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Post-Acute Cortical Thickness in Children with Mild Traumatic Brain Injury versus Orthopedic Injury
Ashley L Ware1,2, Naomi J Goodrich-Hunsaker3,4, Catherine Lebel2,5
1Department of Psychology, University of Calgary, Calgary, Alberta, Canada.
Insights
Pediatric mild traumatic brain injury (TBI) showed differences in left parietal cortical thickness compared to orthopedic injury (OI). Neuroimaging biomarkers in early TBI are complex for predicting long-term outcomes.
Area of Science:
- Neuroscience
- Pediatric Neurology
- Radiology
Background:
- Pediatric mild traumatic brain injury (TBI), or concussion, impacts brain development.
- Cortical thickness changes in early pediatric TBI are not well understood.
- Previous studies lack appropriate comparison groups for mild TBI.
Purpose of the Study:
- To compare cortical thickness between children with mild TBI and mild orthopedic injury (OI).
- To investigate if early cortical thickness predicts post-concussive symptoms (PCS) in children.
- To analyze neuroimaging biomarkers for pediatric TBI outcomes.
Main Methods:
- Utilized automated FreeSurfer software for cortical thickness estimation.
- Recruited pediatric patients (8-16 years) with mild TBI (n=136) or OI (n=70) from emergency departments.
- Collected MRI data post-acutely (3-24 days) and assessed PCS at 3 and 6 months.
Main Results:
- Significant differences in left parietal cortical thickness observed (TBI > OI) after FDR correction.
- Pediatric mild TBI group reported higher post-acute PCS than the OI group.
- Right frontal thickness correlated with post-acute PCS; right cingulum thickness predicted chronic PCS in the OI group.
Conclusions:
- Early pediatric mild TBI is associated with altered left parietal cortical thickness.
- Post-acute neuroimaging biomarkers show complex relationships with predicting PCS.
- Predicting long-term outcomes in pediatric mild TBI requires further investigation beyond early imaging.
Abstract:
Studies of brain morphometry may illuminate the effects of pediatric mild traumatic brain injury (TBI; e.g., concussion). However, no published studies have examined cortical thickness in the early injury phases of pediatric mild TBI using an appropriate comparison group. The current study used an automated approach (i.e., FreeSurfer) to determine whether cortical thickness differed in children following a mild TBI or a mild orthopedic injury (OI), and to examine whether post-acute cortical thickness predicted post-acute and chronic post-concussive symptoms (PCS). Children ages 8.00-16.99 years with mild TBI (n = 136) or OI (n = 70) were recruited at emergency department visits to two children's hospitals, during which parents rated children's pre-injury symptoms retrospectively. Children completed a post-acute (3-24 days post-injury) assessment, which included a 3 Tesla MRI, and 3- and 6-month post-injury assessments. Parents and children rated PCS at each assessment. Cortical thickness was estimated using FreeSurfer. Linear mixed effects and multi-variable negative binomial regression models were used to test study aims, with false discovery rate (FDR) correction for multiple comparisons. Groups differed significantly on left parietal cortical thickness (TBI > OI) after FDR correction. Cortical thickness also varied by brain subregion and age, but not sex. Groups differed significantly on PCS post-acutely (TBI > OI), but not at 3 or 6 months. Right frontal thickness was positively related to post-acute PCS in both groups. Right cingulum thickness predicted chronic PCS in the OI group only. Results highlight the complexity of predicting outcomes of pediatric mild TBI from post-acute neuroimaging biomarkers.
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