Related Experiment Video
Updated: Jun 30, 2026

Applying Stereotactic Injection Technique to Study Genetic Effects on Animal Behaviors
Published on: May 10, 2015
Circadian-based Treatment Strategy Effective in the BACHD Mouse Model of Huntington's Disease
Daniel S Whittaker1, Dawn H Loh1, Huei-Bin Wang1
1Department of Psychiatry and Biobehavioral Sciences, University of California, Los Angeles, Los Angeles, California, USA.
Insights
Time-restricted feeding (TRF) improved circadian rhythms and motor function in a mouse model of Huntington's disease (HD). This early intervention shows therapeutic potential for delaying HD progression and enhancing quality of life.
Area of Science:
- Neuroscience
- Chronobiology
- Genetics
Background:
- Huntington's disease (HD) is a progressive neurodegenerative disorder characterized by motor, cognitive, and psychiatric symptoms.
- Circadian rhythm disturbances, including sleep-wake cycle abnormalities, are prevalent in HD patients and preclinical models.
- Early manifestation of circadian dysfunction suggests potential for therapeutic intervention.
Purpose of the Study:
- To investigate the therapeutic potential of time-restricted feeding (TRF) in ameliorating HD symptoms and delaying disease progression.
- To assess the impact of TRF on circadian rhythmicity, autonomic function, and motor performance in the BACHD mouse model of HD.
Main Methods:
- BACHD mice at 3 months of age were subjected to either ad libitum feeding or a 6-hour TRF regimen for 3 months.
- Locomotor activity, sleep patterns, heart rate variability, and motor performance were evaluated.
- In vivo and in vitro PER2::LUC rhythms were analyzed to assess molecular circadian output.
Main Results:
- TRF treatment improved locomotor activity and sleep behavioral rhythms in BACHD mice.
- Heart rate variability was enhanced, indicating improved autonomic nervous system function.
- Motor performance in TRF-treated mice was significantly improved and correlated with enhanced circadian output.
Conclusions:
- Early intervention with TRF can beneficially impact circadian rhythmicity and ameliorate key HD symptoms in a preclinical model.
- Circadian-based lifestyle interventions represent a promising therapeutic strategy for improving quality of life and potentially delaying disease progression in Huntington's disease.
Abstract:
Huntington's disease (HD) patients suffer from progressive neurodegeneration that results in cognitive, psychiatric, cardiovascular, and motor dysfunction. Disturbances in sleep-wake cycles are common among HD patients with reports of delayed sleep onset, frequent bedtime awakenings, and excessive fatigue. The BACHD mouse model exhibits many HD core symptoms including circadian dysfunction. Because circadian dysfunction manifests early in the disease in both patients and mouse models, we sought to determine if early interventions that improve circadian rhythmicity could benefit HD symptoms and delay disease progression. We evaluated the effects of time-restricted feeding (TRF) on the BACHD mouse model. At 3 months of age, the animals were divided into 2 groups: ad lib and TRF. The TRF-treated BACHD mice were exposed to a 6-h feeding/18-h fasting regimen that was designed to be aligned with the middle (ZT 15-21) of the period when mice are normally active (ZT 12-24). Following 3 months of treatment (when mice reached the early disease stage), the TRF-treated BACHD mice showed improvements in their locomotor activity and sleep behavioral rhythms. Furthermore, we found improved heart rate variability, suggesting that their autonomic nervous system dysfunction was improved. On a molecular level, TRF altered the phase but not the amplitude of the PER2::LUC rhythms measured in vivo and in vitro. Importantly, treated BACHD mice exhibited improved motor performance compared with untreated BACHD controls, and the motor improvements were correlated with improved circadian output. It is worth emphasizing that HD is a genetically caused disease with no known cure. Lifestyle changes that not only improve the quality of life but also delay disease progression for HD patients are greatly needed. Our study demonstrates the therapeutic potential of circadian-based treatment strategies in a preclinical model of HD.

