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Associations of Growth and Body Composition with Brain Size in Preterm Infants
Katherine A Bell1, Lillian G Matthews1, Sara Cherkerzian1
1Department of Pediatric Newborn Medicine, Brigham & Women's Hospital, Boston, MA.
Insights
Infant growth, particularly lean mass gain, is linked to larger brain size in very preterm babies. Promoting lean mass accrual may enhance brain development in these vulnerable infants.
Area of Science:
- Neonatalogy
- Neuroscience
- Pediatric Growth
Background:
- Very preterm infants face risks for altered brain development.
- Understanding factors influencing brain growth is crucial for optimizing outcomes.
Purpose of the Study:
- To examine the relationship between physical growth and body composition in very preterm infants and their brain size at term-equivalent age.
Main Methods:
- Studied 62 infants born before 33 weeks gestation.
- Measured physical growth (weight, length, BMI Z-scores) from birth to term.
- Assessed body composition (fat mass, fat-free mass) and brain size (MRI metrics) at term.
Main Results:
- Positive weight and BMI Z-score gains were associated with larger brain size.
- Each 100g increase in fat-free mass correlated with larger bifrontal, biparietal, and cerebellar diameters.
- Fat mass was not significantly associated with brain metrics.
Conclusions:
- Infant weight gain, BMI changes, and lean mass at term are linked to larger brain size.
- Interventions promoting lean mass accrual may support brain growth in preterm infants.
Objective:
To assess the association of very preterm infants' brain size at term-equivalent age with physical growth from birth to term and body composition at term.
Study Design:
We studied 62 infants born at <33 weeks of gestation. At birth and term, we measured weight and length and calculated body mass index. At term, infants underwent air displacement plethysmography to determine body composition (fat and fat-free mass) and magnetic resonance imaging to quantify brain size (bifrontal diameter, biparietal diameter, transverse cerebellar distance). We estimated associations of physical growth (Z-score change from birth to term) and body composition with brain size, adjusting for potential confounders using generalized estimating equations.
Results:
The median gestational age was 29 weeks (range, 24.0-32.9 weeks). Positive gains in weight and body mass index Z-score were associated with increased brain size. Each additional 100 g of fat-free mass at term was associated with larger bifrontal diameter (0.6 mm; 95% CI, 0.2-1.0 mm), biparietal diameter (0.7 mm; 95% CI, 0.3-1.1 mm), and transverse cerebellar distance (0.3 mm; 95% CI, 0.003-0.5 mm). Associations between fat mass and brain metrics were not statistically significant.
Conclusions:
Weight and body mass index gain from birth to term, and lean mass-but not fat-at term, were associated with larger brain size. Factors that promote lean mass accrual among preterm infants may also promote brain growth.
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