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Fabrication of Piezoelectric Electrospun Termite Nest-like 3D Scaffolds for Tissue Engineering

A high piezoelectric coefficient polymer and biomaterial for bone tissue engineering— poly(vinylidene fluoride-co-hexafluoropropylene) (PVDF-HFP)—has been successfully fabricated into 3D scaffolds using the wet electrospinning method. Three-dimensional (3D) scaffolds have significant advantages for...

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Autores principales: Muenwacha, Thanapon, Weeranantanapan, Oratai, Chudapongse, Nuannoi, Diaz Sanchez, Francisco Javier, Maensiri, Santi, Radacsi, Norbert, Nuansing, Wiwat
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8708465/
https://www.ncbi.nlm.nih.gov/pubmed/34947288
http://dx.doi.org/10.3390/ma14247684
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author Muenwacha, Thanapon
Weeranantanapan, Oratai
Chudapongse, Nuannoi
Diaz Sanchez, Francisco Javier
Maensiri, Santi
Radacsi, Norbert
Nuansing, Wiwat
author_facet Muenwacha, Thanapon
Weeranantanapan, Oratai
Chudapongse, Nuannoi
Diaz Sanchez, Francisco Javier
Maensiri, Santi
Radacsi, Norbert
Nuansing, Wiwat
author_sort Muenwacha, Thanapon
collection PubMed
description A high piezoelectric coefficient polymer and biomaterial for bone tissue engineering— poly(vinylidene fluoride-co-hexafluoropropylene) (PVDF-HFP)—has been successfully fabricated into 3D scaffolds using the wet electrospinning method. Three-dimensional (3D) scaffolds have significant advantages for tissue engineering applications. Electrospinning is an advanced method and can fabricate 3D scaffolds. However, it has some limitations and is difficult to fabricate nanofibers into 3D shapes because of the low controllability of porosity and internal pore shape. The PVDF-HFP powders were dissolved in a mixture of acetone and dimethylformamide with a ratio of 1:1 at various concentrations of 10, 13, 15, 17, and 20 wt%. However, only the solutions at 15 and 17 wt% with optimized electrospinning parameters can be fabricated into biomimetic 3D shapes. The produced PVDF-HFP 3D scaffolds are in the cm size range and mimic the structure of the natural nests of termites of the genus Apicotermes. In addition, the 3D nanofiber-based structure can also generate more electrical signals than the conventional 2D ones, as the third dimension provides more compression. The cell interaction with the 3D nanofibers scaffold was investigated. The in vitro results demonstrated that the NIH 3T3 cells could attach and migrate in the 3D structures. While conventional electrospinning yields 2D (flat) structures, our bio-inspired electrospun termite nest-like 3D scaffolds are better suited for tissue engineering applications since they can potentially mimic native tissues as they have biomimetic structure, piezoelectric, and biological properties.
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spelling pubmed-87084652021-12-25 Fabrication of Piezoelectric Electrospun Termite Nest-like 3D Scaffolds for Tissue Engineering Muenwacha, Thanapon Weeranantanapan, Oratai Chudapongse, Nuannoi Diaz Sanchez, Francisco Javier Maensiri, Santi Radacsi, Norbert Nuansing, Wiwat Materials (Basel) Article A high piezoelectric coefficient polymer and biomaterial for bone tissue engineering— poly(vinylidene fluoride-co-hexafluoropropylene) (PVDF-HFP)—has been successfully fabricated into 3D scaffolds using the wet electrospinning method. Three-dimensional (3D) scaffolds have significant advantages for tissue engineering applications. Electrospinning is an advanced method and can fabricate 3D scaffolds. However, it has some limitations and is difficult to fabricate nanofibers into 3D shapes because of the low controllability of porosity and internal pore shape. The PVDF-HFP powders were dissolved in a mixture of acetone and dimethylformamide with a ratio of 1:1 at various concentrations of 10, 13, 15, 17, and 20 wt%. However, only the solutions at 15 and 17 wt% with optimized electrospinning parameters can be fabricated into biomimetic 3D shapes. The produced PVDF-HFP 3D scaffolds are in the cm size range and mimic the structure of the natural nests of termites of the genus Apicotermes. In addition, the 3D nanofiber-based structure can also generate more electrical signals than the conventional 2D ones, as the third dimension provides more compression. The cell interaction with the 3D nanofibers scaffold was investigated. The in vitro results demonstrated that the NIH 3T3 cells could attach and migrate in the 3D structures. While conventional electrospinning yields 2D (flat) structures, our bio-inspired electrospun termite nest-like 3D scaffolds are better suited for tissue engineering applications since they can potentially mimic native tissues as they have biomimetic structure, piezoelectric, and biological properties. MDPI 2021-12-13 /pmc/articles/PMC8708465/ /pubmed/34947288 http://dx.doi.org/10.3390/ma14247684 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Muenwacha, Thanapon
Weeranantanapan, Oratai
Chudapongse, Nuannoi
Diaz Sanchez, Francisco Javier
Maensiri, Santi
Radacsi, Norbert
Nuansing, Wiwat
Fabrication of Piezoelectric Electrospun Termite Nest-like 3D Scaffolds for Tissue Engineering
title Fabrication of Piezoelectric Electrospun Termite Nest-like 3D Scaffolds for Tissue Engineering
title_full Fabrication of Piezoelectric Electrospun Termite Nest-like 3D Scaffolds for Tissue Engineering
title_fullStr Fabrication of Piezoelectric Electrospun Termite Nest-like 3D Scaffolds for Tissue Engineering
title_full_unstemmed Fabrication of Piezoelectric Electrospun Termite Nest-like 3D Scaffolds for Tissue Engineering
title_short Fabrication of Piezoelectric Electrospun Termite Nest-like 3D Scaffolds for Tissue Engineering
title_sort fabrication of piezoelectric electrospun termite nest-like 3d scaffolds for tissue engineering
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8708465/
https://www.ncbi.nlm.nih.gov/pubmed/34947288
http://dx.doi.org/10.3390/ma14247684
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