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Published on: October 30, 2016
Selinexor Enhances NK Cell Activation Against Malignant B Cells via Downregulation of HLA-E
Jack G Fisher1, Christopher J Walker2, Amber Dp Doyle1
1School of Clinical and Experimental Sciences, University of Southampton, Southampton, United Kingdom.
Abstract:
Selinexor is an FDA approved selective inhibitor of the nuclear export protein exportin-1 (XPO1) and causes specific cancer cell death via nuclear accumulation of tumor suppressor proteins. Design of rational studies for the use of selinexor in combination with other therapeutic agents, such as immunotherapies, requires a fundamental understanding of the effects of selinexor on the immune system. One important emerging area of immunotherapy are natural killer (NK) cell based therapeutics. NK cell function is tightly regulated by a balance of signals derived from multiple activating and inhibitory receptors. Thus in cancer, up-regulation of stress ligands recognised by activating receptors or down-regulation of HLA class I recognised by inhibitory receptors can result in an anti-cancer NK cell response. Changes in XPO1 function therefore have the potential to affect NK cell function through shifting this balance. We therefore sought to investigate how selinexor may affect NK cell function. Selinexor pre-treatment of lymphoma cells significantly increased NK cell mediated cytotoxicity against SU-DHL-4, JeKo-1 and Ramos cells, concurrent with increased CD107a and IFNγ expression on NK cells. In addition, selinexor enhanced ADCC against lymphoma cells coated with the anti-CD20 antibodies rituximab and obinutuzumab. In probing the likely mechanism, we identified that XPO1 inhibition significantly reduced the surface expression of HLA-E on lymphoma cell lines and on primary chronic lymphocytic leukemia cells. HLA-E binds the inhibitory receptor NKG2A and in accordance with this, selinexor selectively increased activation of NKG2A+ NK cells. Our data reveals that selinexor, in addition to its direct cytotoxic activity, also activates an anti-cancer immune response via disruption of the inhibitory NKG2A:HLA-E axis.
Insights
Selinexor, a cancer drug, enhances natural killer (NK) cell anti-cancer activity by disrupting the NKG2A:HLA-E axis. This drug boosts NK cell-mediated killing and antibody-dependent cellular cytotoxicity against lymphoma cells.
Area of Science:
- Immunology
- Oncology
- Pharmacology
Background:
- Selinexor inhibits exportin-1 (XPO1), leading to tumor suppressor protein nuclear accumulation and cancer cell death.
- Understanding selinexor's immune effects is crucial for combination therapies, particularly with natural killer (NK) cell-based immunotherapies.
- NK cell function relies on a balance of activating and inhibitory receptor signals, which can be modulated in cancer.
Purpose of the Study:
- To investigate the effects of selinexor on NK cell function and anti-cancer immune responses.
- To determine if selinexor can enhance NK cell-mediated cytotoxicity and antibody-dependent cellular cytotoxicity (ADCC).
- To elucidate the underlying mechanisms by which selinexor influences NK cell activity.
Main Methods:
- Selinexor pre-treatment of lymphoma cell lines (SU-DHL-4, JeKo-1, Ramos) and primary chronic lymphocytic leukemia cells.
- Assessment of NK cell-mediated cytotoxicity, CD107a and IFNγ expression.
- Evaluation of ADCC using anti-CD20 antibodies (rituximab, obinutuzumab).
- Analysis of surface HLA-E expression and NKG2A+ NK cell activation.
Main Results:
- Selinexor pre-treatment significantly increased NK cell-mediated cytotoxicity against lymphoma cells.
- Selinexor enhanced ADCC against lymphoma cells treated with anti-CD20 antibodies.
- XPO1 inhibition by selinexor reduced surface HLA-E expression on cancer cells.
- Selinexor selectively increased the activation of NKG2A+ NK cells, suggesting disruption of the inhibitory NKG2A:HLA-E axis.
Conclusions:
- Selinexor enhances NK cell-mediated anti-cancer activity beyond its direct cytotoxic effects.
- Selinexor activates anti-cancer immunity by disrupting the inhibitory NKG2A:HLA-E pathway.
- These findings support the rational design of selinexor-based combination immunotherapies.
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