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Updated: May 7, 2025

Seven Steps to Stellate Cells
Published on: May 10, 2011
Hepatic stellate cell single cell atlas reveals a highly similar activation process across liver disease aetiologies
Vincent Merens1, Elisabeth Knetemann1, Elif Gürbüz1
1Vrije Universiteit Brussel, Liver Cell Biology research group, Laarbeeklaan 103, 1090 Brussel, Belgium.
Insights
This study reveals that hepatic stellate cell activation is a conserved process across different liver injuries and species. A new atlas identifies COLEC10 as a biomarker for liver fibrosis, offering potential for improved diagnostics and therapeutics.
Area of Science:
- Hepatology and cell biology
- Single-cell genomics
- Fibrosis research
Background:
- Chronic liver disease (CLD) involves excessive extracellular matrix deposition, driven by activated hepatic stellate cells (HSCs).
- Mechanisms of HSC activation across different liver injury types remain unclear.
Purpose of the Study:
- To establish a single-cell atlas of HSC activation.
- To identify conserved mechanisms and biomarkers of HSC activation in liver fibrosis.
- To validate findings in human samples and mouse models.
Main Methods:
- Integrated analysis of multiple single-cell RNA-sequencing datasets to create an HSC activation atlas.
- Spheroid co-cultures of primary mouse hepatocytes/HSCs.
- ELISAs on patient plasma samples.
Main Results:
- Identified three distinct transcriptomic profiles of HSCs: quiescent, initiatory, and myofibroblastic.
- Demonstrated that HSC activation is a conserved process across different liver injuries and species, driven by core transcription factors.
- Discovered novel activating ligands and validated the profibrotic role of parathyroid hormone.
- Identified COLEC10 as a conserved marker for quiescent HSCs and a biomarker for liver fibrosis in CLD patients.
Conclusions:
- Revealed conserved regulatory mechanisms of HSCs across diverse liver injury settings and species.
- The HSC activation atlas offers insights into liver fibrosis and potential therapeutic strategies.
- Identified COLEC10 as a promising biomarker for diagnosing liver fibrosis.
Background & Aims:
The progression of chronic liver disease (CLD) is characterized by excessive extracellular matrix deposition, disrupting hepatic architecture and function. Upon liver injury, hepatic stellate cells (HSCs) differentiate towards myofibroblasts and become inflammatory, proliferative and fibrogenic. To date, it is still unclear whether HSC activation is driven by similar mechanisms in different aetiologies.
Methods:
HSCs from multiple publicly available single-cell RNA-sequencing datasets were annotated and merged into a single-cell HSC activation atlas. Spheroid co-cultures of primary mouse hepatocytes/HSCs (n = 5) and ELISAs on patient plasma samples (n = 80) were performed to validate the mechanistic insight obtained from the HSC atlas.
Results:
We established an HSC activation atlas in which HSCs are clearly divided into three distinct transcriptomic profiles: quiescent HSCs, initiatory HSCs and myofibroblasts. These transcriptomic profiles are present in each of the investigated mouse liver injury models as well as in human CLDs, indicating that HSC activation is a conserved process. This activation process is driven by a core set of transcription factors independent of liver injury or species. Furthermore, we reveal novel ligands associated with activation of HSCs in multiple liver injury models and validate the profibrotic effect of parathyroid hormone. Finally, we identify COLEC10 as a conserved marker for quiescent HSCs and a biomarker of liver fibrosis in patients with different CLDs (p <0.0001).
Conclusions:
We reveal unexpected similarities in the regulatory mechanisms of HSCs across diverse liver injury settings and species. The HSC activation atlas has the potential to provide novel insights into liver fibrosis and steer novel treatment options.
Impact And Implications:
This study establishes a single-cell atlas of hepatic stellate cells across various liver injuries, highlighting a conserved activation process between different injuries and across species. The discovery of novel activating ligands and the biomarker COLEC10 in human plasma could be used to enhance diagnostic and therapeutic strategies. Additionally, the conserved activation process supports the use of any mouse model for mechanistic studies and testing of new anti-fibrotic compounds, streamlining preclinical research efforts.
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