Evaluation of a cumulative SUV-volume histogram method for parameterizing heterogeneous intratumoural FDG uptake in non-small cell lung cancer PET studies
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Open Access
- 27 May 2011
- journal article
- research article
- Published by Springer Nature in European Journal of Nuclear Medicine and Molecular Imaging
- Vol. 38 (9), 1636-1647
- https://doi.org/10.1007/s00259-011-1845-6
Abstract
Purpose Standardized uptake values (SUV) are commonly used for quantification of whole-body [18F]fluoro-2-deoxy-D-glucose (FDG) positron emission tomography (PET) studies. Changes in SUV following therapy, however, only provide a proper measure of response in case of homogeneous FDG uptake in the tumour. The purpose of this study was therefore to implement and characterize a method that enables quantification of heterogeneity in tumour FDG uptake. Methods Cumulative SUV-volume histograms (CSH), describing % of total tumour volume above % threshold of maximum SUV (SUVmax), were calculated. The area under a CSH curve (AUC) is a quantitative index of tumour uptake heterogeneity, with lower AUC corresponding to higher degrees of heterogeneity. Simulations of homogeneous and heterogeneous responses were performed to assess the value of AUC-CSH for measuring uptake and/or response heterogeneity. In addition, partial volume correction and image denoising was applied prior to calculating AUC-CSH. Finally, the method was applied to a number of human FDG scans. Results Partial volume correction and noise reduction improved CSH curves. Both simulations and clinical examples showed that AUC-CSH values corresponded with level of tumour heterogeneity and/or heterogeneity in response. In contrast, this correspondence was not seen with SUVmax alone. The results indicate that the main advantage of AUC-CSH above other measures, such as 1/COV (coefficient of variation), is the possibility to measure or normalize AUC-CSH in different ways. Conclusion AUC-CSH might be used as a quantitative index of heterogeneity in tracer uptake. In response monitoring studies it can be used to address heterogeneity in response.This publication has 27 references indexed in Scilit:
- Evaluation of a cumulative SUV-volume histogram method for parameterizing heterogeneous intratumoural FDG uptake in non-small cell lung cancer PET studiesEuropean Journal of Nuclear Medicine and Molecular Imaging, 2011
- GATE V6: a major enhancement of the GATE simulation platform enabling modelling of CT and radiotherapyPhysics in Medicine & Biology, 2011
- Partial volume correction strategies for quantitative FDG PET in oncologyEuropean Journal of Nuclear Medicine and Molecular Imaging, 2010
- Spatial Heterogeneity in Sarcoma 18F-FDG Uptake as a Predictor of Patient OutcomeJournal of Nuclear Medicine, 2008
- Exploring feature-based approaches in PET images for predicting cancer treatment outcomesPattern Recognition, 2008
- The maximum uptake of 18F-deoxyglucose on positron emission tomography scan correlates with survival, hypoxia inducible factor-1α and GLUT-1 in non-small cell lung cancerEuropean Journal Of Cancer, 2007
- Effect of intratumoral heterogeneity in oxygenation status on FMISO PET, autoradiography, and electrode Po2 measurements in murine tumorsInternational Journal of Radiation Oncology*Biology*Physics, 2005
- Incorporation of tumor shape into an assessment of spatial heterogeneity for human sarcomas imaged with FDG-PETBiostatistics, 2005
- A statistical measure of tissue heterogeneity with application to 3D PET sarcoma dataBiostatistics, 2003
- Tumor Treatment Response Based on Visual and Quantitative Changes in Global Tumor Glycolysis Using PET-FDG Imaging The Visual Response Score and the Change in Total Lesion GlycolysisClinical Positron Imaging, 1999