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Identification of Mediators of T-cell Receptor Signaling via the Screening of Chemical Inhibitor Libraries
Published on: January 22, 2019
Salt-inducible kinase 3 protects tumor cells from cytotoxic T-cell attack by promoting TNF-induced NF-κB activation
Antonio Sorrentino1,2, Ayse Nur Menevse3, Tillmann Michels3,2
1Division of Interventional Immunology, Leibniz Institute for Immunotherapy, Regensburg, Germany Antonio.Sorrentino88@outlook.com beckhove@rcii.de.
Background:
Cancer immunotherapeutic strategies showed unprecedented results in the clinic. However, many patients do not respond to immuno-oncological treatments due to the occurrence of a plethora of immunological obstacles, including tumor intrinsic mechanisms of resistance to cytotoxic T-cell (TC) attack. Thus, a deeper understanding of these mechanisms is needed to develop successful immunotherapies.
Methods:
To identify novel genes that protect tumor cells from effective TC-mediated cytotoxicity, we performed a genetic screening in pancreatic cancer cells challenged with tumor-infiltrating lymphocytes and antigen-specific TCs.
Results:
The screening revealed 108 potential genes that protected tumor cells from TC attack. Among them, salt-inducible kinase 3 (SIK3) was one of the strongest hits identified in the screening. Both genetic and pharmacological inhibitions of SIK3 in tumor cells dramatically increased TC-mediated cytotoxicity in several in vitro coculture models, using different sources of tumor and TCs. Consistently, adoptive TC transfer of TILs led to tumor growth inhibition of SIK3-depleted cancer cells in vivo. Mechanistic analysis revealed that SIK3 rendered tumor cells susceptible to tumor necrosis factor (TNF) secreted by tumor-activated TCs. SIK3 promoted nuclear factor kappa B (NF-κB) nuclear translocation and inhibited caspase-8 and caspase-9 after TNF stimulation. Chromatin accessibility and transcriptome analyses showed that SIK3 knockdown profoundly impaired the expression of prosurvival genes under the TNF-NF-κB axis. TNF stimulation led to SIK3-dependent phosphorylation of the NF-κB upstream regulators inhibitory-κB kinase and NF-kappa-B inhibitor alpha on the one side, and to inhibition of histone deacetylase 4 on the other side, thus sustaining NF-κB activation and nuclear stabilization. A SIK3-dependent gene signature of TNF-mediated NF-κB activation was found in a majority of pancreatic cancers where it correlated with increased cytotoxic TC activity and poor prognosis.
Conclusion:
Our data reveal an abundant molecular mechanism that protects tumor cells from cytotoxic TC attack and demonstrate that pharmacological inhibition of this pathway is feasible.
Insights
Salt-inducible kinase 3 (SIK3) protects cancer cells from cytotoxic T-cells (TCs) by inhibiting tumor necrosis factor (TNF) signaling. Inhibiting SIK3 enhances TC-mediated cancer cell killing, offering a new immunotherapy target.
Area of Science:
- Cancer immunology
- Molecular oncology
- Immunotherapy
Background:
- Cancer immunotherapies show promise but face resistance due to tumor-intrinsic mechanisms.
- Tumor cells can evade cytotoxic T-cell (TC) attack, limiting treatment efficacy.
- Understanding these resistance mechanisms is crucial for developing effective immunotherapies.
Purpose of the Study:
- To identify novel genes conferring resistance to TC-mediated cytotoxicity in pancreatic cancer.
- To investigate the role of salt-inducible kinase 3 (SIK3) in tumor cell immune evasion.
- To explore the therapeutic potential of targeting SIK3 in cancer immunotherapy.
Main Methods:
- Genetic screening of pancreatic cancer cells co-cultured with tumor-infiltrating lymphocytes (TILs) and antigen-specific TCs.
- In vitro and in vivo validation of SIK3 inhibition effects on TC-mediated cytotoxicity.
- Mechanistic studies involving tumor necrosis factor (TNF) signaling, NF-κB pathway, and gene expression analysis.
Main Results:
- A screen identified 108 resistance genes, with salt-inducible kinase 3 (SIK3) being a key hit.
- SIK3 inhibition (genetic or pharmacologic) significantly enhanced TC-mediated cytotoxicity in vitro and reduced tumor growth in vivo.
- SIK3 promotes tumor cell resistance to TNF by regulating NF-κB activation and prosurvival gene expression.
Conclusions:
- SIK3 is a critical mediator of tumor cell resistance to cytotoxic T-cells via the TNF-NF-κB axis.
- Pharmacological inhibition of SIK3 represents a feasible strategy to overcome tumor immune evasion.
- A SIK3-dependent gene signature in pancreatic cancer correlates with increased TC activity and poor prognosis.
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