Neurocardiovascular deficits in the Q175 mouse model of Huntington's disease

Tamara S Cutler1, Saemi Park1, Dawn H Loh1

  • 1Department of Psychiatry & Biobehavioral Sciences, University of California, Los Angeles, Los Angeles, California.

Insights

Huntington

Area of Science:

  • Neuroscience
  • Cardiovascular Physiology
  • Genetics

Background:

  • Cardiovascular dysautonomia and disrupted circadian rhythms are early signs of Huntington's disease (HD).
  • The Q175 knock-in mouse model is valuable for HD research, but its autonomic function is not well-characterized.

Purpose of the Study:

  • To investigate early cardiovascular dysautonomia in the Q175 Huntington's disease mouse model.
  • To determine if autonomic dysfunction in this model varies with the daily cycle.

Main Methods:

  • Radiotelemetry implants were used to monitor activity, core body temperature, and heart rate (HR).
  • Baroreceptor reflex sensitivity and echocardiograms were assessed.
  • Cardiac histopathology was performed to examine heart tissue.

Main Results:

  • Q175 mutants showed reduced activity and body temperature rhythms, with hypothermia episodes increasing with gene dosage.
  • Mutants exhibited higher resting HR, reduced HR variability, and impaired baroreceptor reflex response.
  • Echocardiograms revealed reduced ventricular mass and ejection fraction; fibrosis was observed in cardiac tissue.

Conclusions:

  • The Q175 mouse model displays significant cardiovascular dysautonomia, mirroring human HD.
  • This model shows early sympathetic dysfunction, particularly during rest, and is suitable for studying HD-related autonomic changes.

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