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Published on: April 3, 2013
Developmental dynamics of radial vulnerability in the cerebral compartments in preterm infants and neonates
Ivica Kostović1, Mirna Kostović-Srzentić2, Vesna Benjak3
1Croatian Institute for Brain Research, University of Zagreb School of Medicine , Zagreb , Croatia.
Insights
Understanding preterm white matter vulnerability is key. Different axonal pathways show distinct vulnerabilities in early versus late preterm infants, impacting long-term outcomes.
Area of Science:
- Neuroscience
- Developmental Biology
- Radiology
Background:
- The developmental vulnerability of specific axonal pathway classes in preterm white matter remains poorly understood.
- The developing cerebral wall's laminar compartments may guide axonal growth and reorganization following perinatal injuries.
Purpose of the Study:
- To investigate the vulnerability of different axonal pathway classes in preterm white matter.
- To evaluate anatomical landmarks for understanding cerebral wall reorganization after perinatal lesions.
- To correlate MRI signal abnormalities with specific white matter pathway lesions and predict outcomes.
Main Methods:
- Utilized 3-Tesla Magnetic Resonance Imaging (MRI) and histological analysis in a cohort from 22 postconceptional weeks to 3 years.
- Follow-up MRI scans were performed on control, normotypic, and preterm infants with lesions at term equivalent age and after one year.
- Analyzed MRI and histological abnormalities across distinct cerebral compartments: periventricular, intermediate, and superficial white matter.
Main Results:
- Early preterm infants showed vulnerability in thalamocortical pathways within the periventricular crossroads and sagittal strata.
- Late preterm infants exhibited vulnerability in long association pathways within the centrum semiovale.
- Loss of delineation between centrum semiovale and subplate remnant indicated lesions in long association pathways, potentially linked to diffuse periventricular leukomalacia.
Conclusions:
- The radial distribution of MRI signal abnormalities in cerebral compartments correlates with lesions in distinct axonal pathways.
- Findings suggest specific vulnerabilities in preterm white matter based on gestational age and pathway class.
- The study highlights the prognostic value of MRI findings for predicting outcomes of prenatal and perinatal brain lesions.
Abstract:
The developmental vulnerability of different classes of axonal pathways in preterm white matter is not known. We propose that laminar compartments of the developing cerebral wall serve as spatial framework for axonal growth and evaluate potential of anatomical landmarks for understanding reorganization of the cerebral wall after perinatal lesions. The 3-T MRI (in vivo) and histological analysis were performed in a series of cases ranging from 22 postconceptional weeks to 3 years. For the follow-up scans, three groups of children (control, normotypic, and preterms with lesions) were examined at the term equivalent age and after the first year of life. MRI and histological abnormalities were analyzed in the following compartments: (a) periventricular, with periventricular fiber system; (b) intermediate, with periventricular crossroads, sagittal strata, and centrum semiovale; (c) superficial, composed of gyral white matter, subplate, and cortical plate. Vulnerability of thalamocortical pathways within the crossroads and sagittal strata seems to be characteristic for early preterms, while vulnerability of long association pathways in the centrum semiovale seems to be predominant feature of late preterms. The structural indicator of the lesion of the long association pathways is the loss of delineation between centrum semiovale and subplate remnant, which is possible substrate of the diffuse periventricular leukomalacia. The enhanced difference in MR signal intensity of centrum semiovale and subplate remnant, observed in damaged children after first year, we interpret as structural plasticity of intact short cortico-cortical fibers, which grow postnatally through U-zones and enter the cortex through the subplate remnant. Our findings indicate that radial distribution of MRI signal abnormalities in the cerebral compartments may be related to lesion of different classes of axonal pathways and have prognostic value for predicting the likely outcome of prenatal and perinatal lesions.
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