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Updated: Jul 8, 2025

Network Analysis of the Default Mode Network Using Functional Connectivity MRI in Temporal Lobe Epilepsy
Published on: August 5, 2014
Exploring the core network of the structural covariance network in childhood absence epilepsy
Merel J A Eussen1,2, Jacobus F A Jansen3,2,4, Twan P C Voncken5,6
1Department of Biomedical Technology, Eindhoven University of Technology, Eindhoven, the Netherlands.
Insights
Children with childhood absence epilepsy (CAE) show less efficient brain network organization. This structural covariance network (SCN) inefficiency correlates with cognitive performance in pediatric epilepsy patients.
Area of Science:
- Neuroscience
- Pediatric Neurology
- Medical Imaging
Background:
- Childhood absence epilepsy (CAE) is a common pediatric epilepsy, often considered benign with most children outgrowing seizures.
- Subtle cognitive deficits and brain morphological changes have been previously observed in CAE patients.
- Structural covariance networks (SCNs) can capture interconnected morphological brain changes.
Purpose of the Study:
- To quantify and compare the structural brain network organization in children with CAE versus healthy controls using SCNs.
- To investigate the relationship between core network architecture and cognitive performance in children with CAE.
Main Methods:
- Seventeen children with CAE (6-12 years) and fifteen controls (6-12 years) underwent T1-weighted MRI.
- SCNs were estimated by parcellating T1-weighted images into 68 cortical regions.
- Graph theory measures (assortativity, rich-club coefficient) were calculated; multivariable linear regression analyzed group differences and cognitive correlations.
Main Results:
- Children with CAE exhibited significantly lower assortativity in their SCNs, indicating less efficient core network organization compared to controls.
- Higher cognitive performance was associated with a stronger assortative mixing pattern (more efficient SCN structure).
- Rich-club coefficients did not differ between groups or correlate with cognitive measures.
Conclusions:
- The structural covariance network organization in children with CAE is less efficient compared to controls.
- This altered network organization is linked to cognitive performance in pediatric epilepsy.
- Findings offer novel insights into SCN organization and its relation to cognition in CAE.
Abstract:
Childhood absence epilepsy (CAE) is a generalized pediatric epilepsy, which is generally considered to be a benign condition since most children become seizure-free before reaching adulthood. However, cognitive deficits and changes of brain morphological have been previously reported in CAE. These morphological changes, even if they might be very subtle, are not independent due to the underlying network structure and can be captured by the structural covariance network (SCN). In this study, SCNs were used to quantify the structural brain network for children with CAE as well as controls. Seventeen children with CAE (6-12y) and fifteen controls (6-12y) were included. To estimate the SCN, T1-weighted images were acquired and parcellated into 68 cortical regions. Graph measures characterizing the core network architecture, i.e. the assortativity and rich-club coefficient, were calculated for all individuals. Multivariable linear regression models, including age and sex as covariates, were used to assess differences between children with CAE and controls. Additionally, potential relations between the core network and cognitive performance was investigated. A lower assortativity (i.e. less efficiently organized core network organization) was found for children with CAE compared to controls. Moreover, better cognitive performance was found to relate to stronger assortative mixing pattern (i.e. more efficient core network structure). Rich-club coefficients did not differ between groups, nor relate to cognitions. The core network organization of the SCN in children with CAE tend to be less efficient organized compared to controls, and relates to cognitive performance, and therefore this study provides novel insights into the SCN organization in relation to CAE and cognition.
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