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Coronary artery mechanics induces human saphenous vein remodelling via recruitment of adventitial myofibroblast-like cells mediated by Thrombospondin-1

Rationale: Despite the preferred application of arterial conduits, the greater saphenous vein (SV) remains indispensable for coronary bypass grafting (CABG), especially in multi-vessel coronary artery disease (CAD). The objective of the present work was to address the role of mechanical forces in th...

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Autores principales: Garoffolo, Gloria, Ruiter, Matthijs S., Piola, Marco, Brioschi, Maura, Thomas, Anita C., Agrifoglio, Marco, Polvani, Gianluca, Coppadoro, Lorenzo, Zoli, Stefano, Saccu, Claudio, Spinetti, Gaia, Banfi, Cristina, Fiore, Gianfranco B., Madeddu, Paolo, Soncini, Monica, Pesce, Maurizio
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7052885/
https://www.ncbi.nlm.nih.gov/pubmed/32194822
http://dx.doi.org/10.7150/thno.40595
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author Garoffolo, Gloria
Ruiter, Matthijs S.
Piola, Marco
Brioschi, Maura
Thomas, Anita C.
Agrifoglio, Marco
Polvani, Gianluca
Coppadoro, Lorenzo
Zoli, Stefano
Saccu, Claudio
Spinetti, Gaia
Banfi, Cristina
Fiore, Gianfranco B.
Madeddu, Paolo
Soncini, Monica
Pesce, Maurizio
author_facet Garoffolo, Gloria
Ruiter, Matthijs S.
Piola, Marco
Brioschi, Maura
Thomas, Anita C.
Agrifoglio, Marco
Polvani, Gianluca
Coppadoro, Lorenzo
Zoli, Stefano
Saccu, Claudio
Spinetti, Gaia
Banfi, Cristina
Fiore, Gianfranco B.
Madeddu, Paolo
Soncini, Monica
Pesce, Maurizio
author_sort Garoffolo, Gloria
collection PubMed
description Rationale: Despite the preferred application of arterial conduits, the greater saphenous vein (SV) remains indispensable for coronary bypass grafting (CABG), especially in multi-vessel coronary artery disease (CAD). The objective of the present work was to address the role of mechanical forces in the activation of maladaptive vein bypass remodeling, a process determining progressive occlusion and recurrence of ischemic heart disease. Methods: We employed a custom bioreactor to mimic the coronary shear and wall mechanics in human SV vascular conduits and reproduce experimentally the biomechanical conditions of coronary grafting and analyzed vein remodeling process by histology, histochemistry and immunofluorescence. We also subjected vein-derived cells to cyclic uniaxial mechanical stimulation in culture, followed by phenotypic and molecular characterization using RNA and proteomic methods. We finally validated our results in vitro and using a model of SV carotid interposition in pigs. Results: Exposure to pulsatile flow determined a remodeling process of the vascular wall involving reduction in media thickness. Smooth muscle cells (SMCs) underwent conversion from contractile to synthetic phenotype. A time-dependent increase in proliferating cells expressing mesenchymal (CD44) and early SMC (SM22α) markers, apparently recruited from the SV adventitia, was observed especially in CABG-stimulated vessels. Mechanically stimulated SMCs underwent transition from contractile to synthetic phenotype. MALDI-TOF-based secretome analysis revealed a consistent release of Thrombospondin-1 (TSP-1), a matricellular protein involved in TGF-β-dependent signaling. TSP-1 had a direct chemotactic effect on SV adventitia resident progenitors (SVPs); this effects was inhibited by blocking TSP-1 receptor CD47. The involvement of TSP-1 in adventitial progenitor cells differentiation and graft intima hyperplasia was finally contextualized in the TGF-β-dependent pathway, and validated in a saphenous vein into carotid interposition pig model. Conclusions: Our results provide the evidence of a matricellular mechanism involved in the human vein arterialization process controlled by alterations in tissue mechanics, and open the way to novel potential strategies to block VGD progression based on targeting cell mechanosensing-related effectors.
