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Updated: Jun 15, 2025

Development of an Ethanol-induced Fibrotic Liver Model in Zebrafish to Study Progenitor Cell-mediated Hepatocyte Regeneration
Published on: May 13, 2016
Targeting the liver clock improves fibrosis by restoring TGF-β signaling
Emilie Crouchet1, Mayssa Dachraoui1, Frank Jühling1
1University of Strasbourg, Inserm, Institute for Translational Medicine and Liver Disease (ITM), UMR_S1110, Strasbourg, France.
Background & Aims:
Liver fibrosis is the major driver of hepatocellular carcinoma and liver disease-related death. Approved antifibrotic therapies are absent and compounds in development have limited efficacy. Increased TGF-β signaling drives collagen deposition by hepatic stellate cells (HSCs)/myofibroblasts. Here, we aimed to dissect the role of the circadian clock (CC) in controlling TGF-β signaling and liver fibrosis.
Methods:
Using CC-mutant mice, enriched HSCs and myofibroblasts obtained from healthy and fibrotic mice in different CC phases and loss-of-function studies in human hepatocytes and myofibroblasts, we investigated the relationship between CC and TGF-β signaling. We explored hepatocyte-myofibroblast communication through bioinformatic analyses of single-nuclei transcriptomes and performed validation in cell-based models. Using mouse models for MASH (metabolic dysfunction-associated steatohepatitis)-related fibrosis and spheroids from patients with liver disease, we performed proof-of-concept studies to validate pharmacological targetability and clinical translatability.
Results:
We discovered that the CC oscillator temporally gates TGF-β signaling and this regulation is broken in fibrosis. We demonstrate that HSCs and myofibroblasts contain a functional CC with rhythmic expression of numerous genes, including fibrogenic genes. Perturbation studies in hepatocytes and myofibroblasts revealed a reciprocal relationship between TGF-β activation and CC perturbation, which was confirmed in patient-derived ex vivo and in vivo models. Pharmacological modulation of CC-TGF-β signaling inhibited fibrosis in mouse models in vivo as well as in patient-derived liver spheroids.
Conclusion:
The CC regulates TGF-β signaling, and the breakdown of this control is associated with liver fibrosis in patients. Pharmacological proof-of-concept studies across different models have uncovered the CC as a novel therapeutic target for liver fibrosis - a growing unmet medical need.
Impact And Implications:
Liver fibrosis due to metabolic diseases is a global health challenge. Many liver functions are rhythmic throughout the day, being controlled by the circadian clock (CC). Here we demonstrate that regulation of the CC is perturbed upon chronic liver injury and this perturbation contributes to fibrotic disease. By showing that a compound targeting the CC improves liver fibrosis in patient-derived models, this study provides a novel therapeutic candidate strategy to treat fibrosis in patients. Additional studies will be needed for clinical translation. Since the findings uncover a previously undiscovered profibrotic mechanism and therapeutic target, the study is of interest for scientists investigating liver disease, clinical hepatologists and drug developers.
Insights
The circadian clock (CC) regulates liver fibrosis by controlling TGF-β signaling. Disrupting the CC worsens fibrosis, but targeting it therapeutically shows promise for treating liver disease.
Area of Science:
- Hepatology
- Molecular Biology
- Chronobiology
Background:
- Liver fibrosis, a precursor to liver cancer and death, lacks effective treatments.
- Transforming growth factor-beta (TGF-β) signaling drives fibrosis by promoting collagen deposition in hepatic stellate cells (HSCs).
- The circadian clock (CC) influences daily rhythms in liver function, but its role in fibrosis is unclear.
Purpose of the Study:
- To investigate the role of the CC in regulating TGF-β signaling and liver fibrosis.
- To explore the therapeutic potential of targeting the CC-TGF-β axis.
Main Methods:
- Utilized CC-mutant mice, isolated HSCs/myofibroblasts from healthy and fibrotic mice, and human cell models.
- Performed bioinformatic analysis of single-nuclei transcriptomes to study cell communication.
- Validated findings in mouse models of metabolic dysfunction-associated steatohepatitis (MASH)-related fibrosis and patient-derived liver spheroids.
Main Results:
- Identified that the CC temporally gates TGF-β signaling, a process disrupted in fibrosis.
- Demonstrated that HSCs and myofibroblasts possess a functional CC with rhythmic expression of fibrogenic genes.
- Showed a reciprocal relationship between TGF-β activation and CC perturbation, confirmed in patient models.
- Pharmacological CC modulation inhibited fibrosis in vivo and in patient-derived models.
Conclusions:
- The CC's regulation of TGF-β signaling is critical, and its disruption is linked to human liver fibrosis.
- The CC represents a novel therapeutic target for liver fibrosis, addressing a significant unmet medical need.
- Targeting the CC offers a promising strategy for treating liver fibrosis, with potential for clinical translation.
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