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Monocyte glycolysis determines CD8+ T cell functionality in human Chagas disease
Liliana María Sanmarco, Natalia Eberhardt, Gastón Bergero, Luz Piedad Quebrada Palacio, Pamela Martino Adami, Laura Marina Visconti, Ángel Ramón Minguez, Yolanda Hernández-Vasquez, Eugenio Antonio Carrera Silva, Laura Morelli, Miriam Postan, Maria Pilar Aoki
Liliana María Sanmarco, Natalia Eberhardt, Gastón Bergero, Luz Piedad Quebrada Palacio, Pamela Martino Adami, Laura Marina Visconti, Ángel Ramón Minguez, Yolanda Hernández-Vasquez, Eugenio Antonio Carrera Silva, Laura Morelli, Miriam Postan, Maria Pilar Aoki
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Research Article Immunology Metabolism

Monocyte glycolysis determines CD8+ T cell functionality in human Chagas disease

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Abstract

Chagas disease is a lifelong pathology resulting from Trypanosoma cruzi infection. It represents one of the most frequent causes of heart failure and sudden death in Latin America. Herein, we provide evidence that aerobic glycolytic pathway activation in monocytes drives nitric oxide (NO) production, triggering tyrosine nitration (TN) on CD8+ T cells and dysfunction in patients with chronic Chagas disease. Monocytes from patients exhibited a higher frequency of hypoxia-inducible factor 1α and increased expression of its target genes/proteins. Nonclassical monocytes are expanded in patients’ peripheral blood and represent an important source of NO. Monocytes entail CD8+ T cell surface nitration because both the frequency of nonclassical monocytes and that of NO-producing monocytes positively correlated with the percentage of TN+ lymphocytes. Inhibition of glycolysis in in vitro–infected peripheral blood mononuclear cells decreased the inflammatory properties of monocytes/macrophages, diminishing the frequency of IL-1β– and NO-producing cells. In agreement, glycolysis inhibition reduced the percentage of TN+CD8+ T cells, improving their functionality. Altogether, these results clearly show that glycolysis governs oxidative stress on monocytes and modulates monocyte–T cell interplay in human chronic Chagas disease. Understanding the pathological immune mechanisms that sustain an inflammatory environment in human pathology is key to designing improved therapies.

Authors

Liliana María Sanmarco, Natalia Eberhardt, Gastón Bergero, Luz Piedad Quebrada Palacio, Pamela Martino Adami, Laura Marina Visconti, Ángel Ramón Minguez, Yolanda Hernández-Vasquez, Eugenio Antonio Carrera Silva, Laura Morelli, Miriam Postan, Maria Pilar Aoki

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Figure 1

Patients with Chagas disease show increased frequency of NO+ and HIF-1α+ monocytes.

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Patients with Chagas disease show increased frequency of NO+ and HIF-1α+...
(A) Flow cytometry gating strategy for leukocytes from peripheral blood samples. After exclusion of doublets and debris by using forward light scatter–height (FSC-H) versus forward light scatter–area (FSC-A) density dot plots, polymorphonuclear cells (PMNCs) and monocytes were gated according to their FSC-A versus SSC-A features. Monocytes were further identified by CD14+ staining. (B) Frequency of NO-producing circulating monocytes and PMNCs from control donors (CON; n = 20) and Chagas patients (CHAG; n = 13). (C) Frequency and MFI of HIF-1α+ monocytes from CHAG (n = 4) and CON (n = 4). (D) ATP levels in plasma from CON (n = 8) and CHAG (n = 8). Frequency and MFI of (E) CD39+ and (F) CD73+ monocytes from CON (n = 16) and CHAG (n = 13). Data are presented as mean ± SEM. *P < 0.05; **P < 0.01 (Student’s t test or Mann-Whitney U test).

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