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Effect of Graphene Oxide and Nanosilica Modifications on Electrospun Core-Shell PVA–PEG–SiO(2)@PVA–GO Fiber Mats

Electrospinning is a well-established method for the fabrication of polymer biomaterials, including those with core-shell nanofibers. The variability of structures presents a great range of opportunities in tissue engineering and drug delivery by incorporating biologically active molecules such as d...

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Autores principales: Kan, Yuliya, Bondareva, Julia V., Statnik, Eugene S., Cvjetinovic, Julijana, Lipovskikh, Svetlana, Abdurashitov, Arkady S., Kirsanova, Maria A., Sukhorukhov, Gleb B., Evlashin, Stanislav A., Salimon, Alexey I., Korsunsky, Alexander M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8950511/
https://www.ncbi.nlm.nih.gov/pubmed/35335811
http://dx.doi.org/10.3390/nano12060998
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author Kan, Yuliya
Bondareva, Julia V.
Statnik, Eugene S.
Cvjetinovic, Julijana
Lipovskikh, Svetlana
Abdurashitov, Arkady S.
Kirsanova, Maria A.
Sukhorukhov, Gleb B.
Evlashin, Stanislav A.
Salimon, Alexey I.
Korsunsky, Alexander M.
author_facet Kan, Yuliya
Bondareva, Julia V.
Statnik, Eugene S.
Cvjetinovic, Julijana
Lipovskikh, Svetlana
Abdurashitov, Arkady S.
Kirsanova, Maria A.
Sukhorukhov, Gleb B.
Evlashin, Stanislav A.
Salimon, Alexey I.
Korsunsky, Alexander M.
author_sort Kan, Yuliya
collection PubMed
description Electrospinning is a well-established method for the fabrication of polymer biomaterials, including those with core-shell nanofibers. The variability of structures presents a great range of opportunities in tissue engineering and drug delivery by incorporating biologically active molecules such as drugs, proteins, and growth factors and subsequent control of their release into the target microenvironment to achieve therapeutic effect. The object of study is non-woven core-shell PVA–PEG–SiO(2)@PVA–GO fiber mats assembled by the technology of coaxial electrospinning. The task of the core-shell fiber development was set to regulate the degradation process under external factors. The dual structure was modified with silica nanoparticles and graphene oxide to ensure the fiber integrity and stability. The influence of the nano additives and crosslinking conditions for the composite was investigated as a function of fiber diameter, hydrolysis, and mechanical properties. Tensile mechanical tests and water degradation tests were used to reveal the fracture and dissolution behavior of the fiber mats and bundles. The obtained fibers were visualized by confocal fluorescence microscopy to confirm the continuous core-shell structure and encapsulation feasibility for biologically active components, selectively in the fiber core and shell. The results provide a firm basis to draw the conclusion that electrospun core-shell fiber mats have tremendous potential for biomedical applications as drug carriers, photocatalysts, and wound dressings.
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spelling pubmed-89505112022-03-26 Effect of Graphene Oxide and Nanosilica Modifications on Electrospun Core-Shell PVA–PEG–SiO(2)@PVA–GO Fiber Mats Kan, Yuliya Bondareva, Julia V. Statnik, Eugene S. Cvjetinovic, Julijana Lipovskikh, Svetlana Abdurashitov, Arkady S. Kirsanova, Maria A. Sukhorukhov, Gleb B. Evlashin, Stanislav A. Salimon, Alexey I. Korsunsky, Alexander M. Nanomaterials (Basel) Article Electrospinning is a well-established method for the fabrication of polymer biomaterials, including those with core-shell nanofibers. The variability of structures presents a great range of opportunities in tissue engineering and drug delivery by incorporating biologically active molecules such as drugs, proteins, and growth factors and subsequent control of their release into the target microenvironment to achieve therapeutic effect. The object of study is non-woven core-shell PVA–PEG–SiO(2)@PVA–GO fiber mats assembled by the technology of coaxial electrospinning. The task of the core-shell fiber development was set to regulate the degradation process under external factors. The dual structure was modified with silica nanoparticles and graphene oxide to ensure the fiber integrity and stability. The influence of the nano additives and crosslinking conditions for the composite was investigated as a function of fiber diameter, hydrolysis, and mechanical properties. Tensile mechanical tests and water degradation tests were used to reveal the fracture and dissolution behavior of the fiber mats and bundles. The obtained fibers were visualized by confocal fluorescence microscopy to confirm the continuous core-shell structure and encapsulation feasibility for biologically active components, selectively in the fiber core and shell. The results provide a firm basis to draw the conclusion that electrospun core-shell fiber mats have tremendous potential for biomedical applications as drug carriers, photocatalysts, and wound dressings. MDPI 2022-03-18 /pmc/articles/PMC8950511/ /pubmed/35335811 http://dx.doi.org/10.3390/nano12060998 Text en © 2022 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
Kan, Yuliya
Bondareva, Julia V.
Statnik, Eugene S.
Cvjetinovic, Julijana
Lipovskikh, Svetlana
Abdurashitov, Arkady S.
Kirsanova, Maria A.
Sukhorukhov, Gleb B.
Evlashin, Stanislav A.
Salimon, Alexey I.
Korsunsky, Alexander M.
Effect of Graphene Oxide and Nanosilica Modifications on Electrospun Core-Shell PVA–PEG–SiO(2)@PVA–GO Fiber Mats
title Effect of Graphene Oxide and Nanosilica Modifications on Electrospun Core-Shell PVA–PEG–SiO(2)@PVA–GO Fiber Mats
title_full Effect of Graphene Oxide and Nanosilica Modifications on Electrospun Core-Shell PVA–PEG–SiO(2)@PVA–GO Fiber Mats
title_fullStr Effect of Graphene Oxide and Nanosilica Modifications on Electrospun Core-Shell PVA–PEG–SiO(2)@PVA–GO Fiber Mats
title_full_unstemmed Effect of Graphene Oxide and Nanosilica Modifications on Electrospun Core-Shell PVA–PEG–SiO(2)@PVA–GO Fiber Mats
title_short Effect of Graphene Oxide and Nanosilica Modifications on Electrospun Core-Shell PVA–PEG–SiO(2)@PVA–GO Fiber Mats
title_sort effect of graphene oxide and nanosilica modifications on electrospun core-shell pva–peg–sio(2)@pva–go fiber mats
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8950511/
https://www.ncbi.nlm.nih.gov/pubmed/35335811
http://dx.doi.org/10.3390/nano12060998
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