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Unraveling the HGF/MET axis in Mallory-Denk body pathogenesis associated with liver fibrosis through single-cell
Xiaoping Tang1,2, Yi Shi1,2, Jia Pan1,2
1Department of Clinical Laboratory, the Fifth Affiliated Hospital of Guangzhou Medical University, Center for Liver Diseases of Guangzhou Eighth People's Hospital, Guangzhou Medical University, Guangzhou, China.
Abstract:
Mallory-Denk bodies (MDBs) are protein aggregates commonly observed in chronic liver diseases, including liver fibrosis. However, the intrahepatic crosstalk driving MDB pathogenesis and fibrosis progression remains poorly understood. Using single-nucleus RNA sequencing (snRNA-seq), we identified significant cellular heterogeneity and a distinct hepatocyte subpopulation, termed MDB-associated hepatocytes (MAHs). MAHs were strongly correlated with hepatocellular carcinoma progression. Four hepatic stellate cell (HSC) subpopulations were defined, among which activated HSCs (aHSCs) represent a unique MDB-associated subtype. Moreover, we revealed a tightly connected axis involving MAHs, aHSCs, and Kupffer cells (KCs), which demonstrated that aberrant hepatocyte growth factor (HGF)/mesenchymal‒epithelial transition factor (MET) signaling contributes to MDB pathogenesis. Mechanistically, HGF secreted by aHSCs or KCs interacts with MET on ballooned MAHs and stimulates the HGF/MET downstream PI3K/AKT/NF-κB and STAT3 pathways via protein phosphorylation. The activated HGF/MET pathway promotes ubiquitin D (UbD) upregulation and the release of the proinflammatory cytokine TNFα which further promotes HGF transcription, establishing a positive feedback loop and contributing to MDB formation. Furthermore, aHSCs promote MDB pathogenesis by regulating STAT3 via the HGF/MET axis and increase HSC activation by stimulating TGFβ1 secretion, thereby accelerating fibrosis in 3D MDB organoid cultures. Notably, UbD deficiency (in UbD⁻/⁻ mice) suppressed HGF/MET signaling and MDB formation, leading to reduced liver fibrosis. Consistently, HGF/MET signaling was markedly elevated in human liver biopsies containing MDBs. Together, these findings provide unprecedented single-cell insights into liver cell reprogramming and intrahepatic crosstalk during MDB pathogenesis, and highlight the HGF/MET/UbD axis as a potential therapeutic target for chronic liver disease.
Insights
Researchers uncovered a novel signaling axis involving hepatocyte growth factor (HGF)/mesenchymal-epithelial transition factor (MET) and ubiquitin D (UbD) that drives Mallory-Denk body (MDB) formation and liver fibrosis progression.
Area of Science:
- Hepatology
- Molecular Biology
- Cellular Biology
Background:
- Mallory-Denk bodies (MDBs) are protein aggregates linked to chronic liver diseases and fibrosis.
- The cellular interactions driving MDB pathogenesis and fibrosis remain unclear.
Purpose of the Study:
- To elucidate the intrahepatic crosstalk and molecular mechanisms underlying MDB formation and liver fibrosis progression.
Main Methods:
- Single-nucleus RNA sequencing (snRNA-seq) to identify cell subpopulations.
- Analysis of signaling pathways, including HGF/MET, PI3K/AKT, and STAT3.
- 3D MDB organoid cultures and UbD-deficient mouse models (UbD⁻/⁻).
Main Results:
- Identified MDB-associated hepatocytes (MAHs) and activated hepatic stellate cell (aHSC) subtypes.
- Revealed an HGF/MET signaling axis involving MAHs, aHSCs, and Kupffer cells (KCs) that promotes MDB formation via a positive feedback loop.
- Demonstrated that aHSCs exacerbate fibrosis through STAT3 and TGFβ1.
- UbD deficiency reduced MDB formation and liver fibrosis; HGF/MET signaling was elevated in human MDB-positive liver biopsies.
Conclusions:
- The HGF/MET/UbD axis is a key driver of MDB pathogenesis and liver fibrosis.
- Targeting this axis offers a potential therapeutic strategy for chronic liver diseases.
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