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Disrupted Small-World Networks in Children with Drug-Naïve Attention-Deficit/Hyperactivity Disorder: A DTI-Based
1Department of Radiology, First Affiliated Hospital, Sun Yat-sen University, Guangzhou, China, 281173939@qq.com.
Insights
Attention-deficit/hyperactivity disorder (ADHD) alters white matter network topology, showing decreased global integration and changes in key brain regions. These findings offer insights into ADHD
Area of Science:
- Neuroscience
- Developmental Disorders
- Brain Imaging
Background:
- Attention-deficit/hyperactivity disorder (ADHD) is a common neurodevelopmental disorder with poorly understood neurological underpinnings.
- Investigating white matter (WM) structural connectome alterations is crucial for understanding ADHD pathophysiology.
Purpose of the Study:
- To explore alterations in the white matter (WM) structural connectome in children with drug-naïve ADHD.
- To compare network topological parameters between children with ADHD and typically developing (TD) controls.
- To investigate the relationship between WM network topology and ADHD symptom severity.
Main Methods:
- Recruited 49 drug-naïve ADHD children and 51 typically developing (TD) children (aged 6-14 years).
- Constructed WM structural connectivity using deterministic diffusion tensor imaging (DTI) in 90 cortical and subcortical regions.
- Calculated graph topological parameters and compared network metrics between groups; correlated metrics with clinical symptom severity.
Main Results:
- ADHD group exhibited increased characteristic path length (Lp), normalized clustering coefficient (γ), and small worldness (σ), with decreased global efficiency (Eglob) compared to TD.
- Reduced nodal centralities were observed in ADHD, particularly in default mode network (DMN), central executive network (CEN), basal ganglia, and bilateral thalamus.
- Negative correlation found between ADHD symptom severity (concentration index) and nodal betweenness in the left orbital part of the middle frontal gyrus.
Conclusions:
- ADHD is associated with a shift in WM network topology towards a 'regularization' pattern, characterized by reduced global network integration.
- Altered nodal centralities in DMN, CEN, basal ganglia, and thalamus reflect widespread network dysfunction in ADHD.
- ADHD can be understood through the lens of large-scale, spatially distributed neural network dysfunction.
Abstract:
Attention-deficit/hyperactivity disorder (ADHD) is one of the most common neurodevelopmental disorders, while the potential neurological mechanisms are poorly understood. To explore the alterations in the white matter (WM) structural connectome in children with drug-naïve ADHD, forty-nine ADHD and 51 age- and gender-matched typically developing (TD) children aged 6-14 years were enrolled. WM structural connectivity based on deterministic diffusion tensor imaging (DTI) was constructed in 90 cortical and subcortical regions, and topological parameters of the resulting graphs were calculated. Network metrics were compared between two groups. The concentration index and the total cancellation test scores of digit cancellation test were used to evaluate clinical symptom severity in ADHD. Then, a partial correlation analysis was performed to explore the relationship between significant topologic metrics and clinical symptom severity. Compared to TD group, ADHD showed an increase in the characteristic path length (Lp), normalized clustering coefficient (γ), small worldness (σ), and a decrease in the global efficiency (Eglob) (all p < 0.05). Furthermore, ADHD showed reduced nodal centralities mainly in the regions of default mode network (DMN), central executive network (CEN), basal ganglia, and bilateral thalamus (all p < 0.05). After performing Benjamini-Hochberg's procedure, only the left orbital part of superior frontal gyrus and the left caudate were statistically significant (p < 0.05, FDR-corrected). In addition, the concentration index of ADHD was negatively correlated with the nodal betweenness of the left orbital part of the middle frontal gyrus (r = -0.302, p = 0.042). Our findings revealed an ADHD-related shift of WM network topology toward "regularization" pattern, characterized by decreased global network integration, which is also reflected by changed nodal centralities involving DMN, CEN, basal ganglia, and bilateral thalamus. ADHD could be understood by examining the dysfunction of large-scale spatially distributed neural networks.
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