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Mesenchymal stromal cell exosomes prevent and revert experimental pulmonary fibrosis through modulation of monocyte phenotypes
Nahal Mansouri, Gareth R. Willis, Angeles Fernandez-Gonzalez, Monica Reis, Sina Nassiri, S. Alex Mitsialis, Stella Kourembanas
Nahal Mansouri, Gareth R. Willis, Angeles Fernandez-Gonzalez, Monica Reis, Sina Nassiri, S. Alex Mitsialis, Stella Kourembanas
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Research Article Pulmonology Stem cells

Mesenchymal stromal cell exosomes prevent and revert experimental pulmonary fibrosis through modulation of monocyte phenotypes

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Abstract

Mesenchymal stromal/stem cell (MSC) therapy has shown promise in experimental models of idiopathic pulmonary fibrosis (IPF). The aim of this study was to test the therapeutic effects of extracellular vesicles produced by human BM MSCs (MEx) in a bleomycin-induced pulmonary fibrosis model and investigate mechanisms of action. Adult C57BL/6 mice were challenged with endotracheal instillation of bleomycin and treated with MEx concurrently, or for reversal models, at day 7 or 21. Experimental groups were assessed at day 7, 14, or 28. Bleomycin-challenged mice presented with severe septal thickening and prominent fibrosis, and this was effectively prevented or reversed by MEx treatment. MEx modulated lung macrophage phenotypes, shifting the proportions of lung proinflammatory/classical and nonclassical monocytes and alveolar macrophages toward the monocyte/macrophage profiles of control mice. A parallel immunomodulatory effect was demonstrated in the BM. Notably, transplantation of MEx-preconditioned BM-derived monocytes alleviated core features of pulmonary fibrosis and lung inflammation. Proteomic analysis revealed that MEx therapy promotes an immunoregulatory, antiinflammatory monocyte phenotype. We conclude that MEx prevent and revert core features of bleomycin-induced pulmonary fibrosis and that the beneficial actions of MEx may be mediated via systemic modulation of monocyte phenotypes.

Authors

Nahal Mansouri, Gareth R. Willis, Angeles Fernandez-Gonzalez, Monica Reis, Sina Nassiri, S. Alex Mitsialis, Stella Kourembanas

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Figure 2

A bolus dose of MEx prevents bleomycin-induced pulmonary fibrosis.

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A bolus dose of MEx prevents bleomycin-induced pulmonary fibrosis.
(A) F...
(A) Fourteen-week-old mice (C57BL/6 strain) received endotracheal bleomycin (3 U/kg) or 0.9% normal saline on day 0 (control). Concurrently, treated groups received a bolus i.v. dose of MEx (Bleo+MEx), FEx (Bleo+FEx), or iodixanol (Bleo+IDX). Mice were sacrificed on day 14. The cross symbol represents animal harvest. (B) Lung sections were stained with Masson’s trichrome. Images were taken at ×100 magnification. Bleomycin, Bleo+FEx, and Bleo+IDX showed architectural destruction, alveolar septal thickening, and fibrotic changes. Administration of MEx to bleomycin-challenged mice substantially reduced fibrosis and alveolar distortion. Scale bar: 100 μm. (C) Lung fibrosis was measured at day 14 by Ashcroft score. (D) Collagen deposition was assessed by Sircol assay and represented as mg/mL of left lung homogenate. (E) Data are representative of 3 independent experiments, mean ± SD. n = 3–4 per experimental group; each symbol represents 1 mouse. *P < 0.05; ****P < 0.0001, 1-way ANOVA followed by Fisher’s LSD post hoc analysis. (F and G) MEx therapy decreases apoptosis. Annexin V/PI staining in whole lungs shows an increase in apoptosis (annexin V+PI–) in bleomycin-exposed mice compared with control and bleomycin+MEx mice. TUNEL staining in whole lung sections shows increase in apoptosis (green) in the bleomycin-exposed group of mice compared with control and bleomycin+MEx. Nuclei were stained with DAPI. Images obtained at ×20 magnification. MFI quantified using ImageJ software and normalized for DAPI. Data are representative of 2 independent experiments, mean ± SD. n = 6–8 per group; each symbol represents 1 mouse. *P < 0.05; **P < 0.01 vs. bleomycin-exposed mice. One-way ANOVA followed by Fisher’s LSD post hoc analysis. MEx, mesenchymal stromal/stem cell–extracellular vesicles/exosomes; FEx, Human dermal fibroblast exosomes; IDX, iodixanol; Bleo, bleomycin; PI, propidium iodide.

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