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.

Experimental Neurology
|April 20, 2020
PubMed

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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