Atypical Development of Functional Brain Networks in Neonates with Congenital Heart Disease

Jung-Hoon Kim1, Josepheen De Asis-Cruz1, Nickie N Andescavage1

  • 1Developing Brain Institute, Children's National Hospital, Washington, DC 20010.

Insights

Congenital heart disease (CHD) disrupts neonatal brain networks, particularly sensorimotor and limbic systems. Resting-state fMRI reveals these networks normalize after surgery, offering potential early biomarkers for neurodevelopmental risk.

Area of Science:

  • Neuroscience
  • Developmental Biology
  • Medical Imaging

Background:

  • Congenital heart disease (CHD) affects 1% of births, causing neurodevelopmental impairments despite surgical advances.
  • Existing resting-state fMRI (rs-fMRI) studies in CHD use limited predefined brain parcellations, hindering detection of spatial network alterations.
  • Early identification of brain network disruptions is crucial for understanding and mitigating neurodevelopmental deficits in CHD.

Purpose of the Study:

  • To investigate atypical brain network development in newborns with CHD using a data-driven approach.
  • To establish a normative set of neonatal brain networks from an independent dataset of healthy newborns.
  • To identify early rs-fMRI biomarkers for neurodevelopmental risk in CHD.

Main Methods:

  • Analyzed rs-fMRI data from 448 newborns (219 female, 229 male).
  • Employed a data-driven method to identify neonatal brain networks.
  • Compared brain network organization in newborns with complex CHD to a normative dataset of healthy neonates.

Main Results:

  • Newborns with complex CHD exhibited atypical organization in sensorimotor and limbic networks before surgery.
  • These networks were initially split into left and right hemispheric subnetworks in CHD infants.
  • Post-cardiovascular surgery, these networks coalesced into a singular, symmetric pattern similar to healthy neonates.

Conclusions:

  • rs-fMRI can detect subtle, early functional brain disruptions in newborns with CHD.
  • Atypical network organization in CHD normalizes post-surgery, suggesting a potential window for intervention.
  • This study provides a foundation for developing rs-fMRI-based biomarkers for neurodevelopmental risk in CHD.

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