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Published on: March 11, 2020
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.
Abstract:
Cardiovascular dysautonomia as well as the deterioration of circadian rhythms are among the earliest detectable pathophysiological changes in individuals with Huntington's disease (HD). Preclinical research requires mouse models that recapitulate disease symptoms and the Q175 knock-in model offers a number of advantages but potential autonomic dysfunction has not been explored. In this study, we sought to test the dual hypotheses that cardiovascular dysautonomia can be detected early in disease progression in the Q175 model and that this dysfunction varies with the daily cycle. Using radiotelemetry implants, we observed a significant reduction in the diurnal and circadian activity rhythms in the Q175 mutants at the youngest ages. By middle age, the autonomically driven rhythms in core body temperature were highly compromised, and the Q175 mutants exhibited striking episodes of hypothermia that increased in frequency with mutant huntingtin gene dosage. In addition, Q175 mutants showed higher resting heart rate (HR) during sleep and greatly reduced correlation between activity and HR HR variability was reduced in the mutants in both time and frequency domains, providing more evidence of autonomic dysfunction. Measurement of the baroreceptor reflex revealed that the Q175 mutant could not appropriately increase HR in response to a pharmacologically induced decrease in blood pressure. Echocardiograms showed reduced ventricular mass and ejection fraction in mutant hearts. Finally, cardiac histopathology revealed localized points of fibrosis resembling those caused by myocardial infarction. Thus, the Q175 mouse model of HD exhibits cardiovascular dysautonomia similar to that seen in HD patients with prominent sympathetic dysfunction during the resting phase of the activity rhythm.
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