Protective role of vitamin E to reduce oxidative degradation of soft implantable polyurethanes: In vitro study

Vitamin E (VitE) additives are important in treating osteoarthritis inclusive cartilage regeneration due to their antioxidant and anti-inflammatory properties. The present research study focuses on the ability of biological antioxidant VitE (alpha-tocopherol isoform) to reduce or minimize oxidative...

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Main Authors: Kutuzova Larysa, Molentor Olga, Wu Feng, Song Wenyao, Kandelbauer Andreas, Lorenz Günter
Format: Article
Language:English
Published: De Gruyter 2019-09-01
Series:Current Directions in Biomedical Engineering
Subjects:
Online Access:https://doi.org/10.1515/cdbme-2019-0113
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spelling doaj-073273e2768d48b1a7590abfab9d88662021-09-06T19:19:27ZengDe GruyterCurrent Directions in Biomedical Engineering2364-55042019-09-015144945110.1515/cdbme-2019-0113cdbme-2019-0113Protective role of vitamin E to reduce oxidative degradation of soft implantable polyurethanes: In vitro studyKutuzova Larysa0Molentor Olga1Wu Feng2Song Wenyao3Kandelbauer Andreas4Lorenz Günter5University of Reutlingen, School of Applied Chemistry, Alteburgstrasse 150,Reutlingen, GermanyUniversity of Reutlingen, School of Applied Chemistry,Reutlingen, GermanyUniversity of Reutlingen, School of Applied Chemistry,Reutlingen, GermanyUniversity of Reutlingen, School of Applied Chemistry,Reutlingen, GermanyUniversity of Reutlingen, School of Applied Chemistry,Reutlingen, GermanyUniversity of Reutlingen, School of Applied Chemistry,Reutlingen, GermanyVitamin E (VitE) additives are important in treating osteoarthritis inclusive cartilage regeneration due to their antioxidant and anti-inflammatory properties. The present research study focuses on the ability of biological antioxidant VitE (alpha-tocopherol isoform) to reduce or minimize oxidative degradation of soft implantable polyurethane (PU) elastomers after extended periods of time (5 months) in vitro. The effect of the oxidation storage media on the morphology of the segmented PUs was evaluated by mechanical softening, crystallization and melting behavior of both soft and hard segments (SS, HS) using dynamic mechanical analysis (DMA). Bulk mechanical properties of the potential implant materials during ageing were predicted from comprehensive mechanical testing of the biomaterials under tension and compression cyclic loads. 5-months in vitro data suggest that the prepared siloxane-poly(carbonate-urethane) formulations have sufficient resistance against degradation to be suitable materials for chondral long-term bio-stable implants. Most importantly, the positive effect of incorporating VitE (0.5 or 1.0% w/w) as bio-antioxidant and lubricant on the bio-stability was observed for all PU-types. VitE-additives protected the surface layer from erosion and cracking during chemical oxidation in vitro as well as from thermal oxidation during extrusion re-processing.https://doi.org/10.1515/cdbme-2019-0113long-term implantssoft medical-grade polyurethanesbio-antioxidantin vitro test
collection DOAJ
language English
format Article
sources DOAJ
author Kutuzova Larysa
Molentor Olga
Wu Feng
Song Wenyao
Kandelbauer Andreas
Lorenz Günter
spellingShingle Kutuzova Larysa
Molentor Olga
Wu Feng
Song Wenyao
Kandelbauer Andreas
Lorenz Günter
Protective role of vitamin E to reduce oxidative degradation of soft implantable polyurethanes: In vitro study
Current Directions in Biomedical Engineering
long-term implants
soft medical-grade polyurethanes
bio-antioxidant
in vitro test
author_facet Kutuzova Larysa
Molentor Olga
Wu Feng
Song Wenyao
Kandelbauer Andreas
Lorenz Günter
author_sort Kutuzova Larysa
title Protective role of vitamin E to reduce oxidative degradation of soft implantable polyurethanes: In vitro study
title_short Protective role of vitamin E to reduce oxidative degradation of soft implantable polyurethanes: In vitro study
title_full Protective role of vitamin E to reduce oxidative degradation of soft implantable polyurethanes: In vitro study
title_fullStr Protective role of vitamin E to reduce oxidative degradation of soft implantable polyurethanes: In vitro study
title_full_unstemmed Protective role of vitamin E to reduce oxidative degradation of soft implantable polyurethanes: In vitro study
title_sort protective role of vitamin e to reduce oxidative degradation of soft implantable polyurethanes: in vitro study
publisher De Gruyter
series Current Directions in Biomedical Engineering
issn 2364-5504
publishDate 2019-09-01
description Vitamin E (VitE) additives are important in treating osteoarthritis inclusive cartilage regeneration due to their antioxidant and anti-inflammatory properties. The present research study focuses on the ability of biological antioxidant VitE (alpha-tocopherol isoform) to reduce or minimize oxidative degradation of soft implantable polyurethane (PU) elastomers after extended periods of time (5 months) in vitro. The effect of the oxidation storage media on the morphology of the segmented PUs was evaluated by mechanical softening, crystallization and melting behavior of both soft and hard segments (SS, HS) using dynamic mechanical analysis (DMA). Bulk mechanical properties of the potential implant materials during ageing were predicted from comprehensive mechanical testing of the biomaterials under tension and compression cyclic loads. 5-months in vitro data suggest that the prepared siloxane-poly(carbonate-urethane) formulations have sufficient resistance against degradation to be suitable materials for chondral long-term bio-stable implants. Most importantly, the positive effect of incorporating VitE (0.5 or 1.0% w/w) as bio-antioxidant and lubricant on the bio-stability was observed for all PU-types. VitE-additives protected the surface layer from erosion and cracking during chemical oxidation in vitro as well as from thermal oxidation during extrusion re-processing.
topic long-term implants
soft medical-grade polyurethanes
bio-antioxidant
in vitro test
url https://doi.org/10.1515/cdbme-2019-0113
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