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Design, fabrication, and characterization of a multimodal reconfigurable bioreactor for bone tissue engineering

In the past decades, bone tissue engineering developed and exploited many typologies of bioreactors, which, besides providing proper culture conditions, aimed at integrating those bio‐physical stimulations that cells experience in vivo, to promote osteogenic differentiation. Nevertheless, the highly...

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Autores principales: Montorsi, Margherita, Genchi, Giada G., De Pasquale, Daniele, De Simoni, Giorgio, Sinibaldi, Edoardo, Ciofani, Gianni
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9324218/
https://www.ncbi.nlm.nih.gov/pubmed/35383894
http://dx.doi.org/10.1002/bit.28100
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author Montorsi, Margherita
Genchi, Giada G.
De Pasquale, Daniele
De Simoni, Giorgio
Sinibaldi, Edoardo
Ciofani, Gianni
author_facet Montorsi, Margherita
Genchi, Giada G.
De Pasquale, Daniele
De Simoni, Giorgio
Sinibaldi, Edoardo
Ciofani, Gianni
author_sort Montorsi, Margherita
collection PubMed
description In the past decades, bone tissue engineering developed and exploited many typologies of bioreactors, which, besides providing proper culture conditions, aimed at integrating those bio‐physical stimulations that cells experience in vivo, to promote osteogenic differentiation. Nevertheless, the highly challenging combination and deployment of many stimulation systems into a single bioreactor led to the generation of several unimodal bioreactors, investigating one or at mostly two of the required biophysical stimuli. These systems miss the physiological mimicry of bone cells environment, and often produced contrasting results, thus making the knowledge of bone mechanotransduction fragmented and often inconsistent. To overcome this issue, in this study we developed a perfusion and electroactive‐vibrational reconfigurable stimulation bioreactor to investigate the differentiation of SaOS‐2 bone‐derived cells, hosting a piezoelectric nanocomposite membrane as cell culture substrate. This multimodal perfusion bioreactor is designed based on a numerical (finite element) model aimed at assessing the possibility to induce membrane nano‐scaled vibrations (with ~12 nm amplitude at a frequency of 939 kHz) during perfusion (featuring 1.46 dyn cm(−2) wall shear stress), large enough for inducing a physiologically‐relevant electric output (in the order of 10 mV on average) on the membrane surface. This study explored the effects of different stimuli individually, enabling to switch on one stimulation at a time, and then to combine them to induce a faster bone matrix deposition rate. Biological results demonstrate that the multimodal configuration is the most effective in inducing SaOS‐2 cell differentiation, leading to 20‐fold higher collagen deposition compared to static cultures, and to 1.6‐ and 1.2‐fold higher deposition than the perfused‐ or vibrated‐only cultures. These promising results can provide tissue engineering scientists with a comprehensive and biomimetic stimulation platform for a better understanding of mechanotransduction phenomena beyond cells differentiation.
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spelling pubmed-93242182022-07-30 Design, fabrication, and characterization of a multimodal reconfigurable bioreactor for bone tissue engineering Montorsi, Margherita Genchi, Giada G. De Pasquale, Daniele De Simoni, Giorgio Sinibaldi, Edoardo Ciofani, Gianni Biotechnol Bioeng ARTICLES In the past decades, bone tissue engineering developed and exploited many typologies of bioreactors, which, besides providing proper culture conditions, aimed at integrating those bio‐physical stimulations that cells experience in vivo, to promote osteogenic differentiation. Nevertheless, the highly challenging combination and deployment of many stimulation systems into a single bioreactor led to the generation of several unimodal bioreactors, investigating one or at mostly two of the required biophysical stimuli. These systems miss the physiological mimicry of bone cells environment, and often produced contrasting results, thus making the knowledge of bone mechanotransduction fragmented and often inconsistent. To overcome this issue, in this study we developed a perfusion and electroactive‐vibrational reconfigurable stimulation bioreactor to investigate the differentiation of SaOS‐2 bone‐derived cells, hosting a piezoelectric nanocomposite membrane as cell culture substrate. This multimodal perfusion bioreactor is designed based on a numerical (finite element) model aimed at assessing the possibility to induce membrane nano‐scaled vibrations (with ~12 nm amplitude at a frequency of 939 kHz) during perfusion (featuring 1.46 dyn cm(−2) wall shear stress), large enough for inducing a physiologically‐relevant electric output (in the order of 10 mV on average) on the membrane surface. This study explored the effects of different stimuli individually, enabling to switch on one stimulation at a time, and then to combine them to induce a faster bone matrix deposition rate. Biological results demonstrate that the multimodal configuration is the most effective in inducing SaOS‐2 cell differentiation, leading to 20‐fold higher collagen deposition compared to static cultures, and to 1.6‐ and 1.2‐fold higher deposition than the perfused‐ or vibrated‐only cultures. These promising results can provide tissue engineering scientists with a comprehensive and biomimetic stimulation platform for a better understanding of mechanotransduction phenomena beyond cells differentiation. John Wiley and Sons Inc. 2022-04-15 2022-07 /pmc/articles/PMC9324218/ /pubmed/35383894 http://dx.doi.org/10.1002/bit.28100 Text en © 2022 The Authors. Biotechnology and Bioengineering published by Wiley Periodicals LLC. https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc-nd/4.0/ (https://creativecommons.org/licenses/by-nc-nd/4.0/) License, which permits use and distribution in any medium, provided the original work is properly cited, the use is non‐commercial and no modifications or adaptations are made.
spellingShingle ARTICLES
Montorsi, Margherita
Genchi, Giada G.
De Pasquale, Daniele
De Simoni, Giorgio
Sinibaldi, Edoardo
Ciofani, Gianni
Design, fabrication, and characterization of a multimodal reconfigurable bioreactor for bone tissue engineering
title Design, fabrication, and characterization of a multimodal reconfigurable bioreactor for bone tissue engineering
title_full Design, fabrication, and characterization of a multimodal reconfigurable bioreactor for bone tissue engineering
title_fullStr Design, fabrication, and characterization of a multimodal reconfigurable bioreactor for bone tissue engineering
title_full_unstemmed Design, fabrication, and characterization of a multimodal reconfigurable bioreactor for bone tissue engineering
title_short Design, fabrication, and characterization of a multimodal reconfigurable bioreactor for bone tissue engineering
title_sort design, fabrication, and characterization of a multimodal reconfigurable bioreactor for bone tissue engineering
topic ARTICLES
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9324218/
https://www.ncbi.nlm.nih.gov/pubmed/35383894
http://dx.doi.org/10.1002/bit.28100
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