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A blood microRNA classifier for the prediction of ICU mortality in COVID-19 patients: a multicenter validation study

BACKGROUND: The identification of critically ill COVID-19 patients at risk of fatal outcomes remains a challenge. Here, we first validated candidate microRNAs (miRNAs) as biomarkers for clinical decision-making in critically ill patients. Second, we constructed a blood miRNA classifier for the early...

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Autores principales: de Gonzalo-Calvo, David, Molinero, Marta, Benítez, Iván D., Perez-Pons, Manel, García-Mateo, Nadia, Ortega, Alicia, Postigo, Tamara, García-Hidalgo, María C., Belmonte, Thalia, Rodríguez-Muñoz, Carlos, González, Jessica, Torres, Gerard, Gort-Paniello, Clara, Moncusí-Moix, Anna, Estella, Ángel, Tamayo Lomas, Luis, Martínez de la Gándara, Amalia, Socias, Lorenzo, Peñasco, Yhivian, de la Torre, Maria Del Carmen, Bustamante-Munguira, Elena, Gallego Curto, Elena, Martínez Varela, Ignacio, Martin Delgado, María Cruz, Vidal-Cortés, Pablo, López Messa, Juan, Pérez-García, Felipe, Caballero, Jesús, Añón, José M., Loza-Vázquez, Ana, Carbonell, Nieves, Marin-Corral, Judith, Jorge García, Ruth Noemí, Barberà, Carmen, Ceccato, Adrián, Fernández-Barat, Laia, Ferrer, Ricard, Garcia-Gasulla, Dario, Lorente-Balanza, Jose Ángel, Menéndez, Rosario, Motos, Ana, Peñuelas, Oscar, Riera, Jordi, Bermejo-Martin, Jesús F., Torres, Antoni, Barbé, Ferran
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10276486/
https://www.ncbi.nlm.nih.gov/pubmed/37328754
http://dx.doi.org/10.1186/s12931-023-02462-x
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author de Gonzalo-Calvo, David
Molinero, Marta
Benítez, Iván D.
Perez-Pons, Manel
García-Mateo, Nadia
Ortega, Alicia
Postigo, Tamara
García-Hidalgo, María C.
Belmonte, Thalia
Rodríguez-Muñoz, Carlos
González, Jessica
Torres, Gerard
Gort-Paniello, Clara
Moncusí-Moix, Anna
Estella, Ángel
Tamayo Lomas, Luis
Martínez de la Gándara, Amalia
Socias, Lorenzo
Peñasco, Yhivian
de la Torre, Maria Del Carmen
Bustamante-Munguira, Elena
Gallego Curto, Elena
Martínez Varela, Ignacio
Martin Delgado, María Cruz
Vidal-Cortés, Pablo
López Messa, Juan
Pérez-García, Felipe
Caballero, Jesús
Añón, José M.
Loza-Vázquez, Ana
Carbonell, Nieves
Marin-Corral, Judith
Jorge García, Ruth Noemí
Barberà, Carmen
Ceccato, Adrián
Fernández-Barat, Laia
Ferrer, Ricard
Garcia-Gasulla, Dario
Lorente-Balanza, Jose Ángel
Menéndez, Rosario
Motos, Ana
Peñuelas, Oscar
Riera, Jordi
Bermejo-Martin, Jesús F.
Torres, Antoni
Barbé, Ferran
author_facet de Gonzalo-Calvo, David
Molinero, Marta
Benítez, Iván D.
Perez-Pons, Manel
García-Mateo, Nadia
Ortega, Alicia
Postigo, Tamara
García-Hidalgo, María C.
Belmonte, Thalia
Rodríguez-Muñoz, Carlos
González, Jessica
Torres, Gerard
Gort-Paniello, Clara
Moncusí-Moix, Anna
Estella, Ángel
Tamayo Lomas, Luis
Martínez de la Gándara, Amalia
Socias, Lorenzo
Peñasco, Yhivian
de la Torre, Maria Del Carmen
Bustamante-Munguira, Elena
Gallego Curto, Elena
Martínez Varela, Ignacio
Martin Delgado, María Cruz
Vidal-Cortés, Pablo
López Messa, Juan
Pérez-García, Felipe
Caballero, Jesús
Añón, José M.
