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Immune-Modulation by Epidermal Growth Factor Receptor Inhibitors: Implication on Anti-Tumor Immunity in Lung Cancer
Jin S Im1, Amanda C Herrmann1, Chantale Bernatchez2
1Section of Transplantation Immunology, Department of Stem Cell Transplantation and Cellular Therapy, The University of Texas M.D. Anderson Cancer Center, Houston, Texas, United States of America.
Abstract:
Skin toxicity is the most common toxicity caused by Epidermal Growth Factor Receptor (EGFR) inhibitors, and has been associated with clinical efficacy. As EGFR inhibitors enhance the expression of antigen presenting molecules in affected skin keratinocytes, they may concurrently facilitate neo-antigen presentation in lung cancer tumor cells contributing to anti-tumor immunity. Here, we investigated the modulatory effect of the EGFR inhibitor, erlotinib on antigen presenting molecules and PD-L1, prominent immune checkpoint protein, of skin keratinocytes and lung cancer cell lines to delineate the link between EGFR signaling pathway inhibition and potential anti-tumor immunity. Erlotinib up-regulated MHC-I and MHC-II proteins on IFNγ treated keratinocytes but abrogated IFNγ-induced expression of PD-L1, suggesting the potential role of infiltrating autoreactive T cells in the damage of keratinocytes in affected skin. Interestingly, the surface expression of MHC-I, MHC-II, and PD-L1 was up-regulated in response to IFNγ more often in lung cancer cell lines sensitive to erlotinib, but only expression of PD-L1 was inhibited by erlotinib. Further, erlotinib significantly increased T cell mediated cytotoxicity on lung cancer cells. Lastly, the analysis of gene expression dataset of 186 lung cancer cell lines from Cancer Cell Line Encyclopedia demonstrated that overexpression of PD-L1 was associated with sensitivity to erlotinib and higher expression of genes related to antigen presenting pathways and IFNγ signaling pathway. Our findings suggest that the EGFR inhibitors can facilitate anti-tumor adaptive immune responses by breaking tolerance especially in EGFR driven lung cancer that are associated with overexpression of PD-L1 and genes related to antigen presentation and inflammation.
Insights
Epidermal Growth Factor Receptor (EGFR) inhibitors like erlotinib can enhance anti-tumor immunity in lung cancer by up-regulating antigen presentation and increasing T cell activity. This suggests a link between EGFR inhibition, immune response, and potential therapeutic benefits.
Area of Science:
- Oncology
- Immunology
- Dermatology
Background:
- Skin toxicity is a common side effect of Epidermal Growth Factor Receptor (EGFR) inhibitors, yet it correlates with clinical efficacy.
- EGFR inhibitors may enhance anti-tumor immunity by promoting antigen presentation in cancer cells.
Purpose of the Study:
- To investigate how erlotinib, an EGFR inhibitor, modulates antigen-presenting molecules and PD-L1 in skin and lung cancer cells.
- To explore the connection between EGFR signaling pathway inhibition and potential anti-tumor immunity.
Main Methods:
- Treated keratinocytes and lung cancer cell lines with erlotinib and interferon-gamma (IFNγ).
- Assessed surface expression of MHC-I, MHC-II, and PD-L1.
- Analyzed T cell-mediated cytotoxicity against lung cancer cells.
- Examined gene expression datasets from lung cancer cell lines.
Main Results:
- Erlotinib upregulated MHC-I and MHC-II on IFNγ-treated keratinocytes but reduced IFNγ-induced PD-L1 expression.
- Lung cancer cell lines sensitive to erlotinib showed increased IFNγ-induced MHC-I, MHC-II, and PD-L1 expression, with erlotinib inhibiting PD-L1.
- Erlotinib enhanced T cell-mediated cytotoxicity against lung cancer cells.
- Overexpression of PD-L1 correlated with erlotinib sensitivity and increased expression of antigen presentation and IFNγ pathway genes in lung cancer.
Conclusions:
- EGFR inhibitors may promote anti-tumor adaptive immune responses by modulating antigen presentation and immune checkpoints.
- Erlotinib's effects suggest a mechanism for breaking tolerance, particularly in EGFR-driven lung cancers with high PD-L1 and inflammation-related gene expression.
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