Supervised and unsupervised learning to define the cardiovascular risk of patients according to an extracellular vesicle molecular signature.


Journal

Translational research : the journal of laboratory and clinical medicine
ISSN: 1878-1810
Titre abrégé: Transl Res
Pays: United States
ID NLM: 101280339

Informations de publication

Date de publication:
06 2022
Historique:
received: 14 11 2021
revised: 28 01 2022
accepted: 16 02 2022
pubmed: 25 2 2022
medline: 24 5 2022
entrez: 24 2 2022
Statut: ppublish

Résumé

Cardiovascular (CV) disease represents the most common cause of death in developed countries. Risk assessment is highly relevant to intervene at individual level and implement prevention strategies. Circulating extracellular vesicles (EVs) are involved in the development and progression of CV diseases and are considered promising biomarkers. We aimed at identifying an EV signature to improve the stratification of patients according to CV risk and likelihood to develop fatal CV events. EVs were characterized by nanoparticle tracking analysis and flow cytometry for a standardized panel of 37 surface antigens in a cross-sectional multicenter cohort (n = 486). CV profile was defined by presence of different indicators (age, sex, body mass index, hypertension, hyperlipidemia, diabetes, coronary artery disease, cardiac heart failure, chronic kidney disease, smoking habit, organ damage) and according to the 10-year risk of fatal CV events estimated using SCORE charts of European Society of Cardiology. By combining expression levels of EV antigens using unsupervised learning, patients were classified into 3 clusters: Cluster-I (n = 288), Cluster-II (n = 83), Cluster-III (n = 30). A separate analysis was conducted on patients displaying acute CV events (n = 82). Prevalence of hypertension, diabetes, chronic heart failure, and organ damage (defined as left ventricular hypertrophy and/or microalbuminuria) increased progressively from Cluster-I to Cluster-III. Several EV antigens, including markers for platelets (CD41b-CD42a-CD62P), leukocytes (CD1c-CD2-CD3-CD4-CD8-CD14-CD19-CD20-CD25-CD40-CD45-CD69-CD86), and endothelium (CD31-CD105) were independently associated with CV risk indicators and correlated to age, blood pressure, glucometabolic profile, renal function, and SCORE risk. EV profiling, obtained from minimally invasive blood sampling, allows accurate patient stratification according to CV risk profile.

Identifiants

pubmed: 35202881
pii: S1931-5244(22)00025-1
doi: 10.1016/j.trsl.2022.02.005
pii:
doi:

Substances chimiques

Biomarkers 0

Types de publication

Journal Article Multicenter Study Research Support, Non-U.S. Gov't

Langues

eng

Sous-ensembles de citation

IM

Pagination

114-125

Informations de copyright

Copyright © 2022 Elsevier Inc. All rights reserved.

Auteurs

Jacopo Burrello (J)

Istituto Cardiocentro Ticino, Ente Ospedaliero Cantonale, Bellinzona, Switzerland; Division of Internal Medicine and Hypertension Unit, Department of Medical Sciences, University of Torino, Italy.

Alessio Burrello (A)

Department of Electrical, Electronic and Information Engineering (DEI), University of Bologna, Italy.

Elena Vacchi (E)

Laboratory for Biomedical Neurosciences, Neurocenter of Southern Switzerland, Ente Ospedaliero Cantonale, Lugano, Switzerland; Faculty of Biomedical Sciences, Università della Svizzera Italiana, Lugano, Switzerland; Laboratories for Translational Research, Ente Ospedaliero Cantonale, Bellinzona, Switzerland.

Giovanni Bianco (G)

Neurology Clinic, Stroke Center, Neurocenter of Southern Switzerland, Lugano, Switzerland.

Elena Caporali (E)

Istituto Cardiocentro Ticino, Ente Ospedaliero Cantonale, Bellinzona, Switzerland.

Martina Amongero (M)

Department of Mathematical Sciences G. L. Lagrange, Polytechnic University of Torino, Italy.

Lorenzo Airale (L)

Division of Internal Medicine and Hypertension Unit, Department of Medical Sciences, University of Torino, Italy.

Sara Bolis (S)

Istituto Cardiocentro Ticino, Ente Ospedaliero Cantonale, Bellinzona, Switzerland.

Giuseppe Vassalli (G)

Istituto Cardiocentro Ticino, Ente Ospedaliero Cantonale, Bellinzona, Switzerland; Faculty of Biomedical Sciences, Università della Svizzera Italiana, Lugano, Switzerland; Laboratories for Translational Research, Ente Ospedaliero Cantonale, Bellinzona, Switzerland.

Carlo W Cereda (CW)

Faculty of Biomedical Sciences, Università della Svizzera Italiana, Lugano, Switzerland; Neurology Clinic, Stroke Center, Neurocenter of Southern Switzerland, Lugano, Switzerland.

Paolo Mulatero (P)

Division of Internal Medicine and Hypertension Unit, Department of Medical Sciences, University of Torino, Italy.

Benedetta Bussolati (B)

Department of Molecular Biotechnology and Health Sciences, University of Torino, Italy.

Giovanni G Camici (GG)

Center for Molecular Cardiology, University of Zürich, Schlieren, Switzerland.

Giorgia Melli (G)

Laboratory for Biomedical Neurosciences, Neurocenter of Southern Switzerland, Ente Ospedaliero Cantonale, Lugano, Switzerland; Faculty of Biomedical Sciences, Università della Svizzera Italiana, Lugano, Switzerland; Laboratories for Translational Research, Ente Ospedaliero Cantonale, Bellinzona, Switzerland.

Silvia Monticone (S)

Division of Internal Medicine and Hypertension Unit, Department of Medical Sciences, University of Torino, Italy.

Lucio Barile (L)

Istituto Cardiocentro Ticino, Ente Ospedaliero Cantonale, Bellinzona, Switzerland; Faculty of Biomedical Sciences, Università della Svizzera Italiana, Lugano, Switzerland; Laboratories for Translational Research, Ente Ospedaliero Cantonale, Bellinzona, Switzerland; Institute of Life Science, Scuola Superiore Sant'Anna, Pisa, Italy. Electronic address: lucio.barile@eoc.ch.

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