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Investigations on Alterations of Hippocampal Circuit Function Following Mild Traumatic Brain Injury
Published on: November 19, 2012
Altered longitudinal structural connectome in paediatric mild traumatic brain injury: an Advancing Concussion
Ashley L Ware1,2,3, Adrian I Onicas2,4, Nishard Abdeen5
1Department of Psychology, Georgia State University, Atlanta, GA 30303, USA.
Insights
Advanced brain imaging reveals subtle network differences in children with concussion compared to orthopedic injuries. These changes, particularly in regional connectivity, become more apparent over time, especially in those with persistent symptoms.
Area of Science:
- Neuroscience
- Radiology
- Pediatrics
Background:
- Paediatric mild traumatic brain injury (concussion) presents complex neuropathology.
- Traditional diffusion-weighted imaging (DWI) may not fully capture diffuse effects of paediatric concussion.
- Structural connectome analysis offers a novel approach to understanding brain microstructure changes.
Purpose of the Study:
- To compare the structural connectome of children with concussion to those with mild orthopaedic injury.
- To determine if network metrics and their temporal trajectories differentiate paediatric concussion.
- To investigate the influence of time, sex, and age on these differences.
Main Methods:
- Recruited children aged 8-16.99 years with concussion (n=360) or mild orthopaedic injury (n=196).
- Utilized 3 Tesla MRI with diffusion-weighted imaging to compute connectivity matrices and graph theory metrics.
- Employed linear mixed effects modeling to compare groups across post-acute and chronic follow-ups.
Main Results:
- Global network metrics did not differ between groups.
- Regional network metrics (clustering coefficient, betweenness centrality, efficiency) of specific brain areas differed significantly.
- Differences were moderated by time post-injury, sex, and age, with more pronounced alterations at 6 months, especially in children with persistent symptoms.
Conclusions:
- Post-acute regional network metrics can distinguish concussion from mild orthopaedic injury and predict symptom recovery.
- Alterations in regional network parameters become more robust and widespread at chronic timepoints.
- Increased regional and local subnetwork inefficiency occurs over time after concussion, persisting up to 6 months, particularly in symptomatic children.
Abstract:
Advanced diffusion-weighted imaging techniques have increased understanding of the neuropathology of paediatric mild traumatic brain injury (i.e. concussion). Most studies have examined discrete white-matter pathways, which may not capture the characteristically subtle, diffuse and heterogenous effects of paediatric concussion on brain microstructure. This study compared the structural connectome of children with concussion to those with mild orthopaedic injury to determine whether network metrics and their trajectories across time post-injury differentiate paediatric concussion from mild traumatic injury more generally. Data were drawn from of a large study of outcomes in paediatric concussion. Children aged 8-16.99 years were recruited from five paediatric emergency departments within 48 h of sustaining a concussion (n = 360; 56% male) or mild orthopaedic injury (n = 196; 62% male). A reliable change score was used to classify children with concussion into two groups: concussion with or without persistent symptoms. Children completed 3 T MRI at post-acute (2-33 days) and/or chronic (3 or 6 months, via random assignment) post-injury follow-ups. Diffusion-weighted images were used to calculate the diffusion tensor, conduct deterministic whole-brain fibre tractography and compute connectivity matrices in native (diffusion) space for 90 supratentorial regions. Weighted adjacency matrices were constructed using average fractional anisotropy and used to calculate global and local (regional) graph theory metrics. Linear mixed effects modelling was performed to compare groups, correcting for multiple comparisons. Groups did not differ in global network metrics. However, the clustering coefficient, betweenness centrality and efficiency of the insula, cingulate, parietal, occipital and subcortical regions differed among groups, with differences moderated by time (days) post-injury, biological sex and age at time of injury. Post-acute differences were minimal, whereas more robust alterations emerged at 3 and especially 6 months in children with concussion with persistent symptoms, albeit differently by sex and age. In the largest neuroimaging study to date, post-acute regional network metrics distinguished concussion from mild orthopaedic injury and predicted symptom recovery 1-month post-injury. Regional network parameters alterations were more robust and widespread at chronic timepoints than post-acutely after concussion. Results suggest that increased regional and local subnetwork segregation (modularity) and inefficiency occurs across time after concussion, emerging after post-concussive symptom resolve in most children. These differences persist up to 6 months after concussion, especially in children who showed persistent symptoms. While prognostic, the small to modest effect size of group differences and the moderating effects of sex likely would preclude effective clinical application in individual patients.
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