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Chitosan–Cellulose Multifunctional Hydrogel Beads: Design, Characterization and Evaluation of Cytocompatibility with Breast Adenocarcinoma and Osteoblast Cells

Cytocompatible polysaccharide-based functional scaffolds are potential extracellular matrix candidates for soft and hard tissue engineering. This paper describes a facile approach to design cytocompatible, non-toxic, and multifunctional chitosan-cellulose based hydrogel beads utilising polysaccharid...

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Autores principales: Trivedi, Poonam, Saloranta-Simell, Tiina, Maver, Uroš, Gradišnik, Lidija, Prabhakar, Neeraj, Smått, Jan-Henrik, Mohan, Tamilselvan, Gericke, Martin, Heinze, Thomas, Fardim, Pedro
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5874869/
https://www.ncbi.nlm.nih.gov/pubmed/29315214
http://dx.doi.org/10.3390/bioengineering5010003
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author Trivedi, Poonam
Saloranta-Simell, Tiina
Maver, Uroš
Gradišnik, Lidija
Prabhakar, Neeraj
Smått, Jan-Henrik
Mohan, Tamilselvan
Gericke, Martin
Heinze, Thomas
Fardim, Pedro
author_facet Trivedi, Poonam
Saloranta-Simell, Tiina
Maver, Uroš
Gradišnik, Lidija
Prabhakar, Neeraj
Smått, Jan-Henrik
Mohan, Tamilselvan
Gericke, Martin
Heinze, Thomas
Fardim, Pedro
author_sort Trivedi, Poonam
collection PubMed
description Cytocompatible polysaccharide-based functional scaffolds are potential extracellular matrix candidates for soft and hard tissue engineering. This paper describes a facile approach to design cytocompatible, non-toxic, and multifunctional chitosan-cellulose based hydrogel beads utilising polysaccharide dissolution in sodium hydroxide-urea-water solvent system and coagulation under three different acidic conditions, namely 2 M acetic acid, 2 M hydrochloric acid, and 2 M sulfuric acid. The effect of coagulating medium on the final chemical composition of the hydrogel beads is investigated by spectroscopic techniques (ATR–FTIR, Raman, NMR), and elemental analysis. The beads coagulated in 2 M acetic acid displayed an unchanged chitosan composition with free amino groups, while the beads coagulated in 2 M hydrochloric and sulfuric acid showed protonation of amino groups and ionic interaction with the counterions. The ultrastructural morphological study of lyophilized beads showed that increased chitosan content enhanced the porosity of the hydrogel beads. Furthermore, cytocompatibility evaluation of the hydrogel beads with human breast adenocarcinoma cells (soft tissue) showed that the beads coagulated in 2 M acetic acid are the most suitable for this type of cells in comparison to other coagulating systems. The acetic acid fabricated hydrogel beads also support osteoblast growth and adhesion over 192 h. Thus, in future, these hydrogel beads can be tested in the in vitro studies related to breast cancer and for bone regeneration.
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spelling pubmed-58748692018-04-02 Chitosan–Cellulose Multifunctional Hydrogel Beads: Design, Characterization and Evaluation of Cytocompatibility with Breast Adenocarcinoma and Osteoblast Cells Trivedi, Poonam Saloranta-Simell, Tiina Maver, Uroš Gradišnik, Lidija Prabhakar, Neeraj Smått, Jan-Henrik Mohan, Tamilselvan Gericke, Martin Heinze, Thomas Fardim, Pedro Bioengineering (Basel) Article Cytocompatible polysaccharide-based functional scaffolds are potential extracellular matrix candidates for soft and hard tissue engineering. This paper describes a facile approach to design cytocompatible, non-toxic, and multifunctional chitosan-cellulose based hydrogel beads utilising polysaccharide dissolution in sodium hydroxide-urea-water solvent system and coagulation under three different acidic conditions, namely 2 M acetic acid, 2 M hydrochloric acid, and 2 M sulfuric acid. The effect of coagulating medium on the final chemical composition of the hydrogel beads is investigated by spectroscopic techniques (ATR–FTIR, Raman, NMR), and elemental analysis. The beads coagulated in 2 M acetic acid displayed an unchanged chitosan composition with free amino groups, while the beads coagulated in 2 M hydrochloric and sulfuric acid showed protonation of amino groups and ionic interaction with the counterions. The ultrastructural morphological study of lyophilized beads showed that increased chitosan content enhanced the porosity of the hydrogel beads. Furthermore, cytocompatibility evaluation of the hydrogel beads with human breast adenocarcinoma cells (soft tissue) showed that the beads coagulated in 2 M acetic acid are the most suitable for this type of cells in comparison to other coagulating systems. The acetic acid fabricated hydrogel beads also support osteoblast growth and adhesion over 192 h. Thus, in future, these hydrogel beads can be tested in the in vitro studies related to breast cancer and for bone regeneration. MDPI 2018-01-09 /pmc/articles/PMC5874869/ /pubmed/29315214 http://dx.doi.org/10.3390/bioengineering5010003 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
Trivedi, Poonam
Saloranta-Simell, Tiina
Maver, Uroš
Gradišnik, Lidija
Prabhakar, Neeraj
Smått, Jan-Henrik
Mohan, Tamilselvan
Gericke, Martin
Heinze, Thomas
Fardim, Pedro
Chitosan–Cellulose Multifunctional Hydrogel Beads: Design, Characterization and Evaluation of Cytocompatibility with Breast Adenocarcinoma and Osteoblast Cells
title Chitosan–Cellulose Multifunctional Hydrogel Beads: Design, Characterization and Evaluation of Cytocompatibility with Breast Adenocarcinoma and Osteoblast Cells
title_full Chitosan–Cellulose Multifunctional Hydrogel Beads: Design, Characterization and Evaluation of Cytocompatibility with Breast Adenocarcinoma and Osteoblast Cells
title_fullStr Chitosan–Cellulose Multifunctional Hydrogel Beads: Design, Characterization and Evaluation of Cytocompatibility with Breast Adenocarcinoma and Osteoblast Cells
title_full_unstemmed Chitosan–Cellulose Multifunctional Hydrogel Beads: Design, Characterization and Evaluation of Cytocompatibility with Breast Adenocarcinoma and Osteoblast Cells
title_short Chitosan–Cellulose Multifunctional Hydrogel Beads: Design, Characterization and Evaluation of Cytocompatibility with Breast Adenocarcinoma and Osteoblast Cells
title_sort chitosan–cellulose multifunctional hydrogel beads: design, characterization and evaluation of cytocompatibility with breast adenocarcinoma and osteoblast cells
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5874869/
https://www.ncbi.nlm.nih.gov/pubmed/29315214
http://dx.doi.org/10.3390/bioengineering5010003
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