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Voluntary Wheel Running Exercise Does Not Attenuate Circadian and Cardiac Dysfunction Caused by Conditional Deletion
Musharraf Yusifova1, Aykhan Yusifov1, Sydney M Polson1
1Kinesiology & Health, University of Wyoming, Laramie, Wyoming.
Insights
Deleting the core circadian gene Bmal1 in heart cells disrupts cardiac function and systemic rhythms. Exercise did not rescue these negative effects, highlighting the critical role of Bmal1 in maintaining cardiovascular and body clock health.
Area of Science:
- Cardiovascular Biology
- Chronobiology
- Molecular Cardiology
Background:
- Circadian misalignment is linked to cardiovascular diseases, but the cardiac circadian clock's role is unclear.
- Understanding the cardiac clock is crucial for developing therapies against heart disease.
- Exercise is cardioprotective and may influence peripheral circadian clocks.
Purpose of the Study:
- To investigate the role of the core circadian gene Bmal1 in cardiac function and rhythm.
- To determine if exercise can ameliorate cardiac dysfunction caused by Bmal1 deletion in the heart.
- To explore the impact of cardiac Bmal1 deletion on systemic circadian rhythms.
Main Methods:
- Generated a Bmal1 cardiac knockout (cKO) mouse model with spatial and temporal deletion of Bmal1 in adult cardiac myocytes.
- Assessed cardiac function, hypertrophy, and fibrosis in Bmal1 cKO mice.
- Evaluated the effect of voluntary wheel running (exercise) on cardiac remodeling and function.
- Monitored systemic circadian rhythms using activity and core body temperature measurements.
Main Results:
- Bmal1 cKO mice exhibited cardiac hypertrophy, fibrosis, and impaired systolic function.
- Exercise (wheel running) did not rescue the pathological cardiac remodeling in Bmal1 cKO mice.
- Cardiac deletion of Bmal1 disrupted systemic circadian rhythms, affecting activity patterns and core body temperature rhythms.
- The molecular mechanisms did not involve mTOR signaling or altered metabolic gene expression.
Conclusions:
- Cardiac Bmal1 plays a critical role in maintaining cardiac function and regulating both cardiac and systemic circadian rhythms.
- Disruption of the cardiac circadian clock leads to maladaptive cardiac remodeling.
- Exercise does not appear to restore cardiac function or rhythm in the absence of cardiac Bmal1.
- Further research is needed to identify therapeutic targets for circadian clock-related cardiac dysfunction.
Abstract:
Circadian misalignment occurs with age, jet lag, and shift work, leading to maladaptive health outcomes including cardiovascular diseases. Despite the strong link between circadian disruption and heart disease, the cardiac circadian clock is poorly understood, prohibiting identification of therapies to restore the broken clock. Exercise is the most cardioprotective intervention identified to date and has been suggested to reset the circadian clock in other peripheral tissues. Here, we tested the hypothesis that conditional deletion of core circadian gene Bmal1 would disrupt cardiac circadian rhythm and function and that this disruption would be ameliorated by exercise. To test this hypothesis, we generated a transgenic mouse with spatial and temporal deletion of Bmal1 only in adult cardiac myocytes (Bmal1 cardiac knockout [cKO]). Bmal1 cKO mice demonstrated cardiac hypertrophy and fibrosis concomitant with impaired systolic function. This pathological cardiac remodeling was not rescued by wheel running. While the molecular mechanisms responsible for the profound cardiac remodeling are unclear, it does not appear to involve activation of the mammalian target of rapamycin (mTOR) signaling or changes in metabolic gene expression. Interestingly, cardiac deletion of Bmal1 disrupted systemic rhythms as evidenced by changes in the onset and phasing of activity in relationship to the light/dark cycle and by decreased periodogram power as measured by core temperature, suggesting cardiac clocks can regulate systemic circadian output. Together, we suggest a critical role for cardiac Bmal1 in regulating both cardiac and systemic circadian rhythm and function. Ongoing experiments will determine how disruption of the circadian clock causes cardiac remodeling in an effort to identify therapeutics to attenuate the maladaptive outcomes of a broken cardiac circadian clock.

