4D dose-position verification in radiation therapy using the RADPOS system in a deformable lung phantom

被引:21
|
作者
Cherpak, Amanda [1 ,2 ]
Serban, Monica [3 ]
Seuntjens, Jan [4 ]
Cygler, Joanna E. [1 ,2 ]
机构
[1] Ottawa Hosp Canc Ctr, Ottawa, ON K1H 8L6, Canada
[2] Carleton Univ, Dept Phys, Ottawa, ON K1S 5B6, Canada
[3] Hop Maisonneuve Rosemont Hosp, Serv Radiophys, Montreal, PQ H1T 2M4, Canada
[4] McGill Univ, Med Phys Unit, Montreal, PQ H3G 1A4, Canada
关键词
4D in vivo dosimetry; electromagnetic positioning system; MOSFET; deformable phantom; RADPOS; 4-DIMENSIONAL COMPUTED-TOMOGRAPHY; VOLUME HISTOGRAM ANALYSIS; IN-VIVO DOSIMETRY; RESPIRATORY MOTION; CANCER PATIENTS; TECHNICAL NOTE; PNEUMONITIS; RADIOTHERAPY; PHOTON; REGISTRATION;
D O I
10.1118/1.3515461
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 in vivo dosimetry system (RADPOS), in conjunction with a deformable lung phantom, has been evaluated as a potential quality assurance tool for 4D radiotherapy. Methods: RADPOS detectors, which consist of a MOSFET dosimeter combined with an electromagnetic positioning probe, were placed inside the deformable lung phantom. One detector was positioned directly inside a tumor embedded in the lung phantom and another was positioned inside the lung portion of the phantom, outside the tumor. CT scans were taken with the phantom at three breathing phases, and for each phase, the detector position inside the phantom was read with the RADPOS software and compared to the position as determined from the CT data. These values were also compared to RADPOS measurements taken with the phantom on the couch of a Varian Clinac 6EX linac. The deformable phantom and the RADPOS system were also used in two radiation delivery scenarios: (1) A simulation of a free-breathing delivery and (2) a simulation of an adaptive treatment. Results: Compared to CT imaging, the RADPOS positional accuracy was found to be better than 2.5 mm. The radial displacement measurements taken in the CT and linac rooms agreed to within an average of (0.7 +/- 0.3) mm. Hence, the system can provide relative displacement measurements in the treatment room, consistent with measurements made in the CT room. For the free-breathing delivery, the total dose reported by RADPOS agreed to within 4% and 5% of the treatment planning doses in the tumor and the lung portion of the phantom, respectively. The RADPOS-measured dose values for the adaptive delivery were within 1.5% of the treatment plan values, which was well within the estimated experimental uncertainties. Conclusions: This work has shown that the deformable lung phantom-RADPOS system can be an efficient quality assurance tool for 4D radiation therapy. (C) 2011 American Association of Physicists in Medicine. [DOI: 10.1118/1.3515461]
引用
收藏
页码:179 / 187
页数:9
相关论文
共 39 条
  • [1] Dose and Position Quality Assurance Using the RADPOS System for 4D Radiotherapy with CyberKnife
    Marants, R.
    Vandervoort, E.
    Cygler, J. E.
    WORLD CONGRESS ON MEDICAL PHYSICS AND BIOMEDICAL ENGINEERING, 2015, VOLS 1 AND 2, 2015, 51 : 599 - 602
  • [2] Evaluation of the 4D RADPOS dosimetry system for dose and position quality assurance of CyberKnife
    Marants, Raanan
    Vandervoort, Eric
    Cygler, Joanna E.
    MEDICAL PHYSICS, 2018, 45 (09) : 4030 - 4044
  • [3] Development of a deformable phantom for experimental verification of 4D Monte Carlo simulations in a deforming anatomy
    Gholampourkashi, Sara
    Cygler, Joanna E.
    Lavigne, Bernie
    Heath, Emily
    PHYSICA MEDICA-EUROPEAN JOURNAL OF MEDICAL PHYSICS, 2018, 51 : 81 - 90
  • [4] Evaluation of the Elekta Symmetry™ 4D IGRT System by Using a Moving Lung Phantom
    Shin, Hun-Joo
    Kim, Shin-Wook
    Kay, Chul Seung
    Seo, Jae-Hyuk
    Lee, Gi-Woong
    Kang, Ki-Mun
    Jang, Hong Seok
    Kang, Young-nam
    JOURNAL OF THE KOREAN PHYSICAL SOCIETY, 2015, 67 (01) : 260 - 263
  • [5] A method using 4D dose accumulation to quantify the interplay effect in lung stereotactic body radiation therapy
    Huesa-Berral, Carlos
    Burguete, Javier
    Moreno-Jimenez, Marta
    Diego Azcona, Juan
    PHYSICS IN MEDICINE AND BIOLOGY, 2021, 66 (03)
  • [6] Advanced Radiation DOSimetry phantom (ARDOS): a versatile breathing phantom for 4D radiation therapy and medical imaging
    Kostiukhina, Natalia
    Georg, Dietmar
    Rollet, Sofia
    Kuess, Peter
    Sipaj, Andrej
    Andrzejewski, Piotr
    Furtado, Hugo
    Rausch, Ivo
    Lechner, Wolfgang
    Steiner, Elisabeth
    Kertesz, Hunor
    Knaeusl, Barbara
    PHYSICS IN MEDICINE AND BIOLOGY, 2017, 62 (20) : 8136 - 8153
  • [7] Four-dimensional dose reconstruction system for lung cancer VMAT treatment: a 4D phantom study
    Hashimoto, M.
    Ito, Y.
    Tanaka, Y.
    Nakano, Masahiro
    INTERNATIONAL JOURNAL OF RADIATION RESEARCH, 2023, 21 (03): : 467 - 474
  • [8] Evaluation of the Elekta Symmetry™ 4D IGRT system by using a moving lung phantom
    Hun-Joo Shin
    Shin-Wook Kim
    Chul Seung Kay
    Jae-Hyuk Seo
    Gi-Woong Lee
    Ki-Mun Kang
    Hong Seok Jang
    Young-nam Kang
    Journal of the Korean Physical Society, 2015, 67 : 260 - 263
  • [9] 4D registration and 4D verification of lung tumor position for stereotactic volumetric modulated arc therapy using respiratory-correlated cone-beam CT
    Nakagawa, Keiichi
    Haga, Akihiro
    Kida, Satoshi
    Masutani, Yoshitaka
    Yamashita, Hideomi
    Takahashi, Wataru
    Sakumi, Akira
    Saotome, Naoya
    Shiraki, Takashi
    Ohtomo, Kuni
    Iwai, Yoshio
    Yoda, Kiyoshi
    JOURNAL OF RADIATION RESEARCH, 2013, 54 (01) : 152 - 156
  • [10] Validation of proton dose calculation on scatter corrected 4D cone beam computed tomography using a porcine lung phantom
    Schmitz, Henning
    Rabe, Moritz
    Janssens, Guillaume
    Bondesson, David
    Rit, Simon
    Parodi, Katia
    Belka, Claus
    Dinkel, Julien
    Kurz, Christopher
    Kamp, Florian
    Landry, Guillaume
    PHYSICS IN MEDICINE AND BIOLOGY, 2021, 66 (17)