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Resistance to Fas-mediated apoptosis in human hepatoma cells
G Natoli1, A Ianni, A Costanzo
1Fondazione Andrea Cesalpino, Università degli Studi di Roma La Sapienza, Italy.
Abstract:
CTLs- and lymphokine-induced apoptosis of infected hepatocytes during the course of chronic viral hepatitis is thought to be important for both disease termination and prevention of hepatocellular transformation. We therefore studied apoptosis induced by Fas (APO-1 or CD95)-a widely expressed cell surface receptor whose ligand is involved in lymphocyte cytotoxicity-in a set of human hepatoma cell lines. As normal hepatocytes, all of the human hepatoma cell lines tested do express detectable amounts of Fas on their surface. Nevertheless, only PLC/PRF/5 cells undergo apoptosis following treatment with anti-Fas. Systematic cloning and sequence analysis of the Fas cDNA did not show mutations in the Fas gene in any of the cells lines tested. However, due to alternative splicing, 5 to 10% of the Fas cDNAs are deleted of 63 internal nucleotides corresponding to the transmembrane domain, thus encoding for a soluble and secreted form of Fas (Fas delta TM), potentially able to neutralize anti-Fas or Fas-Ligand. Although we could not demonstrate a direct correlation between resistance of different hepatoma cell lines to Fas mediated death and endogenous expression of this transcript, we show that PLC/PRF 5 stable transfectants overexpressing Fas delta TM are less sensitive to anti-Fas than control cells. In three different cell lines, resistance to anti-Fas was overcome by treatment with the protein synthesis inhibitor cycloheximide. Although this could suggest the existence of short-lived repressors of the Fas-activated apoptotic signalling pathway(s), we show that translational inhibition is not required for the synergistic effect of cycloheximide to take place, and that resistant hepatoma cells can be sensitized to anti-Fas by subinhibitory concentrations of this protein synthesis inhibitor. Since cycloheximide is able to activate intracellular signalling independently on its effects on protein synthesis, we suggest that it might provide a costimulatory signal that cooperates with Fas in the induction of cell death and that, at least in the cells we tested, resistance to Fas is not an active process involving gene transcription and translation but only the consequence of an inadequate apoptotic stimulation.
Insights
Hepatoma cells resist Fas-induced apoptosis due to alternative splicing producing soluble Fas (Fas delta TM) and inadequate apoptotic stimulation, not active gene repression. Cycloheximide sensitizes cells by providing a costimulatory signal.
Area of Science:
- Hepatology
- Molecular Biology
- Immunology
Background:
- Apoptosis of infected hepatocytes is crucial for viral hepatitis control and preventing liver cancer.
- Fas (CD95) receptor-mediated apoptosis plays a role in lymphocyte-mediated cytotoxicity.
- Human hepatoma cell lines are investigated for their response to Fas-induced apoptosis.
Purpose of the Study:
- To investigate Fas-mediated apoptosis in human hepatoma cell lines.
- To identify mechanisms of resistance to Fas-induced cell death in these cells.
- To explore strategies for overcoming resistance to Fas-mediated apoptosis.
Main Methods:
- Studied apoptosis induction by anti-Fas in human hepatoma cell lines.
- Analyzed Fas cDNA for mutations and alternative splicing.
- Investigated the role of soluble Fas (Fas delta TM) and cycloheximide in modulating apoptosis.
Main Results:
- Hepatoma cell lines express Fas but vary in their apoptotic response to anti-Fas; PLC/PRF/5 cells undergo apoptosis.
- Alternative splicing produces a soluble Fas (Fas delta TM) variant, potentially neutralizing Fas signaling.
- Overexpression of Fas delta TM reduced sensitivity to anti-Fas.
- Cycloheximide, even at subinhibitory concentrations, sensitized resistant cells to anti-Fas, suggesting a costimulatory role independent of protein synthesis inhibition.
Conclusions:
- Resistance to Fas-mediated apoptosis in hepatoma cells is not due to active gene repression but inadequate apoptotic stimulation.
- Soluble Fas (Fas delta TM) may contribute to resistance.
- Cycloheximide can overcome resistance by providing a costimulatory signal, highlighting potential therapeutic strategies.