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Updated: Nov 22, 2025

Advanced Diffusion Imaging in The Hippocampus of Rats with Mild Traumatic Brain Injury
Published on: August 14, 2019
White matter changes following experimental pediatric traumatic brain injury: an advanced diffusion-weighted imaging
Akram Zamani1, Terence J O'Brien1,2, Jeff Kershaw3
1Department of Neuroscience, Central Clinical School, Monash University, The Alfred Centre, 99 Commercial Road, Melbourne, VIC, 3004, Australia.
Insights
Pediatric traumatic brain injury (pTBI) causes lasting white matter changes. Advanced diffusion imaging reveals more sensitive markers of degeneration than traditional methods, highlighting chronic outcomes after early-life brain injury.
Area of Science:
- Neuroscience
- Radiology
- Developmental Biology
Background:
- Pediatric traumatic brain injury (pTBI) poses significant health risks, with potential for long-term developmental consequences.
- The impact of pTBI on white matter maturation and chronic brain development remains inadequately understood.
Purpose of the Study:
- To investigate chronic white matter alterations following experimental pTBI using advanced diffusion-weighted imaging (DWI).
- To compare the sensitivity of advanced DWI metrics with traditional diffusion tensor imaging (DTI) in detecting white matter changes.
Main Methods:
- Mice at post-natal day 21 received TBI via controlled cortical impact.
- Magnetic resonance imaging (MRI) with advanced DWI (multi-shell, high b-values) was performed at 6 months post-injury.
- Analysis included advanced DWI metrics (fiber density, cross-section) and track-weighted imaging (TWI), compared to DTI metrics.
Main Results:
- DTI metrics showed reduced fractional anisotropy and increased radial diffusivity in TBI mice.
- Advanced DWI metrics, including fiber density and TWI, revealed widespread white matter degeneration.
- Advanced DWI metrics demonstrated greater sensitivity to white matter changes compared to DTI.
Conclusions:
- Advanced DWI metrics are more sensitive in detecting chronic white matter degeneration after pTBI than traditional DTI.
- These findings underscore the utility of advanced DWI in assessing long-term neurological consequences of pediatric brain injury.
- The study highlights the persistent impact of pTBI on brain development and white matter integrity.
Abstract:
Pediatric traumatic brain injury (pTBI) is a major community health concern. Due to ongoing maturation, injury to the brain at a young age can have devastating consequences in later life. However, how pTBI affects brain development, including white matter maturation, is still poorly understood. Here, we used advanced diffusion weighted imaging (DWI) to assess chronic white matter changes after experimental pTBI. Mice at post-natal day 21 sustained a TBI using the controlled cortical impact model and magnetic resonance imaging (MRI) was performed at 6 months post-injury using a 4.7 T Bruker scanner. Four diffusion shells with 81 directions and b-values of 1000, 3000, 5000, and 7000s/mm2 were acquired and analyzed using MRtrix3 software. Advanced DWI metrics, including fiber density, fiber cross-section and a combined fiber density and cross-section measure, were investigated together with three track-weighted images (TWI): the average pathlength map, mean curvature and the track density image. These advanced metrics were compared to traditional diffusion tensor imaging (DTI) metrics which indicated that TBI injured mice had reduced fractional anisotropy and increased radial diffusivity in the white matter when compared to age-matched sham controls. Consistent with previous findings, fiber density and TWI metrics appeared to be more sensitive to white matter changes than DTI metrics, revealing widespread reductions in fiber density and TWI metrics in pTBI mice compared to sham controls. These results provide additional support for the use of advanced DWI metrics in assessing white matter degeneration following injury and highlight the chronic outcomes that can follow pTBI.
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