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Generation of a Chronic Obstructive Pulmonary Disease Model in Mice by Repeated Ozone Exposure
Published on: August 25, 2017
Effects of chronic PM2.5 exposure on pulmonary epithelia: Transcriptome analysis of mRNA-exosomal miRNA interactions
1Faculty of Public Health, Shanghai Jiao Tong University School of Medicine, Shanghai, 200025, China.
Abstract:
Epidemiological studies have established the correlations between PM2.5 and a wide variety of pulmonary diseases. However, their underlying pathogeneses have not been clearly elucidated yet. In the present study, the epithelial-mesenchymal transition (EMT) phenotype with enhanced proliferation and migration activity of human pulmonary epithelial cell line BEAS-2B was observed after exposure to low dose PM2.5 exposure (50 μg/ml) for 30 passages. Then, epithelial cells derived-exosomal micro-RNA (miRNA) and intracellular total RNA were extracted, and the differentially expressed exosomal miRNAs (DE-Exo-MiRs) as well as differentially expressed protein coding genes (DEGs) were identified by RNA sequencing (RNA-seq) and transcriptome analysis. We found that chronic PM2.5 exposure stimulated the release of pulmonary epithelium derived exosomes. 45 DE-Exo-MiRs including 32 novelly predicted miRNAs and 843 DEGs between PM2.5 exposed group and the normal control were detected. The Gene Ontology (GO) and Kyoto Encyclopedia of Genes and Genomes (KEGG) enrichment analyses showed that DEGs were significantly enriched in extracellular matrix organization, focal adhesion and cancer related terms. Besides, the enrichment analyses on 7774 mRNA targets of 27 DE-Exo-MiRs predicted by MiRanda software also revealed the potential regulatory role of exosomal miRNAs in pathways in cancer, Wingless/Integrated (Wnt) signaling pathway, focal adhesion related genes and other multiple pathogenic pathways. Moreover, the interactive exosomal miRNA-mRNA pair networks were constructed using Cytoscape software. Our results provided a novel basis for a better understanding of the mechanisms of chronic PM2.5 exposure induced pulmonary disorders including pulmonary fibrosis and cancer, in which exosomal miRNAs (Exo-MiRs) potentially functions by dynamically regulating gene expressions.
Insights
Chronic exposure to fine particulate matter (PM2.5) triggers pulmonary epithelial cells to release exosomes containing microRNAs (miRNAs). These exosomal miRNAs may drive lung diseases like fibrosis and cancer by altering gene expression.
Area of Science:
- Environmental Health
- Molecular Biology
- Pulmonology
Background:
- Epidemiological studies link PM2.5 exposure to various lung diseases, but underlying mechanisms remain unclear.
- Epithelial-mesenchymal transition (EMT) in pulmonary cells is associated with disease progression.
- Exosomes and their microRNA cargo are increasingly recognized as key mediators of intercellular communication.
Purpose of the Study:
- To investigate the role of exosomal microRNAs (miRNAs) in the pathogenesis of PM2.5-induced pulmonary disorders.
- To identify differentially expressed exosomal miRNAs (DE-Exo-MiRs) and their target genes following chronic PM2.5 exposure.
- To elucidate the molecular mechanisms by which PM2.5 affects pulmonary epithelial cells.
Main Methods:
- Human pulmonary epithelial cells (BEAS-2B) were chronically exposed to PM2.5.
- Exosomes were isolated from cell culture supernatant.
- RNA sequencing (RNA-seq) and transcriptome analysis were performed to identify DE-Exo-MiRs and differentially expressed genes (DEGs).
- Bioinformatic analyses (GO, KEGG, MiRanda, Cytoscape) were used for pathway and network analysis.
Main Results:
- Chronic PM2.5 exposure induced EMT and stimulated exosome release from pulmonary epithelial cells.
- 45 DE-Exo-MiRs (including 32 novel ones) and 843 DEGs were identified.
- Enrichment analyses revealed significant involvement of DEGs in extracellular matrix organization, focal adhesion, and cancer-related pathways.
- Exosomal miRNAs potentially regulate pathways in cancer, Wnt signaling, and focal adhesion.
Conclusions:
- PM2.5 exposure alters exosomal miRNA profiles in pulmonary epithelial cells.
- Exosomal miRNAs play a potential role in PM2.5-induced pulmonary fibrosis and cancer.
- Understanding these exosomal miRNA-mediated mechanisms offers novel insights into preventing and treating PM2.5-related lung diseases.
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