Loza-Vázquez, Ana
Carbonell, Nieves
Marin-Corral, Judith
Jorge García, Ruth Noemí
Barberà, Carmen
Ceccato, Adrián
Fernández-Barat, Laia
Ferrer, Ricard
Garcia-Gasulla, Dario
Lorente-Balanza, Jose Ángel
Menéndez, Rosario
Motos, Ana
Peñuelas, Oscar
Riera, Jordi
Bermejo-Martin, Jesús F.
Torres, Antoni
Barbé, Ferran
author_sort de Gonzalo-Calvo, David
collection PubMed
description BACKGROUND: The identification of critically ill COVID-19 patients at risk of fatal outcomes remains a challenge. Here, we first validated candidate microRNAs (miRNAs) as biomarkers for clinical decision-making in critically ill patients. Second, we constructed a blood miRNA classifier for the early prediction of adverse outcomes in the ICU. METHODS: This was a multicenter, observational and retrospective/prospective study including 503 critically ill patients admitted to the ICU from 19 hospitals. qPCR assays were performed in plasma samples collected within the first 48 h upon admission. A 16-miRNA panel was designed based on recently published data from our group. RESULTS: Nine miRNAs were validated as biomarkers of all-cause in-ICU mortality in the independent cohort of critically ill patients (FDR < 0.05). Cox regression analysis revealed that low expression levels of eight miRNAs were associated with a higher risk of death (HR from 1.56 to 2.61). LASSO regression for variable selection was used to construct a miRNA classifier. A 4-blood miRNA signature composed of miR-16-5p, miR-192-5p, miR-323a-3p and miR-451a predicts the risk of all-cause in-ICU mortality (HR 2.5). Kaplan‒Meier analysis confirmed these findings. The miRNA signature provides a significant increase in the prognostic capacity of conventional scores, APACHE-II (C-index 0.71, DeLong test p-value 0.055) and SOFA (C-index 0.67, DeLong test p-value 0.001), and a risk model based on clinical predictors (C-index 0.74, DeLong test-p-value 0.035). For 28-day and 90-day mortality, the classifier also improved the prognostic value of APACHE-II, SOFA and the clinical model. The association between the classifier and mortality persisted even after multivariable adjustment. The functional analysis reported biological pathways involved in SARS-CoV infection and inflammatory, fibrotic and transcriptional pathways. CONCLUSIONS: A blood miRNA classifier improves the early prediction of fatal outcomes in critically ill COVID-19 patients. SUPPLEMENTARY INFORMATION: The online version contains supplementary material available at 10.1186/s12931-023-02462-x.
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spelling pubmed-102764862023-06-18 A blood microRNA classifier for the prediction of ICU mortality in COVID-19 patients: a multicenter validation study de Gonzalo-Calvo, David Molinero, Marta Benítez, Iván D. Perez-Pons, Manel García-Mateo, Nadia Ortega, Alicia Postigo, Tamara García-Hidalgo, María C. Belmonte, Thalia Rodríguez-Muñoz, Carlos González, Jessica Torres, Gerard Gort-Paniello, Clara Moncusí-Moix, Anna Estella, Ángel Tamayo Lomas, Luis Martínez de la Gándara, Amalia Socias, Lorenzo Peñasco, Yhivian de la Torre, Maria Del Carmen Bustamante-Munguira, Elena Gallego Curto, Elena Martínez Varela, Ignacio Martin Delgado, María Cruz Vidal-Cortés, Pablo López Messa, Juan Pérez-García, Felipe Caballero, Jesús Añón, José M. Loza-Vázquez, Ana Carbonell, Nieves Marin-Corral, Judith Jorge García, Ruth Noemí Barberà, Carmen Ceccato, Adrián Fernández-Barat, Laia Ferrer, Ricard Garcia-Gasulla, Dario Lorente-Balanza, Jose Ángel Menéndez, Rosario Motos, Ana Peñuelas, Oscar Riera, Jordi Bermejo-Martin, Jesús F. Torres, Antoni Barbé, Ferran Respir Res Research BACKGROUND: The identification of critically ill COVID-19 patients at risk of fatal outcomes remains a challenge. Here, we first validated candidate microRNAs (miRNAs) as biomarkers for clinical decision-making in critically ill patients. Second, we constructed a blood miRNA classifier for the early prediction of adverse outcomes in the ICU. METHODS: This was a multicenter, observational and retrospective/prospective study including 503 critically ill patients admitted to the ICU from 19 hospitals. qPCR assays were performed in plasma samples collected within the first 48 h upon admission. A 16-miRNA panel was designed based on recently published data from our group. RESULTS: Nine miRNAs were validated as biomarkers