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Fabrication of chitosan-based electrospun nanofiber scaffold: Amplification of biomechanical properties, structural stability, and seeded cell viability

The cell scaffolds should structurally be manufactured similar to the target tissue's extracellular matrix. This property should be maintained until cell differentiation. For this purpose, in the current study, electrospun nanofiber (EN) of chitosan (Ch)/polyvinyl alcohol (PVA), as a tissue-fri...

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Autores principales: Mahdian-Dehkordi, Mohammad, Sarrafzadeh-Rezaei, Farshid, Razi, Mazdak, Mahmoudian, Mehdi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Urmia University Press 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8094139/
https://www.ncbi.nlm.nih.gov/pubmed/33953870
http://dx.doi.org/10.30466/vrf.2020.123047.2893
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author Mahdian-Dehkordi, Mohammad
Sarrafzadeh-Rezaei, Farshid
Razi, Mazdak
Mahmoudian, Mehdi
author_facet Mahdian-Dehkordi, Mohammad
Sarrafzadeh-Rezaei, Farshid
Razi, Mazdak
Mahmoudian, Mehdi
author_sort Mahdian-Dehkordi, Mohammad
collection PubMed
description The cell scaffolds should structurally be manufactured similar to the target tissue's extracellular matrix. This property should be maintained until cell differentiation. For this purpose, in the current study, electrospun nanofiber (EN) of chitosan (Ch)/polyvinyl alcohol (PVA), as a tissue-friend scaffold, was fabricated by electrospinning in different formulations and borax was utilized as an innovative cross-linking agent to up-regulate the structural and biomechanical properties. The weight loss, water absorbability, structural stability, tensile strength and biocompatibility of borax-included and non-included ENs were compared. The finest morphology, weight loss, water absorbability, structural stability in an aqueous environment, tensile strength and cell viability were found in the borax-included EN containing Ch50.00%v/PVA50.00%v. Moreover, The ENs exhibited appropriate antibacterial properties against Gram-positive and Gram-negative bacteria. In conclusion, borax can be used to improve the mechanical and biocompatibility features of the Ch/PVA-based ENs. Furthermore, it could be suggested that borax-included Ch/PVA ENs can exhibit high appropriate biological properties, candidate them as an appropriate scaffold in the field of tissue engineering. However, in vivo trials are needed to clearly their side effects and advantages.
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spelling pubmed-80941392021-05-04 Fabrication of chitosan-based electrospun nanofiber scaffold: Amplification of biomechanical properties, structural stability, and seeded cell viability Mahdian-Dehkordi, Mohammad Sarrafzadeh-Rezaei, Farshid Razi, Mazdak Mahmoudian, Mehdi Vet Res Forum Original Article The cell scaffolds should structurally be manufactured similar to the target tissue's extracellular matrix. This property should be maintained until cell differentiation. For this purpose, in the current study, electrospun nanofiber (EN) of chitosan (Ch)/polyvinyl alcohol (PVA), as a tissue-friend scaffold, was fabricated by electrospinning in different formulations and borax was utilized as an innovative cross-linking agent to up-regulate the structural and biomechanical properties. The weight loss, water absorbability, structural stability, tensile strength and biocompatibility of borax-included and non-included ENs were compared. The finest morphology, weight loss, water absorbability, structural stability in an aqueous environment, tensile strength and cell viability were found in the borax-included EN containing Ch50.00%v/PVA50.00%v. Moreover, The ENs exhibited appropriate antibacterial properties against Gram-positive and Gram-negative bacteria. In conclusion, borax can be used to improve the mechanical and biocompatibility features of the Ch/PVA-based ENs. Furthermore, it could be suggested that borax-included Ch/PVA ENs can exhibit high appropriate biological properties, candidate them as an appropriate scaffold in the field of tissue engineering. However, in vivo trials are needed to clearly their side effects and advantages. Urmia University Press 2021 2021-03-15 /pmc/articles/PMC8094139/ /pubmed/33953870 http://dx.doi.org/10.30466/vrf.2020.123047.2893 Text en https://creativecommons.org/licenses/by-nc/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution-noncommercial 4.0 International License, (https://creativecommons.org/licenses/by-nc/4.0/) which allows users to read, copy, distribute and make derivative works for non-commercial purposes from the material, as long as the author of the original work is cited properly.
spellingShingle Original Article
Mahdian-Dehkordi, Mohammad
Sarrafzadeh-Rezaei, Farshid
Razi, Mazdak
Mahmoudian, Mehdi
Fabrication of chitosan-based electrospun nanofiber scaffold: Amplification of biomechanical properties, structural stability, and seeded cell viability
title Fabrication of chitosan-based electrospun nanofiber scaffold: Amplification of biomechanical properties, structural stability, and seeded cell viability
title_full Fabrication of chitosan-based electrospun nanofiber scaffold: Amplification of biomechanical properties, structural stability, and seeded cell viability
title_fullStr Fabrication of chitosan-based electrospun nanofiber scaffold: Amplification of biomechanical properties, structural stability, and seeded cell viability
title_full_unstemmed Fabrication of chitosan-based electrospun nanofiber scaffold: Amplification of biomechanical properties, structural stability, and seeded cell viability
title_short Fabrication of chitosan-based electrospun nanofiber scaffold: Amplification of biomechanical properties, structural stability, and seeded cell viability
title_sort fabrication of chitosan-based electrospun nanofiber scaffold: amplification of biomechanical properties, structural stability, and seeded cell viability
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8094139/
https://www.ncbi.nlm.nih.gov/pubmed/33953870
http://dx.doi.org/10.30466/vrf.2020.123047.2893
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