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Decellularized Allogeneic Heart Valves Demonstrate Self-Regeneration Potential after a Long-Term Preclinical Evaluation

Tissue-engineered heart valves are proposed as novel viable replacements granting longer durability and growth potential. However, they require extensive in vitro cell-conditioning in bioreactor before implantation. Here, the propensity of non-preconditioned decellularized heart valves to spontaneou...

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Autores principales: Iop, Laura, Bonetti, Antonella, Naso, Filippo, Rizzo, Stefania, Cagnin, Stefano, Bianco, Roberto, Lin, Carlo Dal, Martini, Paolo, Poser, Helen, Franci, Paolo, Lanfranchi, Gerolamo, Busetto, Roberto, Spina, Michel, Basso, Cristina, Marchini, Maurizio, Gandaglia, Alessandro, Ortolani, Fulvia, Gerosa, Gino
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4062459/
https://www.ncbi.nlm.nih.gov/pubmed/24940754
http://dx.doi.org/10.1371/journal.pone.0099593
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author Iop, Laura
Bonetti, Antonella
Naso, Filippo
Rizzo, Stefania
Cagnin, Stefano
Bianco, Roberto
Lin, Carlo Dal
Martini, Paolo
Poser, Helen
Franci, Paolo
Lanfranchi, Gerolamo
Busetto, Roberto
Spina, Michel
Basso, Cristina
Marchini, Maurizio
Gandaglia, Alessandro
Ortolani, Fulvia
Gerosa, Gino
author_facet Iop, Laura
Bonetti, Antonella
Naso, Filippo
Rizzo, Stefania
Cagnin, Stefano
Bianco, Roberto
Lin, Carlo Dal
Martini, Paolo
Poser, Helen
Franci, Paolo
Lanfranchi, Gerolamo
Busetto, Roberto
Spina, Michel
Basso, Cristina
Marchini, Maurizio
Gandaglia, Alessandro
Ortolani, Fulvia
Gerosa, Gino
author_sort Iop, Laura
collection PubMed
description Tissue-engineered heart valves are proposed as novel viable replacements granting longer durability and growth potential. However, they require extensive in vitro cell-conditioning in bioreactor before implantation. Here, the propensity of non-preconditioned decellularized heart valves to spontaneous in body self-regeneration was investigated in a large animal model. Decellularized porcine aortic valves were evaluated for right ventricular outflow tract (RVOT) reconstruction in Vietnamese Pigs (n = 11) with 6 (n = 5) and 15 (n = 6) follow-up months. Repositioned native valves (n = 2 for each time) were considered as control. Tissue and cell components from explanted valves were investigated by histology, immunohistochemistry, electron microscopy, and gene expression. Most substitutes constantly demonstrated in vivo adequate hemodynamic performances and ex vivo progressive repopulation during the 15 implantation months without signs of calcifications, fibrosis and/or thrombosis, as revealed by histological, immunohistochemical, ultrastructural, metabolic and transcriptomic profiles. Colonizing cells displayed native-like phenotypes and actively synthesized novel extracellular matrix elements, as collagen and elastin fibers. New mature blood vessels, i.e. capillaries and vasa vasorum, were identified in repopulated valves especially in the medial and adventitial tunicae of regenerated arterial walls. Such findings correlated to the up-regulated vascular gene transcription. Neoinnervation hallmarks were appreciated at histological and ultrastructural levels. Macrophage populations with reparative M2 phenotype were highly represented in repopulated valves. Indeed, no aspects of adverse/immune reaction were revealed in immunohistochemical and transcriptomic patterns. Among differentiated elements, several cells were identified expressing typical stem cell markers of embryonic, hematopoietic, neural and mesenchymal lineages in significantly higher number and specific topographic distribution in respect to control valves. Following the longest follow-up ever realized in preclinical models, non-preconditioned decellularized allogeneic valves offer suitable microenvironment for in vivo cell homing and tissue remodeling. Manufactured with simple, timesaving and cost-effective procedures, these promising valve replacements hold promise to become an effective alternative, especially for pediatric patients.
