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Lipoprotein Proteomics and Aortic Valve Transcriptomics Identify Biological Pathways Linking Lipoprotein(a) Levels to Aortic Stenosis

Lipoprotein(a) (Lp(a)) is one of the most important risk factors for the development of calcific aortic valve stenosis (CAVS). However, the mechanisms through which Lp(a) causes CAVS are currently unknown. Our objectives were to characterize the Lp(a) proteome and to identify proteins that may be di...

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Autores principales: Bourgeois, Raphaëlle, Bourgault, Jérôme, Despres, Audrey-Anne, Perrot, Nicolas, Guertin, Jakie, Girard, Arnaud, Mitchell, Patricia L., Gotti, Clarisse, Bourassa, Sylvie, Scipione, Corey A., Gaudreault, Nathalie, Boffa, Michael B., Koschinsky, Marlys L., Pibarot, Philippe, Droit, Arnaud, Thériault, Sébastien, Mathieu, Patrick, Bossé, Yohan, Arsenault, Benoit J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8307014/
https://www.ncbi.nlm.nih.gov/pubmed/34357353
http://dx.doi.org/10.3390/metabo11070459
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author Bourgeois, Raphaëlle
Bourgault, Jérôme
Despres, Audrey-Anne
Perrot, Nicolas
Guertin, Jakie
Girard, Arnaud
Mitchell, Patricia L.
Gotti, Clarisse
Bourassa, Sylvie
Scipione, Corey A.
Gaudreault, Nathalie
Boffa, Michael B.
Koschinsky, Marlys L.
Pibarot, Philippe
Droit, Arnaud
Thériault, Sébastien
Mathieu, Patrick
Bossé, Yohan
Arsenault, Benoit J.
author_facet Bourgeois, Raphaëlle
Bourgault, Jérôme
Despres, Audrey-Anne
Perrot, Nicolas
Guertin, Jakie
Girard, Arnaud
Mitchell, Patricia L.
Gotti, Clarisse
Bourassa, Sylvie
Scipione, Corey A.
Gaudreault, Nathalie
Boffa, Michael B.
Koschinsky, Marlys L.
Pibarot, Philippe
Droit, Arnaud
Thériault, Sébastien
Mathieu, Patrick
Bossé, Yohan
Arsenault, Benoit J.
author_sort Bourgeois, Raphaëlle
collection PubMed
description Lipoprotein(a) (Lp(a)) is one of the most important risk factors for the development of calcific aortic valve stenosis (CAVS). However, the mechanisms through which Lp(a) causes CAVS are currently unknown. Our objectives were to characterize the Lp(a) proteome and to identify proteins that may be differentially associated with Lp(a) in patients with versus without CAVS. Our second objective was to identify genes that may be differentially regulated by exposure to high versus low Lp(a) levels in explanted aortic valves from patients with CAVS. We isolated Lp(a) from the blood of 21 patients with CAVS and 22 volunteers and performed untargeted label-free analysis of the Lp(a) proteome. We also investigated the transcriptomic signature of calcified aortic valves from patients who underwent aortic valve replacement with high versus low Lp(a) levels (n = 118). Proteins involved in the protein activation cascade, platelet degranulation, leukocyte migration, and response to wounding may be associated with Lp(a) depending on CAVS status. The transcriptomic analysis identified genes involved in cardiac aging, chondrocyte development, and inflammation as potentially influenced by Lp(a). Our multi-omic analyses identified biological pathways through which Lp(a) may cause CAVS, as well as key molecular events that could be triggered by Lp(a) in CAVS development.
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spelling pubmed-83070142021-07-25 Lipoprotein Proteomics and Aortic Valve Transcriptomics Identify Biological Pathways Linking Lipoprotein(a) Levels to Aortic Stenosis Bourgeois, Raphaëlle Bourgault, Jérôme Despres, Audrey-Anne Perrot, Nicolas Guertin, Jakie Girard, Arnaud Mitchell, Patricia L. Gotti, Clarisse Bourassa, Sylvie Scipione, Corey A. Gaudreault, Nathalie Boffa, Michael B. Koschinsky, Marlys L. Pibarot, Philippe Droit, Arnaud Thériault, Sébastien Mathieu, Patrick Bossé, Yohan Arsenault, Benoit J. Metabolites Article Lipoprotein(a) (Lp(a)) is one of the most important risk factors for the development of calcific aortic valve stenosis (CAVS). However, the mechanisms through which Lp(a) causes CAVS are currently unknown. Our objectives were to characterize the Lp(a) proteome and to identify proteins that may be differentially associated with Lp(a) in patients with versus without CAVS. Our second objective was to identify genes that may be differentially regulated by exposure to high versus low Lp(a) levels in explanted aortic valves from patients with CAVS. We isolated Lp(a) from the blood of 21 patients with CAVS and 22 volunteers and performed untargeted label-free analysis of the Lp(a) proteome. We also investigated the transcriptomic signature of calcified aortic valves from patients who underwent aortic valve replacement with high versus low Lp(a) levels (n = 118). Proteins involved in the protein activation cascade, platelet degranulation, leukocyte migration, and response to wounding may be associated with Lp(a) depending on CAVS status. The transcriptomic analysis identified genes involved in cardiac aging, chondrocyte development, and inflammation as potentially influenced by Lp(a). Our multi-omic analyses identified biological pathways through which Lp(a) may cause CAVS, as well as key molecular events that could be triggered by Lp(a) in CAVS development. MDPI 2021-07-16 /pmc/articles/PMC8307014/ /pubmed/34357353 http://dx.doi.org/10.3390/metabo11070459 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Bourgeois, Raphaëlle
Bourgault, Jérôme
Despres, Audrey-Anne
Perrot, Nicolas
Guertin, Jakie
Girard, Arnaud
Mitchell, Patricia L.
Gotti, Clarisse
Bourassa, Sylvie
Scipione, Corey A.
Gaudreault, Nathalie
Boffa, Michael B.
Koschinsky, Marlys L.
Pibarot, Philippe
Droit, Arnaud
Thériault, Sébastien
Mathieu, Patrick
Bossé, Yohan
Arsenault, Benoit J.
Lipoprotein Proteomics and Aortic Valve Transcriptomics Identify Biological Pathways Linking Lipoprotein(a) Levels to Aortic Stenosis
title Lipoprotein Proteomics and Aortic Valve Transcriptomics Identify Biological Pathways Linking Lipoprotein(a) Levels to Aortic Stenosis
title_full Lipoprotein Proteomics and Aortic Valve Transcriptomics Identify Biological Pathways Linking Lipoprotein(a) Levels to Aortic Stenosis
title_fullStr Lipoprotein Proteomics and Aortic Valve Transcriptomics Identify Biological Pathways Linking Lipoprotein(a) Levels to Aortic Stenosis
title_full_unstemmed Lipoprotein Proteomics and Aortic Valve Transcriptomics Identify Biological Pathways Linking Lipoprotein(a) Levels to Aortic Stenosis
title_short Lipoprotein Proteomics and Aortic Valve Transcriptomics Identify Biological Pathways Linking Lipoprotein(a) Levels to Aortic Stenosis
title_sort lipoprotein proteomics and aortic valve transcriptomics identify biological pathways linking lipoprotein(a) levels to aortic stenosis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8307014/
https://www.ncbi.nlm.nih.gov/pubmed/34357353
http://dx.doi.org/10.3390/metabo11070459
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