Dual Drug Release Electrospun Core-Shell Nanofibers with Tunable Dose in the Second Phase

This study reports a new type of drug-loaded core-shell nanofibers capable of providing dual controlled release with tunable dose in the second phase. The core-shell nanofibers were fabricated through a modified coaxial electrospinning using a Teflon-coated concentric spinneret. Poly(vinyl pyrrolido...

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Main Authors: Wei Qian, Deng-Guang Yu, Ying Li, Yao-Zu Liao, Xia Wang, Lu Wang
Format: Article
Language:English
Published: MDPI AG 2014-01-01
Series:International Journal of Molecular Sciences
Subjects:
Online Access:http://www.mdpi.com/1422-0067/15/1/774
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spelling doaj-cbe8901a8c564876874d253f228e90ef2020-11-24T21:49:58ZengMDPI AGInternational Journal of Molecular Sciences1422-00672014-01-0115177478610.3390/ijms15010774ijms15010774Dual Drug Release Electrospun Core-Shell Nanofibers with Tunable Dose in the Second PhaseWei Qian0Deng-Guang Yu1Ying Li2Yao-Zu Liao3Xia Wang4Lu Wang5School of Materials Science & Engineering, University of Shanghai for Science and Technology, Shanghai 200093, ChinaSchool of Materials Science & Engineering, University of Shanghai for Science and Technology, Shanghai 200093, ChinaSchool of Materials Science & Engineering, University of Shanghai for Science and Technology, Shanghai 200093, ChinaSchool of Chemistry, University of Bristol, Bristol BS8 1TS, UKSchool of Materials Science & Engineering, University of Shanghai for Science and Technology, Shanghai 200093, ChinaSchool of Materials Science & Engineering, University of Shanghai for Science and Technology, Shanghai 200093, ChinaThis study reports a new type of drug-loaded core-shell nanofibers capable of providing dual controlled release with tunable dose in the second phase. The core-shell nanofibers were fabricated through a modified coaxial electrospinning using a Teflon-coated concentric spinneret. Poly(vinyl pyrrolidone) and ethyl cellulose were used as the shell and core polymer matrices respectively, and the content of active ingredient acetaminophen (APAP) in the core was programmed. The Teflon-coated concentric spinneret may facilitate the efficacious and stable preparation of core-shell nanofibers through the modified coaxial electrospinning, where the core fluids were electrospinnable and the shell fluid had no electrospinnability. The resultant nanofibers had linear morphologies and clear core-shell structures, as observed by the scanning and transmission electron microscopic images. APAP was amorphously distributed in the shell and core polymer matrices due to the favorite second-order interactions, as indicated by the X-ray diffraction and FTIR spectroscopic tests. The results from the in vitro dissolution tests demonstrated that the core-shell nanofibers were able to furnish the desired dual drug controlled-release profiles with a tunable drug release amount in the second phase. The modified coaxial electrospinning is a useful tool to generate nanostructures with a tailored components and compositions in their different parts, and thus to realize the desired functional performances.http://www.mdpi.com/1422-0067/15/1/774modified coaxial electrospinningcore-shell nanofibersdual drug releaseTeflon-coated spinnerettunable dose
collection DOAJ
language English
format Article
sources DOAJ
author Wei Qian
Deng-Guang Yu
Ying Li
Yao-Zu Liao
Xia Wang
Lu Wang
spellingShingle Wei Qian
Deng-Guang Yu
Ying Li
Yao-Zu Liao
Xia Wang
Lu Wang
Dual Drug Release Electrospun Core-Shell Nanofibers with Tunable Dose in the Second Phase
International Journal of Molecular Sciences
modified coaxial electrospinning
core-shell nanofibers
dual drug release
Teflon-coated spinneret
tunable dose
author_facet Wei Qian
Deng-Guang Yu
Ying Li
Yao-Zu Liao
Xia Wang
Lu Wang
author_sort Wei Qian
title Dual Drug Release Electrospun Core-Shell Nanofibers with Tunable Dose in the Second Phase
title_short Dual Drug Release Electrospun Core-Shell Nanofibers with Tunable Dose in the Second Phase
title_full Dual Drug Release Electrospun Core-Shell Nanofibers with Tunable Dose in the Second Phase
title_fullStr Dual Drug Release Electrospun Core-Shell Nanofibers with Tunable Dose in the Second Phase
title_full_unstemmed Dual Drug Release Electrospun Core-Shell Nanofibers with Tunable Dose in the Second Phase
title_sort dual drug release electrospun core-shell nanofibers with tunable dose in the second phase
publisher MDPI AG
series International Journal of Molecular Sciences
issn 1422-0067
publishDate 2014-01-01
description This study reports a new type of drug-loaded core-shell nanofibers capable of providing dual controlled release with tunable dose in the second phase. The core-shell nanofibers were fabricated through a modified coaxial electrospinning using a Teflon-coated concentric spinneret. Poly(vinyl pyrrolidone) and ethyl cellulose were used as the shell and core polymer matrices respectively, and the content of active ingredient acetaminophen (APAP) in the core was programmed. The Teflon-coated concentric spinneret may facilitate the efficacious and stable preparation of core-shell nanofibers through the modified coaxial electrospinning, where the core fluids were electrospinnable and the shell fluid had no electrospinnability. The resultant nanofibers had linear morphologies and clear core-shell structures, as observed by the scanning and transmission electron microscopic images. APAP was amorphously distributed in the shell and core polymer matrices due to the favorite second-order interactions, as indicated by the X-ray diffraction and FTIR spectroscopic tests. The results from the in vitro dissolution tests demonstrated that the core-shell nanofibers were able to furnish the desired dual drug controlled-release profiles with a tunable drug release amount in the second phase. The modified coaxial electrospinning is a useful tool to generate nanostructures with a tailored components and compositions in their different parts, and thus to realize the desired functional performances.
topic modified coaxial electrospinning
core-shell nanofibers
dual drug release
Teflon-coated spinneret
tunable dose
url http://www.mdpi.com/1422-0067/15/1/774
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