Inhibition of TBK1/IKKε mediated RIPK1 phosphorylation sensitizes tumors to immune cell killing
Anastasia Piskopou1,2, David W Vredevoogd3, Xiangjun Kong3
1Biomolecular Mass Spectrometry and Proteomics, Bijvoet Center for Biomolecular Research and Utrecht Institute for Pharmaceutical Sciences, University of Utrecht, Utrecht, The Netherlands.
Abstract:
Resistance to immune cell-mediated cytotoxicity poses a significant challenge in cancer therapy, compromising the efficacy of immunotherapeutic approaches such as immune checkpoint blockade (ICB) treatment. To enhance therapy outcomes, it is crucial to identify interventions that can synergize with ICB therapy to overcome tumor resistance. Therefore, we need to define the cellular mechanisms that sensitize tumors to cytotoxic T cells. CD8 T cells rely on cytokines such as TNF to carry out their cytotoxicity against tumors, and recent findings link select tumor mutations in the TNF pathway to increased T cell killing, in a manner dependent on RIPK1 kinase. Here, we demonstrate that sensitized tumor cells fail to initiate inhibitory RIPK1 phosphorylation at site S25 upon T cell attack, thereby foregoing a pro-survival checkpoint early in TNF signal transduction. Consequently, tumor cells experiencing a loss of TNF-induced RIPK1 S25 phosphorylation exhibit increased RIPK1 activation and fail to recruit non-canonical IKK kinases (TBK1 and IKKε) to the TNFR1 complex. Functional knockouts of TBK1 and IKKε in melanoma cells result in heightened sensitivity not only in CD8 T cell but also in Natural Killer cell attacks. Our findings indicate that preventing TBK1 and IKKε recruitment to the TNF signaling complex, thereby blocking RIPK1 pro-survival phosphorylation and promoting direct RIPK1 activation, is a tractable strategy to increase tumor sensitivity to immune cell killing and has the potential to benefit current immunotherapy interventions.
Insights
Tumor cells resist immune attacks by blocking a survival signal. Blocking this signal, involving RIPK1, TBK1, and IKKε, enhances T cell and NK cell killing, improving cancer immunotherapy.
Area of Science:
- Immunology
- Cancer Biology
- Molecular Signaling
Background:
- Tumor resistance to immune cell-mediated cytotoxicity limits immunotherapy efficacy.
- Identifying mechanisms to sensitize tumors to cytotoxic T cells is crucial for enhancing treatment outcomes.
- Tumor mutations in the TNF pathway can increase T cell killing, dependent on RIPK1 kinase.
Purpose of the Study:
- To define cellular mechanisms sensitizing tumors to cytotoxic T cells.
- To investigate the role of RIPK1 phosphorylation and non-canonical IKK kinases in TNF signaling and immune evasion.
- To explore strategies for overcoming resistance to immune checkpoint blockade (ICB) therapy.
Main Methods:
- Analysis of RIPK1 phosphorylation at S25 in response to T cell attack.
- Investigating the recruitment of TBK1 and IKKε to the TNFR1 complex.
- Functional knockout of TBK1 and IKKε in melanoma cells.
Main Results:
- Sensitized tumor cells fail to initiate inhibitory RIPK1 S25 phosphorylation upon T cell attack.
- Loss of TNF-induced RIPK1 S25 phosphorylation leads to increased RIPK1 activation.
- Melanoma cells lacking TBK1 and IKKε show heightened sensitivity to CD8 T cell and Natural Killer cell attacks.
Conclusions:
- Blocking TBK1 and IKKε recruitment to the TNF signaling complex enhances tumor sensitivity to immune cell killing.
- This strategy involves preventing RIPK1 pro-survival phosphorylation and promoting RIPK1 activation.
- Targeting this pathway offers a potential approach to improve current immunotherapy interventions.
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