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Extracellular Matrix Proteomics Reveals Interplay of Aggrecan and Aggrecanases in Vascular Remodeling of Stented Coronary Arteries

BACKGROUND: Extracellular matrix (ECM) remodeling contributes to in-stent restenosis and thrombosis. Despite its important clinical implications, little is known about ECM changes post–stent implantation. METHODS: Bare-metal and drug-eluting stents were implanted in pig coronary arteries with an ove...

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Autores principales: Suna, Gonca, Wojakowski, Wojciech, Lynch, Marc, Barallobre-Barreiro, Javier, Yin, Xiaoke, Mayr, Ursula, Baig, Ferheen, Lu, Ruifang, Fava, Marika, Hayward, Robert, Molenaar, Chris, White, Stephen J., Roleder, Tomasz, Milewski, Krzysztof P., Gasior, Pawel, Buszman, Piotr P., Buszman, Pawel, Jahangiri, Marjan, Shanahan, Catherine M., Hill, Jonathan, Mayr, Manuel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Lippincott Williams & Wilkins 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5757669/
https://www.ncbi.nlm.nih.gov/pubmed/29030347
http://dx.doi.org/10.1161/CIRCULATIONAHA.116.023381
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author Suna, Gonca
Wojakowski, Wojciech
Lynch, Marc
Barallobre-Barreiro, Javier
Yin, Xiaoke
Mayr, Ursula
Baig, Ferheen
Lu, Ruifang
Fava, Marika
Hayward, Robert
Molenaar, Chris
White, Stephen J.
Roleder, Tomasz
Milewski, Krzysztof P.
Gasior, Pawel
Buszman, Piotr P.
Buszman, Pawel
Jahangiri, Marjan
Shanahan, Catherine M.
Hill, Jonathan
Mayr, Manuel
author_facet Suna, Gonca
Wojakowski, Wojciech
Lynch, Marc
Barallobre-Barreiro, Javier
Yin, Xiaoke
Mayr, Ursula
Baig, Ferheen
Lu, Ruifang
Fava, Marika
Hayward, Robert
Molenaar, Chris
White, Stephen J.
Roleder, Tomasz
Milewski, Krzysztof P.
Gasior, Pawel
Buszman, Piotr P.
Buszman, Pawel
Jahangiri, Marjan
Shanahan, Catherine M.
Hill, Jonathan
Mayr, Manuel
author_sort Suna, Gonca
collection PubMed
description BACKGROUND: Extracellular matrix (ECM) remodeling contributes to in-stent restenosis and thrombosis. Despite its important clinical implications, little is known about ECM changes post–stent implantation. METHODS: Bare-metal and drug-eluting stents were implanted in pig coronary arteries with an overstretch under optical coherence tomography guidance. Stented segments were harvested 1, 3, 7, 14, and 28 days post-stenting for proteomics analysis of the media and neointima. RESULTS: A total of 151 ECM and ECM-associated proteins were identified by mass spectrometry. After stent implantation, proteins involved in regulating calcification were upregulated in the neointima of drug-eluting stents. The earliest changes in the media were proteins involved in inflammation and thrombosis, followed by changes in regulatory ECM proteins. By day 28, basement membrane proteins were reduced in drug-eluting stents in comparison with bare-metal stents. In contrast, the large aggregating proteoglycan aggrecan was increased. Aggrecanases of the ADAMTS (a disintegrin and metalloproteinase with thrombospondin motifs) family contribute to the catabolism of vascular proteoglycans. An increase in ADAMTS-specific aggrecan fragments was accompanied by a notable shift from ADAMTS1 and ADAMTS5 to ADAMTS4 gene expression after stent implantation. Immunostaining in human stented coronary arteries confirmed the presence of aggrecan and aggrecan fragments, in particular, at the contacts of the stent struts with the artery. Further investigation of aggrecan presence in the human vasculature revealed that aggrecan and aggrecan cleavage were more abundant in human arteries than in human veins. In addition, aggrecan synthesis was induced on grafting a vein into the arterial circulation, suggesting an important role for aggrecan in vascular plasticity. Finally, lack of ADAMTS-5 activity in mice resulted in an accumulation of aggrecan and a dilation of the thoracic aorta, confirming that aggrecanase activity regulates aggrecan abundance in the arterial wall and contributes to vascular remodeling. CONCLUSIONS: Significant differences were identified by proteomics in the ECM of coronary arteries after bare-metal and drug-eluting stent implantation, most notably an upregulation of aggrecan, a major ECM component of cartilaginous tissues that confers resistance to compression. The accumulation of aggrecan coincided with a shift in ADAMTS gene expression. This study provides the first evidence implicating aggrecan and aggrecanases in the vascular injury response after stenting.
