Frontoparietal and default mode network connectivity varies with age and intelligence
M. DeSerisy, Bruce Ramphal, D. Pagliaccio, E. Raffanello, G. Tau, R. Marsh, J. Posner, A. Margolis
Developmental Cognitive Neuroscience January 27, 2021 DOI: 10.1016/j.dcn.2021.100928 (opens in new tab) via Semantic Scholar
Summary
AI-generated from the abstractIn children and young adults aged 7 to 25, the connection between brain networks involved in focused attention (frontoparietal network) and internal thought (default mode network) becomes more anticorrelated with age. This shift suggests these networks become more segregated as people mature. Additionally, stronger anticorrelation between specific regions (frontal pole and precentral gyrus) was associated with higher intelligence quotient. The findings indicate that more mature brain network organization relates to better intellectual functioning.
Study at a glance
| Characteristics | Observational cohort Peer reviewed |
|---|---|
| Sample size | 133 |
| Population | Healthy children and young adults aged 7 to 25 years |
| Keywords | Medicine Psychology |
| Key finding | Frontoparietal-default mode network connectivity becomes more anticorrelated with age, and greater anticorrelation in a specific connection is associated with higher IQ. |
Abstract
Background Anticorrelated resting state connectivity between task-positive and task-negative networks in adults supports flexible shifting between externally focused attention and internal thought. Findings suggest that children show positive correlations between task-positive (frontoparietal; FP) and task-negative (default mode; DMN) networks. FP-DMN connectivity also associates with intellectual functioning across the lifespan. We investigated whether FP-DMN connectivity in healthy children varied with age and intelligence quotient (IQ). Methods We utilized network-based statistics (NBS) to examine resting state functional connectivity between FP and DMN seeds in N = 133 7−25-year-olds (Mage = 15.80). Linear regression evaluated FP-DMN associations with IQ. Results We detected NBS subnetworks containing both within- and between-network connections that were inversely associated with age. Four FP-DMN connections showed more negative connectivity between FP (inferior frontal gyrus and precentral gyrus) and DMN regions (frontal medial cortex, precuneus, and frontal pole) among older participants. Frontal pole-precentral gyrus connectivity inversely associated with IQ. Conclusions FP-DMN connectivity was more anticorrelated at older ages, potentially indicating dynamic network segregation of these circuits from childhood to early adulthood. Youth with more mature (i.e., anticorrelated) FP-DMN connectivity demonstrated higher IQ. Our findings add to the growing body of literature examining neural network development and its association with IQ.