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Cerebellar Microstructural Organization is Altered by Complications of Premature Birth: A Case-Control Study
Marie Brossard-Racine1, Andrea Poretti2, Jonathan Murnick3
1Montreal Children's Hospital, Division of Pediatric Neurology, McGill University Health Centre, Montreal, Quebec, Canada; School of Physical and Occupational Therapy, McGill University, Montreal, Quebec, Canada.
Insights
Premature infants show altered cerebellar microstructure compared to healthy newborns, with specific changes in the dentate nuclei and middle cerebellar peduncle. These microstructural differences are linked to clinical risk factors in preterm infants.
Area of Science:
- Neuroimaging
- Developmental Neuroscience
- Pediatric Radiology
Background:
- Premature birth can impact brain development, particularly cerebellar microstructure.
- Diffusion Tensor Imaging (DTI) is a valuable tool for assessing white matter integrity.
Purpose of the Study:
- To compare cerebellar microstructure using DTI between preterm infants and term-born controls.
- To investigate associations between DTI findings and clinical risk factors in preterm infants.
Main Methods:
- A case-control study involving 73 preterm infants and 73 term-born controls.
- Region of interest analysis of DTI metrics (FA and MD) in 7 cerebellar regions and the corpus callosum.
- Multiple linear regression models were used for group comparisons and association analyses.
Main Results:
- Preterm infants exhibited higher FA in the dentate nuclei and middle cerebellar peduncle, and lower MD in the vermis compared to controls.
- Reduced FA and increased MD were observed in the genu and splenium of the corpus callosum in preterm infants.
- Clinical risk factors such as low Apgar score and supratentorial injury were associated with altered cerebellar DTI metrics.
Conclusions:
- Complications of premature birth are associated with altered cerebellar microstructural organization.
- DTI can detect subtle microstructural changes in the cerebellum of preterm infants.
- Findings highlight the neurodevelopmental impact of prematurity on the cerebellum.
Objectives:
To compare regional cerebellar microstructure, as measured by diffusion tensor imaging (DTI), between preterm infants at term-equivalent age and healthy term-born control neonates, and to explore associations between DTI findings and clinical risk factors.
Study Design:
In this case-control study, DTI studies were performed in 73 premature infants born ≤32 weeks and ≤1500 g birth weight and 73 full-term-born controls from healthy pregnancies. Using a region of interest approach, fractional anisotropy (FA) and mean diffusivity (MD) were extracted in 7 cerebellar regions including the anterior vermis, the right/left superior cerebellar peduncles, the middle cerebellar peduncle, and the dentate nuclei. To validate further our DTI measurements, we measured FA and MD in the genu of the corpus callosum and splenium. FA and MD were compared between groups using analyses of multiple linear regression models.
Results:
Preterm infants at term-equivalent age presented with higher FA in the dentate nuclei (<.001) and middle cerebellar peduncle (.028), and lower MD in the vermis (.023) compared with controls. Conversely, preterm infants showed reduced FA and increased MD in both the genu of the corpus callosum and splenium (P < .001). Independent risk factors associated with altered FA and MD in the cerebellum included low Apgar score, supratentorial injury, compromised cardiorespiratory function, and surgery for necrotizing enterocolitis and patent ductus arteriosus.
Conclusions:
This DTI study provides evidence that complications of premature birth are associated with altered cerebellar microstructural organization when compared with term-born control infants.
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