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Journal of Nuclear Medicine

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OtherClinical Investigations

Integrated Software for the Analysis of Brain PET/SPECT Studies with Partial-Volume-Effect Correction

Mario Quarantelli, Karim Berkouk, Anna Prinster, Brigitte Landeau, Claus Svarer, Laszlo Balkay, Bruno Alfano, Arturo Brunetti, Jean-Claude Baron and Marco Salvatore
Journal of Nuclear Medicine February 2004, 45 (2) 192-201;
Mario Quarantelli
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Karim Berkouk
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Anna Prinster
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Brigitte Landeau
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Claus Svarer
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Laszlo Balkay
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Bruno Alfano
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Arturo Brunetti
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Jean-Claude Baron
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Marco Salvatore
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Abstract

We present software for integrated analysis of brain PET studies and coregistered segmented MRI that couples a module for automated placement of regions of interest (ROI) with 4 alternative methods for partial-volume-effect correction (PVEc). The accuracy and precision of these methods have been measured using 4 simulated 18F-FDG PET studies with increasing degrees of atrophy. Methods: The software allows the application of a set of labels, defined a priori in the Talairach space, to segmented and coregistered MRI. Resulting ROIs are then transferred onto the PET study, and corresponding values are corrected according to the 4 PVEc techniques under investigation, providing corresponding corrected values. To evaluate the PVEc techniques, the software was applied to 4 simulated 18F-FDG PET studies, introducing increasingly larger experimental errors, including errors in coregistration (0- to 6-pixel misregistration), segmentation (−13.7% to 14.1% gray matter [GM] volume change) and resolution estimate errors (−16.9% to 26.8% full-width-at-half-maximum mismatch). Results: Even in the absence of segmentation and coregistration errors, uncorrected PET values showed −37.6% GM underestimation and 91.7% WM overestimation. Voxel-based correction only for the loss of GM activity as a result of spill-out onto extraparenchymal tissues left a residual underestimation of GM values (−21.2%). Application of the method that took into account both spill-in and spill-out effects between any possible pair of ROIs (R-PVEc) and of the voxel-based method that corrects also for the WM activity derived from R-PVEC (mMG-PVEc) provided an accuracy above 96%. The coefficient of variation of the GM ROIs, a measure of the imprecision of the GM concentration estimates, was 8.5% for uncorrected PET data and decreased with PVEc, reaching 6.0% for mMG-PVEc. Coregistration errors appeared to be the major determinant of the imprecision. Conclusion: Coupling of automated ROI placement and PVEc provides a tool for integrated analysis of brain PET/MRI data, which allows a recovery of true GM ROI values, with a high degree of accuracy when R-PVEc or mMG-PVEc is used. Among the 4 tested PVEc methods, R-PVEc showed the greatest accuracy and is suitable when corrected images are not specifically needed. Otherwise, if corrected images are desired, the mMG-PVEc method appears the most adequate, showing a similar accuracy.

  • picture archiving and communication systems
  • correlative imaging
  • neurology
  • MRI
  • partial-volume effect
  • PET
  • SPECT

Footnotes

  • Received Aug. 5, 2003; revision accepted Oct. 23, 2003.

    For correspondence or reprints contact: Mario Quarantelli, MD, Istituto di Biostrutture e Bioimmagini, Consiglio Nazionale delle Ricerche, Edificio 10, Via Pansini, 5, 80131 Napoli.

    E-mail: quarante{at}unina.it

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Journal of Nuclear Medicine
Vol. 45, Issue 2
February 1, 2004
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Integrated Software for the Analysis of Brain PET/SPECT Studies with Partial-Volume-Effect Correction
Mario Quarantelli, Karim Berkouk, Anna Prinster, Brigitte Landeau, Claus Svarer, Laszlo Balkay, Bruno Alfano, Arturo Brunetti, Jean-Claude Baron, Marco Salvatore
Journal of Nuclear Medicine Feb 2004, 45 (2) 192-201;

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Integrated Software for the Analysis of Brain PET/SPECT Studies with Partial-Volume-Effect Correction
Mario Quarantelli, Karim Berkouk, Anna Prinster, Brigitte Landeau, Claus Svarer, Laszlo Balkay, Bruno Alfano, Arturo Brunetti, Jean-Claude Baron, Marco Salvatore
Journal of Nuclear Medicine Feb 2004, 45 (2) 192-201;
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