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Cumulative Damage: Cell Death in Posthemorrhagic Hydrocephalus of Prematurity
Riley Sevensky1, Jessie C Newville1, Ho Lam Tang2
1Division of Neonatal-Perinatal Medicine, Department of Pediatrics, Johns Hopkins University School of Medicine, Baltimore, MD 21205, USA.
Insights
Encephalopathy of prematurity (EoP) and its severe form, posthemorrhagic hydrocephalus (PHHP), cause significant infant brain injury. Understanding cell death mechanisms in PHHP offers new therapeutic targets for preterm neonates.
Area of Science:
- Neonatal Neurology
- Developmental Neuroscience
- Pediatric Neurobiology
Background:
- Approximately 11% of infants globally are born preterm, facing risks of brain injury.
- Encephalopathy of prematurity (EoP) is a leading cause of death and disability in preterm neonates.
- Posthemorrhagic hydrocephalus of prematurity (PHHP) is a severe EoP manifestation impacting brain development.
Purpose of the Study:
- To review mechanisms of cell death in PHHP.
- To identify cellular targets and signaling pathways in PHHP-induced brain injury.
- To highlight potential therapeutic interventions for PHHP.
Main Methods:
- Literature review of studies on PHHP and neonatal brain injury.
- Analysis of cell death pathways in the context of cerebrospinal fluid dynamics.
- Examination of damage to choroid plexus, ependymal cells, and the glymphatic system.
Main Results:
- PHHP causes significant disruption to cerebrospinal fluid dynamics.
- Cell death in PHHP affects choroid plexus, ependymal cells, and glymphatic system structures.
- Specific cellular injuries and signaling pathways are implicated in PHHP pathogenesis.
Conclusions:
- Understanding cell death in PHHP is crucial for neonatal brain protection.
- Identifying therapeutic targets can help prevent or reverse PHHP-related brain damage.
- Further research into PHHP mechanisms may lead to improved neurodevelopmental outcomes for preterm infants.
Abstract:
Globally, approximately 11% of all infants are born preterm, prior to 37 weeks' gestation. In these high-risk neonates, encephalopathy of prematurity (EoP) is a major cause of both morbidity and mortality, especially for neonates who are born very preterm (<32 weeks gestation). EoP encompasses numerous types of preterm birth-related brain abnormalities and injuries, and can culminate in a diverse array of neurodevelopmental impairments. Of note, posthemorrhagic hydrocephalus of prematurity (PHHP) can be conceptualized as a severe manifestation of EoP. PHHP impacts the immature neonatal brain at a crucial timepoint during neurodevelopment, and can result in permanent, detrimental consequences to not only cerebrospinal fluid (CSF) dynamics, but also to white and gray matter development. In this review, the relevant literature related to the diverse mechanisms of cell death in the setting of PHHP will be thoroughly discussed. Loss of the epithelial cells of the choroid plexus, ependymal cells and their motile cilia, and cellular structures within the glymphatic system are of particular interest. Greater insights into the injuries, initiating targets, and downstream signaling pathways involved in excess cell death shed light on promising areas for therapeutic intervention. This will bolster current efforts to prevent, mitigate, and reverse the consequential brain remodeling that occurs as a result of hydrocephalus and other components of EoP.
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