Electrospun Blank Nanocoating for Improved Sustained Release Profiles from Medicated Gliadin Nanofibers
Nanomaterials providing sustained release profiles are highly desired for efficacious drug delivery. Advanced nanotechnologies are useful tools for creating elaborate nanostructure-based nanomaterials to achieve the designed functional performances. In this research, a modified coaxial electrospinni...
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doaj-36ad0145a5204c358abc0c9fee22fc692020-11-25T00:24:46ZengMDPI AGNanomaterials2079-49912018-03-018418410.3390/nano8040184nano8040184Electrospun Blank Nanocoating for Improved Sustained Release Profiles from Medicated Gliadin NanofibersXinkuan Liu0Wenyi Shao1Mingyi Luo2Jiayin Bian3Deng-Guang Yu4School of Material Science and Engineering, University of Shanghai for Science and Technology, Shanghai 200093, ChinaSchool of Material Science and Engineering, University of Shanghai for Science and Technology, Shanghai 200093, ChinaSchool of Material Science and Engineering, University of Shanghai for Science and Technology, Shanghai 200093, ChinaSchool of Material Science and Engineering, University of Shanghai for Science and Technology, Shanghai 200093, ChinaSchool of Material Science and Engineering, University of Shanghai for Science and Technology, Shanghai 200093, ChinaNanomaterials providing sustained release profiles are highly desired for efficacious drug delivery. Advanced nanotechnologies are useful tools for creating elaborate nanostructure-based nanomaterials to achieve the designed functional performances. In this research, a modified coaxial electrospinning was explored to fabricate a novel core-sheath nanostructure (nanofibers F2), in which a sheath drug-free gliadin layer was successfully coated on the core ketoprofen (KET)-gliadin nanocomposite. A monolithic nanocomposite (nanofibers F1) that was generated through traditional blending electrospinning of core fluid was utilized as a control. Scanning electron microscopy demonstrated that both nanofibers F1 and F2 were linear. Transmission electron microscopy verified that nanofibers F2 featured a clear core-sheath nanostructure with a thin sheath layer about 25 nm, whereas their cores and nanofibers F1 were homogeneous KET-gliadin nanocomposites. X-ray diffraction patterns verified that, as a result of fine compatibility, KET was dispersed in gliadin in an amorphous state. In vitro dissolution tests demonstrated that the thin blank nanocoating in nanofibers F2 significantly modified drug release kinetics from a traditional exponential equation of nanofibers F1 to a zero-order controlled release model, linearly freeing 95.7 ± 4.7% of the loaded cargoes over a time period of 16 h.http://www.mdpi.com/2079-4991/8/4/184medicated nanofibernanocoatingcoaxial electrospinningstructural nanocompositesustained releasepoorly water-soluble drug |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Xinkuan Liu Wenyi Shao Mingyi Luo Jiayin Bian Deng-Guang Yu |
spellingShingle |
Xinkuan Liu Wenyi Shao Mingyi Luo Jiayin Bian Deng-Guang Yu Electrospun Blank Nanocoating for Improved Sustained Release Profiles from Medicated Gliadin Nanofibers Nanomaterials medicated nanofiber nanocoating coaxial electrospinning structural nanocomposite sustained release poorly water-soluble drug |
author_facet |
Xinkuan Liu Wenyi Shao Mingyi Luo Jiayin Bian Deng-Guang Yu |
author_sort |
Xinkuan Liu |
title |
Electrospun Blank Nanocoating for Improved Sustained Release Profiles from Medicated Gliadin Nanofibers |
title_short |
Electrospun Blank Nanocoating for Improved Sustained Release Profiles from Medicated Gliadin Nanofibers |
title_full |
Electrospun Blank Nanocoating for Improved Sustained Release Profiles from Medicated Gliadin Nanofibers |
title_fullStr |
Electrospun Blank Nanocoating for Improved Sustained Release Profiles from Medicated Gliadin Nanofibers |
title_full_unstemmed |
Electrospun Blank Nanocoating for Improved Sustained Release Profiles from Medicated Gliadin Nanofibers |
title_sort |
electrospun blank nanocoating for improved sustained release profiles from medicated gliadin nanofibers |
publisher |
MDPI AG |
series |
Nanomaterials |
issn |
2079-4991 |
publishDate |
2018-03-01 |
description |
Nanomaterials providing sustained release profiles are highly desired for efficacious drug delivery. Advanced nanotechnologies are useful tools for creating elaborate nanostructure-based nanomaterials to achieve the designed functional performances. In this research, a modified coaxial electrospinning was explored to fabricate a novel core-sheath nanostructure (nanofibers F2), in which a sheath drug-free gliadin layer was successfully coated on the core ketoprofen (KET)-gliadin nanocomposite. A monolithic nanocomposite (nanofibers F1) that was generated through traditional blending electrospinning of core fluid was utilized as a control. Scanning electron microscopy demonstrated that both nanofibers F1 and F2 were linear. Transmission electron microscopy verified that nanofibers F2 featured a clear core-sheath nanostructure with a thin sheath layer about 25 nm, whereas their cores and nanofibers F1 were homogeneous KET-gliadin nanocomposites. X-ray diffraction patterns verified that, as a result of fine compatibility, KET was dispersed in gliadin in an amorphous state. In vitro dissolution tests demonstrated that the thin blank nanocoating in nanofibers F2 significantly modified drug release kinetics from a traditional exponential equation of nanofibers F1 to a zero-order controlled release model, linearly freeing 95.7 ± 4.7% of the loaded cargoes over a time period of 16 h. |
topic |
medicated nanofiber nanocoating coaxial electrospinning structural nanocomposite sustained release poorly water-soluble drug |
url |
http://www.mdpi.com/2079-4991/8/4/184 |
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