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Published on: April 21, 2016
Haploinsufficiency of X-linked intellectual disability gene CASK induces post-transcriptional changes in synaptic and
P A Patel1, C Liang2, A Arora2
1Center for Neurobiology Research, Fralin Biomedical Research Institute at Virginia Tech Carilion, Roanoke, VA, United States; Graduate Program in Translational Biology, Medicine, and Health, Virginia Tech, Blacksburg, VA, United States.
Abstract:
Heterozygous mutations in the X-linked gene CASK are associated with intellectual disability, microcephaly, pontocerebellar hypoplasia, optic nerve hypoplasia and partially penetrant seizures in girls. The Cask+/- heterozygous knockout female mouse phenocopies the human disorder and exhibits postnatal microencephaly, cerebellar hypoplasia and optic nerve hypoplasia. It is not known if Cask+/- mice also display seizures, nor is known the molecular mechanism by which CASK haploinsufficiency produces the numerous documented phenotypes. 24-h video electroencephalography demonstrates that despite sporadic seizure activity, the overall electrographic patterns remain unaltered in Cask+/- mice. Additionally, seizure threshold to the commonly used kindling agent, pentylenetetrazol, remains unaltered in Cask+/- mice, indicating that even in mice the seizure phenotype is only partially penetrant and may have an indirect mechanism. RNA sequencing experiments on Cask+/- mouse brain uncovers a very limited number of changes, with most differences arising in the transcripts of extracellular matrix proteins and the transcripts of a group of nuclear proteins. In contrast to limited changes at the transcript level, quantitative whole-brain proteomics using iTRAQ quantitative mass-spectrometry reveals major changes in synaptic, metabolic/mitochondrial, cytoskeletal, and protein metabolic pathways. Unbiased protein-protein interaction mapping using affinity chromatography demonstrates that CASK may form complexes with proteins belonging to the same functional groups in which altered protein levels are observed. We discuss the mechanism of the observed changes in the context of known molecular function/s of CASK. Overall, our data indicate that the phenotypic spectrum of female Cask+/- mice includes sporadic seizures and thus closely parallels that of CASK haploinsufficient girls; the Cask+/- mouse is thus a face-validated model for CASK-related pathologies. We therefore surmise that CASK haploinsufficiency is likely to affect brain structure and function due to dysregulation of several cellular pathways including synaptic signaling and cellular metabolism.
Insights
Female mice with CASK gene mutations (Cask+/-) exhibit sporadic seizures, mirroring human CASK-related disorders. Proteomics reveal widespread protein pathway changes, suggesting CASK haploinsufficiency disrupts brain function via synaptic and metabolic dysregulation.
Area of Science:
- Neuroscience
- Genetics
- Molecular Biology
Background:
- X-linked CASK gene mutations cause intellectual disability and other developmental issues in girls.
- The Cask+/- heterozygous knockout female mouse models human CASK haploinsufficiency phenotypes like microcephaly and cerebellar hypoplasia.
- The seizure phenotype and molecular mechanisms underlying CASK haploinsufficiency remained largely unknown.
Purpose of the Study:
- To investigate seizure activity in Cask+/- mice.
- To elucidate the molecular mechanisms of CASK haploinsufficiency in the brain.
- To validate the Cask+/- mouse as a model for CASK-related pathologies.
Main Methods:
- 24-h video electroencephalography (EEG) and pentylenetetrazol (PTZ) seizure threshold testing in Cask+/- mice.
- RNA sequencing of Cask+/- mouse brains.
- Quantitative whole-brain proteomics using iTRAQ mass spectrometry.
- Protein-protein interaction mapping via affinity chromatography.
Main Results:
- Cask+/- mice exhibit sporadic seizure activity, though overall EEG patterns and PTZ seizure threshold are unaltered.
- RNA sequencing revealed limited transcriptomic changes, primarily in extracellular matrix and nuclear proteins.
- Proteomics identified significant alterations in synaptic, metabolic/mitochondrial, cytoskeletal, and protein metabolism pathways.
- CASK interacts with proteins within these affected functional groups.
Conclusions:
- The Cask+/- mouse model displays a phenotypic spectrum, including sporadic seizures, closely resembling human CASK haploinsufficiency.
- CASK haploinsufficiency impacts brain structure and function through dysregulation of multiple cellular pathways, including synaptic signaling and metabolism.
- The Cask+/- mouse is a face-validated model for studying CASK-related neurological disorders.
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