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Published on: February 2, 2015
Development of Cortical Morphology Evaluated with Longitudinal MR Brain Images of Preterm Infants
Pim Moeskops1, Manon J N L Benders2, Karina J Kersbergen3
1Image Sciences Institute, University Medical Center Utrecht, Utrecht, The Netherlands; Department of Neonatology, University Medical Center Utrecht, Utrecht, The Netherlands.
Insights
Preterm infants with brain injury show altered cortical development, with changes in thickness, gyrification, and curvature between 30 and 40 weeks postmenstrual age (PMA). These findings highlight a critical window for potential interventions to support brain development.
Area of Science:
- Neuroscience
- Developmental Biology
- Medical Imaging
Background:
- Cerebral cortex development is rapid in the third trimester.
- Preterm infants face heightened vulnerability due to extra-uterine conditions.
- Brain injury in preterm infants can significantly impact neurodevelopment.
Purpose of the Study:
- To quantitatively describe cortical development in preterm infants.
- To compare cortical development in preterm infants with and without brain injury.
- To assess changes in cortical morphology between 30 and 40 weeks postmenstrual age (PMA).
Main Methods:
- T2-weighted MRI scans were used to segment brain structures.
- Cortical descriptors including volume, surface area, thickness, gyrification index, and global mean curvature were computed.
- Brain abnormality scoring was performed at 40 weeks PMA.
Main Results:
- Cortical development showed greater changes in occipital lobes compared to other regions.
- Cortical descriptors associated with brain abnormality scores: decreased gyrification and curvature, increased median thickness.
- These associations were more pronounced at 40 weeks PMA than at 30 weeks PMA.
Conclusions:
- The period between 30 and 40 weeks PMA is crucial for cortical development in preterm infants.
- Altered cortical development patterns are linked to brain injury severity.
- This period may represent a window of opportunity for therapeutic interventions to mitigate developmental delays.
Introduction:
The cerebral cortex develops rapidly in the last trimester of pregnancy. In preterm infants, brain development is very vulnerable because of their often complicated extra-uterine conditions. The aim of this study was to quantitatively describe cortical development in a cohort of 85 preterm infants with and without brain injury imaged at 30 and 40 weeks postmenstrual age (PMA).
Methods:
In the acquired T2-weighted MR images, unmyelinated white matter (UWM), cortical grey matter (CoGM), and cerebrospinal fluid in the extracerebral space (CSF) were automatically segmented. Based on these segmentations, cortical descriptors evaluating volume, surface area, thickness, gyrification index, and global mean curvature were computed at both time points, for the whole brain, as well as for the frontal, temporal, parietal, and occipital lobes separately. Additionally, visual scoring of brain abnormality was performed using a conventional scoring system at 40 weeks PMA.
Results:
The evaluated descriptors showed larger change in the occipital lobes than in the other lobes. Moreover, the cortical descriptors showed an association with the abnormality scores: gyrification index and global mean curvature decreased, whereas, interestingly, median cortical thickness increased with increasing abnormality score. This was more pronounced at 40 weeks PMA than at 30 weeks PMA, suggesting that the period between 30 and 40 weeks PMA might provide a window of opportunity for intervention to prevent delay in cortical development.
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