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Untargeted lipidomics reveals specific lipid profiles in COVID-19 patients with different severity from Campania region (Italy)

COVID-19 infection evokes various systemic alterations that push patients not only towards severe acute respiratory syndrome but causes an important metabolic dysregulation with following multi-organ alteration and potentially poor outcome. To discover novel potential biomarkers able to predict dise...

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Autores principales: Ciccarelli, Michele, Merciai, Fabrizio, Carrizzo, Albino, Sommella, Eduardo, Di Pietro, Paola, Caponigro, Vicky, Salviati, Emanuela, Musella, Simona, Sarno, Veronica di, Rusciano, Mariarosaria, Toni, Anna Laura, Iesu, Paola, Izzo, Carmine, Schettino, Gabriella, Conti, Valeria, Venturini, Eleonora, Vitale, Carolina, Scarpati, Giuliana, Bonadies, Domenico, Rispoli, Antonella, Polverino, Benedetto, Poto, Sergio, Pagliano, Pasquale, Piazza, Ornella, Licastro, Danilo, Vecchione, Carmine, Campiglia, Pietro
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier B.V. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9085356/
https://www.ncbi.nlm.nih.gov/pubmed/35569273
http://dx.doi.org/10.1016/j.jpba.2022.114827
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author Ciccarelli, Michele
Merciai, Fabrizio
Carrizzo, Albino
Sommella, Eduardo
Di Pietro, Paola
Caponigro, Vicky
Salviati, Emanuela
Musella, Simona
Sarno, Veronica di
Rusciano, Mariarosaria
Toni, Anna Laura
Iesu, Paola
Izzo, Carmine
Schettino, Gabriella
Conti, Valeria
Venturini, Eleonora
Vitale, Carolina
Scarpati, Giuliana
Bonadies, Domenico
Rispoli, Antonella
Polverino, Benedetto
Poto, Sergio
Pagliano, Pasquale
Piazza, Ornella
Licastro, Danilo
Vecchione, Carmine
Campiglia, Pietro
author_facet Ciccarelli, Michele
Merciai, Fabrizio
Carrizzo, Albino
Sommella, Eduardo
Di Pietro, Paola
Caponigro, Vicky
Salviati, Emanuela
Musella, Simona
Sarno, Veronica di
Rusciano, Mariarosaria
Toni, Anna Laura
Iesu, Paola
Izzo, Carmine
Schettino, Gabriella
Conti, Valeria
Venturini, Eleonora
Vitale, Carolina
Scarpati, Giuliana
Bonadies, Domenico
Rispoli, Antonella
Polverino, Benedetto
Poto, Sergio
Pagliano, Pasquale
Piazza, Ornella
Licastro, Danilo
Vecchione, Carmine
Campiglia, Pietro
author_sort Ciccarelli, Michele
collection PubMed
description COVID-19 infection evokes various systemic alterations that push patients not only towards severe acute respiratory syndrome but causes an important metabolic dysregulation with following multi-organ alteration and potentially poor outcome. To discover novel potential biomarkers able to predict disease’s severity and patient’s outcome, in this study we applied untargeted lipidomics, by a reversed phase ultra-high performance liquid chromatography-trapped ion mobility mass spectrometry platform (RP-UHPLC-TIMS-MS), on blood samples collected at hospital admission in an Italian cohort of COVID-19 patients (45 mild, 54 severe, 21 controls). In a subset of patients, we also collected a second blood sample in correspondence of clinical phenotype modification (longitudinal population). Plasma lipid profiles revealed several lipids significantly modified in COVID-19 patients with respect to controls and able to discern between mild and severe clinical phenotype. Severe patients were characterized by a progressive decrease in the levels of LPCs, LPC-Os, PC-Os, and, on the contrary, an increase in overall TGs, PEs, and Ceramides. A machine learning model was built by using both the entire dataset and with a restricted lipid panel dataset, delivering comparable results in predicting severity (AUC= 0.777, CI: 0.639–0.904) and outcome (AUC= 0.789, CI: 0.658–0.910). Finally, re-building the model with 25 longitudinal (t1) samples, this resulted in 21 patients correctly classified. In conclusion, this study highlights specific lipid profiles that could be used monitor the possible trajectory of COVID-19 patients at hospital admission, which could be used in targeted approaches.
