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Bioreactor Platform for Biomimetic Culture and in situ Monitoring of the Mechanical Response of in vitro Engineered Models of Cardiac Tissue

In the past two decades, relevant advances have been made in the generation of engineered cardiac constructs to be used as functional in vitro models for cardiac research or drug testing, and with the ultimate but still challenging goal of repairing the damaged myocardium. To support cardiac tissue...

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Autores principales: Massai, Diana, Pisani, Giuseppe, Isu, Giuseppe, Rodriguez Ruiz, Andres, Cerino, Giulia, Galluzzi, Renato, Pisanu, Alessia, Tonoli, Andrea, Bignardi, Cristina, Audenino, Alberto L., Marsano, Anna, Morbiducci, Umberto
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7381147/
https://www.ncbi.nlm.nih.gov/pubmed/32766218
http://dx.doi.org/10.3389/fbioe.2020.00733
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author Massai, Diana
Pisani, Giuseppe
Isu, Giuseppe
Rodriguez Ruiz, Andres
Cerino, Giulia
Galluzzi, Renato
Pisanu, Alessia
Tonoli, Andrea
Bignardi, Cristina
Audenino, Alberto L.
Marsano, Anna
Morbiducci, Umberto
author_facet Massai, Diana
Pisani, Giuseppe
Isu, Giuseppe
Rodriguez Ruiz, Andres
Cerino, Giulia
Galluzzi, Renato
Pisanu, Alessia
Tonoli, Andrea
Bignardi, Cristina
Audenino, Alberto L.
Marsano, Anna
Morbiducci, Umberto
author_sort Massai, Diana
collection PubMed
description In the past two decades, relevant advances have been made in the generation of engineered cardiac constructs to be used as functional in vitro models for cardiac research or drug testing, and with the ultimate but still challenging goal of repairing the damaged myocardium. To support cardiac tissue generation and maturation in vitro, the application of biomimetic physical stimuli within dedicated bioreactors is crucial. In particular, cardiac-like mechanical stimulation has been demonstrated to promote development and maturation of cardiac tissue models. Here, we developed an automated bioreactor platform for tunable cyclic stretch and in situ monitoring of the mechanical response of in vitro engineered cardiac tissues. To demonstrate the bioreactor platform performance and to investigate the effects of cyclic stretch on construct maturation and contractility, we developed 3D annular cardiac tissue models based on neonatal rat cardiac cells embedded in fibrin hydrogel. The constructs were statically pre-cultured for 5 days and then exposed to 4 days of uniaxial cyclic stretch (sinusoidal waveform, 10% strain, 1 Hz) within the bioreactor. Explanatory biological tests showed that cyclic stretch promoted cardiomyocyte alignment, maintenance, and maturation, with enhanced expression of typical mature cardiac markers compared to static controls. Moreover, in situ monitoring showed increasing passive force of the constructs along the dynamic culture. Finally, only the stretched constructs were responsive to external electrical pacing with synchronous and regular contractile activity, further confirming that cyclic stretching was instrumental for their functional maturation. This study shows that the proposed bioreactor platform is a reliable device for cyclic stretch culture and in situ monitoring of the passive mechanical response of the cultured constructs. The innovative feature of acquiring passive force measurements in situ and along the culture allows monitoring the construct maturation trend without interrupting the culture, making the proposed device a powerful tool for in vitro investigation and ultimately production of functional engineered cardiac constructs.
