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Granulocytic myeloid–derived suppressor cells sustain HIV reservoirs by inhibiting viral reactivation via arginase 1–mediated mechanisms
Ana Gallego-Cortés, Judith Grau-Expósito, Irene Mota-Gómez, Aleix Benitez-Martinez, Josep Castellvi, Jordi Navarro, Adrian Curran, Joaquin Burgos, Paula Suanzes, Vicenç Falcó, Meritxell Genescà, Maria J. Buzon
Ana Gallego-Cortés, Judith Grau-Expósito, Irene Mota-Gómez, Aleix Benitez-Martinez, Josep Castellvi, Jordi Navarro, Adrian Curran, Joaquin Burgos, Paula Suanzes, Vicenç Falcó, Meritxell Genescà, Maria J. Buzon
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Research Article AIDS/HIV Immunology

Granulocytic myeloid–derived suppressor cells sustain HIV reservoirs by inhibiting viral reactivation via arginase 1–mediated mechanisms

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Abstract

Myeloid-derived suppressor cells (MDSCs) represent a heterogeneous population of immature myeloid cells with potent immunosuppressive capabilities that contribute to viral persistence in chronic infections. However, their direct effect on the latent HIV reservoir remains poorly understood. Here, we report that people with HIV (PWH) exhibit elevated levels of MDSCs with notable immunosuppressive activity. Both granulocytic (G-MDSCs) and monocytic (M-MDSCs) subsets expressing arginase 1 (ARG1) or indoleamine 2,3-dioxygenase (IDO) are increased during treated infection, with low-level viral transcription preferentially associated with the expansion of highly suppressive G-MDSCs. Functional assays revealed that G-MDSCs robustly inhibit HIV reactivation from latent reservoirs. Mechanistically, G-MDSCs mediate this inhibition through a contact-independent mechanism, primarily involving ARG1 activity. Our findings demonstrate the capacity of G-MDSCs to sustain HIV reservoirs, suggesting that targeting these cells could potentiate therapeutic strategies aimed at eliminating HIV reservoirs through viral reactivation.

Authors

Ana Gallego-Cortés, Judith Grau-Expósito, Irene Mota-Gómez, Aleix Benitez-Martinez, Josep Castellvi, Jordi Navarro, Adrian Curran, Joaquin Burgos, Paula Suanzes, Vicenç Falcó, Meritxell Genescà, Maria J. Buzon

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Figure 4

Expansion and persistence of highly immunosuppressive MDSCs in the dysregulated immune environment of chronic HIV infection.

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Expansion and persistence of highly immunosuppressive MDSCs in the dysre...
(A) Violin plots displaying the frequency of FOXP3+CD25+CD4+ T cells (Tregs) within total CD4+ T cells across HD, VIR, and ART cohorts. (B and C) Violin plots showing HLA-DR and CD38 expression in CD4+ T cells (B) and CD8+ T cells (C) from HD, VIR, and ART individuals. (D) Correlations between Tregs, as well as chronic activation in both CD4+ T cells and CD8+ T cells, and the G-MDSCs (C06) and M-MDSCs (C07) subsets in the VIR cohort. (E) Correlations between Tregs within total CD4+ T cells and all subsets of MDSCs in VIR individuals. (F) Correlations between G-MDSCs and G-MDSCs ARG1+, and activation in CD4+ T cells in the VIR group. (G) Correlations between G-MDSCs, G-MDSCs ARG1+ and M-MDSCs ARG1+, and activation in CD8+ T cells in the VIR cohort. (H) Correlations between Tregs, as well as chronic activation in both CD4+ T cells and CD8+ T cells, and the G-MDSCs (C06) and M-MDSCs (C07) subsets in the ART cohort. Statistical comparisons in A–C were performed using the 2-sided Kruskal-Wallis test with Dunn’s post hoc correction. *P < 0.05, **P < 0.01, and ****P < 0.0001. Median values with quartiles are depicted in the graphs. Unless otherwise indicated, analyses include samples from 10 HD, 10 VIR, and 9 ART individuals. Correlations were assessed using Spearman analysis. Source data are provided as a Source Data file.

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