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spelling pubmed-57576692018-01-31 Extracellular Matrix Proteomics Reveals Interplay of Aggrecan and Aggrecanases in Vascular Remodeling of Stented Coronary Arteries Suna, Gonca Wojakowski, Wojciech Lynch, Marc Barallobre-Barreiro, Javier Yin, Xiaoke Mayr, Ursula Baig, Ferheen Lu, Ruifang Fava, Marika Hayward, Robert Molenaar, Chris White, Stephen J. Roleder, Tomasz Milewski, Krzysztof P. Gasior, Pawel Buszman, Piotr P. Buszman, Pawel Jahangiri, Marjan Shanahan, Catherine M. Hill, Jonathan Mayr, Manuel Circulation Original Research Articles BACKGROUND: Extracellular matrix (ECM) remodeling contributes to in-stent restenosis and thrombosis. Despite its important clinical implications, little is known about ECM changes post–stent implantation. METHODS: Bare-metal and drug-eluting stents were implanted in pig coronary arteries with an overstretch under optical coherence tomography guidance. Stented segments were harvested 1, 3, 7, 14, and 28 days post-stenting for proteomics analysis of the media and neointima. RESULTS: A total of 151 ECM and ECM-associated proteins were identified by mass spectrometry. After stent implantation, proteins involved in regulating calcification were upregulated in the neointima of drug-eluting stents. The earliest changes in the media were proteins involved in inflammation and thrombosis, followed by changes in regulatory ECM proteins. By day 28, basement membrane proteins were reduced in drug-eluting stents in comparison with bare-metal stents. In contrast, the large aggregating proteoglycan aggrecan was increased. Aggrecanases of the ADAMTS (a disintegrin and metalloproteinase with thrombospondin motifs) family contribute to the catabolism of vascular proteoglycans. An increase in ADAMTS-specific aggrecan fragments was accompanied by a notable shift from ADAMTS1 and ADAMTS5 to ADAMTS4 gene expression after stent implantation. Immunostaining in human stented coronary arteries confirmed the presence of aggrecan and aggrecan fragments, in particular, at the contacts of the stent struts with the artery. Further investigation of aggrecan presence in the human vasculature revealed that aggrecan and aggrecan cleavage were more abundant in human arteries than in human veins. In addition, aggrecan synthesis was induced on grafting a vein into the arterial circulation, suggesting an important role for aggrecan in vascular plasticity. Finally, lack of ADAMTS-5 activity in mice resulted in an accumulation of aggrecan and a dilation of the thoracic aorta, confirming that aggrecanase activity regulates aggrecan abundance in the arterial wall and contributes to vascular remodeling. CONCLUSIONS: Significant differences were identified by proteomics in the ECM of coronary arteries after bare-metal and drug-eluting stent implantation, most notably an upregulation of aggrecan, a major ECM component of cartilaginous tissues that confers resistance to compression. The accumulation of aggrecan coincided with a shift in ADAMTS gene expression. This study provides the first evidence implicating aggrecan and aggrecanases in the vascular injury response after stenting. Lippincott Williams & Wilkins 2018-01-09 2018-01-08 /pmc/articles/PMC5757669/ /pubmed/29030347 http://dx.doi.org/10.1161/CIRCULATIONAHA.116.023381 Text en © 2017 The Authors. Circulation is published on behalf of the American Heart Association, Inc., by Wolters Kluwer Health, Inc. This is an open access article under the terms of the Creative Commons Attribution (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution, and reproduction in any medium, provided that the original work is properly cited.
spellingShingle Original Research Articles
Suna, Gonca
Wojakowski, Wojciech
Lynch, Marc
Barallobre-Barreiro, Javier
Yin, Xiaoke
Mayr, Ursula
Baig, Ferheen
Lu, Ruifang
Fava, Marika
Hayward, Robert
Molenaar, Chris
White, Stephen J.
Roleder, Tomasz
Milewski, Krzysztof P.
Gasior, Pawel
Buszman, Piotr P.
Buszman, Pawel
Jahangiri, Marjan
Shanahan, Catherine M.
Hill, Jonathan
Mayr, Manuel
Extracellular Matrix Proteomics Reveals Interplay of Aggrecan and Aggrecanases in Vascular Remodeling of Stented Coronary Arteries
title Extracellular Matrix Proteomics Reveals Interplay of Aggrecan and Aggrecanases in Vascular Remodeling of Stented Coronary Arteries
title_full Extracellular Matrix Proteomics Reveals Interplay of Aggrecan and Aggrecanases in Vascular Remodeling of Stented Coronary Arteries
title_fullStr Extracellular Matrix Proteomics Reveals Interplay of Aggrecan and Aggrecanases in Vascular Remodeling of Stented Coronary Arteries
title_full_unstemmed Extracellular Matrix Proteomics Reveals Interplay of Aggrecan and Aggrecanases in Vascular Remodeling of Stented Coronary Arteries
title_short Extracellular Matrix Proteomics Reveals Interplay of Aggrecan and Aggrecanases in Vascular Remodeling of Stented Coronary Arteries
title_sort extracellular matrix proteomics reveals interplay of aggrecan and aggrecanases in vascular remodeling of stented coronary arteries
topic Original Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5757669/
https://www.ncbi.nlm.nih.gov/pubmed/29030347
http://dx.doi.org/10.1161/CIRCULATIONAHA.116.023381
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