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A Proteomic Screen to Unravel the Molecular Pathways Associated with Warfarin-Induced or TNAP-Inhibited Arterial Calcification in Rats

Arterial media calcification refers to the pathological deposition of calcium phosphate crystals in the arterial wall. This pathology is a common and life-threatening complication in chronic kidney disease, diabetes and osteoporosis patients. Recently, we reported that the use of a TNAP inhibitor, S...

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Autores principales: Opdebeeck, Britt, Neven, Ellen, Maudsley, Stuart, Leysen, Hanne, Walter, Deborah, Geryl, Hilde, D’Haese, Patrick C., Verhulst, Anja
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9963640/
https://www.ncbi.nlm.nih.gov/pubmed/36835062
http://dx.doi.org/10.3390/ijms24043657
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author Opdebeeck, Britt
Neven, Ellen
Maudsley, Stuart
Leysen, Hanne
Walter, Deborah
Geryl, Hilde
D’Haese, Patrick C.
Verhulst, Anja
author_facet Opdebeeck, Britt
Neven, Ellen
Maudsley, Stuart
Leysen, Hanne
Walter, Deborah
Geryl, Hilde
D’Haese, Patrick C.
Verhulst, Anja
author_sort Opdebeeck, Britt
collection PubMed
description Arterial media calcification refers to the pathological deposition of calcium phosphate crystals in the arterial wall. This pathology is a common and life-threatening complication in chronic kidney disease, diabetes and osteoporosis patients. Recently, we reported that the use of a TNAP inhibitor, SBI-425, attenuated arterial media calcification in a warfarin rat model. Employing a high-dimensionality unbiased proteomic approach, we also investigated the molecular signaling events associated with blocking arterial calcification through SBI-425 dosing. The remedial actions of SBI-425 were strongly associated with (i) a significant downregulation of inflammatory (acute phase response signaling) and steroid/glucose nuclear receptor signaling (LXR/RXR signaling) pathways and (ii) an upregulation of mitochondrial metabolic pathways (TCA cycle II and Fatty Acid β-oxidation I). Interestingly, we previously demonstrated that uremic toxin-induced arterial calcification contributes to the activation of the acute phase response signaling pathway. Therefore, both studies suggest a strong link between acute phase response signaling and arterial calcification across different conditions. The identification of therapeutic targets in these molecular signaling pathways may pave the way to novel therapies against the development of arterial media calcification.
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spelling pubmed-99636402023-02-26 A Proteomic Screen to Unravel the Molecular Pathways Associated with Warfarin-Induced or TNAP-Inhibited Arterial Calcification in Rats Opdebeeck, Britt Neven, Ellen Maudsley, Stuart Leysen, Hanne Walter, Deborah Geryl, Hilde D’Haese, Patrick C. Verhulst, Anja Int J Mol Sci Article Arterial media calcification refers to the pathological deposition of calcium phosphate crystals in the arterial wall. This pathology is a common and life-threatening complication in chronic kidney disease, diabetes and osteoporosis patients. Recently, we reported that the use of a TNAP inhibitor, SBI-425, attenuated arterial media calcification in a warfarin rat model. Employing a high-dimensionality unbiased proteomic approach, we also investigated the molecular signaling events associated with blocking arterial calcification through SBI-425 dosing. The remedial actions of SBI-425 were strongly associated with (i) a significant downregulation of inflammatory (acute phase response signaling) and steroid/glucose nuclear receptor signaling (LXR/RXR signaling) pathways and (ii) an upregulation of mitochondrial metabolic pathways (TCA cycle II and Fatty Acid β-oxidation I). Interestingly, we previously demonstrated that uremic toxin-induced arterial calcification contributes to the activation of the acute phase response signaling pathway. Therefore, both studies suggest a strong link between acute phase response signaling and arterial calcification across different conditions. The identification of therapeutic targets in these molecular signaling pathways may pave the way to novel therapies against the development of arterial media calcification. MDPI 2023-02-11 /pmc/articles/PMC9963640/ /pubmed/36835062 http://dx.doi.org/10.3390/ijms24043657 Text en © 2023 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
Opdebeeck, Britt
Neven, Ellen
Maudsley, Stuart
Leysen, Hanne
Walter, Deborah
Geryl, Hilde
D’Haese, Patrick C.
Verhulst, Anja
A Proteomic Screen to Unravel the Molecular Pathways Associated with Warfarin-Induced or TNAP-Inhibited Arterial Calcification in Rats
title A Proteomic Screen to Unravel the Molecular Pathways Associated with Warfarin-Induced or TNAP-Inhibited Arterial Calcification in Rats
title_full A Proteomic Screen to Unravel the Molecular Pathways Associated with Warfarin-Induced or TNAP-Inhibited Arterial Calcification in Rats
title_fullStr A Proteomic Screen to Unravel the Molecular Pathways Associated with Warfarin-Induced or TNAP-Inhibited Arterial Calcification in Rats
title_full_unstemmed A Proteomic Screen to Unravel the Molecular Pathways Associated with Warfarin-Induced or TNAP-Inhibited Arterial Calcification in Rats
title_short A Proteomic Screen to Unravel the Molecular Pathways Associated with Warfarin-Induced or TNAP-Inhibited Arterial Calcification in Rats
title_sort proteomic screen to unravel the molecular pathways associated with warfarin-induced or tnap-inhibited arterial calcification in rats
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9963640/
https://www.ncbi.nlm.nih.gov/pubmed/36835062
http://dx.doi.org/10.3390/ijms24043657
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