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Defining Gene Functions in Tumorigenesis by Ex vivo Ablation of Floxed Alleles in Malignant Peripheral Nerve Sheath Tumor Cells
Published on: August 25, 2021
TRAIL-induced programmed necrosis as a novel approach to eliminate tumor cells
Susann Voigt, Stephan Philipp, Parvin Davarnia
1Institut für Immunologie, Christian-Albrechts-Universität, Michaelisstrasse 5, 24105 Kiel, Germany. dadam@email.uni-kiel.de.
Background:
The cytokine TRAIL represents one of the most promising candidates for the apoptotic elimination of tumor cells, either alone or in combination therapies. However, its efficacy is often limited by intrinsic or acquired resistance of tumor cells to apoptosis. Programmed necrosis is an alternative, molecularly distinct mode of programmed cell death that is elicited by TRAIL under conditions when the classical apoptosis machinery fails or is actively inhibited. The potential of TRAIL-induced programmed necrosis in tumor therapy is, however, almost completely uncharacterized. We therefore investigated its impact on a panel of tumor cell lines of wide-ranging origin.
Methods:
Cell death/viability was measured by flow cytometry/determination of intracellular ATP levels/crystal violet staining. Cell surface expression of TRAIL receptors was detected by flow cytometry, expression of proteins by Western blot. Ceramide levels were quantified by high-performance thin layer chromatography and densitometric analysis, clonogenic survival of cells was determined by crystal violet staining or by soft agarose cloning.
Results:
TRAIL-induced programmed necrosis killed eight out of 14 tumor cell lines. Clonogenic survival was reduced in all sensitive and even one resistant cell lines tested. TRAIL synergized with chemotherapeutics in killing tumor cell lines by programmed necrosis, enhancing their effect in eight out of 10 tested tumor cell lines and in 41 out of 80 chemotherapeutic/TRAIL combinations. Susceptibility/resistance of the investigated tumor cell lines to programmed necrosis seems to primarily depend on expression of the pro-necrotic kinase RIPK3 rather than the related kinase RIPK1 or cell surface expression of TRAIL receptors. Furthermore, interference with production of the lipid ceramide protected all tested tumor cell lines.
Conclusions:
Our study provides evidence that TRAIL-induced programmed necrosis represents a feasible approach for the elimination of tumor cells, and that this treatment may represent a promising new option for the future development of combination therapies. Our data also suggest that RIPK3 expression may serve as a potential predictive marker for the sensitivity of tumor cells to programmed necrosis and extend the previously established role of ceramide as a key mediator of death receptor-induced programmed necrosis (and thus as a potential target for future therapies) also to the tumor cell lines examined here.
Insights
Tumor necrosis factor-related apoptosis-inducing ligand (TRAIL) can induce programmed necrosis in cancer cells, offering a new therapeutic avenue. RIPK3 expression and ceramide levels are key factors in this cell death pathway.
Area of Science:
- Oncology
- Cell Biology
- Molecular Medicine
Background:
- Tumor necrosis factor-related apoptosis-inducing ligand (TRAIL) is a promising anti-cancer agent.
- Tumor cell resistance to apoptosis limits TRAIL efficacy.
- Programmed necrosis is an alternative cell death pathway induced by TRAIL when apoptosis is inhibited.
Purpose of the Study:
- To investigate the impact of TRAIL-induced programmed necrosis on various tumor cell lines.
- To explore the potential of TRAIL-induced programmed necrosis as a cancer therapy.
- To identify factors influencing tumor cell sensitivity to TRAIL-induced programmed necrosis.
Main Methods:
- Assessed cell death and viability using flow cytometry, ATP levels, and crystal violet staining.
- Measured TRAIL receptor expression via flow cytometry and protein expression via Western blot.
- Quantified ceramide levels and clonogenic survival.
Main Results:
- TRAIL-induced programmed necrosis effectively killed 8 out of 14 tumor cell lines.
- TRAIL synergized with chemotherapeutics, enhancing tumor cell killing.
- RIPK3 expression, not RIPK1 or TRAIL receptor levels, primarily determined sensitivity; ceramide interference conferred protection.
Conclusions:
- TRAIL-induced programmed necrosis is a viable strategy for tumor cell elimination and combination therapies.
- RIPK3 expression may predict tumor cell response to programmed necrosis.
- Ceramide is confirmed as a crucial mediator and potential therapeutic target in TRAIL-induced programmed necrosis.
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