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Updated: Aug 6, 2026

In Vitro Bioluminescence Assay to Characterize Circadian Rhythm in Mammary Epithelial Cells
Published on: September 28, 2017
The circadian clock controls hepatic stellate cell activation via a BMAL1/CK1ε/REV-ERBα/transgelin signaling pathway
Manuel Johanns1, Alexandre Berthier1, Jimmy Vandel2
1Inserm, Centre Hospitalier Universitaire de Lille, Institut Pasteur de Lille, UMR1011-European Genomic Institute for Diabetes, Université de Lille, Lille F-59000, France.
Abstract:
Liver fibrosis is a progressive and life-threatening condition with no effective targeted treatments. Growing evidence indicates a two-way relationship between circadian rhythm and fibrogenesis, although the specific molecular signaling pathways involved are still not well understood. The molecular clock, which governs circadian rhythms, regulates metabolic and cellular functions, and its pharmacological manipulation has shown potential as a therapy for organ fibrosis. Although the liver's molecular clock appeared resilient to the progression of chronic liver disease in humans from steatosis to fibrosis, detectable changes in the daily amplitude of clock genes were observed in a cohort of people living with obesity. We found a clock-controlled signaling pathway that drives hepatic stellate cell (HSC) activation, a key initiating event in fibrosis progression. Interfering with this pathway, either by disrupting the core regulator CLOCK:BMAL1 or activating the nuclear receptors REV-ERBs, significantly reduced HSC activation. We also identified transgelin as the downstream effector of clock-regulated HSC contractility, a characteristic of HSC activation. Transgelin is regulated indirectly by a BMAL1-CK1ε signaling pathway and directly by REV-ERBα. Our findings identify a hitherto undescribed mechanism that links the molecular clock to HSC activation and cell contractile function, which is relevant to human fibrotic diseases. This pathway provides several entry points for drugs to target and disrupt primary fibrogenic signaling. By connecting clock biology to the cellular processes that cause fibrosis, our work also offers a mechanistic basis for chronotherapeutic strategies against chronic liver disease.
Insights
Scientists discovered a new mechanism linking the body's internal clock to liver fibrosis. Targeting this pathway, involving clock genes and hepatic stellate cell activation, may lead to novel chronotherapeutic treatments for liver disease.
Area of Science:
- Molecular Biology
- Chronobiology
- Hepatology
Background:
- Liver fibrosis is a serious condition lacking effective treatments.
- A connection exists between circadian rhythms and liver fibrogenesis, but molecular pathways are unclear.
- The liver's molecular clock regulates cellular functions, and its manipulation shows therapeutic promise.
Purpose of the Study:
- To investigate the molecular clock's role in hepatic stellate cell (HSC) activation and liver fibrosis.
- To identify specific signaling pathways linking circadian rhythm to fibrogenesis.
Main Methods:
- Investigated clock gene regulation in liver fibrosis.
- Examined the effects of disrupting CLOCK:BMAL1 and activating REV-ERBs on HSC activation.
- Identified transgelin as a downstream effector of clock-regulated HSC contractility.
Main Results:
- Identified a clock-controlled pathway driving HSC activation, a key step in fibrosis.
- Disrupting CLOCK:BMAL1 or activating REV-ERBs reduced HSC activation.
- Transgelin was identified as a downstream effector regulated by BMAL1-CK1ε and REV-ERBα.
Conclusions:
- A novel mechanism connects the molecular clock to HSC activation and contractility in liver fibrosis.
- This pathway offers potential drug targets for fibrotic diseases.
- Findings provide a basis for chronotherapeutic strategies against chronic liver disease.
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