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spelling pubmed-40624592014-06-24 Decellularized Allogeneic Heart Valves Demonstrate Self-Regeneration Potential after a Long-Term Preclinical Evaluation Iop, Laura Bonetti, Antonella Naso, Filippo Rizzo, Stefania Cagnin, Stefano Bianco, Roberto Lin, Carlo Dal Martini, Paolo Poser, Helen Franci, Paolo Lanfranchi, Gerolamo Busetto, Roberto Spina, Michel Basso, Cristina Marchini, Maurizio Gandaglia, Alessandro Ortolani, Fulvia Gerosa, Gino PLoS One Research Article Tissue-engineered heart valves are proposed as novel viable replacements granting longer durability and growth potential. However, they require extensive in vitro cell-conditioning in bioreactor before implantation. Here, the propensity of non-preconditioned decellularized heart valves to spontaneous in body self-regeneration was investigated in a large animal model. Decellularized porcine aortic valves were evaluated for right ventricular outflow tract (RVOT) reconstruction in Vietnamese Pigs (n = 11) with 6 (n = 5) and 15 (n = 6) follow-up months. Repositioned native valves (n = 2 for each time) were considered as control. Tissue and cell components from explanted valves were investigated by histology, immunohistochemistry, electron microscopy, and gene expression. Most substitutes constantly demonstrated in vivo adequate hemodynamic performances and ex vivo progressive repopulation during the 15 implantation months without signs of calcifications, fibrosis and/or thrombosis, as revealed by histological, immunohistochemical, ultrastructural, metabolic and transcriptomic profiles. Colonizing cells displayed native-like phenotypes and actively synthesized novel extracellular matrix elements, as collagen and elastin fibers. New mature blood vessels, i.e. capillaries and vasa vasorum, were identified in repopulated valves especially in the medial and adventitial tunicae of regenerated arterial walls. Such findings correlated to the up-regulated vascular gene transcription. Neoinnervation hallmarks were appreciated at histological and ultrastructural levels. Macrophage populations with reparative M2 phenotype were highly represented in repopulated valves. Indeed, no aspects of adverse/immune reaction were revealed in immunohistochemical and transcriptomic patterns. Among differentiated elements, several cells were identified expressing typical stem cell markers of embryonic, hematopoietic, neural and mesenchymal lineages in significantly higher number and specific topographic distribution in respect to control valves. Following the longest follow-up ever realized in preclinical models, non-preconditioned decellularized allogeneic valves offer suitable microenvironment for in vivo cell homing and tissue remodeling. Manufactured with simple, timesaving and cost-effective procedures, these promising valve replacements hold promise to become an effective alternative, especially for pediatric patients. Public Library of Science 2014-06-18 /pmc/articles/PMC4062459/ /pubmed/24940754 http://dx.doi.org/10.1371/journal.pone.0099593 Text en © 2014 Iop et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Iop, Laura
Bonetti, Antonella
Naso, Filippo
Rizzo, Stefania
Cagnin, Stefano
Bianco, Roberto
Lin, Carlo Dal
Martini, Paolo
Poser, Helen
Franci, Paolo
Lanfranchi, Gerolamo
Busetto, Roberto
Spina, Michel
Basso, Cristina
Marchini, Maurizio
Gandaglia, Alessandro
Ortolani, Fulvia
Gerosa, Gino
Decellularized Allogeneic Heart Valves Demonstrate Self-Regeneration Potential after a Long-Term Preclinical Evaluation
title Decellularized Allogeneic Heart Valves Demonstrate Self-Regeneration Potential after a Long-Term Preclinical Evaluation
title_full Decellularized Allogeneic Heart Valves Demonstrate Self-Regeneration Potential after a Long-Term Preclinical Evaluation
title_fullStr Decellularized Allogeneic Heart Valves Demonstrate Self-Regeneration Potential after a Long-Term Preclinical Evaluation
title_full_unstemmed Decellularized Allogeneic Heart Valves Demonstrate Self-Regeneration Potential after a Long-Term Preclinical Evaluation
title_short Decellularized Allogeneic Heart Valves Demonstrate Self-Regeneration Potential after a Long-Term Preclinical Evaluation
title_sort decellularized allogeneic heart valves demonstrate self-regeneration potential after a long-term preclinical evaluation
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4062459/
https://www.ncbi.nlm.nih.gov/pubmed/24940754
http://dx.doi.org/10.1371/journal.pone.0099593
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