Literature DB >> 20443495

Target definition of moving lung tumors in positron emission tomography: correlation of optimal activity concentration thresholds with object size, motion extent, and source-to-background ratio.

Adam C Riegel1, M Kara Bucci, Osama R Mawlawi, Valen Johnson, Moiz Ahmad, Xiaojun Sun, Dershan Luo, Adam G Chandler, Tinsu Pan.   

Abstract

PURPOSE: Hardware integration of fluorodeoxyglucose positron emission tomography (PET) with computed tomography (CT) in combined PET/CT scanners has provided radiation oncologists and physicists with new possibilities for 3-D treatment simulation. The use of PET/CT simulation for target delineation of lung cancer is becoming popular and many studies concerning automatic segmentation of PET images have been performed. Several of these studies consider size and source-to-background (SBR) in their segmentation methods but neglect respiratory motion. The purpose of the current study was to develop a functional relationship between optimal activity concentration threshold, tumor volume, motion extent, and SBR using multiple regression techniques by performing an extensive series of phantom scans simulating tumors of varying sizes, SBR, and motion amplitudes. Segmented volumes on PET were compared with the "motion envelope" of the moving sphere defined on cine CT.
METHODS: A NEMA IEC thorax phantom containing six spheres (inner diameters ranging from 10 to 37 mm) was placed on a motion platform and moved sinusoidally at 0-30 mm (at 5 mm intervals) and six different SBRs (ranging from 5:1 to 50:1), producing 252 combinations of experimental parameters. PET images were acquired for 18 min and split into three 6 min acquisitions for reproducibility. The spheres (blurred on PET images due to motion) were segmented at 1% of maximum activity concentration intervals. The optimal threshold was determined by comparing deviations between the threshold volume surfaces with a reference volume surface defined on cine CT. Optimal activity concentration thresholds were normalized to background and multiple regression was used to determine the relationship between optimal threshold, volume, motion, and SBR. Standardized regression coefficients were used to assess the relative influence of each variable. The segmentation model was applied to three lung cancer patients and segmented regions of interest were compared with those segmented on cine CT.
RESULTS: The resulting model and coefficients provided a functional form that fit the phantom data with an adjusted R2 = 0.96. The most significant contributor to threshold level was SBR. Surfaces of PET-segmented volumes of three lung cancer patients were within 2 mm of the reference CT volumes on average.
CONCLUSIONS: The authors successfully developed an expression for optimal activity concentration threshold as a function of object volume, motion, and SBR.

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Year:  2010        PMID: 20443495      PMCID: PMC3820629          DOI: 10.1118/1.3315369

Source DB:  PubMed          Journal:  Med Phys        ISSN: 0094-2405            Impact factor:   4.071


  40 in total

1.  Tri-dimensional automatic segmentation of PET volumes based on measured source-to-background ratios: influence of reconstruction algorithms.

Authors:  Jean-François Daisne; Mérence Sibomana; Anne Bol; Thomas Doumont; Max Lonneux; Vincent Grégoire
Journal:  Radiother Oncol       Date:  2003-12       Impact factor: 6.280

2.  Artifacts in computed tomography scanning of moving objects.

Authors:  George T Y Chen; Jong H Kung; Kevin P Beaudette
Journal:  Semin Radiat Oncol       Date:  2004-01       Impact factor: 5.934

3.  Respiratory-driven lung tumor motion is independent of tumor size, tumor location, and pulmonary function.

Authors:  C W Stevens; R F Munden; K M Forster; J F Kelly; Z Liao; G Starkschall; S Tucker; R Komaki
Journal:  Int J Radiat Oncol Biol Phys       Date:  2001-09-01       Impact factor: 7.038

4.  Observer variation in contouring gross tumor volume in patients with poorly defined non-small-cell lung tumors on CT: the impact of 18FDG-hybrid PET fusion.

Authors:  C B Caldwell; K Mah; Y C Ung; C E Danjoux; J M Balogh; S N Ganguli; L E Ehrlich
Journal:  Int J Radiat Oncol Biol Phys       Date:  2001-11-15       Impact factor: 7.038

5.  The impact of (18)FDG-PET on target and critical organs in CT-based treatment planning of patients with poorly defined non-small-cell lung carcinoma: a prospective study.

Authors:  Katherine Mah; Curtis B Caldwell; Yee C Ung; Cyril E Danjoux; Judith M Balogh; S Nimu Ganguli; Lisa E Ehrlich; Romeo Tirona
Journal:  Int J Radiat Oncol Biol Phys       Date:  2002-02-01       Impact factor: 7.038

6.  Conformal radiotherapy for lung cancer: different delineation of the gross tumor volume (GTV) by radiologists and radiation oncologists.

Authors:  Philippe Giraud; Sabine Elles; Sylvie Helfre; Yann De Rycke; Vincent Servois; Marie France Carette; Claude Alzieu; Pierre Yves Bondiau; Bernard Dubray; Emmanuel Touboul; Martin Housset; Jean Claude Rosenwald; Jean Marc Cosset
Journal:  Radiother Oncol       Date:  2002-01       Impact factor: 6.280

7.  Radiotherapy treatment planning for patients with non-small cell lung cancer using positron emission tomography (PET).