of all-cause in-ICU mortality in the independent cohort of critically ill patients (FDR < 0.05). Cox regression analysis revealed that low expression levels of eight miRNAs were associated with a higher risk of death (HR from 1.56 to 2.61). LASSO regression for variable selection was used to construct a miRNA classifier. A 4-blood miRNA signature composed of miR-16-5p, miR-192-5p, miR-323a-3p and miR-451a predicts the risk of all-cause in-ICU mortality (HR 2.5). Kaplan‒Meier analysis confirmed these findings. The miRNA signature provides a significant increase in the prognostic capacity of conventional scores, APACHE-II (C-index 0.71, DeLong test p-value 0.055) and SOFA (C-index 0.67, DeLong test p-value 0.001), and a risk model based on clinical predictors (C-index 0.74, DeLong test-p-value 0.035). For 28-day and 90-day mortality, the classifier also improved the prognostic value of APACHE-II, SOFA and the clinical model. The association between the classifier and mortality persisted even after multivariable adjustment. The functional analysis reported biological pathways involved in SARS-CoV infection and inflammatory, fibrotic and transcriptional pathways. CONCLUSIONS: A blood miRNA classifier improves the early prediction of fatal outcomes in critically ill COVID-19 patients. SUPPLEMENTARY INFORMATION: The online version contains supplementary material available at 10.1186/s12931-023-02462-x. BioMed Central 2023-06-17 2023 /pmc/articles/PMC10276486/ /pubmed/37328754 http://dx.doi.org/10.1186/s12931-023-02462-x Text en © The Author(s) 2023 https://creativecommons.org/licenses/by/4.0/Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons licence, and indicate if changes were made. The images or other third party material in this article are included in the article’s Creative Commons licence, unless indicated otherwise in a credit line to the material. If material is not included in the article’s Creative Commons licence and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this licence, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) . The Creative Commons Public Domain Dedication waiver (http://creativecommons.org/publicdomain/zero/1.0/ (https://creativecommons.org/publicdomain/zero/1.0/) ) applies to the data made available in this article, unless otherwise stated in a credit line to the data.
spellingShingle Research
de Gonzalo-Calvo, David
Molinero, Marta
Benítez, Iván D.
Perez-Pons, Manel
García-Mateo, Nadia
Ortega, Alicia
Postigo, Tamara
García-Hidalgo, María C.
Belmonte, Thalia
Rodríguez-Muñoz, Carlos
González, Jessica
Torres, Gerard
Gort-Paniello, Clara
Moncusí-Moix, Anna
Estella, Ángel
Tamayo Lomas, Luis
Martínez de la Gándara, Amalia
Socias, Lorenzo
Peñasco, Yhivian
de la Torre, Maria Del Carmen
Bustamante-Munguira, Elena
Gallego Curto, Elena
Martínez Varela, Ignacio
Martin Delgado, María Cruz
Vidal-Cortés, Pablo
López Messa, Juan
Pérez-García, Felipe
Caballero, Jesús
Añón, José M.
Loza-Vázquez, Ana
Carbonell, Nieves
Marin-Corral, Judith
Jorge García, Ruth Noemí
Barberà, Carmen
Ceccato, Adrián
Fernández-Barat, Laia
Ferrer, Ricard
Garcia-Gasulla, Dario
Lorente-Balanza, Jose Ángel
Menéndez, Rosario
Motos, Ana
Peñuelas, Oscar
Riera, Jordi
Bermejo-Martin, Jesús F.
Torres, Antoni
Barbé, Ferran
A blood microRNA classifier for the prediction of ICU mortality in COVID-19 patients: a multicenter validation study
title A blood microRNA classifier for the prediction of ICU mortality in COVID-19 patients: a multicenter validation study
title_full A blood microRNA classifier for the prediction of ICU mortality in COVID-19 patients: a multicenter validation study
title_fullStr A blood microRNA classifier for the prediction of ICU mortality in COVID-19 patients: a multicenter validation study
title_full_unstemmed A blood microRNA classifier for the prediction of ICU mortality in COVID-19 patients: a multicenter validation study
title_short A blood microRNA classifier for the prediction of ICU mortality in COVID-19 patients: a multicenter validation study
title_sort blood microrna classifier for the prediction of icu mortality in covid-19 patients: a multicenter validation study
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10276486/
https://www.ncbi.nlm.nih.gov/pubmed/37328754
http://dx.doi.org/10.1186/s12931-023-02462-x
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