Disrupted Small-World Networks in Children with Drug-Naïve Attention-Deficit/Hyperactivity Disorder: A DTI-Based

Liuhui Wu1, Shu Su2, Yan Dai2

  • 1Department of Radiology, First Affiliated Hospital, Sun Yat-sen University, Guangzhou, China, 281173939@qq.com.

PubMed

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.