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Updated: Aug 25, 2025

Whole-body PET/MRI of Pediatric Patients: The Details That Matter
Published on: December 19, 2017
State-of-the-art magnetic resonance imaging sequences for pediatric body imaging
Mareen Sarah Kraus1,2, Ailish C Coblentz1,2, Vibhas S Deshpande3
1Department of Diagnostic Imaging, The Hospital for Sick Children, 555 University Ave., Toronto, ON, M5G 1X8, Canada.
Abstract:
Longer examination time, need for anesthesia in smaller children and the inability of most children to hold their breath are major limitations of MRI in pediatric body imaging. Fortunately, with technical advances, many new and upcoming MRI sequences are overcoming these limitations. Advances in data acquisition and k-space sampling methods have enabled sequences with improved temporal and spatial resolution, and minimal artifacts. Sequences to minimize movement artifacts mainly utilize radial k-space filling, and examples include the stack-of-stars method for T1-weighted imaging and the periodically rotated overlapping parallel lines with enhanced reconstruction (PROPELLER)/BLADE method for T2-weighted imaging. Similarly, the sequences with improved temporal resolution and the ability to obtain multiple phases in a single breath-hold in dynamic imaging mainly use some form of partial k-space filling method. New sequences use a variable combination of data sampling methods like compressed sensing, golden-angle radial k-space filling, parallel imaging and partial k-space filling to achieve free-breathing, faster sequences that could be useful for pediatric abdominal and thoracic imaging. Simultaneous multi-slice method has improved diffusion-weighted imaging (DWI) with reduction in scan time and artifacts. In this review, we provide an overview of data sampling methods like parallel imaging, compressed sensing, radial k-space sampling, partial k-space sampling and simultaneous multi-slice. This is followed by newer available and upcoming sequences for T1-, T2- and DWI based on these other advances. We also discuss the Dixon method and newer approaches to reducing metal artifacts.
Insights
New MRI techniques overcome limitations in pediatric body imaging. Advances in data acquisition and k-space sampling enable faster, artifact-free scans for children, improving diagnostic accuracy.
Area of Science:
- Medical Imaging
- Radiology
- Pediatric Imaging
Background:
- Pediatric MRI faces challenges including long scan times, need for anesthesia, and patient motion.
- Traditional MRI sequences struggle with motion artifacts and limited temporal resolution in children.
Purpose of the Study:
- To review recent technical advances in MRI sequences for pediatric body imaging.
- To highlight new and upcoming MRI techniques addressing limitations in pediatric MRI.
Main Methods:
- Overview of data acquisition and k-space sampling methods: parallel imaging, compressed sensing, radial k-space sampling, partial k-space sampling, and simultaneous multi-slice.
- Discussion of specific sequences: stack-of-stars (T1-weighted), PROPELLER/BLADE (T2-weighted), and simultaneous multi-slice for diffusion-weighted imaging (DWI).
Main Results:
- New sequences demonstrate improved temporal and spatial resolution with minimal artifacts.
- Techniques like radial and partial k-space filling minimize motion artifacts and enable faster imaging.
- Simultaneous multi-slice improves DWI, reducing scan time and artifacts.
Conclusions:
- Technical advances in MRI sequences are overcoming major limitations in pediatric body imaging.
- Faster, free-breathing MRI sequences utilizing novel data sampling methods enhance diagnostic capabilities for pediatric patients.
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