MicroRNA-centered theranostics for pulmoprotection in critical COVID-19

Elucidating the pathobiological mechanisms underlying post-acute pulmonary sequelae following SARS-CoV-2 infection is essential for early interventions and patient stratification. Here, we investigated the potential of microRNAs (miRNAs) as theranostic agents for pulmoprotection in critical illness...

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Bibliographic Details
Authors: Perez-Pons, Manel, Molinero, Marta, Benítez, Iván, García Hidalgo, María Coronada, Chatterjee, Shambhabi, Bär, Christian, González, Jessica, Torres, Antoni, Barbé Illa, Ferran, de Gonzalo Calvo, David
Format: article
Status:Published version
Publication Date:2024
Country:España
Institution:Universitat de Lleida (UdL)
Repository:Repositori Obert UdL
OAI Identifier:oai:repositori.udl.cat:10459.1/465900
Online Access:https://doi.org/10.1016/j.omtn.2024.102118
https://hdl.handle.net/10459.1/465900
Access Level:Open access
Keyword:MT: Novel therapeutic targets and biomarker development Special Issue
long COVID
MicroRNA
Post-COVID syndrome
Pulmoprotection
Telomere
Telomere length
Theranostics
Description
Summary:Elucidating the pathobiological mechanisms underlying post-acute pulmonary sequelae following SARS-CoV-2 infection is essential for early interventions and patient stratification. Here, we investigated the potential of microRNAs (miRNAs) as theranostic agents for pulmoprotection in critical illness survivors. Multicenter study including 172 ICU survivors. Diffusion impairment was defined as a lung-diffusing capacity for carbon monoxide (DLCO) <80% within 12 months postdischarge. A disease-associated 16-miRNA panel was quantified in plasma samples collected at ICU admission. Bioinformatic analyses were conducted using KEGG, Reactome, GTEx, and Drug-Gene Interaction databases. The results were validated using an external RNA-seq dataset. A 3-miRNA signature linked to diffusion impairment (miR-27a-3p, miR-93-5p, and miR-199a-5p) was identified using random forest. Levels of miR-93-5p and miR-199a-5p were independently associated with the outcome, improving patient classification provided by the electronic health record. The experimentally validated targets of these miRNAs exhibited enrichment across diverse pathways, with telomere length quantification in an additional set of samples (n = 83) supporting the role of cell senescence in sequelae. Analysis of an external dataset refined the pathobiological fingerprint of pulmonary sequelae. Gene-drug interaction analysis revealed four FDA-approved drugs. Overall, this study advances our understanding of lung recovery in postacute respiratory infections, highlighting the potential of miRNAs and their targets for pulmoprotection.