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Fabrication of Magnetic Molecularly Imprinted Beaded Fibers for Rosmarinic Acid

The present study describes the fabrication of molecularly imprinted (MI) magnetic beaded fibers using electrospinning. Rosmarinic acid was selected as exemplary yet relevant template during molecular imprinting. A “design of experiments” methodology was used for optimizing the electrospinning proce...

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Autores principales: Saad, Engy M., El Gohary, Nesrine Abdelrehim, El-Shenawy, Basma M., Handoussa, Heba, Klingner, Anke, Elwi, Mohamed, Hamed, Youssef, Khalil, Islam S. M., El Nashar, Rasha Mohamed, Mizaikoff, Boris
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7466393/
https://www.ncbi.nlm.nih.gov/pubmed/32731560
http://dx.doi.org/10.3390/nano10081478
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author Saad, Engy M.
El Gohary, Nesrine Abdelrehim
El-Shenawy, Basma M.
Handoussa, Heba
Klingner, Anke
Elwi, Mohamed
Hamed, Youssef
Khalil, Islam S. M.
El Nashar, Rasha Mohamed
Mizaikoff, Boris
author_facet Saad, Engy M.
El Gohary, Nesrine Abdelrehim
El-Shenawy, Basma M.
Handoussa, Heba
Klingner, Anke
Elwi, Mohamed
Hamed, Youssef
Khalil, Islam S. M.
El Nashar, Rasha Mohamed
Mizaikoff, Boris
author_sort Saad, Engy M.
collection PubMed
description The present study describes the fabrication of molecularly imprinted (MI) magnetic beaded fibers using electrospinning. Rosmarinic acid was selected as exemplary yet relevant template during molecular imprinting. A “design of experiments” methodology was used for optimizing the electrospinning process. Four factors, i.e., the concentration of the biodegradable polymer (polycaprolactone), the applied voltage, the flow rate, and the collector distance were varied in a central composite design. The production process was then optimized according to the suitability of the beaded fibers during microrobot fabrication, actuation, and drug release. The optimum average fiber diameter of MI beaded fibers was determined at 857 ± 390 nm with an average number of beads at 0.011 ± 0.002 per µm(2). In vitro release profiles of the optimized MI beaded fibers revealed a lower burst rate and a more sustained release when compared to control fibers. Magnetic control of the MI beaded fibers was successfully tested by following selected waypoints along a star-shaped predefined trajectory. This study innovatively combines molecular imprinting technology with magnetic microrobots enabling targeted drug delivery systems that offer precise motion control via the magnetic response of microrobots along with selective uptake of a drug into the microrobot using MI beaded fibers in future.
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spelling pubmed-74663932020-09-14 Fabrication of Magnetic Molecularly Imprinted Beaded Fibers for Rosmarinic Acid Saad, Engy M. El Gohary, Nesrine Abdelrehim El-Shenawy, Basma M. Handoussa, Heba Klingner, Anke Elwi, Mohamed Hamed, Youssef Khalil, Islam S. M. El Nashar, Rasha Mohamed Mizaikoff, Boris Nanomaterials (Basel) Article The present study describes the fabrication of molecularly imprinted (MI) magnetic beaded fibers using electrospinning. Rosmarinic acid was selected as exemplary yet relevant template during molecular imprinting. A “design of experiments” methodology was used for optimizing the electrospinning process. Four factors, i.e., the concentration of the biodegradable polymer (polycaprolactone), the applied voltage, the flow rate, and the collector distance were varied in a central composite design. The production process was then optimized according to the suitability of the beaded fibers during microrobot fabrication, actuation, and drug release. The optimum average fiber diameter of MI beaded fibers was determined at 857 ± 390 nm with an average number of beads at 0.011 ± 0.002 per µm(2). In vitro release profiles of the optimized MI beaded fibers revealed a lower burst rate and a more sustained release when compared to control fibers. Magnetic control of the MI beaded fibers was successfully tested by following selected waypoints along a star-shaped predefined trajectory. This study innovatively combines molecular imprinting technology with magnetic microrobots enabling targeted drug delivery systems that offer precise motion control via the magnetic response of microrobots along with selective uptake of a drug into the microrobot using MI beaded fibers in future. MDPI 2020-07-28 /pmc/articles/PMC7466393/ /pubmed/32731560 http://dx.doi.org/10.3390/nano10081478 Text en © 2020 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
Saad, Engy M.
El Gohary, Nesrine Abdelrehim
El-Shenawy, Basma M.
Handoussa, Heba
Klingner, Anke
Elwi, Mohamed
Hamed, Youssef
Khalil, Islam S. M.
El Nashar, Rasha Mohamed
Mizaikoff, Boris
Fabrication of Magnetic Molecularly Imprinted Beaded Fibers for Rosmarinic Acid
title Fabrication of Magnetic Molecularly Imprinted Beaded Fibers for Rosmarinic Acid
title_full Fabrication of Magnetic Molecularly Imprinted Beaded Fibers for Rosmarinic Acid
title_fullStr Fabrication of Magnetic Molecularly Imprinted Beaded Fibers for Rosmarinic Acid
title_full_unstemmed Fabrication of Magnetic Molecularly Imprinted Beaded Fibers for Rosmarinic Acid
title_short Fabrication of Magnetic Molecularly Imprinted Beaded Fibers for Rosmarinic Acid
title_sort fabrication of magnetic molecularly imprinted beaded fibers for rosmarinic acid
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7466393/
https://www.ncbi.nlm.nih.gov/pubmed/32731560
http://dx.doi.org/10.3390/nano10081478
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