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Neonatal hyperoxia exposure disrupts axon-oligodendrocyte integrity in the subcortical white matter
Jonathan Ritter1, Thomas Schmitz, Li-Jin Chew
1Center for Neuroscience Research, Children's National Medical Center, Washington, District of Columbia 20010, USA.
Insights
Neonatal hyperoxia exposure in premature infants causes white matter injury by disrupting myelin and axon development, leading to lasting neurological deficits. Understanding these mechanisms is key to developing interventions for brain development.
Area of Science:
- Neuroscience
- Developmental Biology
- Pathology
Background:
- Neurological deficits in premature infants are not fully understood.
- Periventricular white matter injury (PWMI) is common in preterm infants and impairs brain development.
- Relative hyperoxia is observed in some premature infants.
Purpose of the Study:
- To investigate how neonatal hyperoxia affects white matter (WM) integrity and axonal function.
- To elucidate the neurobiological, structural, and functional mechanisms of hyperoxia-induced PWMI.
Main Methods:
- Utilized a hyperoxic mouse model of premature brain injury.
- Examined ultrastructural changes in white matter development.
- Assessed myelination, axonopathy, and conduction properties in adult mice.
Main Results:
- Neonatal hyperoxia delayed oligodendroglial lineage maturation.
- Observed myelination abnormalities (reduced myelin thickness, extramyelin loops).
- Detected axonopathy, including altered neurofilament phosphorylation and paranodal defects.
- Demonstrated lasting impairment of adult white matter conduction properties.
Conclusions:
- Neonatal hyperoxia causes significant white matter injury in a mouse model.
- Disruption of axon-oligodendrocyte integrity leads to impaired neurological function.
- Understanding these pathological mechanisms is crucial for developing interventions to preserve white matter integrity in premature infants.
Abstract:
The pathological mechanisms underlying neurological deficits observed in individuals born prematurely are not completely understood. A common form of injury in the preterm population is periventricular white matter injury (PWMI), a pathology associated with impaired brain development. To mitigate or eliminate PWMI, there is an urgent need to understand the pathological mechanism(s) involved on a neurobiological, structural, and functional level. Recent clinical data suggest that a percentage of premature infants experience relative hyperoxia. Using a hyperoxic model of premature brain injury, we have previously demonstrated that neonatal hyperoxia exposure in the mouse disrupts development of the white matter (WM) by delaying the maturation of the oligodendroglial lineage. In the present study, we address the question of how hyperoxia-induced alterations in WM development affect overall WM integrity and axonal function. We show that neonatal hyperoxia causes ultrastructural changes, including: myelination abnormalities (i.e., reduced myelin thickness and abnormal extramyelin loops) and axonopathy (i.e., altered neurofilament phosphorylation, paranodal defects, and changes in node of Ranvier number and structure). This disruption of axon-oligodendrocyte integrity results in the lasting impairment of conduction properties in the adult WM. Understanding the pathology of premature PWMI injury will allow for the development of interventional strategies to preserve WM integrity and function.
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