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Cigarette Smoke Exposure in Mice using a Whole-Body Inhalation System
Published on: October 22, 2020
RAGE-mediated functional DNA methylated modification contributes to cigarette smoke-induced airway inflammation in
Ping Li1, Tao Wang1, Mei Chen2
1Laboratory of Pulmonary Diseases and Department of Respiratory and Critical Care Medicine, West China Hospital, West China School of Medicine, Sichuan University, Chengdu, Sichuan 610041, P.R. China.
Abstract:
Our previous study indicated knockout of receptor for advanced glycation end-products (RAGE) significantly attenuated cigarette smoke (CS)-induced airway inflammation in mice. In the present study, we aim to further detect the mediatory effects of RAGE in DNA methylated modification in CS-induced airway inflammation. Lung tissues from the CS-exposed mouse model of airway inflammation were collected for profiling of DNA methylation by liquid hybridization capture-based bisulfite sequencing, which were used for conjoint analysis with our previous data of gene expression by cDNA microarray to identify functional methylated genes, as well as hub genes selected by protein-protein interaction (PPI) network analysis, and functional enrichment analyses were then performed. After RAGE knockout, 90 genes were identified by intersection of the differentially methylated genes and differentially expressed genes. According to the reversed effects of methylation in promoters on gene transcription, 14 genes with functional methylated modification were further identified, among which chemokine (C-X-C motif) ligand 1 (CXCL1), Toll-like receptor 6 (TLR6) and oncostatin M (OSM) with hypomethylation in promoters, were selected as the hub genes by PPI network analysis. Moreover, functional enrichment analyses showed the 14 functional methylated genes, including the 3 hub genes, were mainly enriched in immune-inflammatory responses, especially mitogen-activated protein kinase, tumor necrosis factor, TLRs, interleukin (IL)-6 and IL-17 pathways. The present study suggests that RAGE mediates functional DNA methylated modification in a cluster of 14 targeted genes, particularly hypomethylation in promoters of CXCL1, TLR6 and OSM, which might significantly contribute to CS-induced airway inflammation via a network of signaling pathways.
Insights
Receptor for advanced glycation end-products (RAGE) influences DNA methylation in cigarette smoke-induced airway inflammation. RAGE knockout altered methylation of 14 genes, including CXCL1, TLR6, and OSM, impacting immune responses.
Area of Science:
- * Molecular Biology
- * Immunology
- * Genetics
Background:
- * Previous studies linked Receptor for Advanced Glycation End-products (RAGE) knockout to reduced cigarette smoke (CS)-induced airway inflammation.
- * The precise mechanisms, particularly epigenetic modifications like DNA methylation, remain less understood.
Purpose of the Study:
- * To investigate the role of RAGE in mediating DNA methylation alterations in CS-induced airway inflammation.
- * To identify specific genes and pathways affected by RAGE-dependent DNA methylation in this context.
Main Methods:
- * Utilized a mouse model of CS-induced airway inflammation with and without RAGE knockout.
- * Employed liquid hybridization capture-based bisulfite sequencing for DNA methylation profiling.
- * Integrated methylation data with prior gene expression microarray data and performed protein-protein interaction (PPI) network analysis.
Main Results:
- * Identified 90 differentially methylated and expressed genes post-RAGE knockout.
- * Pinpointed 14 genes with functional methylation modifications, including CXCL1, TLR6, and OSM, exhibiting promoter hypomethylation and selected as hub genes via PPI analysis.
- * Functional enrichment analysis revealed these genes are primarily involved in immune-inflammatory pathways (MAPK, TNF, TLRs, IL-6, IL-17).
Conclusions:
- * RAGE plays a significant role in regulating functional DNA methylation patterns in CS-induced airway inflammation.
- * RAGE-mediated hypomethylation of CXCL1, TLR6, and OSM promoters contributes to airway inflammation through interconnected signaling pathways.
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