REPRODUCIBILITY OF "INTELLIGENT" CONTOURING OF GROSS TUMOR VOLUME IN NON SMALL-CELL LUNG CANCER ON PET/CT IMAGES USING A STANDARDIZED VISUAL METHOD

被引:52
作者
Bayne, Michael [6 ]
Hicks, Rodney J. [2 ,5 ]
Everitt, Sarah [3 ]
Fimmell, Natalie [3 ]
Ball, David [1 ,5 ]
Reynolds, John
Lau, Eddie [4 ,5 ]
Pitman, Alex [4 ,5 ]
Ware, Robert [2 ]
MacManus, Michael [1 ,6 ]
机构
[1] Peter MacCallum Canc Ctr, Dept Radiat Oncol, Melbourne, Vic 3002, Australia
[2] Peter MacCallum Canc Ctr, Ctr Mol Imaging, Melbourne, Vic 3002, Australia
[3] Peter MacCallum Canc Ctr, Radiat Therapy Serv, Melbourne, Vic 3002, Australia
[4] Peter MacCallum Canc Ctr, Dept Diagnost Imaging, Melbourne, Vic 3002, Australia
[5] Univ Melbourne, Melbourne, Vic, Australia
[6] Poole Hosp, Dorset Canc Ctr, Poole, Dorset, England
来源
INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS | 2010年 / 77卷 / 04期
关键词
Positron emission tomography; Computed tomography; Non-small-cell lung cancer; Radiation therapy; POSITRON-EMISSION-TOMOGRAPHY; FDG-PET; INTEROBSERVER VARIABILITY; RADICAL RADIOTHERAPY; COMPUTED-TOMOGRAPHY; TARGET; DEFINITION; CT; DELINEATION; METAANALYSIS;
D O I
10.1016/j.ijrobp.2009.06.032
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Purpose: Positron emission tomography/computed tomography (PET/CT) is increasingly used for delineating gross tumor volume (GTV) in non-small-cell lung cancer (NSCLC). The methodology for contouring tumor margins remains controversial. We developed a rigorous visual protocol for contouring GTV that uses all available clinical information and studied its reproducibility in patients from a prospective PET/CT planning trial. Methods and Materials: Planning PET/CT scans from 6 consecutive patients were selected. Six "observers" (two radiation oncologists, two nuclear medicine physicians, and two radiologists) contoured GTVs for each patient using a predefined protocol and subsequently recontoured 2 patients. For the estimated GTVs and axial distances, least-squares means for each observer and for each case were calculated and compared, using the F test and pair-wise t-tests. In five cases, tumor margins were also autocontoured using standardized uptake value (SUV) cutoffs of 2.5 and 3.5 and 40% SUVmax. Results: The magnitude of variation between observers was small relative to the mean (coefficient of variation [CV] = 3%), and the total variation (intraclass correlation coefficient [ICC] = 3%). For estimation of superior/inferior (SI), left/right (LR), and anterior/posterior (AP) borders of the GTV, differences between observers were also small (AP, CV = 2%, ICC = 0.4%; LR, CV = 6%, ICC = 2%; SI, CV 4%, ICC = 2%). GTVs autocontoured generated using SUV 2.5, 3.5, and 40% SUV, differed widely in each case. An SUV contour of 2.5 was most closely correlated with the mean GTV defined by the human observers. Conclusions: Observer variation contributed little to total variation in the GTV and axial distances. A visual contouring protocol gave reproducible results for contouring GTV in NSCLC. (C) 2010 Elsevier Inc.
引用
收藏
页码:1151 / 1157
页数:7
相关论文
共 25 条
[11]   Correlation of pet standard uptake value and CT window-level thresholds for target delineation in CT-based radiation treatment planning [J].
Hong, Robert ;
Halama, James ;
Bova, Davide ;
Sethi, Anil ;
Emami, Bahman .
INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 2007, 67 (03) :720-726
[12]   High rate of detection of unsuspected distant metastases by pet in apparent stage III non-small-cell lung cancer: Implications for radical radiation therapy [J].
Mac Manus, MP ;
Hicks, RJ ;
Matthews, JP ;
Hogg, A ;
McKenzie, AF ;
Wirth, A ;
Ware, RE ;
Ball, DL .
INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 2001, 50 (02) :287-293
[13]   Positron emission tomography is superior to computed tomography scanning for response-assessment after radical radiotherapy or chemoradiotherapy in patients with non-small-cell lung cancer [J].
Mac Manus, MP ;
Hicks, RJ ;
Matthews, JP ;
McKenzie, A ;
Rischin, D ;
Salminen, EK ;
Ball, DL .
JOURNAL OF CLINICAL ONCOLOGY, 2003, 21 (07) :1285-1292
[14]   Comparison of CT and positron emission tomography/CT coregistered images,in planning radical radiotherapy in patients with non-small-cell lung cancer [J].
MacManus, M. ;
D'Costa, I. ;
Everitt, S. ;
Andrews, J. ;
Ackerly, T. ;
Binns, D. ;
Lau, E. ;
Ball, D. ;
Weih, L. ;
Hicks, R. J. .
AUSTRALASIAN RADIOLOGY, 2007, 51 (04) :386-393
[15]   Where do we draw the line? Contouring tumors on positron emission tomography/computed tomography [J].
Macmanus, Michael P. ;
Hicks, Rodney J. .
INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 2008, 71 (01) :2-4
[16]   18F-deoxyglucose positron emission tomography (FDG-PET) for the planning of radiotherapy in lung cancer:: High impact in patients with atelectasis [J].
Nestle, U ;
Walter, K ;
Schmidt, S ;
Licht, N ;
Nieder, C ;
Motaref, B ;
Hellwig, D ;
Niewald, M ;
Ukena, D ;
Kirsch, CM ;
Sybrecht, GW ;
Schnabel, K .
INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 1999, 44 (03) :593-597
[17]  
Nestle U, 2005, J NUCL MED, V46, P1342
[18]   Target volume definition for 18F-FDG PET-positive lymph nodes in radiotherapy of patients with non-small cell lung cancer [J].
Nestle, Ursula ;
Schaefer-Schuler, Andrea ;
Kremp, Stephanie ;
Groeschel, Andreas ;
Hellwig, Dirk ;
Ruebe, Christian ;
Kirsch, Carl-Martin .
EUROPEAN JOURNAL OF NUCLEAR MEDICINE AND MOLECULAR IMAGING, 2007, 34 (04) :453-462
[19]   Partial-volume effect in PET tumor imaging [J].
Soret, Marine ;
Bacharach, Stephen L. ;
Buvat, Irene .
JOURNAL OF NUCLEAR MEDICINE, 2007, 48 (06) :932-945
[20]   Feasibility of pathology-correlated lung imaging for accurate target definition of lung tumors [J].
Stroom, Joep ;
Blaauwgeers, Hans ;
van Baardwijk, Angela ;
Boersnia, Liesbeth ;
Lebesque, Joos ;
Theuws, Jacqueline ;
van Suylen, Robert-Jan ;
Klomp, Houke ;
Ltesker, Koen ;
van Pel, Rente ;
Siedschlag, Chrtstian ;
Gilhuijs, Kenneth .
INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 2007, 69 (01) :267-275