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Updated: Jun 8, 2026

Cell Type-specific Gene Expression Profiling in the Mouse Liver
Published on: September 17, 2019
Loss of c-Met disrupts gene expression program required for G2/M progression during liver regeneration in mice
Valentina M Factor1, Daekwan Seo, Tsuyoshi Ishikawa
1Laboratory of Experimental Carcinogenesis, Center for Cancer Research, National Cancer Institute, National Institutes of Health, Bethesda, Maryland, USA.
Background:
Previous work has established that HGF/c-Met signaling plays a pivotal role in regulating the onset of S phase following partial hepatectomy (PH). In this study, we used Met(fl/fl);Alb-Cre(+/-) conditional knockout mice to determine the effects of c-Met dysfunction in hepatocytes on kinetics of liver regeneration.
Methodology/Principal Finding:
The priming events appeared to be intact in Met(fl/fl);Alb-Cre(+/-) livers. Up-regulation of stress response (MAFK, IKBZ, SOCS3) and early growth response (c-Myc, c-Jun, c-Fos, DUSP1 and 6) genes as assessed by RT-qPCR and/or microarray profiling was unchanged. This was consistent with an early induction of MAPK/Erk and STAT3. However, after a successful completion of the first round of DNA replication, c-Met deficient hepatocytes were blocked in early/mid G2 phase as shown by staining with phosphorylated form of histone H3. Furthermore, loss of c-Met in hepatocytes diminished the subsequent G1/S progression and delayed liver recovery after partial hepatectomy. Upstream signaling pathways involved in the blockage of G2/M transition included lack of persistent Erk1/2 activation and inability to up-regulate the levels of Cdk1, Plk1, Aurora A and B, and Mad2 along with a defective histone 3 phosphorylation and lack of chromatin condensation. Continuous supplementation with EGF in vitro increased proliferation of Met(fl/fl);Alb-Cre(+/-) primary hepatocytes and partially restored expression levels of mitotic cell cycle regulators albeit to a lesser degree as compared to control cultures.
Conclusion/Significance:
In conclusion, our results assign a novel non-redundant function for HGF/c-Met signaling in regulation of G2/M gene expression program via maintaining a persistent Erk1/2 activation throughout liver regeneration.
Insights
Hepatocyte growth factor/c-Met signaling is crucial for liver regeneration. Loss of c-Met in hepatocytes blocks cell cycle progression at G2/M, delaying liver recovery after partial hepatectomy.
Area of Science:
- Hepatology
- Molecular Biology
- Cell Cycle Regulation
Background:
- Hepatocyte growth factor (HGF)/c-Met signaling is vital for liver regeneration.
- Previous studies highlight its role in initiating S phase post-partial hepatectomy (PH).
Purpose of the Study:
- To investigate the specific role of c-Met in hepatocytes during liver regeneration kinetics.
- To elucidate the impact of c-Met dysfunction on cell cycle progression and recovery after PH.
Main Methods:
- Utilized Met(fl/fl);Alb-Cre(+/-) conditional knockout mice for hepatocyte-specific c-Met deletion.
- Assessed gene expression via RT-qPCR and microarray.
- Analyzed cell cycle progression using histone H3 phosphorylation staining.
- Investigated signaling pathways including MAPK/Erk and STAT3.
Main Results:
- Priming events and early gene responses (stress, growth) were unaffected by c-Met loss.
- c-Met deficient hepatocytes were arrested in G2 phase post-DNA replication.
- Loss of c-Met impaired G1/S progression and delayed liver regeneration.
- Key G2/M regulators (Cdk1, Plk1, Aurora A/B, Mad2) and histone phosphorylation were diminished.
Conclusions:
- HGF/c-Met signaling has a non-redundant role in regulating the G2/M gene expression program.
- Persistent Erk1/2 activation by c-Met is essential for successful liver regeneration.
- c-Met signaling is critical for overcoming G2/M cell cycle blockade during liver repair.
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