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Published on: July 18, 2014
Prenatal to postnatal trajectory of brain growth in complex congenital heart disease
Cynthia M Ortinau1, Kathryn Mangin-Heimos2, Joseph Moen3
1Department of Pediatrics, Washington University in St. Louis, St. Louis, MO, USA.
Insights
Infants with complex congenital heart disease (CHD) show altered brain growth trajectories from prenatal development through infancy. This study reveals significant differences in brain volume development compared to healthy controls, highlighting early developmental disruptions.
Area of Science:
- Neuroscience
- Developmental Biology
- Pediatric Cardiology
Background:
- Altered brain development and neurological sequelae are common in complex congenital heart disease (CHD).
- Abnormalities in brain size and growth begin prenatally and persist postnatally in CHD patients.
- The longitudinal trajectory of brain volume changes from prenatal to postnatal periods in CHD has not been previously investigated.
Purpose of the Study:
- To evaluate the trajectory of brain growth in infants with complex CHD compared to healthy controls.
- To test the hypothesis that complex CHD patients exhibit smaller total brain volume (TBV) prenatally, with increasing prominence by three months of age.
Main Methods:
- Longitudinal study involving fetal, neonatal, postoperative (CHD only), and 3-month MRIs in 16 infants with complex CHD and 15 controls.
- Three-dimensional volumetric analysis to measure total brain volume (TBV) and tissue-specific volumes (cortical gray matter, white matter, subcortical gray matter, cerebellum, CSF).
- Random coefficients modeling to analyze longitudinal changes in TBV and tissue volumes.
Main Results:
- Significantly altered trajectory of brain growth in the CHD population compared to controls (TBV slope: 11.5 cm³/week vs. 16.7 cm³/week, p=0.0002).
- Similar altered growth trajectories observed for cortical gray matter (p<0.0001), subcortical gray matter (p=0.002), and cerebellum (p=0.005).
- Brain injury was associated with reduced TBV at 3 months, but altered growth trajectories persisted in CHD infants even after excluding those with brain injury.
Conclusions:
- Demonstrates longitudinal impairments in brain development in infants with complex CHD, starting prenatally and continuing through early infancy.
- Highlights the global nature of disrupted brain growth in the CHD population.
- Emphasizes the need for early monitoring and intervention strategies for neurodevelopmental outcomes in complex CHD.
Abstract:
Altered brain development is a common feature of the neurological sequelae of complex congenital heart disease (CHD). These alterations include abnormalities in brain size and growth that begin prenatally and persist postnatally. However, the longitudinal trajectory of changes in brain volume from the prenatal to postnatal environment have not been investigated. We aimed to evaluate the trajectory of brain growth in a cohort of patients with complex CHD (n = 16) and healthy controls (n = 15) to test the hypothesis that patients with complex CHD would have smaller total brain volume (TBV) prenatally, which would become increasingly prominent by three months of age. Participants underwent fetal magnetic resonance imaging (MRI) at a mean of 32 weeks gestation, a preoperative/neonatal MRI shortly after birth, a postoperative MRI (CHD only), and a 3-month MRI to evaluate the trajectory of brain growth. Three-dimensional volumetric analysis was applied to the MRI data to measure TBV, as well as tissue-specific volumes of the cortical gray matter (CGM), white matter (WM), subcortical (deep nuclear) gray matter (SCGM), cerebellum, and cerebrospinal fluid (CSF). A random coefficients model was used to investigate longitudinal changes in TBV and demonstrated an altered trajectory of brain growth in the CHD population. The estimated slope for TBV from fetal to 3-month MRI was 11.5 cm3 per week for CHD infants compared to 16.7 cm3 per week for controls (p = 0.0002). Brain growth followed a similar trajectory for the CGM (p < 0.0001), SCGM (p = 0.002), and cerebellum (p = 0.005). There was no difference in growth of the WM (p = 0.30) or CSF (p = 0.085). Brain injury was associated with reduced TBV at 3-month MRI (p = 0.02). After removing infants with brain injury from the model, an altered trajectory of brain growth persisted in CHD infants (p = 0.006). These findings extend the existing literature by demonstrating longitudinal impairments in brain development in the CHD population and emphasize the global nature of disrupted brain growth from the prenatal environment through early infancy.
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