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Impact of postnatal weight gain on brain white matter maturation in very preterm infants
Pratheek S Bobba1, Clara F Weber2, Adrian R Acuna Higaki1
1Department of Radiology and Biomedical Imaging, Yale School of Medicine, New Haven, Connecticut, USA.
Insights
Higher birth weight and postnatal weight gain in very preterm infants are linked to more mature white matter (WM) brain tracts. These findings highlight the importance of early nutrition for neurodevelopment in premature babies.
Area of Science:
- Neonatal neuroscience
- Neuroimaging
- Developmental pediatrics
Background:
- Very preterm infants (<32 weeks gestational age) often experience neurological deficits.
- The neurobiological mechanisms linking birth weight and postnatal growth to neurological outcomes in VPIs are not fully understood.
Purpose of the Study:
- To investigate how birth weight and postnatal weight gain impact white matter (WM) maturation in very preterm infants (VPIs).
- To utilize diffusion tensor imaging (DTI) to characterize these associations.
Main Methods:
- Included 91 VPIs with complete birth/postnatal weight data and predischarge DTI scans.
- Employed voxel-wise general linear model and tract-based regression analyses.
- Controlled for gestational age at birth and time between birth and scan.
Main Results:
- Higher birth weight Z-scores correlated with more mature WM tracts, especially in the corpus callosum and sagittal striatum.
- Increased postnatal weight Z-score changes (first 4 weeks) also associated with enhanced WM maturity.
- Results were adjusted for gestational age, birth weight Z-score, and scan timing.
Conclusions:
- Birth weight and postnatal weight gain in VPIs are associated with white matter maturation markers detectable via MRI.
- These neuroimaging metrics may serve as early biomarkers for nutritional intervention effects on VPI brain development.
Background And Purpose:
Very preterm infants (VPIs, <32 weeks gestational age at birth) are prone to long-term neurological deficits. While the effects of birth weight and postnatal growth on VPIs' neurological outcome are well established, the neurobiological mechanism behind these associations remains elusive. In this study, we utilized diffusion tensor imaging (DTI) to characterize how birth weight and postnatal weight gain influence VPIs' white matter (WM) maturation.
Methods:
We included VPIs with complete birth and postnatal weight data in their health record, and DTI scan as part of their predischarge Magnetic Resonance Imaging (MRI). We conducted voxel-wise general linear model and tract-based regression analyses to explore the impact of birth weight and postnatal weight gain on WM maturation.
Results:
We included 91 VPIs in our analysis. After controlling for gestational age at birth and time between birth and scan, higher birth weight Z-scores were associated with DTI markers of more mature WM tracts, most prominently in the corpus callosum and sagittal striatum. The postnatal weight Z-score changes over the first 4 weeks of life were also associated with increased maturity in these WM tracts, when controlling for gestational age at birth, birth weight Z-score, and time between birth and scan.
Conclusions:
In VPIs, birth weight and post-natal weight gain are associated with markers of brain WM maturation, particularly in the corpus callosum, which can be captured on discharge MRI. These neuroimaging metrics can serve as potential biomarkers for the early effects of nutritional interventions on VPIs' brain development.
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