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Dissecting Innate Immune Signaling in Viral Evasion of Cytokine Production
Published on: March 2, 2014
DPP9 as a Potential Novel Mediator in Gastrointestinal Virus Infection
Ángela Del Castillo-Izquierdo1,2,3, José María Moreno-Navarrete1,2,3,4, Jessica Latorre1,2,3
1Department of Diabetes, Endocrinology and Nutrition, Dr. Josep Trueta University Hospital, 17007 Girona, Spain.
Abstract:
Dipeptidyl peptidase 9 (DPP9) is a member of the dipeptidyl peptidase IV family. Inhibition of DPP9 has recently been shown to activate the nucleotide-binding domain leucine-rich repeat 1 (NLRP1) inflammasome. NLRP1 is known to bind nucleic acids with high affinity and directly interact with double stranded RNA, which plays a key role in viral replication. DPP9 has also recently emerged as a key gene related to lung-inflammation in critical SARS-CoV-2 infection. Importantly, DPP9 activity is strongly dependent on the oxidative status. Here, we explored the potential role of DPP9 in the gastrointestinal tract. We performed transcriptomics analyses of colon (microarray, n = 37) and jejunal (RNA sequencing, n = 31) biopsies from two independent cohorts as well as plasma metabolomics analyses in two independent cohorts (n = 37 and n = 795). The expression of DPP9 in the jejunum, colon, and blood was significantly associated with circulating biomarkers of oxidative stress (uric acid, bilirubin). It was also associated positively with the expression of transcription factors (NRF-2) and genes (SOD, CAT, GPX) encoding for antioxidant enzymes, but negatively with that of genes (XDH, NOX) and transcription factors (NF-KB) involved in ROS-generating enzymes. Gene co-expression patterns associated with DPP9 identified several genes participating in antiviral pathways in both tissues. Notably, DPP9 expression in the colon and plasma was strongly positively associated with several circulating nucleotide catabolites (hypoxanthine, uric acid, 3-ureidopropionic acid) with important roles in the generation of ROS and viral infection, as well as other metabolites related to oxidative stress (Resolvin D1, glutamate-containing dipeptides). Gene-drug enrichment analyses identified artenimol, puromycin, anisomycin, 3-phenyllactic acid, and linezolid as the most promising drugs targeting these DPP9-associated genes. We have identified a novel potential pathogenic mechanism of viral infection in the digestive tract and promising existing drugs that can be repositioned against viral infection.
Insights
Dipeptidyl peptidase 9 (DPP9) plays a role in gastrointestinal viral infections and oxidative stress. This study links DPP9 to antiviral pathways and identifies potential repositioned drugs for digestive tract viral infections.
Area of Science:
- Gastroenterology
- Immunology
- Virology
Background:
- Dipeptidyl peptidase 9 (DPP9) inhibition activates the NLRP1 inflammasome.
- DPP9 is implicated in SARS-CoV-2 lung inflammation and its activity depends on oxidative status.
Purpose of the Study:
- To investigate the role of DPP9 in the gastrointestinal tract.
- To explore the association of DPP9 with oxidative stress and antiviral pathways in the digestive system.
Main Methods:
- Transcriptomics analysis of colon and jejunal biopsies.
- Plasma metabolomics analysis.
- Gene co-expression and gene-drug enrichment analyses.
Main Results:
- DPP9 expression in the jejunum, colon, and blood correlates with oxidative stress biomarkers.
- DPP9 is associated with antioxidant and antiviral gene expression.
- DPP9 expression links to nucleotide catabolites involved in ROS generation and viral infection.
Conclusions:
- DPP9 may contribute to viral infection pathogenesis in the digestive tract.
- Identified existing drugs (artenimol, puromycin, anisomycin, 3-phenyllactic acid, linezolid) for potential repositioning against viral infections.
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