Related Experiment Video
Updated: Mar 8, 2026

Modeling Encephalopathy of Prematurity Using Prenatal Hypoxia-ischemia with Intra-amniotic Lipopolysaccharide in Rats
Published on: November 20, 2015
Early development of structural networks and the impact of prematurity on brain connectivity
Dafnis Batalle1, Emer J Hughes1, Hui Zhang2
1Centre for the Developing Brain, Division of Imaging Sciences & Biomedical Engineering, King's College London, SE1 7EH London, United Kingdom.
Insights
Preterm birth alters brain connectivity, with local connections affected more than core networks. This structural brain network change may help infants adapt to impaired white matter development.
Area of Science:
- Neuroscience
- Developmental Biology
- Medical Imaging
Background:
- Preterm infants face significant neurodevelopmental impairment risks.
- Altered brain connectivity is a potential cause of these impairments.
- Understanding structural brain development in preterm infants is crucial.
Purpose of the Study:
- To assess structural brain development from 25 to 45 weeks gestational age (GA) using graph theory.
- To test if preterm birth alters white matter network topology.
Main Methods:
- Sixty-five infants underwent MRI scans between 25 and 45 weeks GA.
- Structural networks were built using constrained spherical deconvolution tractography.
- Networks were weighted by white matter microstructure measures (FA, ND, ODI).
Main Results:
- Regional brain maturation differences were observed, with deep grey matter connections maturing fastest.
- Intra-frontal, frontal-cingulate, frontal-caudate, and inter-hemispheric connections matured slower.
- Local connectivity (thalamus, cerebellum, frontal lobe, cingulate gyrus, short-range cortico-cortical) was linked to prematurity, altering global network topology.
Conclusions:
- A core set of brain connections remained unaffected by gestational age at birth.
- Preterm birth impacts local connectivity more than core networks.
- Preserving core connections may optimize the use of white matter resources in preterm infants.
Abstract:
Preterm infants are at high risk of neurodevelopmental impairment, which may be due to altered development of brain connectivity. We aimed to (i) assess structural brain development from 25 to 45 weeks gestational age (GA) using graph theoretical approaches and (ii) test the hypothesis that preterm birth results in altered white matter network topology. Sixty-five infants underwent MRI between 25+3 and 45+6 weeks GA. Structural networks were constructed using constrained spherical deconvolution tractography and were weighted by measures of white matter microstructure (fractional anisotropy, neurite density and orientation dispersion index). We observed regional differences in brain maturation, with connections to and from deep grey matter showing most rapid developmental changes during this period. Intra-frontal, frontal to cingulate, frontal to caudate and inter-hemispheric connections matured more slowly. We demonstrated a core of key connections that was not affected by GA at birth. However, local connectivity involving thalamus, cerebellum, superior frontal lobe, cingulate gyrus and short range cortico-cortical connections was related to the degree of prematurity and contributed to altered global topology of the structural brain network. The relative preservation of core connections at the expense of local connections may support more effective use of impaired white matter reserve following preterm birth.
Related Concept Videos
Neurulation
Neuroplasticity

