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3D Biofabrication of Thermoplastic Polyurethane (TPU)/Poly-l-lactic Acid (PLLA) Electrospun Nanofibers Containing Maghemite (γ-Fe(2)O(3)) for Tissue Engineering Aortic Heart Valve

Valvular dysfunction as the prominent reason of heart failure may causes morbidity and mortality around the world. The inability of human body to regenerate the defected heart valves necessitates the development of the artificial prosthesis to be replaced. Besides, the lack of capacity to grow, repa...

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Autores principales: Fallahiarezoudar, Ehsan, Ahmadipourroudposht, Mohaddeseh, Mohd Yusof, Noordin, Idris, Ani, Ngadiman, Nor Hasrul Akhmal
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6418800/
https://www.ncbi.nlm.nih.gov/pubmed/30965883
http://dx.doi.org/10.3390/polym9110584
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author Fallahiarezoudar, Ehsan
Ahmadipourroudposht, Mohaddeseh
Mohd Yusof, Noordin
Idris, Ani
Ngadiman, Nor Hasrul Akhmal
author_facet Fallahiarezoudar, Ehsan
Ahmadipourroudposht, Mohaddeseh
Mohd Yusof, Noordin
Idris, Ani
Ngadiman, Nor Hasrul Akhmal
author_sort Fallahiarezoudar, Ehsan
collection PubMed
description Valvular dysfunction as the prominent reason of heart failure may causes morbidity and mortality around the world. The inability of human body to regenerate the defected heart valves necessitates the development of the artificial prosthesis to be replaced. Besides, the lack of capacity to grow, repair or remodel of an artificial valves and biological difficulty such as infection or inflammation make the development of tissue engineering heart valve (TEHV) concept. This research presented the use of compound of poly-l-lactic acid (PLLA), thermoplastic polyurethane (TPU) and maghemite nanoparticle (γ-Fe(2)O(3)) as the potential biomaterials to develop three-dimensional (3D) aortic heart valve scaffold. Electrospinning was used for fabricating the 3D scaffold. The steepest ascent followed by the response surface methodology was used to optimize the electrospinning parameters involved in terms of elastic modulus. The structural and porosity properties of fabricated scaffold were characterized using FE-SEM and liquid displacement technique, respectively. The 3D scaffold was then seeded with aortic smooth muscle cells (AOSMCs) and biological behavior in terms of cell attachment and proliferation during 34 days of incubation was characterized using MTT (3-(4,5-dimethylthiazol-2-yl)-2,5-diphenyltetrazolium bromide) assay and confocal laser microscopy. Furthermore, the mechanical properties in terms of elastic modulus and stiffness were investigated after cell seeding through macro-indentation test. The analysis indicated the formation of ultrafine quality of nanofibers with diameter distribution of 178 ± 45 nm and 90.72% porosity. In terms of cell proliferation, the results exhibited desirable proliferation (109.32 ± 3.22% compared to the control) of cells over the 3D scaffold in 34 days of incubation. The elastic modulus and stiffness index after cell seeding were founded to be 22.78 ± 2.12 MPa and 1490.9 ± 12 Nmm(2), respectively. Overall, the fabricated 3D scaffold exhibits desirable structural, biological and mechanical properties and has the potential to be used in vivo.
