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Bio-Inspired Fiber Reinforcement for Aortic Valves: Scaffold Production Process and Characterization

The application of tissue-engineered heart valves in the high-pressure circulatory system is still challenging. One possible solution is the development of biohybrid scaffolds with textile reinforcement to achieve improved mechanical properties. In this article, we present a manufacturing process of...

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Autores principales: Boehm, Christian A., Donay, Christine, Lubig, Andreas, Ruetten, Stephan, Sesa, Mahmoud, Fernández-Colino, Alicia, Reese, Stefanie, Jockenhoevel, Stefan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10525898/
https://www.ncbi.nlm.nih.gov/pubmed/37760166
http://dx.doi.org/10.3390/bioengineering10091064
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author Boehm, Christian A.
Donay, Christine
Lubig, Andreas
Ruetten, Stephan
Sesa, Mahmoud
Fernández-Colino, Alicia
Reese, Stefanie
Jockenhoevel, Stefan
author_facet Boehm, Christian A.
Donay, Christine
Lubig, Andreas
Ruetten, Stephan
Sesa, Mahmoud
Fernández-Colino, Alicia
Reese, Stefanie
Jockenhoevel, Stefan
author_sort Boehm, Christian A.
collection PubMed
description The application of tissue-engineered heart valves in the high-pressure circulatory system is still challenging. One possible solution is the development of biohybrid scaffolds with textile reinforcement to achieve improved mechanical properties. In this article, we present a manufacturing process of bio-inspired fiber reinforcement for an aortic valve scaffold. The reinforcement structure consists of polyvinylidene difluoride monofilament fibers that are biomimetically arranged by a novel winding process. The fibers were embedded and fixated into electrospun polycarbonate urethane on a cylindrical collector. The scaffold was characterized by biaxial tensile strength, bending stiffness, burst pressure and hemodynamically in a mock circulation system. The produced fiber-reinforced scaffold showed adequate acute mechanical and hemodynamic properties. The transvalvular pressure gradient was 3.02 ± 0.26 mmHg with an effective orifice area of 2.12 ± 0.22 cm(2). The valves sustained aortic conditions, fulfilling the ISO-5840 standards. The fiber-reinforced scaffold failed in a circumferential direction at a stress of 461.64 ± 58.87 N/m and a strain of 49.43 ± 7.53%. These values were above the levels of tested native heart valve tissue. Overall, we demonstrated a novel manufacturing approach to develop a fiber-reinforced biomimetic scaffold for aortic heart valve tissue engineering. The characterization showed that this approach is promising for an in situ valve replacement.
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spelling pubmed-105258982023-09-28 Bio-Inspired Fiber Reinforcement for Aortic Valves: Scaffold Production Process and Characterization Boehm, Christian A. Donay, Christine Lubig, Andreas Ruetten, Stephan Sesa, Mahmoud Fernández-Colino, Alicia Reese, Stefanie Jockenhoevel, Stefan Bioengineering (Basel) Article The application of tissue-engineered heart valves in the high-pressure circulatory system is still challenging. One possible solution is the development of biohybrid scaffolds with textile reinforcement to achieve improved mechanical properties. In this article, we present a manufacturing process of bio-inspired fiber reinforcement for an aortic valve scaffold. The reinforcement structure consists of polyvinylidene difluoride monofilament fibers that are biomimetically arranged by a novel winding process. The fibers were embedded and fixated into electrospun polycarbonate urethane on a cylindrical collector. The scaffold was characterized by biaxial tensile strength, bending stiffness, burst pressure and hemodynamically in a mock circulation system. The produced fiber-reinforced scaffold showed adequate acute mechanical and hemodynamic properties. The transvalvular pressure gradient was 3.02 ± 0.26 mmHg with an effective orifice area of 2.12 ± 0.22 cm(2). The valves sustained aortic conditions, fulfilling the ISO-5840 standards. The fiber-reinforced scaffold failed in a circumferential direction at a stress of 461.64 ± 58.87 N/m and a strain of 49.43 ± 7.53%. These values were above the levels of tested native heart valve tissue. Overall, we demonstrated a novel manufacturing approach to develop a fiber-reinforced biomimetic scaffold for aortic heart valve tissue engineering. The characterization showed that this approach is promising for an in situ valve replacement. MDPI 2023-09-09 /pmc/articles/PMC10525898/ /pubmed/37760166 http://dx.doi.org/10.3390/bioengineering10091064 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Boehm, Christian A.
Donay, Christine
Lubig, Andreas
Ruetten, Stephan
Sesa, Mahmoud
Fernández-Colino, Alicia
Reese, Stefanie
Jockenhoevel, Stefan
Bio-Inspired Fiber Reinforcement for Aortic Valves: Scaffold Production Process and Characterization
title Bio-Inspired Fiber Reinforcement for Aortic Valves: Scaffold Production Process and Characterization
title_full Bio-Inspired Fiber Reinforcement for Aortic Valves: Scaffold Production Process and Characterization
title_fullStr Bio-Inspired Fiber Reinforcement for Aortic Valves: Scaffold Production Process and Characterization
title_full_unstemmed Bio-Inspired Fiber Reinforcement for Aortic Valves: Scaffold Production Process and Characterization
title_short Bio-Inspired Fiber Reinforcement for Aortic Valves: Scaffold Production Process and Characterization
title_sort bio-inspired fiber reinforcement for aortic valves: scaffold production process and characterization
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10525898/
https://www.ncbi.nlm.nih.gov/pubmed/37760166
http://dx.doi.org/10.3390/bioengineering10091064
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