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Myocardial Rev-erb-Mediated Diurnal Metabolic Rhythm and Obesity Paradox
Shiyang Song1,2, Chih-Liang Tien3, Hao Cui4
1Department of Medicine, Division of Diabetes, Endocrinology, and Metabolism (S.S., P.B., N.Z., Y.G., W. Li, Y.X., R.C., W.Z., V.M., Z.S.), Baylor College of Medicine, Houston, TX.
Background:
The nuclear receptor Rev-erbα/β, a key component of the circadian clock, emerges as a drug target for heart diseases, but the function of cardiac Rev-erb has not been studied in vivo. Circadian disruption is implicated in heart diseases, but it is unknown whether cardiac molecular clock dysfunction is associated with the progression of any naturally occurring human heart diseases. Obesity paradox refers to the seemingly protective role of obesity for heart failure, but the mechanism is unclear.
Methods:
We generated mouse lines with cardiac-specific Rev-erbα/β knockout (KO), characterized cardiac phenotype, conducted multi-omics (RNA-sequencing, chromatin immunoprecipitation sequencing, proteomics, and metabolomics) analyses, and performed dietary and pharmacological rescue experiments to assess the time-of-the-day effects. We compared the temporal pattern of cardiac clock gene expression with the cardiac dilation severity in failing human hearts.
Results:
KO mice display progressive dilated cardiomyopathy and lethal heart failure. Inducible ablation of Rev-erbα/β in adult hearts causes similar phenotypes. Impaired fatty acid oxidation in the KO myocardium, in particular, in the light cycle, precedes contractile dysfunctions with a reciprocal overreliance on carbohydrate utilization, in particular, in the dark cycle. Increasing dietary lipid or sugar supply in the dark cycle does not affect cardiac dysfunctions in KO mice. However, obesity coupled with systemic insulin resistance paradoxically ameliorates cardiac dysfunctions in KO mice, associated with rescued expression of lipid oxidation genes only in the light cycle in phase with increased fatty acid availability from adipose lipolysis. Inhibition of glycolysis in the light cycle and lipid oxidation in the dark cycle, but not vice versa, ameliorate cardiac dysfunctions in KO mice. Altered temporal patterns of cardiac Rev-erb gene expression correlate with the cardiac dilation severity in human hearts with dilated cardiomyopathy.
Conclusions:
The study delineates temporal coordination between clock-mediated anticipation and nutrient-induced response in myocardial metabolism at multi-omics levels. The obesity paradox is attributable to increased cardiac lipid supply from adipose lipolysis in the fasting cycle due to systemic insulin resistance and adiposity. Cardiac molecular chronotypes may be involved in human dilated cardiomyopathy. Myocardial bioenergetics downstream of Rev-erb may be a chronotherapy target in treating heart failure and dilated cardiomyopathy.
Insights
Rev-erbα/β nuclear receptors are crucial for heart function and circadian rhythms. Their disruption causes heart failure, but obesity paradoxically protects by altering metabolism, suggesting chronotherapy targets.
Area of Science:
- Cardiovascular Biology
- Chronobiology
- Molecular Metabolism
Background:
- Nuclear receptors Rev-erbα/β are key circadian clock components, implicated as drug targets for heart disease.
- The in vivo function of cardiac Rev-erb and its role in human heart disease progression remain unstudied.
- The obesity paradox in heart failure lacks mechanistic understanding.
Purpose of the Study:
- To investigate the in vivo role of cardiac Rev-erbα/β in heart function and disease.
- To elucidate the mechanisms underlying the obesity paradox in heart failure.
- To explore the link between cardiac clock dysfunction and human dilated cardiomyopathy.
Main Methods:
- Generated cardiac-specific Rev-erbα/β knockout (KO) mouse models (constitutive and inducible).
- Performed multi-omics analyses (RNA-seq, ChIP-seq, proteomics, metabolomics) and dietary/pharmacological rescue experiments.
- Correlated cardiac clock gene expression patterns with human dilated cardiomyopathy severity.
Main Results:
- Cardiac Rev-erbα/β KO induced progressive dilated cardiomyopathy and heart failure.
- Impaired fatty acid oxidation and increased carbohydrate utilization preceded contractile dysfunction.
- Obesity paradoxically ameliorated cardiac dysfunction via increased lipid supply, rescuing lipid oxidation gene expression.
Conclusions:
- Temporal coordination between circadian rhythms and nutrient metabolism is vital for myocardial function.
- The obesity paradox is explained by enhanced adipose lipolysis and cardiac lipid supply.
- Cardiac molecular chronotypes and Rev-erb-regulated myocardial bioenergetics are potential chronotherapy targets for heart failure.
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