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Published on: February 8, 2018
Effect of obesity on inhibitory control in preadolescents during stop-signal task. An event-related potentials study
Graciela C Alatorre-Cruz1, Heather Downs2, Darcy Hagood2
1Department of Pediatrics, University of Arkansas for Medical Sciences, Little Rock, AR, United States of America; Arkansas Children's Nutrition Center, 15 Children's Way, Little Rock, AR 72202, United States of America.
Insights
Obese children show differences in brain activity related to attention and impulse control. This study found less efficient conflict monitoring and attention allocation in obese preadolescents during inhibitory control tasks.
Area of Science:
- Neuroscience
- Developmental Psychology
- Pediatric Obesity
Background:
- Preadolescence involves significant brain development in executive functions like attention and inhibition.
- Obesity is linked to executive function deficits, but reactive inhibition has not been studied in obese preadolescents using electrophysiology.
- The stop-signal task assesses reactive inhibition, which is crucial for cognitive control.
Purpose of the Study:
- To investigate differences in reactive inhibition between obese and normal-weight preadolescents using event-related potentials (ERPs).
- To test the hypothesis that obese preadolescents exhibit less efficient reactive inhibition compared to their non-obese peers.
Main Methods:
- Compared ERPs during a stop-signal task in 27 obese and 29 normal-weight preadolescents.
- Analyzed behavioral responses and electrophysiological patterns (N200, P300a, P300b amplitudes and latencies).
Main Results:
- No significant behavioral differences were found between the groups.
- Obese preadolescents showed less efficient conflict monitoring (N200 latency) during 'no-go' trials.
- Obese children exhibited altered attentional allocation (P300a latency) during 'go' trials and working memory difficulties (P300b amplitude).
Conclusions:
- Obese preadolescents demonstrate less efficient conflict monitoring and attention allocation compared to normal-weight peers.
- These findings suggest developmental differences in attention and inhibitory control in obese preadolescents.
- Electrophysiological measures reveal subtle neurocognitive differences not apparent in behavioral data.
Abstract:
Preadolescence is a period in which structural and functional changes occur in brain network reorganization that relate to the development of executive control functions, particularly in the areas of attention and cognitive inhibition. Obesity has been associated with a deficit in executive functions and behavioral and electrophysiological differences using the go/no-go task (proactive inhibition), but no study has assessed brain-electrical activity using the stop-signal task (reactive inhibition) in this population. Therefore, we hypothesized that obese preadolescents would show less efficiency in reactive inhibition than their same-age non-obese peers. To test this hypothesis, event-related potentials (ERPs) were collected during a stop-signal task and compared between 27 obese preadolescents (mean BMI = 25.9; 9.65 years old) and 29 normal-weight preadolescents (mean BMI = 17.5; 9.60 years old). No significant differences between groups were observed in behavioral responses. As for ERPs, the obese group had an electrophysiological pattern associated with less efficient conflict monitoring during the "no-go" condition (i.e., less modulation of N200 latency based on the experimental condition), differences in attentional allocation in the "go" condition (less modulation of P300a latency based on experimental condition), and difficulties in rule retrieval from working memory associated with the trial-type in both experimental conditions (smaller P300b amplitude). We conclude that obese preadolescents displayed less ability to modulate conflict-monitoring in the "no-go" condition and attention allocation in the "go" condition, evidencing differences between groups in the development of attention and inhibitory control.
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