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Experimental Metastasis and CTL Adoptive Transfer Immunotherapy Mouse Model
Published on: November 26, 2010
FFAR2 expressing myeloid-derived suppressor cells drive cancer immunoevasion
Zeda Zhao1, Juliang Qin1, Ying Qian1
1Shanghai Frontiers Science Center of Genome Editing and Cell Therapy, Shanghai Key Laboratory of Regulatory Biology and School of Life Sciences, Institute of Biomedical Sciences and School of Life Sciences, East China Normal University, 500 Dongchuan Road, Shanghai, 200241, China.
Background:
Emerging evidences suggest that aberrant metabolites contributes to the immunosuppressive microenvironment that leads to cancer immune evasion. Among tumor immunosuppressive cells, myeloid-derived suppressor cells (MDSCs) are pathologically activated and extremely immunosuppressive, which are closely associated with poor clinical outcomes of cancer patients. However, the correlation between MDSCs mediated immunosuppression and particular cancer metabolism remained elusive.
Methods:
Spontaneous lung adenocarcinoma and subcutaneous mouse tumor models, gas chromatography-mass spectrometry (GC-MS) and immunofluorescence assay of patient-derived lung adenocarcinoma tissues, and flow cytometry, RNA sequencing and Western blotting of immune cells, were utilized.
Results:
Metabolite profiling revealed a significant accumulation of acetic acids in tumor tissues from both patients and mouse model, which contribute to immune suppression and cancer progression significantly through free fatty acid receptor 2 (FFAR2). Furthermore, FFAR2 is highly expressed in the myeloid-derived suppressor cells (MDSCs) from the tumor of lung adenocarcinoma (LUAD) patients which is greatly associated with poor prognosis. Surprisingly, whole or myeloid Ffar2 gene deletion markedly inhibited urethane-induced lung carcinogenesis and syngeneic tumor growth with reduced MDSCs and increased CD8+ T cell infiltration. Mechanistically, FFAR2 deficiency in MDSCs significantly reduced the expression of Arg1 through Gαq/Calcium/PPAR-γ axis, which eliminated T cell dysfunction through relieving L-Arginine consumption in tumor microenvironment. Therefore, replenishment of L-Arginine or inhibition to PPAR-γ restored acetic acids/FFAR2 mediated suppression to T cells significantly. Finally, FFAR2 inhibition overcame resistance to immune checkpoint blockade through enhancing the recruitment and cytotoxicity of tumor-infiltrating T cells.
Conclusion:
Altogether, our results demonstrate that the acetic acids/FFAR2 axis enhances MDSCs mediated immunosuppression through Gαq/calcium/PPAR-γ/Arg1 signaling pathway, thus contributing to cancer progression. Therefore, FFAR2 may serve as a potential new target to eliminate pathologically activated MDSCs and reverse immunosuppressive tumor microenvironment, which has great potential in improving clinical outcomes of cancer immunotherapy.
Insights
Acetic acids promote cancer immune evasion by activating myeloid-derived suppressor cells (MDSCs) via FFAR2. Targeting this axis can reverse immunosuppression and improve cancer immunotherapy outcomes.
Area of Science:
- Oncology
- Immunology
- Metabolomics
Background:
- Aberrant metabolites contribute to cancer immune evasion by creating an immunosuppressive tumor microenvironment.
- Myeloid-derived suppressor cells (MDSCs) are key immunosuppressive cells associated with poor cancer prognosis.
- The link between MDSC-mediated immunosuppression and specific cancer metabolism was unclear.
Purpose of the Study:
- To investigate the role of cancer metabolism in MDSC-mediated immunosuppression.
- To identify specific metabolites and pathways involved in lung adenocarcinoma immune evasion.
- To explore potential therapeutic targets for reversing the immunosuppressive tumor microenvironment.
Main Methods:
- Utilized lung adenocarcinoma mouse models and patient-derived tissues.
- Employed gas chromatography-mass spectrometry (GC-MS) for metabolite profiling.
- Conducted flow cytometry, RNA sequencing, and Western blotting on immune cells.
Main Results:
- Accumulation of acetic acids in tumors correlated with immune suppression and cancer progression via FFAR2.
- FFAR2 is highly expressed in MDSCs from lung adenocarcinoma patients, associated with poor prognosis.
- FFAR2 deletion inhibited tumor growth, reduced MDSCs, and increased CD8+ T cell infiltration.
- FFAR2 deficiency in MDSCs decreased Arg1 expression via Gαq/Calcium/PPAR-γ axis, restoring T cell function.
- FFAR2 inhibition enhanced anti-tumor immunity and overcame resistance to immune checkpoint blockade.
Conclusions:
- The acetic acids/FFAR2 axis drives MDSC-mediated immunosuppression through the Gαq/calcium/PPAR-γ/Arg1 pathway.
- FFAR2 is a potential therapeutic target for reversing immunosuppression and enhancing cancer immunotherapy.
- Targeting FFAR2 may improve clinical outcomes for cancer patients, particularly in lung adenocarcinoma.
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