Event-related oscillations reflect functional asymmetry in children with attention deficit/hyperactivity disorder

Juliana Yordanova1, Vasil Kolev, Aribert Rothenberger

  • 1Institute of Neurobiology, Bulgarian Academy of Sciences, Acad. G. Bonchev Str., B1. 23, 1113 Sofia, Bulgaria. jyord@bio.bas.bg

Supplements to Clinical Neurophysiology
|September 24, 2013
PubMed

Insights

Children with attention deficit/hyperactivity disorder (ADHD) show task-irrelevant motor activation when presented with complex stimuli. This suggests deficient inhibition in motor cortical networks contributes to ADHD-related processing differences.

Area of Science:

  • Neuroscience
  • Developmental Psychology
  • Clinical Psychology

Background:

  • Attention deficit/hyperactivity disorder (ADHD) is associated with deviant neural oscillations during selective attention tasks.
  • These deviations may stem from impaired motor inhibition, affecting motor, sensory, and cognitive networks.

Purpose of the Study:

  • To compare motor cortical activation between children with ADHD and healthy controls during an auditory selective attention task.
  • To investigate the relationship between motor cortical activation and stimulus processing in ADHD.

Main Methods:

  • Utilized electroencephalography (EEG) mu (8-12 Hz) activity at C3 and C4 electrodes as a measure of motor cortical activation.
  • Analyzed mu power across four stimulus conditions: attended target, unattended target, attended nontarget, and unattended nontarget.

Main Results:

  • Overall motor cortical activation (mu power suppression) was not significantly greater in children with ADHD compared to controls.
  • Children with ADHD exhibited reduced mu activity in response to stimuli with partial target features that did not require motor response (unattended target, attended nontarget).

Conclusions:

  • Motor cortical excitability is not globally increased in children with ADHD.
  • Complex stimuli with conflicting features induce task-irrelevant motor activation in ADHD.
  • Deficient inhibition in motor cortical networks may underlie functional asymmetries in stimulus processing in ADHD.