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Growing Neural Stem Cells from Conventional and Nonconventional Regions of the Adult Rodent Brain
Published on: November 18, 2013
A neural stem cell paradigm of pediatric hydrocephalus
Phan Q Duy1,2,3, Pasko Rakic1, Seth L Alper4
1Department of Neuroscience, Yale University School of Medicine, New Haven, CT 06510, USA.
Insights
Pediatric hydrocephalus may stem from developmental brain defects affecting neural stem cells, not just fluid issues. This suggests prioritizing neurodevelopment over CSF diversion for better outcomes in affected children.
Area of Science:
- Neuroscience
- Developmental Biology
- Pediatric Neurosurgery
Background:
- Pediatric hydrocephalus, a leading cause of pediatric brain surgery, involves cerebral ventricle enlargement.
- Current treatment, neurosurgical shunting, often fails to prevent persistent neurodevelopmental disabilities.
Purpose of the Study:
- To propose a new paradigm for pediatric hydrocephalus, shifting from a fluid imbalance model to one involving neural stem cell (NSC) fate.
- To explore how NSC developmental defects contribute to cerebrocortical malformation and secondary ventricular enlargement.
Main Methods:
- Review of recent human genetic studies.
- Analysis of animal model research on neural stem cell development and hydrocephalus.
Main Results:
- Evidence suggests heterogeneous defects in NSC development disrupt brain morphogenesis.
- This disruption leads to abnormal brain-CSF biomechanics, causing passive CSF pooling and ventricular distention.
Conclusions:
- A subset of pediatric hydrocephalus may represent a developmental brain malformation with secondary ventricular enlargement.
- This perspective suggests optimizing neurodevelopment, not just CSF diversion, as a primary treatment strategy.
Abstract:
Pediatric hydrocephalus, the leading reason for brain surgery in children, is characterized by enlargement of the cerebral ventricles classically attributed to cerebrospinal fluid (CSF) overaccumulation. Neurosurgical shunting to reduce CSF volume is the default treatment that intends to reinstate normal CSF homeostasis, yet neurodevelopmental disability often persists in hydrocephalic children despite optimal surgical management. Here, we discuss recent human genetic and animal model studies that are shifting the view of pediatric hydrocephalus from an impaired fluid plumbing model to a new paradigm of dysregulated neural stem cell (NSC) fate. NSCs are neuroprogenitor cells that comprise the germinal neuroepithelium lining the prenatal brain ventricles. We propose that heterogenous defects in the development of these cells converge to disrupt cerebrocortical morphogenesis, leading to abnormal brain-CSF biomechanical interactions that facilitate passive pooling of CSF and secondary ventricular distention. A significant subset of pediatric hydrocephalus may thus in fact be due to a developmental brain malformation leading to secondary enlargement of the ventricles rather than a primary defect of CSF circulation. If hydrocephalus is indeed a neuroradiographic presentation of an inborn brain defect, it suggests the need to focus on optimizing neurodevelopment, rather than CSF diversion, as the primary treatment strategy for these children.

