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Musso, O.

Publications and source records attributed to Musso, O..

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PPARgamma, a key modulator of metabolic reprogramming, stemness and chemoresistance associated with retrodifferentiation in human hepatocellular carcinomas

Human hepatocellular carcinomas (HCCs) with cancer stem cell (CSC) features are a subclass of therapeutically challenging cancers. We recently showed that retrodifferentiation of hepatic cancer cells into CSC-like cells leads to metabolic reprogramming and chemoresistance. The molecular mechanisms whereby differentiated cancer cells switch towards a CSC phenotype are poorly understood. By studying metabolic reprogramming associated with HCC cell plasticity, we identified an unsuspected role of peroxisome proliferator-activated receptor (PPAR){gamma} in hepatic CSC phenotype acquisition. Gene expression and metabolic analyses performed throughout cell differentiation/retrodifferentiation process of human HepaRG and HBG-BC2 HCC cells show that metabolic reprogramming in hepatic CSCs is associated with fragmented mitochondrial network, decreased respiration, de novo lipogenesis, fatty acid oxidation, but increased glycolysis and lipid storage. Mitochondrial genes downregulated in HepaRG-CSCs are also downregulated in the STEM HCC subclass. While PPAR is the main isoform in differentiated hepatic cells, we find high PPAR{gamma} expression in hepatic CSCs. Accordingly, nuclear localization of PPAR{gamma} is detected in human HCC tumors and PPAR{gamma}high/PPARlow expression is associated with the STEM HCC subclass and a poor outcome in human HCC cohorts. PPAR{gamma} silencing or/and inhibition of its target gene pyruvate dehydrogenase kinase 4 reactivates cell respiration, increases reactive oxygen species production and sensitizes hepatic CSCs to chemotherapy. Conversely, PPAR activation synergizes with chemotherapy to induce cell death. Targeting PPAR{gamma}, a key regulator of metabolic reprogramming and stemness in hepatic CSCs, or modulating the PPAR{gamma}/PPAR balance that finely tunes the differentiation/retrodifferentiation process in HCC deserves further investigation for antitumor therapy. Implications heading and statementPPAR{gamma}, a key regulator of metabolic reprogramming and stemness in hepatic CSC, reduces oxidative phosphorylation and reactive oxygen species production, therefore contributing to HCC chemoresistance.

cancer biology↗