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Whole-body PET/MRI of Pediatric Patients: The Details That Matter
Published on: December 19, 2017
Feasibility of fast brain diffusion MRI to quantify white matter injury in pediatric hydrocephalus
Albert M Isaacs1,2, Joshua S Shimony3, Diego M Morales4
11Department of Neuroscience, Washington University School of Medicine, St. Louis, Missouri.
Objective:
Traditionally, diffusion MRI (dMRI) has been performed in parallel with high-resolution conventional MRI, which requires long scan times and may require sedation or general anesthesia in infants and young children. Conversely, fast brain MRI permits image acquisition without the need for sedation, although its short pulse sequences, susceptibility to motion artifact, and contrast resolution have limited its use to assessing ventricular size or major structural variations. Here, the authors demonstrate the feasibility of leveraging a 3-direction fast brain MRI protocol to obtain reliable dMRI measures.
Methods:
Fast brain MRI with 3-direction dMRI was performed in infants and children before and after hydrocephalus treatment. Regions of interest in the posterior limbs of the internal capsules (PLICs) and the genu of the corpus callosum (gCC) were drawn on diffusion-weighted images, and mean diffusivity (MD) data were extracted. Ventricular size was determined by the frontal occipital horn ratio (FOHR). Differences between and within groups pre- and posttreatment, and FOHR-MD correlations were assessed.
Results:
Of 40 patients who met inclusion criteria (median age 27.5 months), 15 (37.5%), 17 (42.5%), and 8 (20.0%) had posthemorrhagic hydrocephalus (PHH), congenital hydrocephalus (CH), or no intracranial abnormality (controls), respectively. A hydrocephalus group included both PHH and CH patients. Prior to treatment, the FOHR (p < 0.001) and PLIC MD (p = 0.027) were greater in the hydrocephalus group than in the controls. While the mean gCC MD in the hydrocephalus group (1.10 × 10-3 mm2/sec) was higher than that of the control group (0.98), the difference was not significant (p = 0.135). Following a median follow-up duration of 14 months, decreases in FOHR, PLIC MD, and gCC MD were observed in the hydrocephalus group and were similar to those in the control group (p = 0.107, p = 0.702, and p = 0.169, respectively). There were no correlations identified between FOHR and MDs at either time point.
Conclusions:
The utility of fast brain MRI can be extended beyond anatomical assessments to obtain dMRI measures. A reduction in PLIC and gCC MD to levels similar to those of controls was observed within 14 months following shunt surgery for hydrocephalus in PHH and CH infants. Further studies are required to assess the role of fast brain dMRI for assessing clinical outcomes in pediatric hydrocephalus patients.
Insights
Fast brain MRI can now provide reliable diffusion MRI (dMRI) measures in infants and children, aiding in hydrocephalus assessment. This technique shows potential for evaluating treatment outcomes in pediatric hydrocephalus patients.
Area of Science:
- Neuroimaging
- Pediatric Radiology
- Medical Physics
Background:
- Conventional diffusion MRI (dMRI) requires long scan times, often necessitating sedation in pediatric patients.
- Fast brain MRI offers sedation-free imaging but has limitations in resolution and motion artifact susceptibility.
- Extending fast MRI capabilities to dMRI could improve pediatric neuroimaging accessibility and utility.
Purpose of the Study:
- To demonstrate the feasibility of using a 3-direction fast brain MRI protocol for obtaining reliable dMRI measures in infants and children.
- To assess changes in dMRI metrics and ventricular size before and after hydrocephalus treatment.
- To explore the correlation between ventricular size and dMRI measures.
Main Methods:
- A 3-direction fast brain MRI protocol was employed in infants and children undergoing hydrocephalus treatment.
- Regions of interest, including the posterior limbs of the internal capsules (PLICs) and genu of the corpus callosum (gCC), were analyzed for mean diffusivity (MD).
- Ventricular size was quantified using the frontal occipital horn ratio (FOHR), and pre- and post-treatment data were compared.
Main Results:
- Patients with hydrocephalus showed significantly greater FOHR and PLIC MD compared to controls prior to treatment.
- While gCC MD was higher in the hydrocephalus group, the difference was not statistically significant.
- Following treatment, hydrocephalus patients exhibited reductions in FOHR, PLIC MD, and gCC MD, approaching control levels within 14 months.
Conclusions:
- Fast brain MRI is a viable tool for acquiring dMRI measures, extending its utility beyond anatomical assessment.
- Treatment for hydrocephalus led to normalization of PLIC and gCC MD in pediatric patients.
- Further research is warranted to establish the role of fast brain dMRI in assessing clinical outcomes for pediatric hydrocephalus.
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