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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 1

Phenotypic characterization of MDSCs in PWH and HD.

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Phenotypic characterization of MDSCs in PWH and HD.
(A) Opt-SNE plots di...
(A) Opt-SNE plots displaying the distribution of the 14 clusters identified within live PBMCs from HD, VIR, and ART cohorts. G-MDSCs (C06) and M-MDSCs (C07) are highlighted. (B) Heatmap illustrating the Mean Fluorescence Intensity (MFI) of CD3, CD4, CD33, CD11b, HLA-DR, CD14, and CD15 markers across clusters. MDSCs were defined as CD3– CD11b+ CD33+ HLA-DR–/lo cells. G-MDSCs and M-MDSCs were distinguished based on CD33, CD14, and CD15 expression. (C) Volcano plots showing significant differences in cluster frequencies between HD, VIR, and ART cohorts. (D and E) Violin plots displaying the frequency of G-MDSCs (D) and M-MDSCs (E) within total live PBMCs across groups. Median values with quartiles are represented and statistical comparisons were performed using a 2-sided Kruskal-Wallis test with Dunn’s post hoc correction. (F–L) Spearman correlation analyses displaying relationships between G-MDSC and M-MDSC subsets and the remaining identified clusters (F); each other in the VIR and ART groups (G); CD4+ T cells (C01) in VIR (H) and ART (I) individuals; and Monocytes (C08) (J), CD4midCD33+HLA-DR+ cells (C10) (K), and CD4midCD33midHLA-DR+ cells (C11) (L) in the ART cohort. All panels include data from healthy donors (HD, n = 11), viremic PWH (VIR, n = 13), and ART-suppressed PWH (ART, n = 26). *P < 0.05, ***P < 0.001, and ****P < 0.0001. Source data are provided as a Source Data file.

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