Inhibition of Granulocytic Myeloid-Derived Suppressor Cells Overcomes Resistance to Immune Checkpoint Inhibition in
Rui Li1, Ramin Salehi-Rad1,2, William Crosson3
1Division of Pulmonary and Critical Care, Department of Medicine, David Geffen School of Medicine at UCLA, Los Angeles, California.
Abstract:
LKB1 inactivating mutations are commonly observed in patients with KRAS-mutant non-small cell lung cancer (NSCLC). Although treatment of NSCLC with immune checkpoint inhibitors (ICI) has resulted in improved overall survival in a subset of patients, studies have revealed that co-occurring KRAS/LKB1 mutations drive primary resistance to ICIs in NSCLC. Effective therapeutic options that overcome ICI resistance in LKB1-mutant NSCLC are limited. Here, we report that loss of LKB1 results in increased secretion of the C-X-C motif (CXC) chemokines with an NH2-terminal Glu-Leu-Arg (ELR) motif in premalignant and cancerous cells, as well as in genetically engineered murine models (GEMM) of NSCLC. Heightened levels of ELR+ CXC chemokines in LKB1-deficient murine models of NSCLC positively correlated with increased abundance of granulocytic myeloid-derived suppressor cells (G-MDSC) locally within the tumor microenvironment and systemically in peripheral blood and spleen. Depletion of G-MDSCs with antibody or functional inhibition via all-trans-retinoic acid (ATRA) led to enhanced antitumor T-cell responses and sensitized LKB1-deficent murine tumors to PD-1 blockade. Combination therapy with anti-PD-1 and ATRA improved local and systemic T-cell proliferation and generated tumor-specific immunity. Our findings implicate ELR+ CXC chemokine-mediated enrichment of G-MDSCs as a potential mediator of immunosuppression in LKB1-deficient NSCLC and provide a rationale for using ATRA in combination with anti-PD-1 therapy in patients with LKB1-deficient NSCLC refractory to ICIs. SIGNIFICANCE: These findings show that accumulation of myeloid-derived suppressor cells in LKB1-deficient non-small cell lung cancer can be overcome via treatment with all-trans-retinoic acid, sensitizing tumors to immunotherapy.
Insights
Loss of LKB1 in KRAS-mutant non-small cell lung cancer increases immunosuppressive myeloid cells. All-trans-retinoic acid (ATRA) combined with PD-1 blockade overcomes this resistance, improving T-cell responses and tumor immunity.
Area of Science:
- Oncology
- Immunology
- Cancer Genetics
Background:
- Inactivating LKB1 mutations are common in KRAS-mutant non-small cell lung cancer (NSCLC).
- Co-occurring KRAS/LKB1 mutations confer primary resistance to immune checkpoint inhibitors (ICIs) in NSCLC.
- Limited therapeutic options exist to overcome ICI resistance in LKB1-mutant NSCLC.
Purpose of the Study:
- To investigate the mechanism of ICI resistance in LKB1-deficient NSCLC.
- To identify therapeutic strategies to overcome ICI resistance in LKB1-mutant NSCLC.
Main Methods:
- Utilized genetically engineered murine models (GEMM) of NSCLC with LKB1 deficiency.
- Assessed the role of ELR+ CXC chemokines and granulocytic myeloid-derived suppressor cells (G-MDSCs).
- Evaluated the efficacy of G-MDSC depletion (antibody) or inhibition (all-trans-retinoic acid, ATRA) in combination with PD-1 blockade.
Main Results:
- LKB1 loss increased secretion of ELR+ CXC chemokines, correlating with increased G-MDSCs in tumors and systemically.
- G-MDSC depletion or ATRA treatment enhanced anti-tumor T-cell responses and sensitized tumors to PD-1 blockade.
- Combination therapy (anti-PD-1 and ATRA) improved T-cell proliferation and generated tumor-specific immunity.
Conclusions:
- ELR+ CXC chemokine-mediated G-MDSC enrichment mediates immunosuppression in LKB1-deficient NSCLC.
- ATRA in combination with anti-PD-1 therapy represents a potential strategy to overcome ICI resistance in LKB1-deficient NSCLC.
- Targeting G-MDSCs offers a promising approach for treating refractory LKB1-mutant NSCLC.
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