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Updated: Apr 15, 2026

Preterm EEG: A Multimodal Neurophysiological Protocol
Published on: February 18, 2012
Extensive and interrelated subcortical white and gray matter alterations in preterm-born adults
C Meng1,2,3, J G Bäuml1,2, M Daamen4,5
1Department of Neuroradiology, Technische Universität München TUM, Ismaninger Strasse 22, 81675, Munich, Germany.
Insights
Preterm birth causes lasting white matter and gray matter brain changes, impacting cognitive function into adulthood. These persistent, brain-injury-like alterations in preterm adults correlate with lower intelligence.
Area of Science:
- Neuroscience
- Developmental Biology
- Radiology
Background:
- Preterm birth is a major cause of neurocognitive impairments.
- Associated white matter (WM) and deep gray matter (GM) alterations are known in newborns, but their persistence and relevance in adulthood are unclear.
- Subcortical brain changes following preterm birth may lead to long-term cognitive deficits.
Purpose of the Study:
- To investigate the persistence and nature of subcortical WM and GM changes in adults born preterm.
- To determine if these persistent changes resemble brain-injury patterns.
- To assess the predictive relationship between these subcortical changes and general cognitive performance.
Main Methods:
- Eighty-five preterm-born and 69 term-born adults underwent diffusion- and T1-weighted MRI.
- Fractional anisotropy (FA) measured WM properties; GM volume measured GM properties.
- Full-scale IQ assessed cognitive performance.
Main Results:
- Preterm adults showed widespread reduced FA in WM across the brain.
- GM volume reductions were observed in the thalamus and striatum, with increases in cingulate cortices.
- Reduced FA in specific WM regions correlated with GM loss in the thalamus and striatum, and these FA values related positively to gestational age and IQ.
Conclusions:
- Preterm birth leads to extensive, interrelated, and adverse subcortical WM and GM changes persisting into adulthood.
- These findings suggest persistent brain-injury-like alterations in subcortical-cortical connectivity after preterm birth.
- The identified brain changes are associated with impaired cognitive performance in preterm-born adults.
Abstract:
Preterm birth is a leading cause for impaired neurocognitive development with an increased risk for persistent cognitive deficits in adulthood. In newborns, preterm birth is associated with interrelated white matter (WM) alterations and deep gray matter (GM) loss; however, little is known about the persistence and relevance of these subcortical brain changes. We tested the hypothesis that the pattern of correspondent subcortical WM and GM changes is present in preterm-born adults and has a brain-injury-like nature, i.e., it predicts lowered general cognitive performance. Eighty-five preterm-born and 69 matched term-born adults were assessed by diffusion- and T1-weighted MRI and cognitive testing. Main outcome measures were fractional anisotropy of water diffusion for WM property, GM volume for GM property, and full-scale IQ for cognitive performance. In preterm-born adults, reduced fractional anisotropy was widely distributed ranging from cerebellum to brainstem to hemispheres. GM volume was reduced in the thalamus, striatum, temporal cortices, and increased in the cingulate cortices. Fractional anisotropy reductions were specifically associated with GM loss in thalamus and striatum, with correlation patterns for both regions extensively overlapping in the WM of brainstem and hemispheres. For overlap regions, fractional anisotropy was positively related with both gestational age and full-scale IQ. Results provide evidence for extensive, interrelated, and adverse WM and GM subcortical changes in preterm-born adults. Data suggest persistent brain-injury-like changes of subcortical-cortical connectivity after preterm delivery.
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