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Updated: Nov 4, 2025

An Electrophysiology Protocol to Measure Reward Anticipation and Processing in Children
Published on: October 4, 2018
Motor cortex modulation and reward in children with attention-deficit/hyperactivity disorder
Jordan A Detrick1,2, Caroline Zink3,4,5, Keri Shiels Rosch4,6
1University of Cincinnati College of Medicine, Cincinnati, OH, USA.
Insights
Researchers found that transcranial magnetic stimulation (TMS) can measure brain responses to rewards in children with attention-deficit/hyperactivity disorder (ADHD). This technique may help identify ADHD subgroups and guide treatment by revealing altered reward processing.
Area of Science:
- Neuroscience
- Developmental Psychology
- Biomarker Discovery
Background:
- Attention-deficit/hyperactivity disorder (ADHD) is a common childhood disorder with complex causes, affecting attention and impulse control.
- Impaired reward processing, linked to dopamine pathway dysfunction, is often observed in ADHD, impacting decision-making.
- There is a need for reliable, non-invasive biomarkers to identify ADHD subtypes and personalize treatment strategies.
Purpose of the Study:
- To investigate the utility of transcranial magnetic stimulation (TMS) in quantifying cortical inhibition and excitability during a reward motivation task in children with ADHD.
- To explore potential TMS-based biomarkers that correlate with ADHD symptoms and impaired functional domains.
- To differentiate neural responses to reward cues and receipt between children with ADHD and typically developing controls.
Main Methods:
- A cohort of 55 children (ages 8-12) diagnosed with ADHD and 50 age-matched controls participated.
- A child-friendly reward motivation task was administered concurrently with transcranial magnetic stimulation (TMS).
- Primary outcomes measured were changes in short-interval cortical inhibition (SICI) and motor evoked potential (MEP) amplitudes in response to reward cues and receipt.
Main Results:
- Both reward cues and receipt reduced SICI, normalizing baseline differences observed between ADHD and control groups.
- Reward cues and receipt increased MEP amplitudes, but this 'Task-Related-Up-Modulation' was diminished in children with ADHD.
- Greater hyperactive/impulsive symptoms in ADHD correlated with reduced MEP up-modulation following successful reward acquisition.
Conclusions:
- TMS-assessed SICI may reflect both baseline deficits and performance normalization under rewarded conditions in ADHD.
- Task-induced MEP up-modulation appears to be a sensitive measure of hypo-responsiveness to reward in ADHD, particularly in hyperactive/impulsive children.
- These findings support TMS-evoked cortical inhibition and task-induced excitability as promising biomarkers for clinically relevant ADHD dysfunction.
Abstract:
Attention-deficit/hyperactivity disorder, the most prevalent developmental disorder in childhood, is a biologically heterogenous condition characterized by impaired attention and impulse control as well as motoric hyperactivity and anomalous motor skill development. Neuropsychological testing often demonstrates impairments in motivation and reward-related decision making in attention-deficit/hyperactivity disorder, believed to indicate dysfunction of the dopamine reward pathway. Development of reliable, non-invasive, easily obtained and quantitative biomarkers correlating with the presence and severity of clinical symptoms and impaired domains of function could aid in identifying meaningful attention-deficit/hyperactivity disorder subgroups and targeting appropriate treatments. To this end, 55 (37 male) 8-12-year-old children with attention-deficit/hyperactivity disorder and 50 (32 male) age-matched, typically-developing controls were enrolled in a transcranial magnetic stimulation protocol-used previously to quantify cortical disinhibition in both attention-deficit/hyperactivity disorder and Parkinson's Disease-with a child-friendly reward motivation task. The primary outcomes were reward task-induced changes in short interval cortical inhibition and up-modulation of motor evoked potential amplitudes, evaluated using mixed model, repeated measure regression. Our results show that both reward cues and reward receipt reduce short-interval cortical inhibition, and that baseline differences by diagnosis (less inhibition in attention-deficit/hyperactivity disorder) were no longer present when reward was cued or received. Similarly, both reward cues and reward receipt up-modulated motor evoked potential amplitudes, but, differentiating the two groups, this Task-Related-Up-Modulation was decreased in children with attention-deficit/hyperactivity disorder. Furthermore, more severe hyperactive/impulsive symptoms correlated significantly with less up-modulation with success in obtaining reward. These results suggest that in children with attention-deficit/hyperactivity disorder, short interval cortical inhibition may reflect baseline deficiencies as well as processes that normalize performance under rewarded conditions. Task-Related-Up-Modulation may reflect general hypo-responsiveness in attention-deficit/hyperactivity disorder to both reward cue and, especially in more hyperactive/impulsive children, to successful reward receipt. These findings support transcranial magnetic stimulation evoked cortical inhibition and task-induced excitability as biomarkers of clinically relevant domains of dysfunction in childhood attention-deficit/hyperactivity disorder.
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