Functional connectivity development in the prenatal and neonatal stages measured by functional magnetic resonance

Jérémi Desrosiers1, Laura Caron-Desrochers2, Andréanne René2

  • 1Neurodevelopmental Optical Imaging Laboratory (LIONLAB), Sainte-Justine University Hospital Research Center, Montreal, QC, Canada; School of Psychoeducation, University of Montreal, QC, Canada.

Insights

This systematic review reveals a posterior-to-anterior gradient in fetal and neonatal brain connectivity development. Functional brain connectivity increases from back to front, with sensorimotor networks developing earlier than higher-order networks.

Area of Science:

  • Neuroscience
  • Developmental Neuroscience
  • Neuroimaging

Background:

  • Understanding early human brain development is crucial for identifying neurodevelopmental disorders.
  • Prenatal and neonatal periods are critical for establishing brain connections.

Approach:

  • Systematic review of resting-state functional MRI studies in healthy fetuses and neonates (20 weeks GA to term).
  • Searched five databases, identifying 12,573 articles, with 28 meeting inclusion criteria.
  • Included 1877 participants, assessing risk of bias and methodological rigor.

Key Points:

  • Revealed a developmental gradient of increasing functional brain connectivity from posterior to anterior brain regions.
  • Observed a decrease in local small-world organization after birth, with weaker characteristics in newborns compared to fetuses.
  • Associated the posterior-to-anterior gradient with earlier sensorimotor network development and later maturation of higher-order networks.

Conclusions:

  • Functional brain connectivity follows a distinct posterior-to-anterior developmental trajectory in early human life.
  • Small-world network organization changes around birth, indicating a shift in brain network dynamics.
  • Future research should address limitations in fetal neuroimaging, such as movement artifacts and resolution, to refine understanding of early brain development.