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.

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.

Related Concept Videos

Circadian Rhythms and Gene Regulation02:19

Circadian Rhythms and Gene Regulation

The biological clock is involved in many aspects of regulating complex physiology in all animals. It was in 1935 when German zoologists, Hans Kalmus and Erwin Bünning, discovered the existence of circadian rhythm in Drosophila melanogaster. However, the internal molecular mechanisms behind the circadian clock remained a mystery until 1984, when Jeffrey C. Hall, Michael Rosbash, and Michael W. Young discovered the expression of the Per gene oscillating over a 24-hour cycle. In subsequent years,...
Liver Regeneration01:24

Liver Regeneration

The liver is an important organ in vertebrates that plays an essential role in metabolism. It is also responsible for storing and redistributing nutrients such as carbohydrates, fats, and vitamins in the body. Additionally, the liver releases bile salts which are critical for digesting food and eliminating toxic metabolites from the body.
Cells of Liver
The liver comprises four major types of cells— hepatocytes, stellate, Kupffer, and sinusoidal endothelial cells. The hepatocytes are large...
Cirrhosis II: Pathophysiology01:24

Cirrhosis II: Pathophysiology

Cirrhosis is a progressive chronic liver injury caused by prolonged inflammation, excessive fibrotic remodeling, and impaired regeneration. Over time, repeated hepatic insults disrupt the liver’s architecture and function, leading to reduced blood flow, impaired bile drainage, and diminished metabolic capacity.Pathophysiology of cirrhosisCirrhosis arises from three main responses to chronic liver damage: inflammation, immune activation, and hepatocyte death. These processes lead to structural...
Cell Specific Gene Expression01:58

Cell Specific Gene Expression

Multicellular organisms contain a variety of structurally and functionally distinct cell types, but the DNA in all the cells originated from the same parent cells. The differences in the cells can be attributed to the differential gene expression. Liver cells, whose functions include detoxification of blood, production of bile to metabolize fats, and synthesis of proteins essential for metabolism, must express a specific set of genes to perform their functions. Gene expression also varies with...
PI3K/mTOR/AKT Signaling Pathway01:22

PI3K/mTOR/AKT Signaling Pathway

The mammalian target of rapamycin  (mTOR) is a serine/threonine kinase that regulates growth, proliferation, and cell survival in response to hormones, growth factors, or nutrient availability. This kinase exists in two structurally and functionally distinct forms: mTOR complex 1  (mTORC1) and mTOR complex 2  (mTORC2). The first form (mTORC1) is composed of a rapamycin-sensitive Raptor and proline-rich Akt substrate, PRAS40. In contrast,  mTORC2 consists of a rapamycin-insensitive companion...
Role Of Notch Signalling In Intestinal Stem Cell Renewal01:12

Role Of Notch Signalling In Intestinal Stem Cell Renewal

Notch signaling was first discovered in Drosophila melanogaster, where it is involved in cell lineage differentiation. Notch signaling regulates the maintenance and differentiation of intestinal stem cells or ISCs by controlling the expression of atonal homolog 1 or Atoh1. Atoh1 directs cells to differentiate into secretory cells.
Direct cell-to-cell contact is needed for the activation of Notch signaling. The signal is initiated when a notch ligand binds to a receptor on an adjacent cell, also...