Related Experiment Video
Updated: Dec 19, 2025

Bile Duct Ligation in Mice: Induction of Inflammatory Liver Injury and Fibrosis by Obstructive Cholestasis
Published on: February 10, 2015
Ursolic acid reverses liver fibrosis by inhibiting interactive NOX4/ROS and RhoA/ROCK1 signalling pathways
Sizhe Wan1, Fangyun Luo1, Chenkai Huang1
1Department of Gastroenterology, The First Affiliated Hospital of Nanchang University, Nanchang, Jiangxi, China.
Abstract:
Liver fibrosis is the reversible deposition of extracellular matrix (ECM) and scar formation after liver damage by various stimuli. The interaction between NOX4/ROS and RhoA/ROCK1 in liver fibrosis is not yet clear. Ursolic acid (UA) is a traditional Chinese medicine with anti-fibrotic effects, but the molecular mechanism underlying these effects is still unclear. We investigated the interaction between NOX4/ROS and RhoA/ROCK1 during liver fibrosis and whether these molecules are targets for the anti-fibrotic effects of UA. First, we confirmed that UA reversed CCl4-induced liver fibrosis. In the NOX4 intervention and RhoA intervention groups, related experimental analyses confirmed the decrease in CCl4-induced liver fibrosis. Next, we determined that the expression of NOX4 and RhoA/ROCK1 was decreased in UA-treated liver fibrotic mice. Furthermore, RhoA/ROCK1 expression was decreased in the NOX4 intervention group, but there was no significant change in the expression of NOX4 in the RhoA intervention group. Finally, we found that liver fibrotic mice showed a decline in their microbiota diversity and abundance, a change in their microbiota composition, and a reduction in the number of potential beneficial bacteria. However, in UA-treated liver fibrotic mice, the microbiota dysbiosis was ameliorated. In conclusion, the NOX4/ROS and RhoA/ROCK1 signalling pathways are closely linked to the development of liver fibrosis. UA can reverse liver fibrosis by inhibiting the NOX4/ROS and RhoA/ROCK1 signalling pathways, which may interact with each other.
Insights
Ursolic acid reverses liver fibrosis by inhibiting the NOX4/ROS and RhoA/ROCK1 pathways. This traditional Chinese medicine also ameliorates liver fibrosis-associated gut microbiota dysbiosis.
Area of Science:
- Hepatology
- Molecular Biology
- Pharmacology
Background:
- Liver fibrosis involves extracellular matrix deposition and scar formation following liver injury.
- The interplay between NOX4/ROS and RhoA/ROCK1 in liver fibrosis pathogenesis remains unclear.
- Ursolic acid (UA), a traditional Chinese medicine, exhibits anti-fibrotic properties, but its molecular mechanisms require elucidation.
Purpose of the Study:
- To investigate the interaction between NOX4/ROS and RhoA/ROCK1 signaling pathways in liver fibrosis.
- To determine if these pathways are molecular targets for the anti-fibrotic effects of Ursolic acid.
- To assess the impact of Ursolic acid on liver microbiota composition in fibrosis.
Main Methods:
- CCl4-induced liver fibrosis model in mice.
- Intervention studies targeting NOX4 and RhoA pathways.
- Analysis of NOX4 and RhoA/ROCK1 expression levels.
- Assessment of liver microbiota diversity, abundance, and composition.
Main Results:
- Ursolic acid effectively reversed CCl4-induced liver fibrosis.
- NOX4 and RhoA/ROCK1 expression decreased in UA-treated fibrotic mice.
- NOX4 inhibition led to decreased RhoA/ROCK1 expression, suggesting a hierarchical relationship.
- UA treatment ameliorated liver fibrosis-induced gut microbiota dysbiosis.
Conclusions:
- The NOX4/ROS and RhoA/ROCK1 signaling pathways are integral to liver fibrosis development.
- Ursolic acid exerts anti-fibrotic effects by inhibiting these interconnected pathways.
- UA may also improve liver health by restoring gut microbiota balance.
More Related Videos
07:03Author Spotlight: Establishing MASLD Cell Models for Investigating Disease Mechanisms and the Lipid-Lowering Effects of Koumiss
Published on: July 19, 2024
10:42Development of an Ethanol-induced Fibrotic Liver Model in Zebrafish to Study Progenitor Cell-mediated Hepatocyte Regeneration
Published on: May 13, 2016