Authors:  Yusuf E Erdi; Kenneth Rosenzweig; Alev K Erdi; Homer A Macapinlac; Yu Chi Hu; Louise E Braban; John L Humm; Olivia D Squire; Chen Shou Chui; Steven M Larson; Ellen D Yorke
Journal:  Radiother Oncol       Date:  2002-01       Impact factor: 6.280

8.  Impact of whole-body 18F-FDG PET on staging and managing patients for radiation therapy.

Authors:  Elena V Dizendorf; Brigitta G Baumert; Gustav K von Schulthess; Urs M Lütolf; Hans C Steinert
Journal:  J Nucl Med       Date:  2003-01       Impact factor: 10.057

9.  Can PET provide the 3D extent of tumor motion for individualized internal target volumes? A phantom study of the limitations of CT and the promise of PET.

Authors:  Curtis B Caldwell; Katherine Mah; Matthew Skinner; Cyril E Danjoux
Journal:  Int J Radiat Oncol Biol Phys       Date:  2003-04-01       Impact factor: 7.038

10.  Radiation treatment planning with an integrated positron emission and computer tomography (PET/CT): a feasibility study.

Authors:  I Frank Ciernik; Elena Dizendorf; Brigitta G Baumert; Beatrice Reiner; Cyrill Burger; J Bernard Davis; Urs M Lütolf; Hans C Steinert; Gustav K Von Schulthess
Journal:  Int J Radiat Oncol Biol Phys       Date:  2003-11-01       Impact factor: 7.038

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  8 in total

1.  Recommendations of the Spanish Societies of Radiation Oncology (SEOR), Nuclear Medicine & Molecular Imaging (SEMNiM), and Medical Physics (SEFM) on (18)F-FDG PET-CT for radiotherapy treatment planning.

Authors:  Begoña Caballero Perea; Antonio Cabrera Villegas; José Miguel Delgado Rodríguez; María José García Velloso; Ana María García Vicente; Carlos Huerga Cabrerizo; Rosa Morera López; Luis Alberto Pérez Romasanta; Moisés Sáez Beltrán
Journal:  Rep Pract Oncol Radiother       Date:  2012-11-17

Review 2.  A review on segmentation of positron emission tomography images.

Authors:  Brent Foster; Ulas Bagci; Awais Mansoor; Ziyue Xu; Daniel J Mollura
Journal:  Comput Biol Med       Date:  2014-04-28       Impact factor: 4.589

3.  An Adaptive Thresholding Method for BTV Estimation Incorporating PET Reconstruction Parameters: A Multicenter Study of the Robustness and the Reliability.

Authors:  M Brambilla; R Matheoud; C Basile; C Bracco; I Castiglioni; C Cavedon; M Cremonesi; S Morzenti; F Fioroni; M Giri; F Botta; F Gallivanone; E Grassi; M Pacilio; E De Ponti; M Stasi; S Pasetto; S Valzano; D Zanni
Journal:  Comput Math Methods Med       Date:  2015-05-19       Impact factor: 2.238

4.  Background-based Delineation of Internal Tumor Volume in Static Positron Emission Tomography in a Phantom Study.

Authors:  Yangchun Chen; Xiangrong Chen; Ji-An Liu; Fanyong Li
Journal:  Asia Ocean J Nucl Med Biol       Date:  2016

5.  A comparative study of target volumes based on 18F-FDG PET-CT and ten phases of 4DCT for primary thoracic squamous esophageal cancer.

Authors:  Yanluan Guo; Jianbin Li; Peng Zhang; Yingjie Zhang
Journal:  Onco Targets Ther       Date:  2017-01-06       Impact factor: 4.147

6.  Deformable image registration and interobserver variation in contour propagation for radiation therapy planning.

Authors:  Adam C Riegel; Jeffrey G Antone; Honglai Zhang; Prachi Jain; Jagdeep Raince; Anthony Rea; Angelo M Bergamo; Ajay Kapur; Louis Potters
Journal:  J Appl Clin Med Phys       Date:  2016-05-08       Impact factor: 2.102

7.  Influence of reconstruction settings on the performance of adaptive thresholding algorithms for FDG-PET image segmentation in radiotherapy planning.

Authors:  Roberta Matheoud; Patrizia Della Monica; Gianfranco Loi; Luca Vigna; Marco Krengli; Eugenio Inglese; Marco Brambilla
Journal:  J Appl Clin Med Phys       Date:  2011-01-30       Impact factor: 2.102

8.  Defining internal target volume using positron emission tomography for radiation therapy planning of moving lung tumors.

Authors:  Adam C Riegel; M Kara Bucci; Osama R Mawlawi; Moiz Ahmad; Dershan Luo; Adam Chandler; Tinsu Pan
Journal:  J Appl Clin Med Phys       Date:  2014-01-06       Impact factor: 2.102

  8 in total

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