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.

Bioscience Reports
|May 21, 2021
PubMed

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.