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Generation of Orthotopic Pancreatic Tumors and Ex vivo Characterization of Tumor-Infiltrating T Cell Cytotoxicity
Published on: December 7, 2019
Studies on mechanisms of interferon-gamma action in pancreatic cancer using a data-driven and model-based approach
Falko Lange1, Katja Rateitschak, Brit Fitzner
1Department of Systems Biology and Bioinformatics, University of Rostock, 18051 Rostock, Germany.
Background:
Interferon-gamma (IFNγ) is a multifunctional cytokine with antifibrotic and antiproliferative efficiency. We previously found that pancreatic stellate cells (PSC), the main effector cells in cancer-associated fibrosis, are targets of IFNγ action in the pancreas. Applying a combined experimental and computational approach, we have demonstrated a pivotal role of STAT1 in IFNγ signaling in PSC. Using in vivo and in vitro models of pancreatic cancer, we have now studied IFNγ effects on the tumor cells themselves. We hypothesize that IFNγ inhibits tumor progression through two mechanisms, reduction of fibrogenesis and antiproliferative effects on the tumor cells. To elucidate the molecular action of IFNγ, we have established a mathematical model of STAT1 activation and combined experimental studies with computer simulations.
Results:
In BALB/c-nu/nu mice, flank tumors composed of DSL-6A/C1 pancreatic cancer cells and PSC grew faster than pure DSL-6A/C1 cell tumors. IFNγ inhibited the growth of both types of tumors to a similar degree. Since the stroma reaction typically reduces the efficiency of therapeutic agents, these data suggested that IFNγ may retain its antitumor efficiency in PSC-containing tumors by targeting the stellate cells. Studies with cocultures of DSL-6A/C1 cells and PSC revealed a modest antiproliferative effect of IFNγ under serum-free conditions. Immunoblot analysis of STAT1 phosphorylation and confocal microscopy studies on the nuclear translocation of STAT1 in DSL-6A/C1 cells suggested that IFNγ-induced activation of the transcription factor was weaker than in PSC. The mathematical model not only reproduced the experimental data, but also underscored the conclusions drawn from the experiments by indicating that a maximum of 1/500 of total STAT1 is located as phosphorylated STAT1 in the nucleus upon IFNγ treatment of the tumor cells.
Conclusions:
IFNγ is equally effective in DSL-6A/C1 tumors with and without stellate cells. While its action in the presence of PSC may be explained by inhibition of fibrogenesis, its efficiency in PSC-free tumors is unlikely to be caused by direct effects on the tumor cells alone but may involve inhibitory effects on local stroma cells as well. To gain further insights, we also plan to apply computer simulations to the analysis of tumor growth in vivo.
Insights
Interferon-gamma (IFNγ) effectively inhibits pancreatic cancer growth by targeting both tumor cells and associated stromal cells. This cytokine reduces fibrogenesis and exerts antiproliferative effects, crucial for controlling tumor progression.
Area of Science:
- Oncology
- Immunology
- Computational Biology
Background:
- Interferon-gamma (IFNγ) is a cytokine with known antifibrotic and antiproliferative properties.
- Pancreatic stellate cells (PSCs) are key players in pancreatic cancer-associated fibrosis and are targets of IFNγ.
- STAT1 is a critical mediator of IFNγ signaling in PSCs.
Purpose of the Study:
- To investigate the dual role of IFNγ in pancreatic cancer: inhibiting fibrogenesis and directly affecting tumor cells.
- To elucidate the molecular mechanisms of IFNγ action using experimental and computational models.
- To assess the efficacy of IFNγ in pancreatic tumors with and without PSCs.
Main Methods:
- In vivo studies using mouse models of pancreatic cancer (DSL-6A/C1 cells and PSCs).
- In vitro coculture experiments to assess antiproliferative effects.
- Molecular analyses including immunoblotting for STAT1 phosphorylation and confocal microscopy for STAT1 nuclear translocation.
- Development of a mathematical model of STAT1 activation.
Main Results:
- IFNγ inhibited the growth of pancreatic tumors, regardless of the presence of PSCs, to a similar extent.
- Direct antiproliferative effects of IFNγ on tumor cells were modest, with weaker STAT1 activation compared to PSCs.
- Mathematical modeling indicated minimal nuclear STAT1 phosphorylation in tumor cells upon IFNγ treatment.
Conclusions:
- IFNγ demonstrates equal efficacy in tumors with and without PSCs, suggesting a dual mechanism of action.
- In tumors with PSCs, IFNγ likely acts by inhibiting fibrogenesis.
- In PSC-free tumors, IFNγ's efficacy may involve indirect effects on other stromal cells rather than direct tumor cell effects alone.
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