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Published on: May 21, 2010
Complete loss of the X-linked gene CASK causes severe cerebellar degeneration
Paras A Patel1, Julia V Hegert2, Ingrid Cristian3
1Fralin Biomedical Research Institute at VTC, Roanoke, Virginia, USA.
Background:
Heterozygous loss of X-linked genes like CASK and MeCP2 (Rett syndrome) causes developmental delay in girls, while in boys, loss of the only allele of these genes leads to epileptic encephalopathy. The mechanism for these disorders remains unknown. CASK-linked cerebellar hypoplasia is presumed to result from defects in Tbr1-reelin-mediated neuronal migration.
Method:
Here we report clinical and histopathological analyses of a deceased 2-month-old boy with a CASK-null mutation. We next generated a mouse line where CASK is completely deleted (hemizygous and homozygous) from postmigratory neurons in the cerebellum.
Result:
The CASK-null human brain was smaller in size but exhibited normal lamination without defective neuronal differentiation, migration or axonal guidance. The hypoplastic cerebellum instead displayed astrogliosis and microgliosis, which are markers for neuronal loss. We therefore hypothesise that CASK loss-induced cerebellar hypoplasia is the result of early neurodegeneration. Data from the murine model confirmed that in CASK loss, a small cerebellum results from postdevelopmental degeneration of cerebellar granule neurons. Furthermore, at least in the cerebellum, functional loss from CASK deletion is secondary to degeneration of granule cells and not due to an acute molecular functional loss of CASK. Intriguingly, female mice with heterozygous deletion of CASK in the cerebellum do not display neurodegeneration.
Conclusion:
We suggest that X-linked neurodevelopmental disorders like CASK mutation and Rett syndrome are pathologically neurodegenerative; random X-chromosome inactivation in heterozygous mutant girls, however, results in 50% of cells expressing the functional gene, resulting in a non-progressive pathology, whereas complete loss of the only allele in boys leads to unconstrained degeneration and encephalopathy.
Insights
CASK loss causes cerebellar hypoplasia due to neurodegeneration, not migration defects. This explains why CASK mutations lead to severe disease in boys but milder delays in girls.
Area of Science:
- Neuroscience
- Genetics
- Developmental Biology
Background:
- X-linked gene loss (e.g., CASK, MeCP2) causes developmental delay in girls and epileptic encephalopathy in boys.
- The underlying mechanisms for these neurodevelopmental disorders remain unclear.
- CASK-linked cerebellar hypoplasia was previously thought to stem from impaired neuronal migration.
Purpose of the Study:
- To investigate the clinical and histopathological features of CASK-null mutations.
- To elucidate the mechanism behind CASK-associated cerebellar hypoplasia using a mouse model.
Main Methods:
- Clinical and histopathological analysis of a deceased infant with a CASK-null mutation.
- Generation of a mouse model with complete CASK deletion in postmigratory cerebellar neurons.
Main Results:
- CASK-null human brains showed smaller size but normal lamination, indicating no defects in neuronal differentiation or migration.
- Hypoplastic cerebellums displayed astrogliosis and microgliosis, suggesting neurodegeneration as the cause of CASK loss-induced hypoplasia.
- The mouse model confirmed that CASK loss leads to cerebellar hypoplasia through postdevelopmental degeneration of granule neurons, not acute molecular dysfunction.
Conclusions:
- X-linked neurodevelopmental disorders, including CASK mutations and Rett syndrome, are characterized by neurodegeneration.
- Random X-chromosome inactivation in girls with heterozygous mutations allows for functional gene expression, leading to non-progressive pathology.
- Complete loss of the sole allele in boys results in unconstrained degeneration and severe encephalopathy.
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