Cargando…

The Combination of Hydrogels with 3D Fibrous Scaffolds Based on Electrospinning and Meltblown Technology

This study presents the advantages of combining three-dimensional biodegradable scaffolds with the injection bioprinting of hydrogels. This combination takes advantage of the synergic effect of the properties of the various components, namely the very favorable mechanical and structural properties o...

Descripción completa

Detalles Bibliográficos
Autores principales: Erben, Jakub, Jirkovec, Radek, Kalous, Tomas, Klicova, Marketa, Chvojka, Jiri
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9687736/
https://www.ncbi.nlm.nih.gov/pubmed/36354571
http://dx.doi.org/10.3390/bioengineering9110660
_version_ 1784836086125559808
author Erben, Jakub
Jirkovec, Radek
Kalous, Tomas
Klicova, Marketa
Chvojka, Jiri
author_facet Erben, Jakub
Jirkovec, Radek
Kalous, Tomas
Klicova, Marketa
Chvojka, Jiri
author_sort Erben, Jakub
collection PubMed
description This study presents the advantages of combining three-dimensional biodegradable scaffolds with the injection bioprinting of hydrogels. This combination takes advantage of the synergic effect of the properties of the various components, namely the very favorable mechanical and structural properties of fiber scaffolds fabricated from polycaprolactone and the targeted injection of a hydrogel cell suspension with a high degree of hydrophilicity. These properties exert a very positive impact in terms of promoting inner cell proliferation and the ability to create compact tissue. The scaffolds were composed of a mixture of microfibers produced via meltblown technology that ensured both an optimal three-dimensional porous structure and sufficient mechanical properties, and electrospun nanofibers that allowed for good cell adhesion. The scaffolds were suitable for combination with injection bioprinting thanks to their mechanical properties, i.e., only one nanofibrous scaffold became deformed during the injection process. A computer numerical-control manipulator featuring a heated printhead that allowed for the exact dosing of the hydrogel cell suspension into the scaffolds was used for the injection bioprinting. The hyaluronan hydrogel created a favorable hydrophilic ambiance following the filling of the fiber structure. Preliminary in vitro testing proved the high potential of this combination with respect to the field of bone tissue engineering. The ideal structural and mechanical properties of the tested material allowed osteoblasts to proliferate into the inner structure of the sample. Further, the tests demonstrated the significant contribution of printed hydrogel-cell suspension to the cell proliferation rate. Thus, the study led to the identification of a suitable hydrogel for osteoblasts.
format Online
Article
Text
id pubmed-9687736
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-96877362022-11-25 The Combination of Hydrogels with 3D Fibrous Scaffolds Based on Electrospinning and Meltblown Technology Erben, Jakub Jirkovec, Radek Kalous, Tomas Klicova, Marketa Chvojka, Jiri Bioengineering (Basel) Article This study presents the advantages of combining three-dimensional biodegradable scaffolds with the injection bioprinting of hydrogels. This combination takes advantage of the synergic effect of the properties of the various components, namely the very favorable mechanical and structural properties of fiber scaffolds fabricated from polycaprolactone and the targeted injection of a hydrogel cell suspension with a high degree of hydrophilicity. These properties exert a very positive impact in terms of promoting inner cell proliferation and the ability to create compact tissue. The scaffolds were composed of a mixture of microfibers produced via meltblown technology that ensured both an optimal three-dimensional porous structure and sufficient mechanical properties, and electrospun nanofibers that allowed for good cell adhesion. The scaffolds were suitable for combination with injection bioprinting thanks to their mechanical properties, i.e., only one nanofibrous scaffold became deformed during the injection process. A computer numerical-control manipulator featuring a heated printhead that allowed for the exact dosing of the hydrogel cell suspension into the scaffolds was used for the injection bioprinting. The hyaluronan hydrogel created a favorable hydrophilic ambiance following the filling of the fiber structure. Preliminary in vitro testing proved the high potential of this combination with respect to the field of bone tissue engineering. The ideal structural and mechanical properties of the tested material allowed osteoblasts to proliferate into the inner structure of the sample. Further, the tests demonstrated the significant contribution of printed hydrogel-cell suspension to the cell proliferation rate. Thus, the study led to the identification of a suitable hydrogel for osteoblasts. MDPI 2022-11-07 /pmc/articles/PMC9687736/ /pubmed/36354571 http://dx.doi.org/10.3390/bioengineering9110660 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
Erben, Jakub
Jirkovec, Radek
Kalous, Tomas
Klicova, Marketa
Chvojka, Jiri
The Combination of Hydrogels with 3D Fibrous Scaffolds Based on Electrospinning and Meltblown Technology
title The Combination of Hydrogels with 3D Fibrous Scaffolds Based on Electrospinning and Meltblown Technology
title_full The Combination of Hydrogels with 3D Fibrous Scaffolds Based on Electrospinning and Meltblown Technology
title_fullStr The Combination of Hydrogels with 3D Fibrous Scaffolds Based on Electrospinning and Meltblown Technology
title_full_unstemmed The Combination of Hydrogels with 3D Fibrous Scaffolds Based on Electrospinning and Meltblown Technology
title_short The Combination of Hydrogels with 3D Fibrous Scaffolds Based on Electrospinning and Meltblown Technology
title_sort combination of hydrogels with 3d fibrous scaffolds based on electrospinning and meltblown technology
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9687736/
https://www.ncbi.nlm.nih.gov/pubmed/36354571
http://dx.doi.org/10.3390/bioengineering9110660
work_keys_str_mv AT erbenjakub thecombinationofhydrogelswith3dfibrousscaffoldsbasedonelectrospinningandmeltblowntechnology
AT jirkovecradek thecombinationofhydrogelswith3dfibrousscaffoldsbasedonelectrospinningandmeltblowntechnology
AT kaloustomas thecombinationofhydrogelswith3dfibrousscaffoldsbasedonelectrospinningandmeltblowntechnology
AT klicovamarketa thecombinationofhydrogelswith3dfibrousscaffoldsbasedonelectrospinningandmeltblowntechnology
AT chvojkajiri thecombinationofhydrogelswith3dfibrousscaffoldsbasedonelectrospinningandmeltblowntechnology
AT erbenjakub combinationofhydrogelswith3dfibrousscaffoldsbasedonelectrospinningandmeltblowntechnology
AT jirkovecradek combinationofhydrogelswith3dfibrousscaffoldsbasedonelectrospinningandmeltblowntechnology
AT kaloustomas combinationofhydrogelswith3dfibrousscaffoldsbasedonelectrospinningandmeltblowntechnology
AT klicovamarketa combinationofhydrogelswith3dfibrousscaffoldsbasedonelectrospinningandmeltblowntechnology
AT chvojkajiri combinationofhydrogelswith3dfibrousscaffoldsbasedonelectrospinningandmeltblowntechnology