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Homeobox B9 integrates bone morphogenic protein 4 with inflammation at atheroprone sites

AIMS: Atherosclerosis develops near branches and bends of arteries that are exposed to disturbed blood flow which exerts low wall shear stress (WSS). These mechanical conditions alter endothelial cells (EC) by priming them for inflammation and by inducing turnover. Homeobox (Hox) genes are developme...

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Autores principales: Souilhol, Celine, Gauci, Ismael, Feng, Shuang, Tardajos Ayllon, Blanca, Mahmoud, Marwa, Canham, Lindsay, Fragiadaki, Maria, Serbanovic-Canic, Jovana, Ridger, Victoria, Evans, Paul Charles
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7243277/
https://www.ncbi.nlm.nih.gov/pubmed/31504243
http://dx.doi.org/10.1093/cvr/cvz235
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author Souilhol, Celine
Gauci, Ismael
Feng, Shuang
Tardajos Ayllon, Blanca
Mahmoud, Marwa
Canham, Lindsay
Fragiadaki, Maria
Serbanovic-Canic, Jovana
Ridger, Victoria
Evans, Paul Charles
author_facet Souilhol, Celine
Gauci, Ismael
Feng, Shuang
Tardajos Ayllon, Blanca
Mahmoud, Marwa
Canham, Lindsay
Fragiadaki, Maria
Serbanovic-Canic, Jovana
Ridger, Victoria
Evans, Paul Charles
author_sort Souilhol, Celine
collection PubMed
description AIMS: Atherosclerosis develops near branches and bends of arteries that are exposed to disturbed blood flow which exerts low wall shear stress (WSS). These mechanical conditions alter endothelial cells (EC) by priming them for inflammation and by inducing turnover. Homeobox (Hox) genes are developmental genes involved in the patterning of embryos along their anterior–posterior and proximal–distal axes. Here we identified Hox genes that are regulated by WSS and investigated their functions in adult arteries. METHODS AND RESULTS: EC were isolated from inner (low WSS) and outer (high WSS) regions of the porcine aorta and the expression of Hox genes was analysed by quantitative real-time PCR. Several Hox genes (HoxA10, HoxB4, HoxB7, HoxB9, HoxD8, HoxD9) were significantly enriched at the low WSS compared to the high WSS region. Similarly, studies of cultured human umbilical vein EC (HUVEC) or porcine aortic EC revealed that the expression of multiple Hox genes (HoxA10, HoxB9, HoxD8, HoxD9) was enhanced under low (4 dyn/cm(2)) compared to high (13 dyn/cm(2)) WSS conditions. Gene silencing studies identified Hox genes (HoxB9, HoxD8, HoxD9) that are positive regulators of inflammatory molecule expression in EC exposed to low WSS, and others (HoxB9, HoxB7, HoxB4) that regulated EC turnover. We subsequently focused on HoxB9 because it was strongly up-regulated by low WSS and, uniquely, was a driver of both inflammation and proliferation. At a mechanistic level, we demonstrate using cultured EC and murine models that bone morphogenic protein 4 (BMP4) is an upstream regulator of HoxB9 which elicits inflammation via induction of numerous inflammatory mediators including TNF and downstream NF-κB activation. Moreover, the BMP4-HoxB9-TNF pathway was potentiated by hypercholesterolaemic conditions. CONCLUSIONS: Low WSS induces multiple Hox genes that control the activation state and turnover of EC. Notably, low WSS activates a BMP4-HoxB9-TNF signalling pathway to initiate focal arterial inflammation, thereby demonstrating integration of the BMP and Hox systems in vascular pathophysiology.
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spelling pubmed-72432772020-06-02 Homeobox B9 integrates bone morphogenic protein 4 with inflammation at atheroprone sites Souilhol, Celine Gauci, Ismael Feng, Shuang Tardajos Ayllon, Blanca Mahmoud, Marwa Canham, Lindsay Fragiadaki, Maria Serbanovic-Canic, Jovana Ridger, Victoria Evans, Paul Charles Cardiovasc Res Original Articles AIMS: Atherosclerosis develops near branches and bends of arteries that are exposed to disturbed blood flow which exerts low wall shear stress (WSS). These mechanical conditions alter endothelial cells (EC) by priming them for inflammation and by inducing turnover. Homeobox (Hox) genes are developmental genes involved in the patterning of embryos along their anterior–posterior and proximal–distal axes. Here we identified Hox genes that are regulated by WSS and investigated their functions in adult arteries. METHODS AND RESULTS: EC were isolated from inner (low WSS) and outer (high WSS) regions of the porcine aorta and the expression of Hox genes was analysed by quantitative real-time PCR. Several Hox genes (HoxA10, HoxB4, HoxB7, HoxB9, HoxD8, HoxD9) were significantly enriched at the low WSS compared to the high WSS region. Similarly, studies of cultured human umbilical vein EC (HUVEC) or porcine aortic EC revealed that the expression of multiple Hox genes (HoxA10, HoxB9, HoxD8, HoxD9) was enhanced under low (4 dyn/cm(2)) compared to high (13 dyn/cm(2)) WSS conditions. Gene silencing studies identified Hox genes (HoxB9, HoxD8, HoxD9) that are positive regulators of inflammatory molecule expression in EC exposed to low WSS, and others (HoxB9, HoxB7, HoxB4) that regulated EC turnover. We subsequently focused on HoxB9 because it was strongly up-regulated by low WSS and, uniquely, was a driver of both inflammation and proliferation. At a mechanistic level, we demonstrate using cultured EC and murine models that bone morphogenic protein 4 (BMP4) is an upstream regulator of HoxB9 which elicits inflammation via induction of numerous inflammatory mediators including TNF and downstream NF-κB activation. Moreover, the BMP4-HoxB9-TNF pathway was potentiated by hypercholesterolaemic conditions. CONCLUSIONS: Low WSS induces multiple Hox genes that control the activation state and turnover of EC. Notably, low WSS activates a BMP4-HoxB9-TNF signalling pathway to initiate focal arterial inflammation, thereby demonstrating integration of the BMP and Hox systems in vascular pathophysiology. Oxford University Press 2020-06-01 2019-08-29 /pmc/articles/PMC7243277/ /pubmed/31504243 http://dx.doi.org/10.1093/cvr/cvz235 Text en © The Author(s) 2019. Published by Oxford University Press on behalf of the European Society of Cardiology http://creativecommons.org/licenses/by/4.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Articles
Souilhol, Celine
Gauci, Ismael
Feng, Shuang
Tardajos Ayllon, Blanca
Mahmoud, Marwa
Canham, Lindsay
Fragiadaki, Maria
Serbanovic-Canic, Jovana
Ridger, Victoria
Evans, Paul Charles
Homeobox B9 integrates bone morphogenic protein 4 with inflammation at atheroprone sites
title Homeobox B9 integrates bone morphogenic protein 4 with inflammation at atheroprone sites
title_full Homeobox B9 integrates bone morphogenic protein 4 with inflammation at atheroprone sites
title_fullStr Homeobox B9 integrates bone morphogenic protein 4 with inflammation at atheroprone sites
title_full_unstemmed Homeobox B9 integrates bone morphogenic protein 4 with inflammation at atheroprone sites
title_short Homeobox B9 integrates bone morphogenic protein 4 with inflammation at atheroprone sites
title_sort homeobox b9 integrates bone morphogenic protein 4 with inflammation at atheroprone sites
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7243277/
https://www.ncbi.nlm.nih.gov/pubmed/31504243
http://dx.doi.org/10.1093/cvr/cvz235
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