Tuning electrospinning parameters for production of 3D-fiber-fleeces with increased porosity for soft tissue engineering applications

Degrapol® and PLGA electrospun fiber fleeces were characterized with regard to fiber diameter, alignment, mechanical properties as well as scaffold porosity. The study showed that electrospinning parameters affect fiber diameter and alignment in an inverse relation: fiber diameter was increased with...

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Main Authors: V Milleret, B Simona, P Neuenschwander, H Hall
Format: Article
Language:English
Published: AO Research Institute Davos 2011-03-01
Series:European Cells & Materials
Subjects:
Online Access:http://www.ecmjournal.org/journal/papers/vol021/pdf/v021a22.pdf
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spelling doaj-1729a5dd657549f6aa30fd6135e64a412020-11-24T22:07:26Zeng AO Research Institute DavosEuropean Cells & Materials1473-22622011-03-0121286303Tuning electrospinning parameters for production of 3D-fiber-fleeces with increased porosity for soft tissue engineering applicationsV MilleretB SimonaP NeuenschwanderH HallDegrapol® and PLGA electrospun fiber fleeces were characterized with regard to fiber diameter, alignment, mechanical properties as well as scaffold porosity. The study showed that electrospinning parameters affect fiber diameter and alignment in an inverse relation: fiber diameter was increased with increased flow rate, with decrease in working distance and collector velocity, whereas fiber alignment increased with the working distance and collector velocity but decreased with increased flow rate. When Degrapol® or PLGA-polymers were co-spun with increasing ratios of a water-soluble polymer that was subsequently removed; fibrous scaffolds with increased porosities were obtained. Mechanical properties correlated with fiber alignment rather than fiber diameter as aligned fiber scaffolds demonstrated strong mechanical anisotropy. For co-spun fibers the Young’s modulus correlated inversely with the amount of co-spun polymer. Cell proliferation was independent of the porosity of the scaffold, but different between the two polymers. Furthermore, fibrous scaffolds with different porosities were analyzed for cell infiltration suggesting that cell infiltration was enhanced with increased porosity and increasing time. These experiments indicate that 3D-fiber fleeces can be produced with controlled properties, being prerequisites for successful scaffolds in tissue engineering applications.http://www.ecmjournal.org/journal/papers/vol021/pdf/v021a22.pdfDegrapol®PLGA3D-fiber fleecescell infiltrationelectrospinningtissue engineering
collection DOAJ
language English
format Article
sources DOAJ
author V Milleret
B Simona
P Neuenschwander
H Hall
spellingShingle V Milleret
B Simona
P Neuenschwander
H Hall
Tuning electrospinning parameters for production of 3D-fiber-fleeces with increased porosity for soft tissue engineering applications
European Cells & Materials
Degrapol®
PLGA
3D-fiber fleeces
cell infiltration
electrospinning
tissue engineering
author_facet V Milleret
B Simona
P Neuenschwander
H Hall
author_sort V Milleret
title Tuning electrospinning parameters for production of 3D-fiber-fleeces with increased porosity for soft tissue engineering applications
title_short Tuning electrospinning parameters for production of 3D-fiber-fleeces with increased porosity for soft tissue engineering applications
title_full Tuning electrospinning parameters for production of 3D-fiber-fleeces with increased porosity for soft tissue engineering applications
title_fullStr Tuning electrospinning parameters for production of 3D-fiber-fleeces with increased porosity for soft tissue engineering applications
title_full_unstemmed Tuning electrospinning parameters for production of 3D-fiber-fleeces with increased porosity for soft tissue engineering applications
title_sort tuning electrospinning parameters for production of 3d-fiber-fleeces with increased porosity for soft tissue engineering applications
publisher AO Research Institute Davos
series European Cells & Materials
issn 1473-2262
publishDate 2011-03-01
description Degrapol® and PLGA electrospun fiber fleeces were characterized with regard to fiber diameter, alignment, mechanical properties as well as scaffold porosity. The study showed that electrospinning parameters affect fiber diameter and alignment in an inverse relation: fiber diameter was increased with increased flow rate, with decrease in working distance and collector velocity, whereas fiber alignment increased with the working distance and collector velocity but decreased with increased flow rate. When Degrapol® or PLGA-polymers were co-spun with increasing ratios of a water-soluble polymer that was subsequently removed; fibrous scaffolds with increased porosities were obtained. Mechanical properties correlated with fiber alignment rather than fiber diameter as aligned fiber scaffolds demonstrated strong mechanical anisotropy. For co-spun fibers the Young’s modulus correlated inversely with the amount of co-spun polymer. Cell proliferation was independent of the porosity of the scaffold, but different between the two polymers. Furthermore, fibrous scaffolds with different porosities were analyzed for cell infiltration suggesting that cell infiltration was enhanced with increased porosity and increasing time. These experiments indicate that 3D-fiber fleeces can be produced with controlled properties, being prerequisites for successful scaffolds in tissue engineering applications.
topic Degrapol®
PLGA
3D-fiber fleeces
cell infiltration
electrospinning
tissue engineering
url http://www.ecmjournal.org/journal/papers/vol021/pdf/v021a22.pdf
work_keys_str_mv AT vmilleret tuningelectrospinningparametersforproductionof3dfiberfleeceswithincreasedporosityforsofttissueengineeringapplications
AT bsimona tuningelectrospinningparametersforproductionof3dfiberfleeceswithincreasedporosityforsofttissueengineeringapplications
AT pneuenschwander tuningelectrospinningparametersforproductionof3dfiberfleeceswithincreasedporosityforsofttissueengineeringapplications
AT hhall tuningelectrospinningparametersforproductionof3dfiberfleeceswithincreasedporosityforsofttissueengineeringapplications
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