Altered Functional Network Energy Across Multiscale Brain Networks in Preterm vs. Full-Term Subjects: Insights from

Qiang Li1, Dawn Jensen1,2, Zening Fu1

  • 1Tri-Institutional Center for Translational Research in Neuroimaging and Data Science (TReNDS), Georgia State University, Georgia Institute of Technology, Emory University, Atlanta, GA, United States.

Insights

Preterm birth alters adolescent brain connectivity, showing differences in visual, sensorimotor, and cognitive networks. Full-term infants display more dynamic brain networks, while preterm infants exhibit greater stability but less flexibility.

Area of Science:

  • Neuroscience
  • Developmental Neuroscience
  • Brain Connectivity Research

Background:

  • Infants born prematurely (preterm) may have altered brain connectivity due to incomplete development.
  • These individuals can exhibit persistent structural and functional brain differences into adolescence compared to full-term peers.

Purpose of the Study:

  • To examine functional network energy across multiscale functional connectivity in preterm and full-term adolescents.
  • To identify brain networks with significant differences in network energy between preterm and full-term subjects.

Main Methods:

  • Analysis of functional network energy across multiscale functional connectivity.
  • Utilized data from approximately 4600 adolescents in the Adolescent Brain Cognitive Development (ABCD) study.
  • Compared network energy in visual, sensorimotor, and high cognitive networks between preterm and full-term groups.

Main Results:

  • Three key brain networks (visual, sensorimotor, high cognitive) showed significant differences in network energy between preterm and full-term adolescents.
  • Full-term subjects demonstrated greater network instability, dynamic reconfiguration, and flexibility.
  • Preterm subjects displayed more stable networks but less dynamic and flexible functional brain organization.

Conclusions:

  • Multiscale functional network energy measurements provide insights into the stability of canonical brain networks in preterm-born individuals.
  • Early birth impacts brain development, affecting the stability and flexibility of key neural networks.
  • Findings enhance understanding of how preterm birth influences adolescent brain organization.

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