Related Experiment Video
Updated: May 7, 2026

Preterm EEG: A Multimodal Neurophysiological Protocol
Published on: February 18, 2012
Children born very preterm experience altered cortical expansion over the first decade of life
Lisa S Gorham1, Aidan R Latham2, Dimitrios Alexopoulos2
1Department of Psychiatry, Washington University School of Medicine, St. Louis, MO 63110, USA.
Insights
Very preterm infants show catch-up brain growth by age 10, with greater cortical expansion in specific areas compared to full-term peers. This brain development impacts cognitive functions.
Area of Science:
- Neuroscience
- Developmental Biology
- Pediatric Imaging
Background:
- Brain development is rapid from late gestation through childhood, with significant cortical surface area expansion.
- The precise mechanisms and locations of postnatal cortical changes, and the impact of prematurity, remain unclear.
Purpose of the Study:
- To investigate how cortical surface area develops from infancy to childhood in very preterm versus full-term infants.
- To identify specific brain regions with differential expansion patterns related to prematurity.
Main Methods:
- Structural magnetic resonance imaging (MRI) was used to scan 52 very preterm and 41 full-term infants at term-equivalent age and again at 9/10 years.
- Cortical surface reconstructions were analyzed using anatomically constrained Multimodal Surface Matching (aMSM) to calculate local expansion gradients.
Main Results:
- Very preterm infants had smaller cortical surface area neonatally but comparable surface area by age 9/10 compared to full-term peers.
- Cortical expansion was most pronounced in frontal, temporal, and parietal association cortices across all subjects.
- Very preterm children exhibited greater expansion in frontal, precuneus, and temporal regions, with high variability in orbitofrontal and posterior areas.
Conclusions:
- Prematurity influences early brain development, but significant catch-up cortical expansion occurs by late childhood.
- Differential expansion patterns in key association cortices may relate to executive function, emotion, and social cognition.
- Further longitudinal studies are needed to determine if this increased expansion is adaptive or if differences persist into adulthood.
Abstract:
The brain develops rapidly from the final trimester of gestation through childhood, with cortical surface area expanding greatly in the first decade of life. However, it is unclear exactly where and how cortical surface area changes after birth, or how prematurity affects these developmental trajectories. Fifty-two very preterm (gestational age at birth = 26 ± 1.6 weeks) and 41 full-term (gestational age at birth = 39 ± 1.2 weeks) infants were scanned using structural magnetic resonance imaging at term-equivalent age and again at 9/10 years of age. Individual cortical surface reconstructions were extracted for each scan. Infant and 9/10 cortical surfaces were aligned using anatomically constrained Multimodal Surface Matching (aMSM), a technique that allows calculation of local expansion gradients across the cortical surface for each individual subject. At the neonatal time point, very preterm infants had significantly smaller surface area than their full-term peers (P < 0.001), but at the age 9/10-year time point, very preterm and full-term children had comparable surface area (P > 0.05). Across all subjects, cortical expansion by age 9/10 years was most pronounced in frontal, temporal, and supramarginal/inferior parietal junction areas, which are key association cortices (P Spin < 0.001). Very preterm children showed greater cortical surface area expansion between term-equivalent age and age 9/10 compared to their full-term peers in the medial and lateral frontal areas, precuneus, and middle temporal/banks of the superior sulcus junction (P < 0.05). Furthermore, within the very preterm group, expansion was highly variable within the orbitofrontal cortex and posterior regions of the brain. By mapping these patterns across the cortex, we identify differences in association cortices that are known to be important for executive functioning, emotion processing, and social cognition. Additional longitudinal work will be needed to understand if increased expansion in very preterm children is adaptive, or if differences persist into adulthood.
More Related Videos
13:47Ex utero Electroporation and Whole Hemisphere Explants: A Simple Experimental Method for Studies of Early Cortical Development
Published on: April 3, 2013
07:36Modeling Encephalopathy of Prematurity Using Prenatal Hypoxia-ischemia with Intra-amniotic Lipopolysaccharide in Rats
Published on: November 20, 2015
Related Concept Videos
Piaget's Stage 1 of Cognitive Development
Exploration...
The Nativist Approach