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Updated: May 1, 2026

Whole-body PET/MRI of Pediatric Patients: The Details That Matter
Published on: December 19, 2017
Relative role of motion and PSF compensation in whole-body oncologic PET-MR imaging
Yoann Petibon1, Chuan Huang2, Jinsong Ouyang2
1Center for Advanced Medical Imaging Sciences, Division of Nuclear Medicine and Molecular Imaging, Department of Imaging, Massachusetts General Hospital, Boston, Massachusetts 02114.
Purpose:
Respiratory motion and partial-volume effects are the two main sources of image degradation in whole-body PET imaging. Simultaneous PET-MR allows measurement of respiratory motion using MRI while collecting PET events. Improved PET images may be obtained by modeling respiratory motion and point spread function (PSF) within the PET iterative reconstruction process. In this study, the authors assessed the relative impact of PSF modeling and MR-based respiratory motion correction in phantoms and patient studies using a whole-body PET-MR scanner.
Methods:
An asymmetric exponential PSF model accounting for radially varying and axial detector blurring effects was obtained from point source acquisitions performed in the PET-MR scanner. A dedicated MRI acquisition protocol using single-slice steady state free-precession MR acquisitions interleaved with pencil-beam navigator echoes was developed to track respiratory motion during PET-MR studies. An iterative ordinary Poisson fully 3D OSEM PET reconstruction algorithm modeling all the physical effects of the acquisition (attenuation, scatters, random events, detectors efficiencies, PSF), as well as MR-based nonrigid respiratory deformations of tissues (in both emission and attenuation maps) was developed. Phantom and(18)F-FDG PET-MR patient studies were performed to evaluate the proposed quantitative PET-MR methods.
Results:
The phantom experiment results showed that PSF modeling significantly improved contrast recovery while limiting noise propagation in the reconstruction process. In patients with soft-tissue static lesions, PSF modeling improved lesion contrast by 19.7%-109%, enhancing the detectability and assessment of small tumor foci. In a patient study with small moving hepatic lesions, the proposed reconstruction technique improved lesion contrast by 54.4%-98.1% and reduced apparent lesion size by 21.8%-34.2%. Improvements were particularly important for the smallest lesion undergoing large motion at the lung-liver interface. Heterogeneous tumor structures delineation was substantially improved. Enhancements offered by PSF modeling were more important when correcting for motion at the same time.
Conclusions:
The results suggest that the proposed quantitative PET-MR methods can significantly enhance the performance of tumor diagnosis and staging as compared to conventional methods. This approach may enable utilization of the full potential of the scanner in oncologic studies of both the lower abdomen, with moving lesions, as well as other parts of the body unaffected by motion.
Insights
Point spread function (PSF) modeling and MRI-based motion correction significantly improve whole-body PET-MR imaging. This quantitative PET-MR approach enhances tumor detection and staging, especially for moving lesions.
Area of Science:
- Medical Imaging
- Nuclear Medicine
- Radiology
Background:
- Whole-body PET imaging is degraded by respiratory motion and partial-volume effects.
- Simultaneous PET-MR enables motion measurement via MRI during PET data acquisition.
- Modeling these effects can improve PET image quality.
Purpose of the Study:
- To assess the impact of point spread function (PSF) modeling and MR-based respiratory motion correction.
- To evaluate these methods in phantom and patient studies using a whole-body PET-MR scanner.
Main Methods:
- Developed an asymmetric exponential PSF model for PET-MR scanner blurring.
- Created an MRI protocol to track respiratory motion using navigator echoes.
- Implemented an iterative OSEM PET reconstruction algorithm incorporating physical effects and MR-based motion correction.
Main Results:
- PSF modeling improved contrast recovery and limited noise in phantoms.
- In patients, PSF modeling enhanced lesion contrast (19.7%-109%) and detectability.
- For moving hepatic lesions, contrast improved (54.4%-98.1%) and apparent size reduced (21.8%-34.2%).
- Combined motion correction and PSF modeling yielded significant improvements, particularly for small, moving lesions.
Conclusions:
- Proposed quantitative PET-MR methods significantly enhance tumor diagnosis and staging.
- This approach maximizes whole-body PET-MR scanner potential for oncologic studies, including moving lesions.
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