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Published on: November 20, 2015
Brain injury in premature neonates: A primary cerebral dysmaturation disorder?
Stephen A Back1, Steven P Miller
1Departments of Pediatrics, Oregon Health and Science University, Portland; Departments of Neurology, Oregon Health and Science University, Portland.
Insights
Advances in neonatal care improve survival but lead to new brain disabilities in preterm infants. These disabilities stem from cellular maturational disturbances affecting gray and white matter development.
Area of Science:
- Neonatal neuroscience
- Developmental neurology
- Pediatric brain injury
Background:
- Neonatal care advances increase survival rates for preterm infants.
- Preterm survivors exhibit evolving motor and cognitive disabilities.
- These disabilities are linked to cellular maturational disturbances in the brain.
Purpose of the Study:
- To investigate the mechanisms of cerebral gray and white matter dysmaturation in preterm infants.
- To understand the impact of milder brain injuries on cerebral growth.
- To identify new therapeutic targets for reversing developmental abnormalities.
Main Methods:
- Review of recent human and experimental studies on preterm brain development.
- Analysis of cellular responses in gray and white matter following injury.
- Examination of oligodendrocyte progenitor cell (preOL) behavior and neuronal maturation.
Main Results:
- Contemporary preterm survivors show less severe injury but still exhibit reduced cerebral growth.
- Myelination disturbances in white matter result from aberrant regeneration after preOL death.
- Neurons display widespread dendritic arbor maturation issues, contributing to impaired growth.
Conclusions:
- Preterm brain injury involves complex, disparate responses of neurons and oligodendrocyte progenitors.
- These dysmaturation processes lead to incomplete cellular maturation during critical developmental periods.
- New diagnostic and therapeutic strategies are needed to address these cellular maturational disturbances.
Abstract:
With advances in neonatal care, preterm neonates are surviving with an evolving constellation of motor and cognitive disabilities that appear to be related to widespread cellular maturational disturbances that target cerebral gray and white matter. Whereas preterm infants were previously at high risk for destructive brain lesions that resulted in cystic white matter injury and secondary cortical and subcortical gray matter degeneration, contemporary cohorts of preterm survivors commonly display less severe injury that does not appear to involve pronounced glial or neuronal loss. Nevertheless, these milder forms of injury are also associated with reduced cerebral growth. Recent human and experimental studies support that impaired cerebral growth is related to disparate responses in gray and white matter. Myelination disturbances in cerebral white matter are related to aberrant regeneration and repair responses to acute death of premyelinating late oligodendrocyte progenitors (preOLs). In response to preOL death, early oligodendrocyte progenitors rapidly proliferate and differentiate, but the regenerated preOLs fail to normally mature to myelinating cells required for white matter growth. Although immature neurons appear to be more resistant to cell death from hypoxia-ischemia than glia, they display widespread disturbances in maturation of their dendritic arbors, which further contribute to impaired cerebral growth. These complex and disparate responses of neurons and preOLs thus result in large numbers of cells that fail to fully mature during a critical window in development of neural circuitry. These recently recognized forms of cerebral gray and white matter dysmaturation raise new diagnostic challenges and suggest new therapeutic directions centered on reversal of the processes that promote dysmaturation.
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