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Updated: Apr 26, 2026

Bile Duct Ligation in Mice: Induction of Inflammatory Liver Injury and Fibrosis by Obstructive Cholestasis
Published on: February 10, 2015
Origin of myofibroblasts in the fibrotic liver in mice
Keiko Iwaisako1, Chunyan Jiang2, Mingjun Zhang3
1Departments of Medicine,Department of Target Therapy Oncology, Graduate School of Medicine, Kyoto University, Kyoto 606-8507, Japan;Surgery, and.
Abstract:
Hepatic myofibroblasts are activated in response to chronic liver injury of any etiology to produce a fibrous scar. Despite extensive studies, the origin of myofibroblasts in different types of fibrotic liver diseases is unresolved. To identify distinct populations of myofibroblasts and quantify their contribution to hepatic fibrosis of two different etiologies, collagen-α1(I)-GFP mice were subjected to hepatotoxic (carbon tetrachloride; CCl4) or cholestatic (bile duct ligation; BDL) liver injury. All myofibroblasts were purified by flow cytometry of GFP(+) cells and then different subsets identified by phenotyping. Liver resident activated hepatic stellate cells (aHSCs) and activated portal fibroblasts (aPFs) are the major source (>95%) of fibrogenic myofibroblasts in these models of liver fibrosis in mice. As previously reported using other methodologies, hepatic stellate cells (HSCs) are the major source of myofibroblasts (>87%) in CCl4 liver injury. However, aPFs are a major source of myofibroblasts in cholestatic liver injury, contributing >70% of myofibroblasts at the onset of injury (5 d BDL). The relative contribution of aPFs decreases with progressive injury, as HSCs become activated and contribute to the myofibroblast population (14 and 20 d BDL). Unlike aHSCs, aPFs respond to stimulation with taurocholic acid and IL-25 by induction of collagen-α1(I) and IL-13, respectively. Furthermore, BDL-activated PFs express high levels of collagen type I and provide stimulatory signals to HSCs. Gene expression analysis identified several novel markers of aPFs, including a mesothelial-specific marker mesothelin. PFs may play a critical role in the pathogenesis of cholestatic liver fibrosis and, therefore, serve as an attractive target for antifibrotic therapy.
Insights
Activated hepatic stellate cells (aHSCs) and activated portal fibroblasts (aPFs) are the primary sources of myofibroblasts in liver fibrosis. Activated portal fibroblasts are key drivers of cholestatic liver fibrosis, offering a potential therapeutic target.
Area of Science:
- Hepatology
- Fibrosis Research
- Cell Biology
Background:
- Chronic liver injury activates hepatic myofibroblasts, leading to scar formation.
- The precise origin of myofibroblasts in various fibrotic liver diseases remains unclear.
- Understanding myofibroblast heterogeneity is crucial for developing targeted antifibrotic therapies.
Purpose of the Study:
- To identify distinct myofibroblast populations in response to different liver injury models.
- To quantify the contribution of various cell types to hepatic fibrosis.
- To investigate the role of activated portal fibroblasts in cholestatic liver injury.
Main Methods:
- Utilized collagen-α1(I)-GFP reporter mice subjected to carbon tetrachloride (hepatotoxic) or bile duct ligation (cholestatic) injury.
- Purified myofibroblasts via flow cytometry of GFP(+) cells.
- Phenotyped and performed gene expression analysis on distinct myofibroblast subsets.
Main Results:
- Activated hepatic stellate cells (aHSCs) and activated portal fibroblasts (aPFs) constitute over 95% of myofibroblasts in both injury models.
- In carbon tetrachloride injury, aHSCs are the predominant source (>87%).
- In cholestatic injury, aPFs are the major source (>70%) early on, with HSC contribution increasing over time. aPFs express mesothelin and respond to taurocholic acid and IL-25.
Conclusions:
- Activated portal fibroblasts are a critical source of myofibroblasts in cholestatic liver fibrosis.
- Activated portal fibroblasts may play a significant role in driving cholestatic liver fibrosis pathogenesis.
- Activated portal fibroblasts represent a promising therapeutic target for antifibrotic strategies in cholestatic liver disease.