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spelling pubmed-70528852020-03-19 Coronary artery mechanics induces human saphenous vein remodelling via recruitment of adventitial myofibroblast-like cells mediated by Thrombospondin-1 Garoffolo, Gloria Ruiter, Matthijs S. Piola, Marco Brioschi, Maura Thomas, Anita C. Agrifoglio, Marco Polvani, Gianluca Coppadoro, Lorenzo Zoli, Stefano Saccu, Claudio Spinetti, Gaia Banfi, Cristina Fiore, Gianfranco B. Madeddu, Paolo Soncini, Monica Pesce, Maurizio Theranostics Research Paper Rationale: Despite the preferred application of arterial conduits, the greater saphenous vein (SV) remains indispensable for coronary bypass grafting (CABG), especially in multi-vessel coronary artery disease (CAD). The objective of the present work was to address the role of mechanical forces in the activation of maladaptive vein bypass remodeling, a process determining progressive occlusion and recurrence of ischemic heart disease. Methods: We employed a custom bioreactor to mimic the coronary shear and wall mechanics in human SV vascular conduits and reproduce experimentally the biomechanical conditions of coronary grafting and analyzed vein remodeling process by histology, histochemistry and immunofluorescence. We also subjected vein-derived cells to cyclic uniaxial mechanical stimulation in culture, followed by phenotypic and molecular characterization using RNA and proteomic methods. We finally validated our results in vitro and using a model of SV carotid interposition in pigs. Results: Exposure to pulsatile flow determined a remodeling process of the vascular wall involving reduction in media thickness. Smooth muscle cells (SMCs) underwent conversion from contractile to synthetic phenotype. A time-dependent increase in proliferating cells expressing mesenchymal (CD44) and early SMC (SM22α) markers, apparently recruited from the SV adventitia, was observed especially in CABG-stimulated vessels. Mechanically stimulated SMCs underwent transition from contractile to synthetic phenotype. MALDI-TOF-based secretome analysis revealed a consistent release of Thrombospondin-1 (TSP-1), a matricellular protein involved in TGF-β-dependent signaling. TSP-1 had a direct chemotactic effect on SV adventitia resident progenitors (SVPs); this effects was inhibited by blocking TSP-1 receptor CD47. The involvement of TSP-1 in adventitial progenitor cells differentiation and graft intima hyperplasia was finally contextualized in the TGF-β-dependent pathway, and validated in a saphenous vein into carotid interposition pig model. Conclusions: Our results provide the evidence of a matricellular mechanism involved in the human vein arterialization process controlled by alterations in tissue mechanics, and open the way to novel potential strategies to block VGD progression based on targeting cell mechanosensing-related effectors. Ivyspring International Publisher 2020-02-03 /pmc/articles/PMC7052885/ /pubmed/32194822 http://dx.doi.org/10.7150/thno.40595 Text en © The author(s) This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/). See http://ivyspring.com/terms for full terms and conditions.
spellingShingle Research Paper
Garoffolo, Gloria
Ruiter, Matthijs S.
Piola, Marco
Brioschi, Maura
Thomas, Anita C.
Agrifoglio, Marco
Polvani, Gianluca
Coppadoro, Lorenzo
Zoli, Stefano
Saccu, Claudio
Spinetti, Gaia
Banfi, Cristina
Fiore, Gianfranco B.
Madeddu, Paolo
Soncini, Monica
Pesce, Maurizio
Coronary artery mechanics induces human saphenous vein remodelling via recruitment of adventitial myofibroblast-like cells mediated by Thrombospondin-1
title Coronary artery mechanics induces human saphenous vein remodelling via recruitment of adventitial myofibroblast-like cells mediated by Thrombospondin-1
title_full Coronary artery mechanics induces human saphenous vein remodelling via recruitment of adventitial myofibroblast-like cells mediated by Thrombospondin-1
title_fullStr Coronary artery mechanics induces human saphenous vein remodelling via recruitment of adventitial myofibroblast-like cells mediated by Thrombospondin-1
title_full_unstemmed Coronary artery mechanics induces human saphenous vein remodelling via recruitment of adventitial myofibroblast-like cells mediated by Thrombospondin-1
title_short Coronary artery mechanics induces human saphenous vein remodelling via recruitment of adventitial myofibroblast-like cells mediated by Thrombospondin-1
title_sort coronary artery mechanics induces human saphenous vein remodelling via recruitment of adventitial myofibroblast-like cells mediated by thrombospondin-1
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7052885/
https://www.ncbi.nlm.nih.gov/pubmed/32194822
http://dx.doi.org/10.7150/thno.40595
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