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3D Hierarchical, Nanostructured Chitosan/PLA/HA Scaffolds Doped with TiO(2)/Au/Pt NPs with Tunable Properties for Guided Bone Tissue Engineering

Bone tissue is the second tissue to be replaced. Annually, over four million surgical treatments are performed. Tissue engineering constitutes an alternative to autologous grafts. Its application requires three-dimensional scaffolds, which mimic human body environment. Bone tissue has a highly organ...

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Autores principales: Radwan-Pragłowska, Julia, Janus, Łukasz, Piątkowski, Marek, Bogdał, Dariusz, Matysek, Dalibor
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7240598/
https://www.ncbi.nlm.nih.gov/pubmed/32252290
http://dx.doi.org/10.3390/polym12040792
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author Radwan-Pragłowska, Julia
Janus, Łukasz
Piątkowski, Marek
Bogdał, Dariusz
Matysek, Dalibor
author_facet Radwan-Pragłowska, Julia
Janus, Łukasz
Piątkowski, Marek
Bogdał, Dariusz
Matysek, Dalibor
author_sort Radwan-Pragłowska, Julia
collection PubMed
description Bone tissue is the second tissue to be replaced. Annually, over four million surgical treatments are performed. Tissue engineering constitutes an alternative to autologous grafts. Its application requires three-dimensional scaffolds, which mimic human body environment. Bone tissue has a highly organized structure and contains mostly inorganic components. The scaffolds of the latest generation should not only be biocompatible but also promote osteoconduction. Poly (lactic acid) nanofibers are commonly used for this purpose; however, they lack bioactivity and do not provide good cell adhesion. Chitosan is a commonly used biopolymer which positively affects osteoblasts’ behavior. The aim of this article was to prepare novel hybrid 3D scaffolds containing nanohydroxyapatite capable of cell-response stimulation. The matrixes were successfully obtained by PLA electrospinning and microwave-assisted chitosan crosslinking, followed by doping with three types of metallic nanoparticles (Au, Pt, and TiO(2)). The products and semi-components were characterized over their physicochemical properties, such as chemical structure, crystallinity, and swelling degree. Nanoparticles’ and ready biomaterials’ morphologies were investigated by SEM and TEM methods. Finally, the scaffolds were studied over bioactivity on MG-63 and effect on current-stimulated biomineralization. Obtained results confirmed preparation of tunable biomimicking matrixes which may be used as a promising tool for bone-tissue engineering.
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spelling pubmed-72405982020-06-11 3D Hierarchical, Nanostructured Chitosan/PLA/HA Scaffolds Doped with TiO(2)/Au/Pt NPs with Tunable Properties for Guided Bone Tissue Engineering Radwan-Pragłowska, Julia Janus, Łukasz Piątkowski, Marek Bogdał, Dariusz Matysek, Dalibor Polymers (Basel) Article Bone tissue is the second tissue to be replaced. Annually, over four million surgical treatments are performed. Tissue engineering constitutes an alternative to autologous grafts. Its application requires three-dimensional scaffolds, which mimic human body environment. Bone tissue has a highly organized structure and contains mostly inorganic components. The scaffolds of the latest generation should not only be biocompatible but also promote osteoconduction. Poly (lactic acid) nanofibers are commonly used for this purpose; however, they lack bioactivity and do not provide good cell adhesion. Chitosan is a commonly used biopolymer which positively affects osteoblasts’ behavior. The aim of this article was to prepare novel hybrid 3D scaffolds containing nanohydroxyapatite capable of cell-response stimulation. The matrixes were successfully obtained by PLA electrospinning and microwave-assisted chitosan crosslinking, followed by doping with three types of metallic nanoparticles (Au, Pt, and TiO(2)). The products and semi-components were characterized over their physicochemical properties, such as chemical structure, crystallinity, and swelling degree. Nanoparticles’ and ready biomaterials’ morphologies were investigated by SEM and TEM methods. Finally, the scaffolds were studied over bioactivity on MG-63 and effect on current-stimulated biomineralization. Obtained results confirmed preparation of tunable biomimicking matrixes which may be used as a promising tool for bone-tissue engineering. MDPI 2020-04-02 /pmc/articles/PMC7240598/ /pubmed/32252290 http://dx.doi.org/10.3390/polym12040792 Text en © 2020 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
Radwan-Pragłowska, Julia
Janus, Łukasz
Piątkowski, Marek
Bogdał, Dariusz
Matysek, Dalibor
3D Hierarchical, Nanostructured Chitosan/PLA/HA Scaffolds Doped with TiO(2)/Au/Pt NPs with Tunable Properties for Guided Bone Tissue Engineering
title 3D Hierarchical, Nanostructured Chitosan/PLA/HA Scaffolds Doped with TiO(2)/Au/Pt NPs with Tunable Properties for Guided Bone Tissue Engineering
title_full 3D Hierarchical, Nanostructured Chitosan/PLA/HA Scaffolds Doped with TiO(2)/Au/Pt NPs with Tunable Properties for Guided Bone Tissue Engineering
title_fullStr 3D Hierarchical, Nanostructured Chitosan/PLA/HA Scaffolds Doped with TiO(2)/Au/Pt NPs with Tunable Properties for Guided Bone Tissue Engineering
title_full_unstemmed 3D Hierarchical, Nanostructured Chitosan/PLA/HA Scaffolds Doped with TiO(2)/Au/Pt NPs with Tunable Properties for Guided Bone Tissue Engineering
title_short 3D Hierarchical, Nanostructured Chitosan/PLA/HA Scaffolds Doped with TiO(2)/Au/Pt NPs with Tunable Properties for Guided Bone Tissue Engineering
title_sort 3d hierarchical, nanostructured chitosan/pla/ha scaffolds doped with tio(2)/au/pt nps with tunable properties for guided bone tissue engineering
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7240598/
https://www.ncbi.nlm.nih.gov/pubmed/32252290
http://dx.doi.org/10.3390/polym12040792
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