Exogenous lipid uptake induces metabolic and functional reprogramming of tumor-associated myeloid-derived suppressor cells

肿瘤微环境 状态5 CD36 癌症研究 髓源性抑制细胞 T细胞 癌症免疫疗法 细胞生物学 化学 免疫系统 脂质代谢 免疫疗法 生物 信号转导 免疫学 生物化学 受体 抑制器 基因
作者
Amir A. Al-Khami,Liqin Zheng,Luis Del Valle,Fokhrul Hossain,Dorota Wyczechowska,Jovanny Zabaleta,María de la Paz Sánchez,Matthew J. Dean,Paulo C. Rodrı́guez,Augusto C. Ochoa
出处
期刊:OncoImmunology [Landes Bioscience]
卷期号:6 (10): e1344804-e1344804 被引量:346
标识
DOI:10.1080/2162402x.2017.1344804
摘要

Myeloid-derived suppressor cells (MDSC) promote tumor growth by blocking anti-tumor T cell responses. Recent reports show that MDSC increase fatty acid uptake and fatty acid oxidation (FAO) to support their immunosuppressive functions. Inhibition of FAO promoted a therapeutic T cell-mediated anti-tumor effect. Here, we sought to determine the mechanisms by which tumor-infiltrating MDSC increase the uptake of exogenous lipids and undergo metabolic and functional reprogramming to become highly immunosuppressive cells. The results showed that tumor-derived cytokines (G-CSF and GM-CSF) and the subsequent signaling through STAT3 and STAT5 induce the expression of lipid transport receptors with the resulting increase in the uptake of lipids present at high concentrations in the tumor microenvironment. The intracellular accumulation of lipids increases the oxidative metabolism and activates the immunosuppressive mechanisms. Inhibition of STAT3 or STAT5 signaling or genetic depletion of the fatty acid translocase CD36 inhibits the activation of oxidative metabolism and the induction of immunosuppressive function in tumor-infiltrating MDSC and results in a CD8+ T cell-dependent delay in tumor growth. Of note, human tumor-infiltrating and peripheral blood MDSC also upregulate the expression of lipid transport proteins, and lipids promote the generation of highly suppressive human MDSC in vitro. Our data therefore provide a mechanism by which tumor-derived factors and the high lipid content in the tumor microenvironment can cause the profound metabolic and functional changes found in MDSC and suggest novel approaches to prevent or reverse these processes. These results could further enhance the efficacy of cancer immunotherapy.
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