The "Heart-and-Brain Interaction" in Newborns with Complex Congenital Heart Disease

Lisa Sogerer-Herold1, Charlotte Foltin1, David Kronthaler2

  • 1Clinic of Congenital Heart Disease and Pediatric Cardiology, German Heart Center, TUM University Hospital, Technical University of Munich, Munich, 80636, Germany.

Insights

Neonates with complex congenital heart disease (CHD) exhibit reduced brain growth and immaturity. These findings suggest increased perioperative risks and potential neurodevelopmental impairments before surgical intervention.

Area of Science:

  • Neonatology
  • Pediatric Neurology
  • Cardiology

Background:

  • Complex congenital heart disease (CHD) poses risks for brain development in neonates.
  • Conditions like hypoplastic left heart syndrome (HLHS) and transposition of the great arteries (TGA) are associated with brain pathologies.
  • Altered brain growth is a concern in newborns with complex CHD.

Purpose of the Study:

  • To investigate brain volumes and immature brain structures in neonates with complex CHD.
  • To compare brain development in neonates with HLHS and TGA against healthy controls.
  • To identify potential early indicators of brain abnormalities in these high-risk infants.

Main Methods:

  • Prospective study analyzing neonatal cerebral MRI scans.
  • Semi-automated segmentation using the dHCP pipeline.
  • Inclusion of 51 neonates with complex CHD (HLHS/HLHC/UVH, TGA, aortic arch obstruction) and 209 controls, excluding premature births.

Main Results:

  • Cerebral MRI revealed abnormalities in 57% of CHD neonates, including enlarged CSF spaces, grey/white matter injuries, stroke, subdural hemorrhage, and sinus venous thrombosis.
  • 69% of CHD neonates showed signs of brain prematurity relative to gestational age.
  • Reduced intracranial volumes and enlarged CSF volumes were observed in CHD neonates compared to controls.

Conclusions:

  • Neonates with complex CHD demonstrate reduced cerebral growth, increased brain injury risk, and impaired maturation prior to surgery.
  • These brain alterations may contribute to higher perioperative risks.
  • Identifying specific patterns of brain volume loss could aid in stratifying risks for neurodevelopmental impairment.
Abstract

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