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Research on the Methods for the Mass Production of Multi-Scale Organs-On-Chips

The success of labs- and organs-on-chips as transformative technologies in the biomedical arena relies on our capacity of solving some current challenges related to their design, modeling, manufacturability, and usability. Among present needs for the industrial scalability and impact promotion of th...

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Autores principales: Díaz Lantada, Andrés, Pfleging, Wilhelm, Besser, Heino, Guttmann, Markus, Wissmann, Markus, Plewa, Klaus, Smyrek, Peter, Piotter, Volker, García-Ruíz, Josefa Predestinación
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6401721/
https://www.ncbi.nlm.nih.gov/pubmed/30961163
http://dx.doi.org/10.3390/polym10111238
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author Díaz Lantada, Andrés
Pfleging, Wilhelm
Besser, Heino
Guttmann, Markus
Wissmann, Markus
Plewa, Klaus
Smyrek, Peter
Piotter, Volker
García-Ruíz, Josefa Predestinación
author_facet Díaz Lantada, Andrés
Pfleging, Wilhelm
Besser, Heino
Guttmann, Markus
Wissmann, Markus
Plewa, Klaus
Smyrek, Peter
Piotter, Volker
García-Ruíz, Josefa Predestinación
author_sort Díaz Lantada, Andrés
collection PubMed
description The success of labs- and organs-on-chips as transformative technologies in the biomedical arena relies on our capacity of solving some current challenges related to their design, modeling, manufacturability, and usability. Among present needs for the industrial scalability and impact promotion of these bio-devices, their sustainable mass production constitutes a breakthrough for reaching the desired level of repeatability in systematic testing procedures based on labs- and organs-on-chips. The use of adequate biomaterials for cell-culture processes and the achievement of the multi-scale features required, for in vitro modeling the physiological interactions among cells, tissues, and organoids, which prove to be demanding requirements in terms of production. This study presents an innovative synergistic combination of technologies, including: laser stereolithography, laser material processing on micro-scale, electroforming, and micro-injection molding, which enables the rapid creation of multi-scale mold cavities for the industrial production of labs- and organs-on-chips using thermoplastics apt for in vitro testing. The procedure is validated by the design, rapid prototyping, mass production, and preliminary testing with human mesenchymal stem cells of a conceptual multi-organ-on-chip platform, which is conceived for future studies linked to modeling cell-to-cell communication, understanding cell-material interactions, and studying metastatic processes.
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spelling pubmed-64017212019-04-02 Research on the Methods for the Mass Production of Multi-Scale Organs-On-Chips Díaz Lantada, Andrés Pfleging, Wilhelm Besser, Heino Guttmann, Markus Wissmann, Markus Plewa, Klaus Smyrek, Peter Piotter, Volker García-Ruíz, Josefa Predestinación Polymers (Basel) Article The success of labs- and organs-on-chips as transformative technologies in the biomedical arena relies on our capacity of solving some current challenges related to their design, modeling, manufacturability, and usability. Among present needs for the industrial scalability and impact promotion of these bio-devices, their sustainable mass production constitutes a breakthrough for reaching the desired level of repeatability in systematic testing procedures based on labs- and organs-on-chips. The use of adequate biomaterials for cell-culture processes and the achievement of the multi-scale features required, for in vitro modeling the physiological interactions among cells, tissues, and organoids, which prove to be demanding requirements in terms of production. This study presents an innovative synergistic combination of technologies, including: laser stereolithography, laser material processing on micro-scale, electroforming, and micro-injection molding, which enables the rapid creation of multi-scale mold cavities for the industrial production of labs- and organs-on-chips using thermoplastics apt for in vitro testing. The procedure is validated by the design, rapid prototyping, mass production, and preliminary testing with human mesenchymal stem cells of a conceptual multi-organ-on-chip platform, which is conceived for future studies linked to modeling cell-to-cell communication, understanding cell-material interactions, and studying metastatic processes. MDPI 2018-11-07 /pmc/articles/PMC6401721/ /pubmed/30961163 http://dx.doi.org/10.3390/polym10111238 Text en © 2018 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
Díaz Lantada, Andrés
Pfleging, Wilhelm
Besser, Heino
Guttmann, Markus
Wissmann, Markus
Plewa, Klaus
Smyrek, Peter
Piotter, Volker
García-Ruíz, Josefa Predestinación
Research on the Methods for the Mass Production of Multi-Scale Organs-On-Chips
title Research on the Methods for the Mass Production of Multi-Scale Organs-On-Chips
title_full Research on the Methods for the Mass Production of Multi-Scale Organs-On-Chips
title_fullStr Research on the Methods for the Mass Production of Multi-Scale Organs-On-Chips
title_full_unstemmed Research on the Methods for the Mass Production of Multi-Scale Organs-On-Chips
title_short Research on the Methods for the Mass Production of Multi-Scale Organs-On-Chips
title_sort research on the methods for the mass production of multi-scale organs-on-chips
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6401721/
https://www.ncbi.nlm.nih.gov/pubmed/30961163
http://dx.doi.org/10.3390/polym10111238
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