In vitro biocompatibility evaluation of a heat‐resistant 3D printing material for use in customized cell culture devices

  • Additive manufacturing (3D printing) enables the fabrication of highly customized and complex devices and is therefore increasingly used in the field of life sciences and biotechnology. However, the application of 3D-printed parts in these fields requires not only their biocompatibility but also their sterility. The most common method for sterilizing 3D-printed parts is heat steam sterilization—but most commercially available 3D printing materials cannot withstand high temperatures. In this study, a novel heat-resistant polyacrylate material for high-resolution 3D Multijet printing was evaluated for the first time for its resistance to heat steam sterilization and in vitro biocompatibility with mouse fibroblasts (L929), human embryonic kidney cells (HEK 293E), and yeast (Saccharomyces cerevisiae (S. cerevisiae)). Analysis of the growth and viability of L929 cells and the growth of S. cerevisiae confirmed that the extraction media obtained from 3D-printed parts had no negative effect onAdditive manufacturing (3D printing) enables the fabrication of highly customized and complex devices and is therefore increasingly used in the field of life sciences and biotechnology. However, the application of 3D-printed parts in these fields requires not only their biocompatibility but also their sterility. The most common method for sterilizing 3D-printed parts is heat steam sterilization—but most commercially available 3D printing materials cannot withstand high temperatures. In this study, a novel heat-resistant polyacrylate material for high-resolution 3D Multijet printing was evaluated for the first time for its resistance to heat steam sterilization and in vitro biocompatibility with mouse fibroblasts (L929), human embryonic kidney cells (HEK 293E), and yeast (Saccharomyces cerevisiae (S. cerevisiae)). Analysis of the growth and viability of L929 cells and the growth of S. cerevisiae confirmed that the extraction media obtained from 3D-printed parts had no negative effect on the aforementioned cell types, while, in contrast, viability and growth of HEK 293E cells were affected. No different effects of the material on the cells were found when comparing heat steam sterilization and disinfection with ethanol (70%, v/v). In principle, the investigated material shows great potential for high-resolution 3D printing of novel cell culture systems that are highly complex in design, customized and easily sterilizable—however, the biocompatibility of the material for other cell types needs to be re-evaluated.show moreshow less

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Metadaten
Author:Steffen WinklerGND, Katharina V. MeyerORCiDGND, Christopher HeuerGND, Carlotta Kortmann, Michaela DehneGND, Janina BahnemannORCiDGND
URN:urn:nbn:de:bvb:384-opus4-948828
Frontdoor URLhttps://opus.bibliothek.uni-augsburg.de/opus4/94882
ISSN:1618-0240OPAC
ISSN:1618-2863OPAC
Parent Title (English):Engineering in Life Sciences
Publisher:Wiley
Place of publication:Weinheim
Type:Article
Language:English
Year of first Publication:2022
Publishing Institution:Universität Augsburg
Release Date:2022/04/29
Tag:Bioengineering; Environmental Engineering; Biotechnology
Volume:22
Issue:11
First Page:699
Last Page:708
DOI:https://doi.org/10.1002/elsc.202100104
Institutes:Mathematisch-Naturwissenschaftlich-Technische Fakultät
Mathematisch-Naturwissenschaftlich-Technische Fakultät / Institut für Physik
Medizinische Fakultät
Medizinische Fakultät / Professur für Physiologie (Meissner)
Mathematisch-Naturwissenschaftlich-Technische Fakultät / Institut für Physik / Professur für Biologie mit der Ausrichtung auf chipbasierte sensorische und analytische Methoden
Dewey Decimal Classification:5 Naturwissenschaften und Mathematik / 57 Biowissenschaften; Biologie / 570 Biowissenschaften; Biologie
Licence (German):CC-BY 4.0: Creative Commons: Namensnennung (mit Print on Demand)