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A Novel Pulsatile Bioreactor for Mechanical Stimulation of Tissue Engineered Cardiac Constructs

After myocardial infarction, the implantation of stem cell seeded scaffolds on the ischemic zone represents a promising strategy for restoration of heart function. However, mechanical integrity and functionality of tissue engineered constructs need to be determined prior to implantation. Therefore,...

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Autores principales: Hollweck, Trixi, Akra, Bassil, Häussler, Simon, Überfuhr, Peter, Schmitz, Christoph, Pfeifer, Stefan, Eblenkamp, Markus, Wintermantel, Erich, Eissner, Günther
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4030939/
https://www.ncbi.nlm.nih.gov/pubmed/24956300
http://dx.doi.org/10.3390/jfb2030107
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author Hollweck, Trixi
Akra, Bassil
Häussler, Simon
Überfuhr, Peter
Schmitz, Christoph
Pfeifer, Stefan
Eblenkamp, Markus
Wintermantel, Erich
Eissner, Günther
author_facet Hollweck, Trixi
Akra, Bassil
Häussler, Simon
Überfuhr, Peter
Schmitz, Christoph
Pfeifer, Stefan
Eblenkamp, Markus
Wintermantel, Erich
Eissner, Günther
author_sort Hollweck, Trixi
collection PubMed
description After myocardial infarction, the implantation of stem cell seeded scaffolds on the ischemic zone represents a promising strategy for restoration of heart function. However, mechanical integrity and functionality of tissue engineered constructs need to be determined prior to implantation. Therefore, in this study a novel pulsatile bioreactor mimicking the myocardial contraction was developed to analyze the behavior of mesenchymal stem cells derived from umbilical cord tissue (UCMSC) colonized on titanium-coated polytetrafluorethylene scaffolds to friction stress. The design of the bioreactor enables a simple handling and defined mechanical forces on three seeded scaffolds at physiological conditions. The compact system made of acrylic glass, Teflon(®), silicone, and stainless steel allows the comparison of different media, cells and scaffolds. The bioreactor can be gas sterilized and actuated in a standard incubator. Macroscopic observations and pressure-measurements showed a uniformly sinusoidal pulsation, indicating that the bioreactor performed well. Preliminary experiments to determine the adherence rate and morphology of UCMSC after mechanical loadings showed an almost confluent cellular coating without damage on the cell surface. In summary, the bioreactor is an adequate tool for the mechanical stress of seeded scaffolds and offers dynamic stimuli for pre-conditioning of cardiac tissue engineered constructs in vitro.
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spelling pubmed-40309392014-06-12 A Novel Pulsatile Bioreactor for Mechanical Stimulation of Tissue Engineered Cardiac Constructs Hollweck, Trixi Akra, Bassil Häussler, Simon Überfuhr, Peter Schmitz, Christoph Pfeifer, Stefan Eblenkamp, Markus Wintermantel, Erich Eissner, Günther J Funct Biomater Article After myocardial infarction, the implantation of stem cell seeded scaffolds on the ischemic zone represents a promising strategy for restoration of heart function. However, mechanical integrity and functionality of tissue engineered constructs need to be determined prior to implantation. Therefore, in this study a novel pulsatile bioreactor mimicking the myocardial contraction was developed to analyze the behavior of mesenchymal stem cells derived from umbilical cord tissue (UCMSC) colonized on titanium-coated polytetrafluorethylene scaffolds to friction stress. The design of the bioreactor enables a simple handling and defined mechanical forces on three seeded scaffolds at physiological conditions. The compact system made of acrylic glass, Teflon(®), silicone, and stainless steel allows the comparison of different media, cells and scaffolds. The bioreactor can be gas sterilized and actuated in a standard incubator. Macroscopic observations and pressure-measurements showed a uniformly sinusoidal pulsation, indicating that the bioreactor performed well. Preliminary experiments to determine the adherence rate and morphology of UCMSC after mechanical loadings showed an almost confluent cellular coating without damage on the cell surface. In summary, the bioreactor is an adequate tool for the mechanical stress of seeded scaffolds and offers dynamic stimuli for pre-conditioning of cardiac tissue engineered constructs in vitro. MDPI 2011-07-20 /pmc/articles/PMC4030939/ /pubmed/24956300 http://dx.doi.org/10.3390/jfb2030107 Text en © 2011 by the authors; licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution license (http://creativecommons.org/licenses/by/3.0/).
spellingShingle Article
Hollweck, Trixi
Akra, Bassil
Häussler, Simon
Überfuhr, Peter
Schmitz, Christoph
Pfeifer, Stefan
Eblenkamp, Markus
Wintermantel, Erich
Eissner, Günther
A Novel Pulsatile Bioreactor for Mechanical Stimulation of Tissue Engineered Cardiac Constructs
title A Novel Pulsatile Bioreactor for Mechanical Stimulation of Tissue Engineered Cardiac Constructs
title_full A Novel Pulsatile Bioreactor for Mechanical Stimulation of Tissue Engineered Cardiac Constructs
title_fullStr A Novel Pulsatile Bioreactor for Mechanical Stimulation of Tissue Engineered Cardiac Constructs
title_full_unstemmed A Novel Pulsatile Bioreactor for Mechanical Stimulation of Tissue Engineered Cardiac Constructs
title_short A Novel Pulsatile Bioreactor for Mechanical Stimulation of Tissue Engineered Cardiac Constructs
title_sort novel pulsatile bioreactor for mechanical stimulation of tissue engineered cardiac constructs
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4030939/
https://www.ncbi.nlm.nih.gov/pubmed/24956300
http://dx.doi.org/10.3390/jfb2030107
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