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Cross-Linked Gelatine by Modified Dextran as a Potential Bioink Prepared by a Simple and Non-Toxic Process

Essential features of well-designed materials intended for 3D bioprinting via microextrusion are the appropriate rheological behavior and cell-friendly environment. Despite the rapid development, few materials are utilizable as bioinks. The aim of our work was to design a novel cytocompatible materi...

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Autores principales: Musilová, Lenka, Achbergerová, Eva, Vítková, Lenka, Kolařík, Roman, Martínková, Martina, Minařík, Antonín, Mráček, Aleš, Humpolíček, Petr, Pecha, Jiří
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8838658/
https://www.ncbi.nlm.nih.gov/pubmed/35160381
http://dx.doi.org/10.3390/polym14030391
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author Musilová, Lenka
Achbergerová, Eva
Vítková, Lenka
Kolařík, Roman
Martínková, Martina
Minařík, Antonín
Mráček, Aleš
Humpolíček, Petr
Pecha, Jiří
author_facet Musilová, Lenka
Achbergerová, Eva
Vítková, Lenka
Kolařík, Roman
Martínková, Martina
Minařík, Antonín
Mráček, Aleš
Humpolíček, Petr
Pecha, Jiří
author_sort Musilová, Lenka
collection PubMed
description Essential features of well-designed materials intended for 3D bioprinting via microextrusion are the appropriate rheological behavior and cell-friendly environment. Despite the rapid development, few materials are utilizable as bioinks. The aim of our work was to design a novel cytocompatible material facilitating extrusion-based 3D printing while maintaining a relatively simple and straightforward preparation process without the need for harsh chemicals or radiation. Specifically, hydrogels were prepared from gelatines coming from three sources—bovine, rabbit, and chicken—cross-linked by dextran polyaldehyde. The influence of dextran concentration on the properties of hydrogels was studied. Rheological measurements not only confirmed the strong shear-thinning behavior of prepared inks but were also used for capturing cross-linking reaction kinetics and demonstrated quick achievement of gelation point (in most cases < 3 min). Their viscoelastic properties allowed satisfactory extrusion, forming a self-supported multi-layered uniformly porous structure. All gelatin-based hydrogels were non-cytototoxic. Homogeneous cells distribution within the printed scaffold was confirmed by fluorescence confocal microscopy. In addition, no disruption of cells structure was observed. The results demonstrate the great potential of the presented hydrogels for applications related to 3D bioprinting.
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spelling pubmed-88386582022-02-13 Cross-Linked Gelatine by Modified Dextran as a Potential Bioink Prepared by a Simple and Non-Toxic Process Musilová, Lenka Achbergerová, Eva Vítková, Lenka Kolařík, Roman Martínková, Martina Minařík, Antonín Mráček, Aleš Humpolíček, Petr Pecha, Jiří Polymers (Basel) Article Essential features of well-designed materials intended for 3D bioprinting via microextrusion are the appropriate rheological behavior and cell-friendly environment. Despite the rapid development, few materials are utilizable as bioinks. The aim of our work was to design a novel cytocompatible material facilitating extrusion-based 3D printing while maintaining a relatively simple and straightforward preparation process without the need for harsh chemicals or radiation. Specifically, hydrogels were prepared from gelatines coming from three sources—bovine, rabbit, and chicken—cross-linked by dextran polyaldehyde. The influence of dextran concentration on the properties of hydrogels was studied. Rheological measurements not only confirmed the strong shear-thinning behavior of prepared inks but were also used for capturing cross-linking reaction kinetics and demonstrated quick achievement of gelation point (in most cases < 3 min). Their viscoelastic properties allowed satisfactory extrusion, forming a self-supported multi-layered uniformly porous structure. All gelatin-based hydrogels were non-cytototoxic. Homogeneous cells distribution within the printed scaffold was confirmed by fluorescence confocal microscopy. In addition, no disruption of cells structure was observed. The results demonstrate the great potential of the presented hydrogels for applications related to 3D bioprinting. MDPI 2022-01-19 /pmc/articles/PMC8838658/ /pubmed/35160381 http://dx.doi.org/10.3390/polym14030391 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Musilová, Lenka
Achbergerová, Eva
Vítková, Lenka
Kolařík, Roman
Martínková, Martina
Minařík, Antonín
Mráček, Aleš
Humpolíček, Petr
Pecha, Jiří
Cross-Linked Gelatine by Modified Dextran as a Potential Bioink Prepared by a Simple and Non-Toxic Process
title Cross-Linked Gelatine by Modified Dextran as a Potential Bioink Prepared by a Simple and Non-Toxic Process
title_full Cross-Linked Gelatine by Modified Dextran as a Potential Bioink Prepared by a Simple and Non-Toxic Process
title_fullStr Cross-Linked Gelatine by Modified Dextran as a Potential Bioink Prepared by a Simple and Non-Toxic Process
title_full_unstemmed Cross-Linked Gelatine by Modified Dextran as a Potential Bioink Prepared by a Simple and Non-Toxic Process
title_short Cross-Linked Gelatine by Modified Dextran as a Potential Bioink Prepared by a Simple and Non-Toxic Process
title_sort cross-linked gelatine by modified dextran as a potential bioink prepared by a simple and non-toxic process
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8838658/
https://www.ncbi.nlm.nih.gov/pubmed/35160381
http://dx.doi.org/10.3390/polym14030391
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