Literature DB >> 17197120

Clinical implications of defining the gross tumor volume with combination of CT and 18FDG-positron emission tomography in non-small-cell lung cancer.

Inga S Grills1, Di Yan, Quinten C Black, Ching-Yee O Wong, Alvaro A Martinez, Larry L Kestin.   

Abstract

PURPOSE: To compare the planning target volume (PTV) definitions for computed tomography (CT) vs. positron emission tomography (PET) in non-small-cell lung cancer (NSCLC). METHODS AND MATERIALS: A total of 21 patients with NSCLC underwent three-dimensional conformal radiotherapy planning. All underwent a staging F-18 fluorodeoxyglucose-position emission tomography (18FDG-PET) scan and underwent treatment simulation using CT plus a separate planning 18FDG-PET scan. Three sets of target volumes were defined: Set 1, CT volumes (CT tumor + staging PET nodal disease); Set 2, PET volumes (planning PET tumor {gross tumor volume (GTV) = [(0.3069 x mean standardized uptake value) + 0.5853])}; Set 3, composite CT-PET volumes (fused CT-PET tumor). Sets 1 and 2 were compared using a matching index. Three-dimensional conformal radiotherapy plans were created using the Set 1 (CT) volumes; and coverage of the Set 3 (composite) volumes was evaluated. Separate three-dimensional conformal radiotherapy plans were designed for the Set 3 volumes.
RESULTS: For the primary tumor GTV, the Set 1 (CT) volume was larger than the Set 2 (PET) volume in 48%, smaller in 33%, and equal in 19%. The mean matching index was 0.65 (35% CT-PET mismatch). Although quantitatively similar, the volumes differed qualitatively. The Set 3 (composite) volume was larger than either CT or PET alone in 62%, smaller in 24%, and equal in 14%. The dose-volume histogram parameters did not differ among the plans for Set 1 (CT) vs. Set 3 (composite) volumes. Small portions of the Set 3 PTV were significantly underdosed in 40% of cases using the CT-only plan.
CONCLUSION: Computed tomography and PET are complementary and should be obtained in the treatment position and fused to define the GTV for NSCLC. Although the quantitative absolute target volume is sometimes similar, the qualitative target locations can be substantially different, leading to underdosage of the target when planning is done using CT alone without PET fusion.

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Year:  2006        PMID: 17197120     DOI: 10.1016/j.ijrobp.2006.09.046

Source DB:  PubMed          Journal:  Int J Radiat Oncol Biol Phys        ISSN: 0360-3016            Impact factor:   7.038


  20 in total

Review 1.  Functional and molecular image guidance in radiotherapy treatment planning optimization.

Authors:  Shiva K Das; Randall K Ten Haken
Journal:  Semin Radiat Oncol       Date:  2011-04       Impact factor: 5.934

2.  Conventional 3D staging PET/CT in CT simulation for lung cancer: impact of rigid and deformable target volume alignments for radiotherapy treatment planning.

Authors:  G G Hanna; J R Van Sörnsen De Koste; K J Carson; J M O'Sullivan; A R Hounsell; S Senan
Journal:  Br J Radiol       Date:  2011-01-11       Impact factor: 3.039

3.  On the use of hyperpolarized helium MRI for conformal avoidance lung radiotherapy.

Authors:  C W Hodge; Wolfgang A Tomé; S B Fain; S M Bentzen; M P Mehta
Journal:  Med Dosim       Date:  2009-10-30       Impact factor: 1.482

4.  Time sensitivity: a parameter reflecting tumor metabolic kinetics by variable dual-time F-18 FDG PET imaging.

Authors:  Ching-yee Oliver Wong; Daniel Noujaim; Hungsen F Fu; Wen-sheng Huang; Cheng-yi S Cheng; Joseph Thie; Ishani Dalal; Chih-yung Chang; Conrad Nagle
Journal:  Mol Imaging Biol       Date:  2009-03-27       Impact factor: 3.488

5.  Current concepts on imaging in radiotherapy.

Authors:  Michela Lecchi; Piero Fossati; Federica Elisei; Roberto Orecchia; Giovanni Lucignani
Journal:  Eur J Nucl Med Mol Imaging       Date:  2007-10-31       Impact factor: 9.236

6.  Advances in 4D radiation therapy for managing respiration: part II - 4D treatment planning.

Authors:  Mihaela Rosu; Geoffrey D Hugo
Journal:  Z Med Phys       Date:  2012-07-15       Impact factor: 4.820

7.  Gradient-based delineation of the primary GTV on FLT PET in squamous cell cancer of the thoracic esophagus and impact on radiotherapy planning.

Authors:  Guifang Zhang; Dali Han; Changsheng Ma; Jie Lu; Tao Sun; Tonghai Liu; Jian Zhu; Jingwei Zhou; Yong Yin
Journal:  Radiat Oncol       Date:  2015-01-09       Impact factor: 3.481

8.  The mediastinal staging accuracy of 18F-Fluorodeoxyglycose positron emission tomography/computed tomography in non-small cell lung cancer with variable time intervals to surgery.

Authors:  Karen Booth; Gerard G Hanna; Niall McGonigle; Kieran G McManus; James McGuigan; Joe O'Sullivan; Tom Lynch; Jonathan McAleese
Journal:  Ulster Med J       Date:  2013-05

9.  Correlating metabolic and anatomic responses of primary lung cancers to radiotherapy by combined F-18 FDG PET-CT imaging.

Authors:  Ching-Yee O Wong; Joseph Schmidt; Jeffery S Bong; Suyra Chundru; Larry Kestin; Di Yan; Inga Grills; Marianne Gaskill; Vincent Cheng; Alvaro A Martinez; Darlene Fink-Bennett
Journal:  Radiat Oncol       Date:  2007-05-23       Impact factor: 3.481

10.  Optimal Standardized Uptake Value Threshold for Auto contouring of Gross Tumor Volume using Positron Emission Tomography/Computed Tomography in Patients with Operable Nonsmall-Cell Lung Cancer: Comparison with Pathological Tumor Size.

Authors:  Anil Tibdewal; Mangesh Patil; Shagun Misra; Nilendu Purandare; Venkatesh Rangarajan; Naveen Mummudi; George Karimundackal; Sabita Jiwnani; Jaiprakash Agarwal
Journal:  Indian J Nucl Med       Date:  2021-03-04
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