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Magnetic Bioreactor for Magneto-, Mechano- and Electroactive Tissue Engineering Strategies

Biomimetic bioreactor systems are increasingly being developed for tissue engineering applications, due to their ability to recreate the native cell/tissue microenvironment. Regarding bone-related diseases and considering the piezoelectric nature of bone, piezoelectric scaffolds electromechanically...

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Autores principales: Castro, Nelson, Fernandes, Margarida M., Ribeiro, Clarisse, Correia, Vítor, Minguez, Rikardo, Lanceros-Méndez, Senentxu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7349750/
https://www.ncbi.nlm.nih.gov/pubmed/32545551
http://dx.doi.org/10.3390/s20123340
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author Castro, Nelson
Fernandes, Margarida M.
Ribeiro, Clarisse
Correia, Vítor
Minguez, Rikardo
Lanceros-Méndez, Senentxu
author_facet Castro, Nelson
Fernandes, Margarida M.
Ribeiro, Clarisse
Correia, Vítor
Minguez, Rikardo
Lanceros-Méndez, Senentxu
author_sort Castro, Nelson
collection PubMed
description Biomimetic bioreactor systems are increasingly being developed for tissue engineering applications, due to their ability to recreate the native cell/tissue microenvironment. Regarding bone-related diseases and considering the piezoelectric nature of bone, piezoelectric scaffolds electromechanically stimulated by a bioreactor, providing the stimuli to the cells, allows a biomimetic approach and thus, mimicking the required microenvironment for effective growth and differentiation of bone cells. In this work, a bioreactor has been designed and built allowing to magnetically stimulate magnetoelectric scaffolds and therefore provide mechanical and electrical stimuli to the cells through magnetomechanical or magnetoelectrical effects, depending on the piezoelectric nature of the scaffold. While mechanical bioreactors need direct application of the stimuli on the scaffolds, the herein proposed magnetic bioreactors allow for a remote stimulation without direct contact with the material. Thus, the stimuli application (23 mT at a frequency of 0.3 Hz) to cells seeded on the magnetoelectric, leads to an increase in cell viability of almost 30% with respect to cell culture under static conditions. This could be valuable to mimic what occurs in the human body and for application in immobilized patients. Thus, special emphasis has been placed on the control, design and modeling parameters governing the bioreactor as well as its functional mechanism.
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spelling pubmed-73497502020-07-15 Magnetic Bioreactor for Magneto-, Mechano- and Electroactive Tissue Engineering Strategies Castro, Nelson Fernandes, Margarida M. Ribeiro, Clarisse Correia, Vítor Minguez, Rikardo Lanceros-Méndez, Senentxu Sensors (Basel) Article Biomimetic bioreactor systems are increasingly being developed for tissue engineering applications, due to their ability to recreate the native cell/tissue microenvironment. Regarding bone-related diseases and considering the piezoelectric nature of bone, piezoelectric scaffolds electromechanically stimulated by a bioreactor, providing the stimuli to the cells, allows a biomimetic approach and thus, mimicking the required microenvironment for effective growth and differentiation of bone cells. In this work, a bioreactor has been designed and built allowing to magnetically stimulate magnetoelectric scaffolds and therefore provide mechanical and electrical stimuli to the cells through magnetomechanical or magnetoelectrical effects, depending on the piezoelectric nature of the scaffold. While mechanical bioreactors need direct application of the stimuli on the scaffolds, the herein proposed magnetic bioreactors allow for a remote stimulation without direct contact with the material. Thus, the stimuli application (23 mT at a frequency of 0.3 Hz) to cells seeded on the magnetoelectric, leads to an increase in cell viability of almost 30% with respect to cell culture under static conditions. This could be valuable to mimic what occurs in the human body and for application in immobilized patients. Thus, special emphasis has been placed on the control, design and modeling parameters governing the bioreactor as well as its functional mechanism. MDPI 2020-06-12 /pmc/articles/PMC7349750/ /pubmed/32545551 http://dx.doi.org/10.3390/s20123340 Text en © 2020 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 (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Castro, Nelson
Fernandes, Margarida M.
Ribeiro, Clarisse
Correia, Vítor
Minguez, Rikardo
Lanceros-Méndez, Senentxu
Magnetic Bioreactor for Magneto-, Mechano- and Electroactive Tissue Engineering Strategies
title Magnetic Bioreactor for Magneto-, Mechano- and Electroactive Tissue Engineering Strategies
title_full Magnetic Bioreactor for Magneto-, Mechano- and Electroactive Tissue Engineering Strategies
title_fullStr Magnetic Bioreactor for Magneto-, Mechano- and Electroactive Tissue Engineering Strategies
title_full_unstemmed Magnetic Bioreactor for Magneto-, Mechano- and Electroactive Tissue Engineering Strategies
title_short Magnetic Bioreactor for Magneto-, Mechano- and Electroactive Tissue Engineering Strategies
title_sort magnetic bioreactor for magneto-, mechano- and electroactive tissue engineering strategies
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7349750/
https://www.ncbi.nlm.nih.gov/pubmed/32545551
http://dx.doi.org/10.3390/s20123340
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