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Unbiased plasma proteomics discovery of biomarkers for improved detection of subclinical atherosclerosis
BACKGROUND: Imaging of subclinical atherosclerosis improves cardiovascular risk prediction on top of traditional risk factors. However, cardiovascular imaging is not universally available. This work aims to identify circulating proteins that could predict subclinical atherosclerosis. METHODS: Hypoth...
Autores principales: | , , , , , , , , , , , , , , , , , , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Elsevier
2022
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8844841/ https://www.ncbi.nlm.nih.gov/pubmed/35152150 http://dx.doi.org/10.1016/j.ebiom.2022.103874 |
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author | Núñez, Estefanía Fuster, Valentín Gómez-Serrano, María Valdivielso, José Manuel Fernández-Alvira, Juan Miguel Martínez-López, Diego Rodríguez, José Manuel Bonzon-Kulichenko, Elena Calvo, Enrique Alfayate, Alvaro Bermudez-Lopez, Marcelino Escola-Gil, Joan Carles Fernández-Friera, Leticia Cerro-Pardo, Isabel Mendiguren, José María Sánchez-Cabo, Fátima Sanz, Javier Ordovás, José María Blanco-Colio, Luis Miguel García-Ruiz, José Manuel Ibáñez, Borja Lara-Pezzi, Enrique Fernández-Ortiz, Antonio Martín-Ventura, José Luis Vázquez, Jesús |
author_facet | Núñez, Estefanía Fuster, Valentín Gómez-Serrano, María Valdivielso, José Manuel Fernández-Alvira, Juan Miguel Martínez-López, Diego Rodríguez, José Manuel Bonzon-Kulichenko, Elena Calvo, Enrique Alfayate, Alvaro Bermudez-Lopez, Marcelino Escola-Gil, Joan Carles Fernández-Friera, Leticia Cerro-Pardo, Isabel Mendiguren, José María Sánchez-Cabo, Fátima Sanz, Javier Ordovás, José María Blanco-Colio, Luis Miguel García-Ruiz, José Manuel Ibáñez, Borja Lara-Pezzi, Enrique Fernández-Ortiz, Antonio Martín-Ventura, José Luis Vázquez, Jesús |
author_sort | Núñez, Estefanía |
collection | PubMed |
description | BACKGROUND: Imaging of subclinical atherosclerosis improves cardiovascular risk prediction on top of traditional risk factors. However, cardiovascular imaging is not universally available. This work aims to identify circulating proteins that could predict subclinical atherosclerosis. METHODS: Hypothesis-free proteomics was used to analyze plasma from 444 subjects from PESA cohort study (222 with extensive atherosclerosis on imaging, and 222 matched controls) at two timepoints (three years apart) for discovery, and from 350 subjects from AWHS cohort study (175 subjects with extensive atherosclerosis on imaging and 175 matched controls) for external validation. A selected three-protein panel was further validated by immunoturbidimetry in the AWHS population and in 2999 subjects from ILERVAS cohort study. FINDINGS: PIGR, IGHA2, APOA, HPT and HEP2 were associated with subclinical atherosclerosis independently from traditional risk factors at both timepoints in the discovery and validation cohorts. Multivariate analysis rendered a potential three-protein biomarker panel, including IGHA2, APOA and HPT. Immunoturbidimetry confirmed the independent associations of these three proteins with subclinical atherosclerosis in AWHS and ILERVAS. A machine-learning model with these three proteins was able to predict subclinical atherosclerosis in ILERVAS (AUC [95%CI]:0.73 [0.70–0.74], p < 1 × 10(−99)), and also in the subpopulation of individuals with low cardiovascular risk according to FHS 10-year score (0.71 [0.69–0.73], p < 1 × 10(−69)). INTERPRETATION: Plasma levels of IGHA2, APOA and HPT are associated with subclinical atherosclerosis independently of traditional risk factors and offers potential to predict this disease. The panel could improve primary prevention strategies in areas where imaging is not available. |
format | Online Article Text |
id | pubmed-8844841 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2022 |
publisher | Elsevier |
record_format | MEDLINE/PubMed |
