» Articles » PMID: 33178205

Posttranscriptional Gene Regulatory Networks in Chronic Airway Inflammatory Diseases: Mapping of RNA-Binding Protein Expression in Airway Epithelium

Abstract

Posttranscriptional gene regulation (PTGR) contributes to inflammation through alterations in messenger RNA (mRNA) turnover and translation rates. RNA-binding proteins (RBPs) coordinate these processes but their role in lung inflammatory diseases is ill-defined. We evaluated the expression of a curated list of mRNA-binding RBPs (mRBPs) in selected Gene Expression Omnibus (GEO) transcriptomic databases of airway epithelium isolated from chronic obstructive pulmonary disease (COPD), severe asthma (SA) and matched control subjects, hypothesizing that global changes in mRBPs expression could be used to infer their pathogenetic roles and identify novel disease-related regulatory networks. A published list of 692 mRBPs [Nat Rev Genet 2014] was searched in GEO datasets originated from bronchial brushings of stable COPD patients (C), smokers (S), non-smokers (NS) controls with normal lung function ( = 6/12/12) (GEO ID: GSE5058) and of (SA) and healthy control (HC) ( = 6/12) (GSE63142). Fluorescence intensity data were extracted and normalized on the medians for fold change (FC) comparisons. FCs were set at ≥ |1.5| with a false discovery rate (FDR) of ≤ 0.05. Pearson correlation maps and heatmaps were generated using tMEV tools v4_9_0.45. DNA sequence motifs were searched using PScan-ChIP. Gene Ontology (GO) was performed with Ingenuity Pathway Analysis (IPA) tool. Significant mRBP expression changes were detected for S/NS, COPD/NS and COPD/S ( = 41, 391, 382, respectively). Of those, 32% of genes changed by FC ≥ |1.5| in S/NS but more than 60% in COPD/NS and COPD/S ( = 13, 267, 257, respectively). Genes were predominantly downregulated in COPD/NS ( = 194, 73%) and COPD/S ( = 202, 79%), less so in S/NS ( = 4, 31%). Unsupervised cluster analysis identified in 4 out of 12 S the same mRBP pattern seen in C, postulating subclinical COPD. Significant DNA motifs enrichment for transcriptional regulation was found for downregulated RBPs. Correlation analysis identified five clusters of co-expressed mRBPs. GO analysis revealed significant enrichments in canonical pathways both specific and shared among comparisons. Unexpectedly, no significant mRBPs modulation was found in SA compared to controls. Airway epithelial mRBPs profiling reveals a COPD-specific global downregulation of RBPs shared by a subset of control smokers, the potential of functional cooperation by coexpressed RBPs and significant impact on relevant pathogenetic pathways in COPD. Elucidation of PTGR in COPD could identify disease biomarkers or pathways for therapeutic targeting.

Citing Articles

Dynamic and prognostic proteomic associations with FEV decline in chronic obstructive pulmonary disease.

Ruvuna L, Hijazi K, Guzman D, Guo C, Loureiro J, Khokhlovich E medRxiv. 2024; .

PMID: 39148837 PMC: 11326337. DOI: 10.1101/2024.08.07.24311507.


Endotyping Eosinophilic Inflammation in COPD with ELAVL1, ZfP36 and HNRNPD mRNA Genes.

Voulgareli I, Semitekolou M, Morianos I, Blizou M, Sfika M, Hillas G J Clin Med. 2024; 13(3).

PMID: 38337546 PMC: 10856681. DOI: 10.3390/jcm13030854.


Expression of targets of the RNA-binding protein AUF-1 in human airway epithelium indicates its role in cellular senescence and inflammation.

Salvato I, Ricciardi L, Dal Col J, Nigro A, Giurato G, Memoli D Front Immunol. 2023; 14:1192028.

PMID: 37483631 PMC: 10360199. DOI: 10.3389/fimmu.2023.1192028.


Aberrant Post-Transcriptional Regulation of Protein Expression in the Development of Chronic Obstructive Pulmonary Disease.

Aloufi N, Alluli A, Eidelman D, Baglole C Int J Mol Sci. 2021; 22(21).

PMID: 34769392 PMC: 8584689. DOI: 10.3390/ijms222111963.

References
1.
Dardenne E, Polay Espinoza M, Fattet L, Germann S, Lambert M, Neil H . RNA helicases DDX5 and DDX17 dynamically orchestrate transcription, miRNA, and splicing programs in cell differentiation. Cell Rep. 2014; 7(6):1900-13. DOI: 10.1016/j.celrep.2014.05.010. View

2.
Seo W, Jeong B, Yu E, Kim H, Kim S, Lim J . CCAR1 promotes chromatin loading of androgen receptor (AR) transcription complex by stabilizing the association between AR and GATA2. Nucleic Acids Res. 2013; 41(18):8526-36. PMC: 3794601. DOI: 10.1093/nar/gkt644. View

3.
Rahman M, Masuda A, Ohe K, Ito M, Hutchinson D, Mayeda A . HnRNP L and hnRNP LL antagonistically modulate PTB-mediated splicing suppression of CHRNA1 pre-mRNA. Sci Rep. 2013; 3:2931. PMC: 3796306. DOI: 10.1038/srep02931. View

4.
Fingar D, Richardson C, Tee A, Cheatham L, Tsou C, Blenis J . mTOR controls cell cycle progression through its cell growth effectors S6K1 and 4E-BP1/eukaryotic translation initiation factor 4E. Mol Cell Biol. 2003; 24(1):200-16. PMC: 303352. DOI: 10.1128/MCB.24.1.200-216.2004. View

5.
Shishkin S, Kovalev L, Pashintseva N, Kovaleva M, Lisitskaya K . Heterogeneous Nuclear Ribonucleoproteins Involved in the Functioning of Telomeres in Malignant Cells. Int J Mol Sci. 2019; 20(3). PMC: 6387250. DOI: 10.3390/ijms20030745. View