Lung tumor reproducibility with active breath control (ABC) in image-guided radiotherapy based on cone-beam computed tomography with two registration methods

被引:33
作者
Wang, Xin [1 ,2 ]
Zhong, Renming [1 ]
Bai, Sen [1 ]
Xu, Qingfeng [1 ]
Zhao, Yaqin [1 ]
Wang, Jin [1 ]
Jiang, Xiaoqin [1 ]
Shen, Yali [1 ]
Xu, Feng [1 ]
Wei, Yuquan [2 ]
机构
[1] Sichuan Univ, Dept Radiat Oncol, Chengdu 610041, Sichuan, Peoples R China
[2] Sichuan Univ, State Key Lab Biotherapy, Chengdu 610041, Sichuan, Peoples R China
关键词
Cone-beam CT; Tumor reproducibility; ABC; Registration; REAL-TIME TUMOR; STEREOTACTIC RADIOTHERAPY; CT; IMMOBILIZATION; REDUCTION; GUIDANCE; POSITION; MARGIN; MOTION; UNCERTAINTIES;
D O I
10.1016/j.radonc.2011.05.020
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Purpose: To study the inter- and intrafraction tumor reproducibility with active breath control (ABC) utilizing cone-beam computed tomography (CBCT), and compare validity of registration with two different regions of interest (ROI). Methods and materials: Thirty-one lung tumors in 19 patients received conventional or stereotactic body radiotherapy with ABC. During each treatment, patients had three CBCT scanned before and after online position correction and after treatment. These CBCT images were aligned to the planning CT using the gray scale registration of tumor and bony registration of the thorax, and tumor position uncertainties were then determined. Results: The interfraction systematic and random translation errors in the left-right (LR), superior-inferior (SI) and anterior-posterior (AP) directions were 3.6, 4.8, and 2.9 mm; 2.5, 4.5, and 3.5 mm, respectively, with gray scale alignment; 1.9, 4.3, 2.0 mm and 2.5, 4.4, 2.9 mm, respectively, with bony alignment. The interfraction systematic and random rotation errors with gray scale and bony alignment groups ranged from 1.4 degrees to 3.0 degrees and 0.8 degrees to 2.3 degrees, respectively. The intrafraction systematic and random errors with gray scale registration in LR, SI, AP directions were 0.9, 2.0, 1.8 mm and 1.5, 1.7, 2.9 mm, respectively, for translation; 1.5 degrees, 0.9 degrees, 1.0 degrees and 1.2 degrees, 2.2 degrees, 1.8 degrees, respectively, for rotation. The translational errors in SI direction with bony alignment were significantly larger than that of gray scale (p < 0.05). Conclusions: With CBCT guided online correction the interfraction positioning errors can be markedly reduced. The intrafraction errors were not diminished by the use of ABC. Rotation errors were not very remarkable both inter- and intrafraction. Gray scale alignment of tumor may provide a better registration in SI direction. (C) 2011 Elsevier Ireland Ltd. All rights reserved. Radiotherapy and Oncology 99 (2011) 148-154
引用
收藏
页码:148 / 154
页数:7
相关论文
共 50 条
  • [1] A novel evaluation model of image registration for cone-beam computed tomography guided lung cancer radiotherapy
    Liu, Yimei
    Chen, Meining
    Fang, Jianlan
    Xiao, Liangjie
    Liu, Songran
    Li, Qiwen
    Qiu, Bo
    Huang, Runda
    Zhang, Jun
    Peng, Yinglin
    THORACIC CANCER, 2024, 15 (17) : 1333 - 1342
  • [2] Dual-energy material decomposition for cone-beam computed tomography in image-guided radiotherapy
    Skaarup, Mikkel
    Edmund, Jens M.
    Dorn, Sabrina
    Kachelriess, Marc
    Vogeliu, Ivan R.
    ACTA ONCOLOGICA, 2019, 58 (10) : 1483 - 1488
  • [3] Optimization of four-dimensional cone-beam computed tomography in image-guided radiation therapy of the lung
    Ahmad, Moiz
    Pan, Tinsu
    MEDICAL IMAGING 2011: PHYSICS OF MEDICAL IMAGING, 2011, 7961
  • [4] Evaluation of Ultra-low-dose Paediatric Cone-beam Computed Tomography for Image-guided Radiotherapy
    Bryce-Atkinson, A.
    de Jong, R.
    Bel, A.
    Aznar, M. C.
    Whitfield, G.
    van Herk, M.
    CLINICAL ONCOLOGY, 2020, 32 (12) : 835 - 844
  • [5] Translational and rotational localization errors in cone-beam CT based image-guided lung stereotactic radiotherapy
    Garibaldi, Cristina
    Piperno, Gaia
    Ferrari, Annamaria
    Surgo, Alessia
    Muto, Matteo
    Ronchi, Sara
    Bazani, Alessia
    Pansini, Floriana
    Cremonesi, Marta
    Jereczek-Fossa, Barbara Alicja
    Orecchia, Roberto
    PHYSICA MEDICA-EUROPEAN JOURNAL OF MEDICAL PHYSICS, 2016, 32 (07): : 859 - 865
  • [6] Commissioning experience with cone-beam computed tomography for image-guided radiation therapy
    Lehmann, Joerg
    Perks, Julian
    Semon, Sheldon
    Harse, Rick
    Purdy, James A.
    JOURNAL OF APPLIED CLINICAL MEDICAL PHYSICS, 2007, 8 (03): : 21 - 36
  • [7] Imaging dose of cone-beam computed tomography in nanoparticle-enhanced image-guided radiotherapy: A Monte Carlo phantom study
    Mututantri-Bastiyange, Dewmini
    Chow, James C. L.
    AIMS BIOENGINEERING, 2020, 7 (01): : 1 - 11
  • [8] Contrast medium-assisted stereotactic image-guided radiotherapy using kilovoltage cone-beam computed tomography
    Keiichi Nakagawa
    Hideomi Yamashita
    Hiroshi Igaki
    Atsuro Terahara
    Kenshiro Shiraishi
    Kiyoshi Yoda
    Radiation Medicine, 2008, 26 : 570 - 572
  • [9] A Novel Approach of Surface Texture Mapping for Cone-Beam Computed Tomography in Image-Guided Surgical Navigation
    Lin, Qinyong
    Guo, Xiongbo
    Zhang, Wenlong
    Cai, Lijing
    Yang, Rongqian
    Chen, Huazhou
    Cai, Ken
    IEEE JOURNAL OF BIOMEDICAL AND HEALTH INFORMATICS, 2024, 28 (08) : 4400 - 4409
  • [10] Comparison of cone-beam and conventional multislice computed tomography for image-guided dental implant planning
    Poeschl, Paul W.
    Schmidt, Nina
    Guevara-Rojas, Godoberto
    Seemann, Rudolf
    Ewers, Rolf
    Zipko, Harald T.
    Schicho, Kurt
    CLINICAL ORAL INVESTIGATIONS, 2013, 17 (01) : 317 - 324