) (Pinnacle), step-and-shoot IMRT (XiO), dynamic IMRT (Eclipse), complex dynamic IMRT (Eclipse), hybrid IMRT [60% conformal, 40% dynamic IMRT (Eclipse)], volume-modulated arc therapy (VMAT) [single-arc (Eclipse)], VMAT [double-arc (Eclipse)], and complex VMAT (Eclipse). The complex plans were created by artificially pushing the optimizer to give complex multileaf collimator sequences. Each IMRT field was irradiated five times and each VMAT field was irradiated ten times, with each irradiation starting at a random point in the respiratory cycle. The effect of fractionation was calculated by randomly summing the measured doses. The maximum deviation for each measurement point per fraction and the probability that 95% of the model tumor had dose deviations less than 2% and 5% were calculated as a function of the number of fractions. Tumor control probabilities for each treatment plan were calculated and compared. Results: After five fractions, measured dose deviations were less than 2% for more than 95% of measurement points within the tumor model for all plans, except the complex dynamic IMRT, step-and-shoot IMRT (XiO), complex VMAT, and single-arc VMAT plans. Reducing the dose rate of the complex IMRT plans from 600 to 200 MU/min reduced the dose deviations to less than 2%. Dose deviations were less than 5% after five fractions for all plans, except the complex single-arc VMAT plan. Conclusions: Rapid prototyping techniques can be used to create realistic tumor models. For most treatment techniques, the dose deviations averaged out after several fractions. Treatments with unusually complicated multileaf collimator sequences had larger dose deviations. For IMRT treatments, dose deviations can be reduced by reducing the dose rate. For VMAT treatments, using two arcs instead of one is effective for reducing dose deviations. (C) 2010 American Association of Physicists in Medicine. [DOI: 10.1118/1.3496356]
引用
收藏
页码:5850 / 5857
页数:8
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