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Electrospun Biodegradable Nanofibers Coated Homogenously by Cu Magnetron Sputtering Exhibit Fast Ion Release. Computational and Experimental Study

Copper-coated nanofibrous materials are desirable for catalysis, electrochemistry, sensing, and biomedical use. The preparation of copper or copper-coated nanofibers can be pretty challenging, requiring many chemical steps that we eliminated in our robust approach, where for the first time, Cu was d...

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Autores principales: Manakhov, Anton M., Sitnikova, Natalya A., Tsygankova, Alphiya R., Alekseev, Alexander Yu., Adamenko, Lyubov S., Permyakova, Elizaveta, Baidyshev, Victor S., Popov, Zakhar I., Blahová, Lucie, Eliáš, Marek, Zajíčková, Lenka, Solovieva, Anastasiya O.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8708309/
https://www.ncbi.nlm.nih.gov/pubmed/34940466
http://dx.doi.org/10.3390/membranes11120965
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author Manakhov, Anton M.
Sitnikova, Natalya A.
Tsygankova, Alphiya R.
Alekseev, Alexander Yu.
Adamenko, Lyubov S.
Permyakova, Elizaveta
Baidyshev, Victor S.
Popov, Zakhar I.
Blahová, Lucie
Eliáš, Marek
Zajíčková, Lenka
Solovieva, Anastasiya O.
author_facet Manakhov, Anton M.
Sitnikova, Natalya A.
Tsygankova, Alphiya R.
Alekseev, Alexander Yu.
Adamenko, Lyubov S.
Permyakova, Elizaveta
Baidyshev, Victor S.
Popov, Zakhar I.
Blahová, Lucie
Eliáš, Marek
Zajíčková, Lenka
Solovieva, Anastasiya O.
author_sort Manakhov, Anton M.
collection PubMed
description Copper-coated nanofibrous materials are desirable for catalysis, electrochemistry, sensing, and biomedical use. The preparation of copper or copper-coated nanofibers can be pretty challenging, requiring many chemical steps that we eliminated in our robust approach, where for the first time, Cu was deposited by magnetron sputtering onto temperature-sensitive polymer nanofibers. For the first time, the large-scale modeling of PCL films irradiation by molecular dynamics simulation was performed and allowed to predict the ions penetration depth and tune the deposition conditions. The Cu-coated polycaprolactone (PCL) nanofibers were thoroughly characterized and tested as antibacterial agents for various Gram-positive and Gram-negative bacteria. Fast release of Cu(2+) ions (concentration up to 3.4 µg/mL) led to significant suppression of E. coli and S. aureus colonies but was insufficient against S. typhimurium and Ps. aeruginosa. The effect of Cu layer oxidation upon contact with liquid media was investigated by X-ray photoelectron spectroscopy revealing that, after two hours, 55% of Cu atoms are in form of CuO or Cu(OH)(2). The Cu-coated nanofibers will be great candidates for wound dressings thanks to an interesting synergistic effect: on the one hand, the rapid release of copper ions kills bacteria, while on the other hand, it stimulates the regeneration with the activation of immune cells. Indeed, copper ions are necessary for the bacteriostatic action of cells of the immune system. The reactive CO(2)/C(2)H(4) plasma polymers deposited onto PCL-Cu nanofibers can be applied to grafting of viable proteins, peptides, or drugs, and it further explores the versatility of developed nanofibers for biomedical applications use.
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spelling pubmed-87083092021-12-25 Electrospun Biodegradable Nanofibers Coated Homogenously by Cu Magnetron Sputtering Exhibit Fast Ion Release. Computational and Experimental Study Manakhov, Anton M. Sitnikova, Natalya A. Tsygankova, Alphiya R. Alekseev, Alexander Yu. Adamenko, Lyubov S. Permyakova, Elizaveta Baidyshev, Victor S. Popov, Zakhar I. Blahová, Lucie Eliáš, Marek Zajíčková, Lenka Solovieva, Anastasiya O. Membranes (Basel) Article Copper-coated nanofibrous materials are desirable for catalysis, electrochemistry, sensing, and biomedical use. The preparation of copper or copper-coated nanofibers can be pretty challenging, requiring many chemical steps that we eliminated in our robust approach, where for the first time, Cu was deposited by magnetron sputtering onto temperature-sensitive polymer nanofibers. For the first time, the large-scale modeling of PCL films irradiation by molecular dynamics simulation was performed and allowed to predict the ions penetration depth and tune the deposition conditions. The Cu-coated polycaprolactone (PCL) nanofibers were thoroughly characterized and tested as antibacterial agents for various Gram-positive and Gram-negative bacteria. Fast release of Cu(2+) ions (concentration up to 3.4 µg/mL) led to significant suppression of E. coli and S. aureus colonies but was insufficient against S. typhimurium and Ps. aeruginosa. The effect of Cu layer oxidation upon contact with liquid media was investigated by X-ray photoelectron spectroscopy revealing that, after two hours, 55% of Cu atoms are in form of CuO or Cu(OH)(2). The Cu-coated nanofibers will be great candidates for wound dressings thanks to an interesting synergistic effect: on the one hand, the rapid release of copper ions kills bacteria, while on the other hand, it stimulates the regeneration with the activation of immune cells. Indeed, copper ions are necessary for the bacteriostatic action of cells of the immune system. The reactive CO(2)/C(2)H(4) plasma polymers deposited onto PCL-Cu nanofibers can be applied to grafting of viable proteins, peptides, or drugs, and it further explores the versatility of developed nanofibers for biomedical applications use. MDPI 2021-12-08 /pmc/articles/PMC8708309/ /pubmed/34940466 http://dx.doi.org/10.3390/membranes11120965 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
Manakhov, Anton M.
Sitnikova, Natalya A.
Tsygankova, Alphiya R.
Alekseev, Alexander Yu.
Adamenko, Lyubov S.
Permyakova, Elizaveta
Baidyshev, Victor S.
Popov, Zakhar I.
Blahová, Lucie
Eliáš, Marek
Zajíčková, Lenka
Solovieva, Anastasiya O.
Electrospun Biodegradable Nanofibers Coated Homogenously by Cu Magnetron Sputtering Exhibit Fast Ion Release. Computational and Experimental Study
title Electrospun Biodegradable Nanofibers Coated Homogenously by Cu Magnetron Sputtering Exhibit Fast Ion Release. Computational and Experimental Study
title_full Electrospun Biodegradable Nanofibers Coated Homogenously by Cu Magnetron Sputtering Exhibit Fast Ion Release. Computational and Experimental Study
title_fullStr Electrospun Biodegradable Nanofibers Coated Homogenously by Cu Magnetron Sputtering Exhibit Fast Ion Release. Computational and Experimental Study
title_full_unstemmed Electrospun Biodegradable Nanofibers Coated Homogenously by Cu Magnetron Sputtering Exhibit Fast Ion Release. Computational and Experimental Study
title_short Electrospun Biodegradable Nanofibers Coated Homogenously by Cu Magnetron Sputtering Exhibit Fast Ion Release. Computational and Experimental Study
title_sort electrospun biodegradable nanofibers coated homogenously by cu magnetron sputtering exhibit fast ion release. computational and experimental study
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8708309/
https://www.ncbi.nlm.nih.gov/pubmed/34940466
http://dx.doi.org/10.3390/membranes11120965
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