Posterior brain sensorimotor recruitment for inhibition of delayed responses in children

Kristina T R Ciesielski1,2, Christopher Bouchard3, Isabel Solis3

  • 1Pediatric Neuroscience Laboratory, Psychology Clinical Neuroscience Center, Department of Psychology, University of New Mexico, Albuquerque, NM, USA. KCIESIELSKI@mgh.harvard.edu.

Insights

Young children effectively inhibit responses, despite immature frontal brain networks. Their success relies on occipital/parietal brain regions, not just frontal areas, for cognitive inhibition.

Area of Science:

  • Neuroscience
  • Developmental Psychology
  • Cognitive Science

Background:

  • Inhibitory control is crucial for development, but frontal lobe maturation limits it in young children.
  • Children can inhibit delayed responses when motivated, despite immature frontal networks.
  • Understanding age-dependent neural inhibitory mechanisms during response delays is key.

Purpose of the Study:

  • To investigate age-dependent neural inhibitory mechanisms during the response-waiting period in children.
  • To elucidate how children successfully inhibit delayed responses despite frontal network immaturity.

Main Methods:

  • Recorded event-related potentials (ERPs) from children and adults during a visual-spatial working memory task with delayed responses.
  • Analyzed cortical activation within the first 1000 ms of the awaiting-to-respond window.

Main Results:

  • Children showed reduced prefrontal P200 amplitude and delayed latency, indicating less effective top-down attentional biasing.
  • Children exhibited elevated occipital/inferior parietal P300, suggesting reliance on these regions for inhibition.
  • P300 effects were stronger in younger children, with no significant age differences in latency.

Conclusions:

  • Developmental evidence supports the sensorimotor recruitment model of visual-spatial working memory, emphasizing occipital/parietal regions.
  • Cognitive inhibition in children involves age-dependent recruitment of neural networks, extending beyond the frontal lobes.
  • Findings highlight the importance of dorsal-visual network maturation in early inhibitory control.

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