Related Experiment Video
Updated: Dec 3, 2025

Development of an Ethanol-induced Fibrotic Liver Model in Zebrafish to Study Progenitor Cell-mediated Hepatocyte Regeneration
Published on: May 13, 2016
Molecular and cellular mechanisms of liver fibrosis and its regression
Tatiana Kisseleva1, David Brenner2
1Department of Surgery, University of California, San Diego, La Jolla, CA, USA. tkisseleva@ucsd.edu.
Abstract:
Chronic liver injury leads to liver inflammation and fibrosis, through which activated myofibroblasts in the liver secrete extracellular matrix proteins that generate the fibrous scar. The primary source of these myofibroblasts are the resident hepatic stellate cells. Clinical and experimental liver fibrosis regresses when the causative agent is removed, which is associated with the elimination of these activated myofibroblasts and resorption of the fibrous scar. Understanding the mechanisms of liver fibrosis regression could identify new therapeutic targets to treat liver fibrosis. This Review summarizes studies of the molecular mechanisms underlying the reversibility of liver fibrosis, including apoptosis and the inactivation of hepatic stellate cells, the crosstalk between the liver and the systems that orchestrate the recruitment of bone marrow-derived macrophages (and other inflammatory cells) driving fibrosis resolution, and the interactions between various cell types that lead to the intracellular signalling that induces fibrosis or its regression. We also discuss strategies to target hepatic myofibroblasts (for example, via apoptosis or inactivation) and the myeloid cells that degrade the matrix (for example, via their recruitment to fibrotic liver) to facilitate fibrosis resolution and liver regeneration.
Insights
Liver fibrosis regression involves eliminating activated hepatic stellate cells and resolving inflammation. Understanding these mechanisms can reveal new therapeutic targets for liver fibrosis treatment.
Area of Science:
- Hepatology
- Cell Biology
- Immunology
Background:
- Chronic liver injury causes inflammation and fibrosis, characterized by activated hepatic stellate cells secreting extracellular matrix.
- Liver fibrosis is reversible upon removal of the causative agent, involving myofibroblast elimination and scar resorption.
Purpose of the Study:
- To review the molecular mechanisms of liver fibrosis reversibility.
- To explore therapeutic strategies targeting fibrosis resolution.
Main Methods:
- Review of existing literature on liver fibrosis regression.
- Analysis of molecular pathways involving hepatic stellate cells, macrophages, and cell-cell interactions.
- Discussion of therapeutic targeting strategies.
Main Results:
- Fibrosis regression mechanisms include hepatic stellate cell apoptosis/inactivation and crosstalk with immune cells like macrophages.
- Intracellular signaling pathways regulate both fibrosis induction and regression.
- Targeting hepatic myofibroblasts and matrix-degrading myeloid cells can promote resolution.
Conclusions:
- Understanding liver fibrosis regression mechanisms is crucial for developing new treatments.
- Therapeutic strategies can focus on promoting hepatic stellate cell inactivation and myeloid cell recruitment for matrix degradation.
- Facilitating fibrosis resolution can lead to liver regeneration.
Related Concept Videos
Liver Regeneration
Cells of Liver
The liver comprises four major types of cells— hepatocytes, stellate, Kupffer, and sinusoidal endothelial cells. The hepatocytes are...
Effect of Hepatic Disease on Pharmacokinetics: Drug Dosing and Hepatic Blood Flow
Liver Physiology
Metabolic Regulation:
The liver is the central organ involved in regulating blood composition. It stabilizes blood glucose levels, maintaining them within the range of 70–110 mg/dL. When these levels drop, the liver breaks down glycogen reserves and releases glucose into the bloodstream. It can...
Effect of Hepatic Disease on Pharmacokinetics: Pathophysiologic Assessment and Liver Function Test
Ultrasound II: Endoscopic Ultrasound and FibroScan
Endoscopic Ultrasound (EUS):

