Selective degeneration in YAC mouse models of Huntington disease

Jeremy M Van Raamsdonk1, Simon C Warby, Michael R Hayden

  • 1Department of Medical Genetics, University of British Columbia, Vancouver, BC, Canada.

Insights

Huntington disease (HD) models show that mutant huntingtin protein accumulation in the nucleus and altered excitotoxicity contribute to selective brain degeneration. These findings offer insights into HD pathogenesis.

Area of Science:

  • Neuroscience
  • Genetics
  • Molecular Biology

Background:

  • Huntington disease (HD) is a neurodegenerative disorder caused by CAG repeat expansion in the huntingtin gene.
  • Selective brain degeneration in HD, particularly in the striatum and cortex, is not fully explained by mutant huntingtin expression levels.

Purpose of the Study:

  • To investigate the mechanisms underlying region-specific neuronal loss in Huntington disease.
  • To develop and validate yeast artificial chromosome (YAC) transgenic mouse models that accurately recapitulate HD pathology.

Main Methods:

  • Generation of YAC transgenic mice expressing full-length mutant huntingtin (htt).
  • Analysis of mutant htt expression, localization, phosphorylation, and neuronal susceptibility to excitotoxicity in mouse models.
  • Comparison of findings in mouse models with human HD patient data.

Main Results:

  • YAC mice exhibit motor deficits, cognitive impairment, and selective neurodegeneration mirroring human HD.
  • Mutant htt is detected earliest and in greatest amounts in the striatal nucleus, correlating with region-specific atrophy.
  • Phosphorylation of mutant htt on serine 421 is reduced in the striatum, and striatal neurons show increased susceptibility to excitotoxicity.

Conclusions:

  • YAC transgenic mice serve as a valid model for studying Huntington disease mechanisms.
  • Selective nuclear localization of mutant htt, altered phosphorylation, and increased excitotoxicity contribute to region-specific neurodegeneration in HD.