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spelling pubmed-73811472020-08-05 Bioreactor Platform for Biomimetic Culture and in situ Monitoring of the Mechanical Response of in vitro Engineered Models of Cardiac Tissue Massai, Diana Pisani, Giuseppe Isu, Giuseppe Rodriguez Ruiz, Andres Cerino, Giulia Galluzzi, Renato Pisanu, Alessia Tonoli, Andrea Bignardi, Cristina Audenino, Alberto L. Marsano, Anna Morbiducci, Umberto Front Bioeng Biotechnol Bioengineering and Biotechnology In the past two decades, relevant advances have been made in the generation of engineered cardiac constructs to be used as functional in vitro models for cardiac research or drug testing, and with the ultimate but still challenging goal of repairing the damaged myocardium. To support cardiac tissue generation and maturation in vitro, the application of biomimetic physical stimuli within dedicated bioreactors is crucial. In particular, cardiac-like mechanical stimulation has been demonstrated to promote development and maturation of cardiac tissue models. Here, we developed an automated bioreactor platform for tunable cyclic stretch and in situ monitoring of the mechanical response of in vitro engineered cardiac tissues. To demonstrate the bioreactor platform performance and to investigate the effects of cyclic stretch on construct maturation and contractility, we developed 3D annular cardiac tissue models based on neonatal rat cardiac cells embedded in fibrin hydrogel. The constructs were statically pre-cultured for 5 days and then exposed to 4 days of uniaxial cyclic stretch (sinusoidal waveform, 10% strain, 1 Hz) within the bioreactor. Explanatory biological tests showed that cyclic stretch promoted cardiomyocyte alignment, maintenance, and maturation, with enhanced expression of typical mature cardiac markers compared to static controls. Moreover, in situ monitoring showed increasing passive force of the constructs along the dynamic culture. Finally, only the stretched constructs were responsive to external electrical pacing with synchronous and regular contractile activity, further confirming that cyclic stretching was instrumental for their functional maturation. This study shows that the proposed bioreactor platform is a reliable device for cyclic stretch culture and in situ monitoring of the passive mechanical response of the cultured constructs. The innovative feature of acquiring passive force measurements in situ and along the culture allows monitoring the construct maturation trend without interrupting the culture, making the proposed device a powerful tool for in vitro investigation and ultimately production of functional engineered cardiac constructs. Frontiers Media S.A. 2020-07-14 /pmc/articles/PMC7381147/ /pubmed/32766218 http://dx.doi.org/10.3389/fbioe.2020.00733 Text en Copyright © 2020 Massai, Pisani, Isu, Rodriguez Ruiz, Cerino, Galluzzi, Pisanu, Tonoli, Bignardi, Audenino, Marsano and Morbiducci. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Bioengineering and Biotechnology
Massai, Diana
Pisani, Giuseppe
Isu, Giuseppe
Rodriguez Ruiz, Andres
Cerino, Giulia
Galluzzi, Renato
Pisanu, Alessia
Tonoli, Andrea
Bignardi, Cristina
Audenino, Alberto L.
Marsano, Anna
Morbiducci, Umberto
Bioreactor Platform for Biomimetic Culture and in situ Monitoring of the Mechanical Response of in vitro Engineered Models of Cardiac Tissue
title Bioreactor Platform for Biomimetic Culture and in situ Monitoring of the Mechanical Response of in vitro Engineered Models of Cardiac Tissue
title_full Bioreactor Platform for Biomimetic Culture and in situ Monitoring of the Mechanical Response of in vitro Engineered Models of Cardiac Tissue
title_fullStr Bioreactor Platform for Biomimetic Culture and in situ Monitoring of the Mechanical Response of in vitro Engineered Models of Cardiac Tissue
title_full_unstemmed Bioreactor Platform for Biomimetic Culture and in situ Monitoring of the Mechanical Response of in vitro Engineered Models of Cardiac Tissue
title_short Bioreactor Platform for Biomimetic Culture and in situ Monitoring of the Mechanical Response of in vitro Engineered Models of Cardiac Tissue
title_sort bioreactor platform for biomimetic culture and in situ monitoring of the mechanical response of in vitro engineered models of cardiac tissue
topic Bioengineering and Biotechnology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7381147/
https://www.ncbi.nlm.nih.gov/pubmed/32766218
http://dx.doi.org/10.3389/fbioe.2020.00733
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