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Monitoring Cell-autonomous Circadian Clock Rhythms of Gene Expression Using Luciferase Bioluminescence Reporters
Published on: September 27, 2012
Genetic and Environmental Models of Circadian Disruption Link SRC-2 Function to Hepatic Pathology
Tiffany Fleet1, Erin Stashi2, Bokai Zhu2
1Interdepartmental Department in Translational Biology and Molecular Medicine, Baylor College of Medicine, Houston, Texas.
Abstract:
Circadian rhythmicity is a fundamental process that synchronizes behavioral cues with metabolic homeostasis. Disruption of daily cycles due to jet lag or shift work results in severe physiological consequences including advanced aging, metabolic syndrome, and even cancer. Our understanding of the molecular clock, which is regulated by intricate positive feedforward and negative feedback loops, has expanded to include an important metabolic transcriptional coregulator, Steroid Receptor Coactivator-2 (SRC-2), that regulates both the central clock of the suprachiasmatic nucleus (SCN) and peripheral clocks including the liver. We hypothesized that an environmental uncoupling of the light-dark phases, termed chronic circadian disruption (CCD), would lead to pathology similar to the genetic circadian disruption observed with loss of SRC-2 We found that CCD and ablation of SRC-2 in mice led to a common comorbidity of metabolic syndrome also found in humans with circadian disruption, non-alcoholic fatty liver disease (NAFLD). The combination of SRC-2(-/-) and CCD results in a more robust phenotype that correlates with human non-alcoholic steatohepatitis (NASH) and hepatocellular carcinoma (HCC) gene signatures. Either CCD or SRC-2 ablation produces an advanced aging phenotype leading to increased mortality consistent with other circadian mutant mouse models. Collectively, our studies demonstrate that SRC-2 provides an essential link between the behavioral activities influenced by light cues and the metabolic homeostasis maintained by the liver.
Insights
Disrupting circadian rhythms or losing Steroid Receptor Coactivator-2 (SRC-2) causes metabolic syndrome and aging. Combined disruption exacerbates liver disease and cancer risk, highlighting SRC-2
Area of Science:
- Chronobiology
- Metabolic Regulation
- Molecular Biology
Background:
- Circadian rhythms synchronize behavior and metabolism.
- Disruptions (jet lag, shift work) cause aging, metabolic syndrome, and cancer.
- Steroid Receptor Coactivator-2 (SRC-2) is a key regulator of molecular clocks in the brain and liver.
Purpose of the Study:
- To investigate if chronic circadian disruption (CCD) causes pathology similar to genetic SRC-2 disruption.
- To determine the combined effects of CCD and SRC-2 loss on metabolic health and aging.
Main Methods:
- Mice models with chronic circadian disruption (CCD) and SRC-2 gene ablation (SRC-2(-/-)).
- Assessment of metabolic syndrome, non-alcoholic fatty liver disease (NAFLD), non-alcoholic steatohepatitis (NASH), hepatocellular carcinoma (HCC), and aging phenotypes.
- Comparison of gene expression signatures with human disease data.
Main Results:
- Both CCD and SRC-2 ablation in mice induced metabolic syndrome and advanced aging, increasing mortality.
- Combined SRC-2 loss and CCD worsened NAFLD and showed gene signatures similar to human NASH and HCC.
- SRC-2 links light-driven behaviors to liver metabolic homeostasis.
Conclusions:
- SRC-2 is crucial for maintaining metabolic homeostasis and synchronizing it with circadian rhythms.
- Circadian disruption and SRC-2 deficiency synergistically promote liver pathology and aging.
- Targeting SRC-2 and circadian rhythms may offer therapeutic strategies for metabolic and age-related diseases.
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