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spelling pubmed-90853562022-05-10 Untargeted lipidomics reveals specific lipid profiles in COVID-19 patients with different severity from Campania region (Italy) Ciccarelli, Michele Merciai, Fabrizio Carrizzo, Albino Sommella, Eduardo Di Pietro, Paola Caponigro, Vicky Salviati, Emanuela Musella, Simona Sarno, Veronica di Rusciano, Mariarosaria Toni, Anna Laura Iesu, Paola Izzo, Carmine Schettino, Gabriella Conti, Valeria Venturini, Eleonora Vitale, Carolina Scarpati, Giuliana Bonadies, Domenico Rispoli, Antonella Polverino, Benedetto Poto, Sergio Pagliano, Pasquale Piazza, Ornella Licastro, Danilo Vecchione, Carmine Campiglia, Pietro J Pharm Biomed Anal Article COVID-19 infection evokes various systemic alterations that push patients not only towards severe acute respiratory syndrome but causes an important metabolic dysregulation with following multi-organ alteration and potentially poor outcome. To discover novel potential biomarkers able to predict disease’s severity and patient’s outcome, in this study we applied untargeted lipidomics, by a reversed phase ultra-high performance liquid chromatography-trapped ion mobility mass spectrometry platform (RP-UHPLC-TIMS-MS), on blood samples collected at hospital admission in an Italian cohort of COVID-19 patients (45 mild, 54 severe, 21 controls). In a subset of patients, we also collected a second blood sample in correspondence of clinical phenotype modification (longitudinal population). Plasma lipid profiles revealed several lipids significantly modified in COVID-19 patients with respect to controls and able to discern between mild and severe clinical phenotype. Severe patients were characterized by a progressive decrease in the levels of LPCs, LPC-Os, PC-Os, and, on the contrary, an increase in overall TGs, PEs, and Ceramides. A machine learning model was built by using both the entire dataset and with a restricted lipid panel dataset, delivering comparable results in predicting severity (AUC= 0.777, CI: 0.639–0.904) and outcome (AUC= 0.789, CI: 0.658–0.910). Finally, re-building the model with 25 longitudinal (t1) samples, this resulted in 21 patients correctly classified. In conclusion, this study highlights specific lipid profiles that could be used monitor the possible trajectory of COVID-19 patients at hospital admission, which could be used in targeted approaches. Elsevier B.V. 2022-08-05 2022-05-10 /pmc/articles/PMC9085356/ /pubmed/35569273 http://dx.doi.org/10.1016/j.jpba.2022.114827 Text en © 2022 Elsevier B.V. All rights reserved. Since January 2020 Elsevier has created a COVID-19 resource centre with free information in English and Mandarin on the novel coronavirus COVID-19. The COVID-19 resource centre is hosted on Elsevier Connect, the company's public news and information website. Elsevier hereby grants permission to make all its COVID-19-related research that is available on the COVID-19 resource centre - including this research content - immediately available in PubMed Central and other publicly funded repositories, such as the WHO COVID database with rights for unrestricted research re-use and analyses in any form or by any means with acknowledgement of the original source. These permissions are granted for free by Elsevier for as long as the COVID-19 resource centre remains active.
spellingShingle Article
Ciccarelli, Michele
Merciai, Fabrizio
Carrizzo, Albino
Sommella, Eduardo
Di Pietro, Paola
Caponigro, Vicky
Salviati, Emanuela
Musella, Simona
Sarno, Veronica di
Rusciano, Mariarosaria
Toni, Anna Laura
Iesu, Paola
Izzo, Carmine
Schettino, Gabriella
Conti, Valeria
Venturini, Eleonora
Vitale, Carolina
Scarpati, Giuliana
Bonadies, Domenico
Rispoli, Antonella
Polverino, Benedetto
Poto, Sergio
Pagliano, Pasquale
Piazza, Ornella
Licastro, Danilo
Vecchione, Carmine
Campiglia, Pietro
Untargeted lipidomics reveals specific lipid profiles in COVID-19 patients with different severity from Campania region (Italy)
title Untargeted lipidomics reveals specific lipid profiles in COVID-19 patients with different severity from Campania region (Italy)
title_full Untargeted lipidomics reveals specific lipid profiles in COVID-19 patients with different severity from Campania region (Italy)
title_fullStr Untargeted lipidomics reveals specific lipid profiles in COVID-19 patients with different severity from Campania region (Italy)
title_full_unstemmed Untargeted lipidomics reveals specific lipid profiles in COVID-19 patients with different severity from Campania region (Italy)
title_short Untargeted lipidomics reveals specific lipid profiles in COVID-19 patients with different severity from Campania region (Italy)
title_sort untargeted lipidomics reveals specific lipid profiles in covid-19 patients with different severity from campania region (italy)
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9085356/
https://www.ncbi.nlm.nih.gov/pubmed/35569273
http://dx.doi.org/10.1016/j.jpba.2022.114827
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