spelling | pubmed-88448412022-02-22 Unbiased plasma proteomics discovery of biomarkers for improved detection of subclinical atherosclerosis Núñez, Estefanía Fuster, Valentín Gómez-Serrano, María Valdivielso, José Manuel Fernández-Alvira, Juan Miguel Martínez-López, Diego Rodríguez, José Manuel Bonzon-Kulichenko, Elena Calvo, Enrique Alfayate, Alvaro Bermudez-Lopez, Marcelino Escola-Gil, Joan Carles Fernández-Friera, Leticia Cerro-Pardo, Isabel Mendiguren, José María Sánchez-Cabo, Fátima Sanz, Javier Ordovás, José María Blanco-Colio, Luis Miguel García-Ruiz, José Manuel Ibáñez, Borja Lara-Pezzi, Enrique Fernández-Ortiz, Antonio Martín-Ventura, José Luis Vázquez, Jesús EBioMedicine Articles BACKGROUND: Imaging of subclinical atherosclerosis improves cardiovascular risk prediction on top of traditional risk factors. However, cardiovascular imaging is not universally available. This work aims to identify circulating proteins that could predict subclinical atherosclerosis. METHODS: Hypothesis-free proteomics was used to analyze plasma from 444 subjects from PESA cohort study (222 with extensive atherosclerosis on imaging, and 222 matched controls) at two timepoints (three years apart) for discovery, and from 350 subjects from AWHS cohort study (175 subjects with extensive atherosclerosis on imaging and 175 matched controls) for external validation. A selected three-protein panel was further validated by immunoturbidimetry in the AWHS population and in 2999 subjects from ILERVAS cohort study. FINDINGS: PIGR, IGHA2, APOA, HPT and HEP2 were associated with subclinical atherosclerosis independently from traditional risk factors at both timepoints in the discovery and validation cohorts. Multivariate analysis rendered a potential three-protein biomarker panel, including IGHA2, APOA and HPT. Immunoturbidimetry confirmed the independent associations of these three proteins with subclinical atherosclerosis in AWHS and ILERVAS. A machine-learning model with these three proteins was able to predict subclinical atherosclerosis in ILERVAS (AUC [95%CI]:0.73 [0.70–0.74], p < 1 × 10(−99)), and also in the subpopulation of individuals with low cardiovascular risk according to FHS 10-year score (0.71 [0.69–0.73], p < 1 × 10(−69)). INTERPRETATION: Plasma levels of IGHA2, APOA and HPT are associated with subclinical atherosclerosis independently of traditional risk factors and offers potential to predict this disease. The panel could improve primary prevention strategies in areas where imaging is not available. Elsevier 2022-02-10 /pmc/articles/PMC8844841/ /pubmed/35152150 http://dx.doi.org/10.1016/j.ebiom.2022.103874 Text en © 2022 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/). |
spellingShingle | Articles Núñez, Estefanía Fuster, Valentín Gómez-Serrano, María Valdivielso, José Manuel Fernández-Alvira, Juan Miguel Martínez-López, Diego Rodríguez, José Manuel Bonzon-Kulichenko, Elena Calvo, Enrique Alfayate, Alvaro Bermudez-Lopez, Marcelino Escola-Gil, Joan Carles Fernández-Friera, Leticia Cerro-Pardo, Isabel Mendiguren, José María Sánchez-Cabo, Fátima Sanz, Javier Ordovás, José María Blanco-Colio, Luis Miguel García-Ruiz, José Manuel Ibáñez, Borja Lara-Pezzi, Enrique Fernández-Ortiz, Antonio Martín-Ventura, José Luis Vázquez, Jesús Unbiased plasma proteomics discovery of biomarkers for improved detection of subclinical atherosclerosis |
title | Unbiased plasma proteomics discovery of biomarkers for improved detection of subclinical atherosclerosis |
title_full | Unbiased plasma proteomics discovery of biomarkers for improved detection of subclinical atherosclerosis |
title_fullStr | Unbiased plasma proteomics discovery of biomarkers for improved detection of subclinical atherosclerosis |
title_full_unstemmed | Unbiased plasma proteomics discovery of biomarkers for improved detection of subclinical atherosclerosis |
title_short | Unbiased plasma proteomics discovery of biomarkers for improved detection of subclinical atherosclerosis |
title_sort | unbiased plasma proteomics discovery of biomarkers for improved detection of subclinical atherosclerosis |
topic | Articles |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8844841/ https://www.ncbi.nlm.nih.gov/pubmed/35152150 http://dx.doi.org/10.1016/j.ebiom.2022.103874 |
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