Nature Communications

Alcohol reshapes liver zonal plasticity and immune-metabolic reprogramming in metabolic-syndrome associated hepatocellular carcinoma

Experiments in animalsMechanisms

Abstract

Hepatocellular carcinoma (HCC) commonly arises in metabolic dysfunction-associated steatohepatitis (MASH), alcohol-related liver disease (ALD), and metabolic dysfunction-associated ALD (MetALD), yet how zonal metabolic programs govern tumor lineage and immune responses remains unclear. Here, using complementary murine models of steatohepatitis-associated hepatocarcinogenesis, we show that CTNNB1-mutant MASH-HCC originates from periportal and midlobular hepatocytes through perivenous reprogramming. This transition is characterized by β-catenin activation, loss of periportal metabolic functions, and induction of the immunosuppressive IDO1-kynurenine-AhR axis. In contrast, ethanol exposure suppresses perivenous xenobiotic programs, destabilizes the β-catenin/AhR/CAR axis, and increases tumor heterogeneity by generating both progenitor/biliary- and hepatocyte-derived MetALD-HCC that remain sensitive to anti-programmed death-1 (aPD1) therapy. Pharmacologic AhR inhibition or hepatocyte-specific β-catenin deletion reduces MASH-HCC burden and restores sensitivity to aPD1 treatment. Together, these findings identify AhR as a central mediator of β-catenin-driven tumor immunosuppression and a potential therapeutic target in CTNNB1-mutant HCC, highlighting context-dependent mechanisms of immune escape in alcohol-associated HCC.