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Hybrid Bilayer PLA/Chitosan Nanofibrous Scaffolds Doped with ZnO, Fe(3)O(4), and Au Nanoparticles with Bioactive Properties for Skin Tissue Engineering

Burns affect almost half a million of Americans annually. In the case of full-thickness skin injuries, treatment requires a transplant. The development of bioactive materials that promote damaged tissue regeneration constitutes a great alternative to autografts. For this reason, special attention is...

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Autores principales: Radwan-Pragłowska, Julia, Janus, Łukasz, Piątkowski, Marek, Bogdał, Dariusz, Matýsek, Dalibor
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7023114/
https://www.ncbi.nlm.nih.gov/pubmed/31936229
http://dx.doi.org/10.3390/polym12010159
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author Radwan-Pragłowska, Julia
Janus, Łukasz
Piątkowski, Marek
Bogdał, Dariusz
Matýsek, Dalibor
author_facet Radwan-Pragłowska, Julia
Janus, Łukasz
Piątkowski, Marek
Bogdał, Dariusz
Matýsek, Dalibor
author_sort Radwan-Pragłowska, Julia
collection PubMed
description Burns affect almost half a million of Americans annually. In the case of full-thickness skin injuries, treatment requires a transplant. The development of bioactive materials that promote damaged tissue regeneration constitutes a great alternative to autografts. For this reason, special attention is focused on three-dimensional scaffolds that are non-toxic to skin cells and can mimic the extracellular matrix, which is mainly composed of nanofibrous proteins. Electrospinning, which enables the preparation of nanofibers, is a powerful tool in the field of biomaterials. In this work, novel hybrid poly (lactic acid)/chitosan biomaterials functionalized with three types of nanoparticles (NPs) were successfully developed. ZnO, Fe(3)O(4), and Au NPs were investigated over their morphology by TEM method. The top layer was obtained from PLA nanofibers, while the bottom layer was prepared from acylated chitosan. The layers were studied over their morphology by the SEM method and their chemical structure by FT-IR. To verify their potential in burn wound treatment, the scaffolds’ susceptibility to biodegradation as well as moisture permeability were calculated. Also, biomaterials conductivity was determined in terms of electrostimulation. Finally, cytotoxicity tests were carried out by XTT assay and morphology analysis using both fibroblasts cell line and primary cells. The hybrid nanofibrous scaffolds displayed a great potential in tissue engineering.
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spelling pubmed-70231142020-03-12 Hybrid Bilayer PLA/Chitosan Nanofibrous Scaffolds Doped with ZnO, Fe(3)O(4), and Au Nanoparticles with Bioactive Properties for Skin Tissue Engineering Radwan-Pragłowska, Julia Janus, Łukasz Piątkowski, Marek Bogdał, Dariusz Matýsek, Dalibor Polymers (Basel) Article Burns affect almost half a million of Americans annually. In the case of full-thickness skin injuries, treatment requires a transplant. The development of bioactive materials that promote damaged tissue regeneration constitutes a great alternative to autografts. For this reason, special attention is focused on three-dimensional scaffolds that are non-toxic to skin cells and can mimic the extracellular matrix, which is mainly composed of nanofibrous proteins. Electrospinning, which enables the preparation of nanofibers, is a powerful tool in the field of biomaterials. In this work, novel hybrid poly (lactic acid)/chitosan biomaterials functionalized with three types of nanoparticles (NPs) were successfully developed. ZnO, Fe(3)O(4), and Au NPs were investigated over their morphology by TEM method. The top layer was obtained from PLA nanofibers, while the bottom layer was prepared from acylated chitosan. The layers were studied over their morphology by the SEM method and their chemical structure by FT-IR. To verify their potential in burn wound treatment, the scaffolds’ susceptibility to biodegradation as well as moisture permeability were calculated. Also, biomaterials conductivity was determined in terms of electrostimulation. Finally, cytotoxicity tests were carried out by XTT assay and morphology analysis using both fibroblasts cell line and primary cells. The hybrid nanofibrous scaffolds displayed a great potential in tissue engineering. MDPI 2020-01-08 /pmc/articles/PMC7023114/ /pubmed/31936229 http://dx.doi.org/10.3390/polym12010159 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
Matýsek, Dalibor
Hybrid Bilayer PLA/Chitosan Nanofibrous Scaffolds Doped with ZnO, Fe(3)O(4), and Au Nanoparticles with Bioactive Properties for Skin Tissue Engineering
title Hybrid Bilayer PLA/Chitosan Nanofibrous Scaffolds Doped with ZnO, Fe(3)O(4), and Au Nanoparticles with Bioactive Properties for Skin Tissue Engineering
title_full Hybrid Bilayer PLA/Chitosan Nanofibrous Scaffolds Doped with ZnO, Fe(3)O(4), and Au Nanoparticles with Bioactive Properties for Skin Tissue Engineering
title_fullStr Hybrid Bilayer PLA/Chitosan Nanofibrous Scaffolds Doped with ZnO, Fe(3)O(4), and Au Nanoparticles with Bioactive Properties for Skin Tissue Engineering
title_full_unstemmed Hybrid Bilayer PLA/Chitosan Nanofibrous Scaffolds Doped with ZnO, Fe(3)O(4), and Au Nanoparticles with Bioactive Properties for Skin Tissue Engineering
title_short Hybrid Bilayer PLA/Chitosan Nanofibrous Scaffolds Doped with ZnO, Fe(3)O(4), and Au Nanoparticles with Bioactive Properties for Skin Tissue Engineering
title_sort hybrid bilayer pla/chitosan nanofibrous scaffolds doped with zno, fe(3)o(4), and au nanoparticles with bioactive properties for skin tissue engineering
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7023114/
https://www.ncbi.nlm.nih.gov/pubmed/31936229
http://dx.doi.org/10.3390/polym12010159
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