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Published on: January 2, 2012
Primary cortical folding in the human newborn: an early marker of later functional development
J Dubois1, M Benders, C Borradori-Tolsa
1Department of Pediatrics, Division of Development and Growth, Geneva University Hospitals, 6 rue Willy Donzé, 1211 Geneva, Switzerland. jessica.dubois@centraliens.net
Insights
Brain development in premature infants varies by environment. Twins show delayed but harmonious maturation, while intrauterine growth restriction (IUGR) leads to discordant gyrification, impacting neurodevelopmental outcomes.
Area of Science:
- Neuroscience
- Developmental Biology
- Medical Imaging
Background:
- Cortical folding patterns in the human brain are complex and vary individually.
- Abnormalities in cortical development are linked to developmental and neuropsychiatric disorders.
- Mechanisms of altered brain convolution during development are not fully understood.
Purpose of the Study:
- To compare in vivo anatomical and functional brain development in premature newborns with different intrauterine environments.
- To investigate early disturbances in cortical formation and define sulcal development endophenotypes.
- To assess if early brain structure predicts neurodevelopmental outcomes.
Main Methods:
- Magnetic resonance imaging (MRI) was used to study 45 premature newborns (singletons, twins, IUGR).
- Post-processing tools analyzed cortical formation between 26-36 weeks of gestational age.
- Brain volumes and neurobehavioral assessments (APIB) were correlated with structural measurements.
Main Results:
- Twins exhibited delayed but harmonious maturation with reduced surface and sulcation index compared to singletons.
- Intrauterine growth restriction (IUGR) newborns showed discordant gyrification, with disproportionate surface reduction relative to sulcation.
- Early MRI-based brain measurements predicted outcomes at term equivalent age.
Conclusions:
- Intrauterine environment significantly influences early brain structural development in premature infants.
- Distinct patterns of cortical development are observed in twins and IUGR infants.
- Early brain structural metrics serve as predictors for later neurodevelopmental outcomes.
Abstract:
In the human brain, the morphology of cortical gyri and sulci is complex and variable among individuals, and it may reflect pathological functioning with specific abnormalities observed in certain developmental and neuropsychiatric disorders. Since cortical folding occurs early during brain development, these structural abnormalities might be present long before the appearance of functional symptoms. So far, the precise mechanisms responsible for such alteration in the convolution pattern during intra-uterine or post-natal development are still poorly understood. Here we compared anatomical and functional brain development in vivo among 45 premature newborns who experienced different intra-uterine environments: 22 normal singletons, 12 twins and 11 newborns with intrauterine growth restriction (IUGR). Using magnetic resonance imaging (MRI) and dedicated post-processing tools, we investigated early disturbances in cortical formation at birth, over the developmental period critical for the emergence of convolutions (26-36 weeks of gestational age), and defined early 'endophenotypes' of sulcal development. We demonstrated that twins have a delayed but harmonious maturation, with reduced surface and sulcation index compared to singletons, whereas the gyrification of IUGR newborns is discordant to the normal developmental trajectory, with a more pronounced reduction of surface in relation to the sulcation index compared to normal newborns. Furthermore, we showed that these structural measurements of the brain at birth are predictors of infants' outcome at term equivalent age, for MRI-based cerebral volumes and neurobehavioural development evaluated with the assessment of preterm infant's behaviour (APIB).
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