Temperature-responsive electrospun nanofibers for 'on–off' switchable release of dextran

We propose a new type of 'smart' nanofiber (NF) with dynamically and reversibly tunable properties for the 'on–off' controlled release of the polysaccharide dextran. The fibers are produced by electrospinning copolymers of N-isopropylacrylamide (NIPAAm) and N-hydroxymethylacrylam...

Full description

Bibliographic Details
Main Author: Young-Jin Kim, Mitsuhiro Ebara and Takao Aoyagi
Format: Article
Language:English
Published: Taylor & Francis Group 2012-01-01
Series:Science and Technology of Advanced Materials
Online Access:http://dx.doi.org/10.1088/1468-6996/13/6/064203
id doaj-fb6111c6d61241e886a3efe543b8e5c9
record_format Article
spelling doaj-fb6111c6d61241e886a3efe543b8e5c92020-11-24T22:59:16ZengTaylor & Francis GroupScience and Technology of Advanced Materials1468-69961878-55142012-01-01136064203Temperature-responsive electrospun nanofibers for 'on–off' switchable release of dextran Young-Jin Kim, Mitsuhiro Ebara and Takao AoyagiWe propose a new type of 'smart' nanofiber (NF) with dynamically and reversibly tunable properties for the 'on–off' controlled release of the polysaccharide dextran. The fibers are produced by electrospinning copolymers of N-isopropylacrylamide (NIPAAm) and N-hydroxymethylacrylamide (HMAAm). The OH groups of HMAAm are subsequently crosslinked by thermal curing. The copolymers were successfully fabricated into a well-defined nanofibrous structure with a diameter of about 600–00 nm, and the fibers preserved their morphology even after thermal curing. The resulting crosslinked NFs showed rapid and reversible volume changes in aqueous media in response to cycles of temperature alternation. The fibrous morphology was maintained for the crosslinked NFs even after the cycles of temperature alternation, while non-crosslinked NFs collapsed and dispersed quickly in the aqueous solution. Dextran-containing NFs were prepared by electrospinning the copolymers blended with fluorescein isothiocyanate (FITC)-dextran, and the 'on–off' switchable release of FITC-dextran from the crosslinked NFs was observed. Almost all the FITC-dextran was released from the NFs after six heating cycles, whereas only a negligible amount of FITC-dextran was evolved during the cooling process. The reported incorporation of smart properties into NFs takes advantage of their extremely large surface area and porosity and is expected to provide a simple platform for on–off drug delivery.http://dx.doi.org/10.1088/1468-6996/13/6/064203
collection DOAJ
language English
format Article
sources DOAJ
author Young-Jin Kim, Mitsuhiro Ebara and Takao Aoyagi
spellingShingle Young-Jin Kim, Mitsuhiro Ebara and Takao Aoyagi
Temperature-responsive electrospun nanofibers for 'on–off' switchable release of dextran
Science and Technology of Advanced Materials
author_facet Young-Jin Kim, Mitsuhiro Ebara and Takao Aoyagi
author_sort Young-Jin Kim, Mitsuhiro Ebara and Takao Aoyagi
title Temperature-responsive electrospun nanofibers for 'on–off' switchable release of dextran
title_short Temperature-responsive electrospun nanofibers for 'on–off' switchable release of dextran
title_full Temperature-responsive electrospun nanofibers for 'on–off' switchable release of dextran
title_fullStr Temperature-responsive electrospun nanofibers for 'on–off' switchable release of dextran
title_full_unstemmed Temperature-responsive electrospun nanofibers for 'on–off' switchable release of dextran
title_sort temperature-responsive electrospun nanofibers for 'on–off' switchable release of dextran
publisher Taylor & Francis Group
series Science and Technology of Advanced Materials
issn 1468-6996
1878-5514
publishDate 2012-01-01
description We propose a new type of 'smart' nanofiber (NF) with dynamically and reversibly tunable properties for the 'on–off' controlled release of the polysaccharide dextran. The fibers are produced by electrospinning copolymers of N-isopropylacrylamide (NIPAAm) and N-hydroxymethylacrylamide (HMAAm). The OH groups of HMAAm are subsequently crosslinked by thermal curing. The copolymers were successfully fabricated into a well-defined nanofibrous structure with a diameter of about 600–00 nm, and the fibers preserved their morphology even after thermal curing. The resulting crosslinked NFs showed rapid and reversible volume changes in aqueous media in response to cycles of temperature alternation. The fibrous morphology was maintained for the crosslinked NFs even after the cycles of temperature alternation, while non-crosslinked NFs collapsed and dispersed quickly in the aqueous solution. Dextran-containing NFs were prepared by electrospinning the copolymers blended with fluorescein isothiocyanate (FITC)-dextran, and the 'on–off' switchable release of FITC-dextran from the crosslinked NFs was observed. Almost all the FITC-dextran was released from the NFs after six heating cycles, whereas only a negligible amount of FITC-dextran was evolved during the cooling process. The reported incorporation of smart properties into NFs takes advantage of their extremely large surface area and porosity and is expected to provide a simple platform for on–off drug delivery.
url http://dx.doi.org/10.1088/1468-6996/13/6/064203
work_keys_str_mv AT youngjinkimmitsuhiroebaraandtakaoaoyagi temperatureresponsiveelectrospunnanofibersforonoffswitchablereleaseofdextran
_version_ 1725645214693982208