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Parallel Measurement of Circadian Clock Gene Expression and Hormone Secretion in Human Primary Cell Cultures
Published on: November 11, 2016
Disrupting the key circadian regulator CLOCK leads to age-dependent cardiovascular disease
Faisal J Alibhai1, Jonathan LaMarre1, Cristine J Reitz1
1Centre for Cardiovascular Investigations, Department of Biomedical Sciences, University of Guelph, Guelph, Ontario, Canada.
Insights
Disrupting the Clock gene leads to age-dependent heart dysfunction and cardiomyopathy. Targeting the circadian mechanism offers a new therapeutic approach for heart disease.
Area of Science:
- Cardiovascular Physiology
- Chronobiology
- Molecular Cardiology
Background:
- Circadian rhythms regulate daily cardiovascular physiology, but their clinical role is underappreciated.
- Disruption of circadian rhythms is a significant risk factor for heart disease.
- The Clock gene is a core component of the circadian mechanism influencing cardiac health.
Purpose of the Study:
- To investigate the role of the Clock gene in cardiac physiology and pathophysiology during aging.
- To elucidate the molecular mechanisms by which Clock influences cardiac hypertrophy and function.
- To evaluate the therapeutic potential of targeting the circadian mechanism for heart disease.
Main Methods:
- Utilized Clock mutant mice (ClockΔ19/Δ19) to study age-dependent cardiac changes.
- Analyzed gene and protein expression, including PTEN-AKT signaling pathway components.
- Examined cardiomyocyte function and responses to pharmacological circadian modulation (SR9009).
Main Results:
- ClockΔ19/Δ19 mice exhibit age-dependent cardiac hypertrophy, dilation, and impaired contractility.
- Loss of Clock disrupts circadian rhythms of Pten and PTEN protein, affecting AKT signaling.
- Pharmacological targeting of the circadian mechanism with SR9009 reduced cardiac hypertrophy in aged and TAC-induced models.
Conclusions:
- The Clock gene is crucial for maintaining cardiac growth, renewal, and function during aging.
- Disruption of Clock leads to age-dependent cardiomyopathy via dysregulation of key signaling pathways.
- Modulating the circadian mechanism presents a novel therapeutic strategy for treating heart disease.
Abstract:
The circadian mechanism underlies daily rhythms in cardiovascular physiology and rhythm disruption is a major risk factor for heart disease and worse outcomes. However, the role of circadian rhythms is generally clinically unappreciated. Clock is a core component of the circadian mechanism and here we examine the role of Clock as a vital determinant of cardiac physiology and pathophysiology in aging. ClockΔ19/Δ19 mice develop age-dependent increases in heart weight, hypertrophy, dilation, impaired contractility, and reduced myogenic responsiveness. Young ClockΔ19/Δ19 hearts express dysregulated mRNAs and miRNAs in the PTEN-AKT signal pathways important for cardiac hypertrophy. We found a rhythm in the Pten gene and PTEN protein in WT hearts; rhythmic oscillations are lost in ClockΔ19/Δ19 hearts. Changes in PTEN are associated with reduced AKT activation and changes in downstream mediators GSK-3β, PRAS40, and S6K1. Cardiomyocyte cultures confirm that Clock regulates the AKT signalling pathways crucial for cardiac hypertrophy. In old ClockΔ19/Δ19 mice cardiac AKT, GSK3β, S6K1 phosphorylation are increased, consistent with the development of age-dependent cardiac hypertrophy. Lastly, we show that pharmacological modulation of the circadian mechanism with the REV-ERB agonist SR9009 reduces AKT activation and heart weight in old WT mice. Furthermore, SR9009 attenuates cardiac hypertrophy in mice subjected to transverse aortic constriction (TAC), supporting that the circadian mechanism plays an important role in regulating cardiac growth. These findings demonstrate a crucial role for Clock in growth and renewal; disrupting Clock leads to age-dependent cardiomyopathy. Pharmacological targeting of the circadian mechanism provides a new opportunity for treating heart disease.
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