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Mesenchymal stromal cells induce distinct myeloid-derived suppressor cells in inflammation
Hyun Ju Lee, Jung Hwa Ko, Hyeon Ji Kim, Hyun Jeong Jeong, Joo Youn Oh
Hyun Ju Lee, Jung Hwa Ko, Hyeon Ji Kim, Hyun Jeong Jeong, Joo Youn Oh
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Research Article Immunology

Mesenchymal stromal cells induce distinct myeloid-derived suppressor cells in inflammation

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Abstract

Mesenchymal stem/stromal cells (MSCs) regulate immunity through myeloid-derived suppressor cells (MDSCs), which are a heterogeneous population of immature myeloid cells with phenotypic and functional diversity. Herein, we identified a distinct subset of MDSCs induced by MSCs in the BM under inflammatory conditions. MSCs directed the differentiation of Ly6Glo BM cells from CD11bhiLy6Chi cells to CD11bmidLy6Cmid cells both in cell contact–independent and –dependent manners upon GM-CSF stimulation in vitro and in mice with experimental autoimmune uveoretinitis (EAU). RNA-Seq indicated that MSC-induced CD11bmidLy6CmidLy6Glo cells had a distinct transcriptome profile from CD11bhiLy6ChiLy6Glo cells. Phenotypic, molecular, and functional analyses showed that CD11bmidLy6CmidLy6Glo cells differed from CD11bhiLy6ChiLy6Glo cells by low expression of MHC class II and costimulatory molecules and proinflammatory cytokines, high production of immunoregulatory molecules, lack of change in response to LPS, and inhibition of T cell proliferation and activation. Consequently, adoptive transfer of MSC-induced CD11bmidLy6CmidLy6Glo cells significantly attenuated the development of EAU in mice. Further mechanistic study revealed that suppression of prostaglandin E2 (PGE2) and HGF secretion in MSCs by siRNA transfection partially reversed the effects of MSCs on MDSC differentiation. Altogether, data demonstrate that MSCs drive the differentiation of BM cells toward CD11bmidLy6CmidLy6Glo MDSCs, in part through HGF and COX-2/PGE2, leading to resolution of ocular autoimmune inflammation.

Authors

Hyun Ju Lee, Jung Hwa Ko, Hyeon Ji Kim, Hyun Jeong Jeong, Joo Youn Oh

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Figure 2

MSCs drive differentiation of BM cells into antiinflammatory phenotypes under inflammatory stimulation.

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MSCs drive differentiation of BM cells into antiinflammatory phenotypes ...
(A–C) BM cells cocultured with MSCs in direct coculture or Transwell system were stimulated by GM-CSF (40 ng/mL) for 5 days and assayed. Representative flow cytometry histograms (A) and quantitative results for the surface expression of MHC class II, CD40, CD80, and CD86 in BM cells (B) and for the intracellular expression of arginase and IL-10 (C). (D) Real-time RT-PCR assay for Arg1 encoding arginase and Nos2 encoding inducible nitric oxide synthase. Shown are data scaled to BM cells not treated with GM-CSF or cocultured with MSCs. (E) ELISA for TNF-α, IL-10, active TGF-β1, and active TGF-β2 in the cell-free coculture supernatant. Data (mean ± SD) are from 3 independent sets of experiments (n = 2–4 in each group per set. Each biological sample was assayed in 3 technical replicates for RT-PCR and ELISA). A dot depicts data from 1 biological sample. *P < 0.05, **P < 0.01, ***P < 0.001, ****P < 0.0001 by 1-way ANOVA and Tukey’s multiple-comparison test.

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