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spelling pubmed-64188002019-04-02 3D Biofabrication of Thermoplastic Polyurethane (TPU)/Poly-l-lactic Acid (PLLA) Electrospun Nanofibers Containing Maghemite (γ-Fe(2)O(3)) for Tissue Engineering Aortic Heart Valve Fallahiarezoudar, Ehsan Ahmadipourroudposht, Mohaddeseh Mohd Yusof, Noordin Idris, Ani Ngadiman, Nor Hasrul Akhmal Polymers (Basel) Article Valvular dysfunction as the prominent reason of heart failure may causes morbidity and mortality around the world. The inability of human body to regenerate the defected heart valves necessitates the development of the artificial prosthesis to be replaced. Besides, the lack of capacity to grow, repair or remodel of an artificial valves and biological difficulty such as infection or inflammation make the development of tissue engineering heart valve (TEHV) concept. This research presented the use of compound of poly-l-lactic acid (PLLA), thermoplastic polyurethane (TPU) and maghemite nanoparticle (γ-Fe(2)O(3)) as the potential biomaterials to develop three-dimensional (3D) aortic heart valve scaffold. Electrospinning was used for fabricating the 3D scaffold. The steepest ascent followed by the response surface methodology was used to optimize the electrospinning parameters involved in terms of elastic modulus. The structural and porosity properties of fabricated scaffold were characterized using FE-SEM and liquid displacement technique, respectively. The 3D scaffold was then seeded with aortic smooth muscle cells (AOSMCs) and biological behavior in terms of cell attachment and proliferation during 34 days of incubation was characterized using MTT (3-(4,5-dimethylthiazol-2-yl)-2,5-diphenyltetrazolium bromide) assay and confocal laser microscopy. Furthermore, the mechanical properties in terms of elastic modulus and stiffness were investigated after cell seeding through macro-indentation test. The analysis indicated the formation of ultrafine quality of nanofibers with diameter distribution of 178 ± 45 nm and 90.72% porosity. In terms of cell proliferation, the results exhibited desirable proliferation (109.32 ± 3.22% compared to the control) of cells over the 3D scaffold in 34 days of incubation. The elastic modulus and stiffness index after cell seeding were founded to be 22.78 ± 2.12 MPa and 1490.9 ± 12 Nmm(2), respectively. Overall, the fabricated 3D scaffold exhibits desirable structural, biological and mechanical properties and has the potential to be used in vivo. MDPI 2017-11-06 /pmc/articles/PMC6418800/ /pubmed/30965883 http://dx.doi.org/10.3390/polym9110584 Text en © 2017 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
Fallahiarezoudar, Ehsan
Ahmadipourroudposht, Mohaddeseh
Mohd Yusof, Noordin
Idris, Ani
Ngadiman, Nor Hasrul Akhmal
3D Biofabrication of Thermoplastic Polyurethane (TPU)/Poly-l-lactic Acid (PLLA) Electrospun Nanofibers Containing Maghemite (γ-Fe(2)O(3)) for Tissue Engineering Aortic Heart Valve
title 3D Biofabrication of Thermoplastic Polyurethane (TPU)/Poly-l-lactic Acid (PLLA) Electrospun Nanofibers Containing Maghemite (γ-Fe(2)O(3)) for Tissue Engineering Aortic Heart Valve
title_full 3D Biofabrication of Thermoplastic Polyurethane (TPU)/Poly-l-lactic Acid (PLLA) Electrospun Nanofibers Containing Maghemite (γ-Fe(2)O(3)) for Tissue Engineering Aortic Heart Valve
title_fullStr 3D Biofabrication of Thermoplastic Polyurethane (TPU)/Poly-l-lactic Acid (PLLA) Electrospun Nanofibers Containing Maghemite (γ-Fe(2)O(3)) for Tissue Engineering Aortic Heart Valve
title_full_unstemmed 3D Biofabrication of Thermoplastic Polyurethane (TPU)/Poly-l-lactic Acid (PLLA) Electrospun Nanofibers Containing Maghemite (γ-Fe(2)O(3)) for Tissue Engineering Aortic Heart Valve
title_short 3D Biofabrication of Thermoplastic Polyurethane (TPU)/Poly-l-lactic Acid (PLLA) Electrospun Nanofibers Containing Maghemite (γ-Fe(2)O(3)) for Tissue Engineering Aortic Heart Valve
title_sort 3d biofabrication of thermoplastic polyurethane (tpu)/poly-l-lactic acid (plla) electrospun nanofibers containing maghemite (γ-fe(2)o(3)) for tissue engineering aortic heart valve
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6418800/
https://www.ncbi.nlm.nih.gov/pubmed/30965883
http://dx.doi.org/10.3390/polym9110584
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