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miR-205-5p drives endothelial dysfunction and senescence in pulmonary fibrosis
Giuseppe Muscato, Benjamin B. Roos, Sharonda Harris, Xiaoyu Tracy Cai, Gina Civettini, Enrico Sciacca, Ahmed A. Raslan, Alessandra Castaldi, Sharon Elliot, Marilyn K. Glassberg, Carlo Vancheri, Daniel J. Tschumperlin, Giovanni Ligresti, Nunzia Caporarello
Giuseppe Muscato, Benjamin B. Roos, Sharonda Harris, Xiaoyu Tracy Cai, Gina Civettini, Enrico Sciacca, Ahmed A. Raslan, Alessandra Castaldi, Sharon Elliot, Marilyn K. Glassberg, Carlo Vancheri, Daniel J. Tschumperlin, Giovanni Ligresti, Nunzia Caporarello
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Research Article Pulmonology Vascular biology

miR-205-5p drives endothelial dysfunction and senescence in pulmonary fibrosis

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Abstract

Idiopathic pulmonary fibrosis (IPF) is a fatal, aging-related disease characterized by persistent lung fibroblast activation, progressive lung scarring, and several vascular abnormalities. We have previously demonstrated that aging-associated vascular dysfunction drives maladaptive endothelial responses to injury and exacerbates lung fibrosis via secretion of profibrotic endothelial cell–derived factors. However, regulatory mechanisms governing endothelial dysfunction during progressive lung fibrosis remain poorly understood. Here, using preclinical mouse models of progressive lung fibrosis as well as human IPF lungs, we demonstrate that miR-205-5p was overexpressed in lung endothelial cells (ECs) from fibrotic lungs and coordinated gene expression programs implicated in endothelial dysfunction and progressive fibrosis. Mechanistically, miR-205-5p induced senescence in lung ECs, mirroring the senescent phenotype of IPF lung ECs. Consistently, conditioned medium derived from lung ECs overexpressing miR-205-5p promoted lung fibroblast activation. Importantly, miR-205-5p inhibition in IPF lung ECs attenuated endothelial senescence and limited paracrine fibroblast activation. Finally, inhibition of miR-205-5p in vivo preserved the pulmonary vascular network and attenuated lung fibrosis progression in aged mice challenged with bleomycin. Collectively, our findings support what we believe to be a novel connection among lung endothelial miR-205-5p, endothelial senescence, and profibrotic alteration of the endothelial secretome and highlight miR-205-5p inhibition as a potential therapeutic intervention for pulmonary fibrosis.

Authors

Giuseppe Muscato, Benjamin B. Roos, Sharonda Harris, Xiaoyu Tracy Cai, Gina Civettini, Enrico Sciacca, Ahmed A. Raslan, Alessandra Castaldi, Sharon Elliot, Marilyn K. Glassberg, Carlo Vancheri, Daniel J. Tschumperlin, Giovanni Ligresti, Nunzia Caporarello

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Figure 3

Lung endothelial miR-205-5p controls gene programs implicated in endothelial dysfunction and lung fibrosis, mimicking aberrations of IPF lung ECs.

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Lung endothelial miR-205-5p controls gene programs implicated in endothe...
(A) Schematics depicting the experimental workflow. Healthy human lung ECs were transfected with negative control mimic or miR-205-5p mimic and profiled by RNA-seq (created with a licensed version of BioRender.com). (B) Principal component analysis (PCA) illustrating separation of experimental groups based on the differences in their transcriptomes. (C) Volcano plot of –log10(FDR q) versus log2(fold change) of genes with respect to miR-205-5p vs. mimic control; genes that are significantly (FDR q < 0.05) upregulated (>2-fold) or downregulated (<2-fold) in miR-205-5p–overexpressing lung ECs are indicated and tallied in purple and turquoise, respectively. (D) Ingenuity Pathway Analysis identifies differentially regulated canonical pathways; pink asterisks indicate pathways whose role in pulmonary fibrosis is known. (E–G) Heatmaps of differentially regulated genes, including genes responsible for cell cycle regulation (E), endothelial identity and function (F), and proinflammatory and profibrotic genes (G). Colors were assigned after z score–normalizing expression values to a mean of 0 and SD of 1 within each row, with turquoise, white, and purple indicating z scores ≤–2, 0, and ≥+2, respectively. (H) Bar plots showing fold change differences between IPF and healthy lung ECs for relevant genes involved in endothelial function and proinflammatory/fibrotic state. N = 3 independent biological replicates. Data are expressed as mean ± SD, and P values were calculated using Student’s t test. *P < 0.05; **P < 0.01; ***P < 0.001.

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