Cargando…

Biodegradable Thermoplastic Starch/Polycaprolactone Blends with Co-Continuous Morphology Suitable for Local Release of Antibiotics

We report a reproducible preparation and characterization of highly homogeneous thermoplastic starch/pol(ε-caprolactone) blends (TPS/PCL) with a minimal thermomechanical degradation and co-continuous morphology. These materials would be suitable for biomedical applications, specifically for the loca...

Descripción completa

Detalles Bibliográficos
Autores principales: Gajdosova, Veronika, Strachota, Beata, Strachota, Adam, Michalkova, Danuse, Krejcikova, Sabina, Fulin, Petr, Nyc, Otakar, Brinek, Adam, Zemek, Marek, Slouf, Miroslav
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8840403/
https://www.ncbi.nlm.nih.gov/pubmed/35161043
http://dx.doi.org/10.3390/ma15031101
_version_ 1784650610905186304
author Gajdosova, Veronika
Strachota, Beata
Strachota, Adam
Michalkova, Danuse
Krejcikova, Sabina
Fulin, Petr
Nyc, Otakar
Brinek, Adam
Zemek, Marek
Slouf, Miroslav
author_facet Gajdosova, Veronika
Strachota, Beata
Strachota, Adam
Michalkova, Danuse
Krejcikova, Sabina
Fulin, Petr
Nyc, Otakar
Brinek, Adam
Zemek, Marek
Slouf, Miroslav
author_sort Gajdosova, Veronika
collection PubMed
description We report a reproducible preparation and characterization of highly homogeneous thermoplastic starch/pol(ε-caprolactone) blends (TPS/PCL) with a minimal thermomechanical degradation and co-continuous morphology. These materials would be suitable for biomedical applications, specifically for the local release of antibiotics (ATB) from the TPS phase. The TPS/PCL blends were prepared in the whole concentration range. In agreement with theoretical predictions based on component viscosities, the co-continuous morphology was found for TPS/PCL blends with a composition of 70/30 wt.%. The minimal thermomechanical degradation of the blends was achieved by an optimization of the processing conditions and by keeping processing temperatures as low as possible, because higher temperatures might damage ATB in the final application. The blends’ homogeneity was verified by scanning electron microscopy. The co-continuous morphology was confirmed by submicron-computed tomography. The mechanical performance of the blends was characterized in both microscale (by an instrumented microindentation hardness testing; MHI) and macroscale (by dynamic thermomechanical analysis; DMTA). The elastic moduli of TPS increased ca four times in the TPS/PCL (70/30) blend. The correlations between elastic moduli measured by MHI and DMTA were very strong, which implied that, in the future studies, it would be possible to use just micromechanical testing that does not require large specimens.
format Online
Article
Text
id pubmed-8840403
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-88404032022-02-13 Biodegradable Thermoplastic Starch/Polycaprolactone Blends with Co-Continuous Morphology Suitable for Local Release of Antibiotics Gajdosova, Veronika Strachota, Beata Strachota, Adam Michalkova, Danuse Krejcikova, Sabina Fulin, Petr Nyc, Otakar Brinek, Adam Zemek, Marek Slouf, Miroslav Materials (Basel) Article We report a reproducible preparation and characterization of highly homogeneous thermoplastic starch/pol(ε-caprolactone) blends (TPS/PCL) with a minimal thermomechanical degradation and co-continuous morphology. These materials would be suitable for biomedical applications, specifically for the local release of antibiotics (ATB) from the TPS phase. The TPS/PCL blends were prepared in the whole concentration range. In agreement with theoretical predictions based on component viscosities, the co-continuous morphology was found for TPS/PCL blends with a composition of 70/30 wt.%. The minimal thermomechanical degradation of the blends was achieved by an optimization of the processing conditions and by keeping processing temperatures as low as possible, because higher temperatures might damage ATB in the final application. The blends’ homogeneity was verified by scanning electron microscopy. The co-continuous morphology was confirmed by submicron-computed tomography. The mechanical performance of the blends was characterized in both microscale (by an instrumented microindentation hardness testing; MHI) and macroscale (by dynamic thermomechanical analysis; DMTA). The elastic moduli of TPS increased ca four times in the TPS/PCL (70/30) blend. The correlations between elastic moduli measured by MHI and DMTA were very strong, which implied that, in the future studies, it would be possible to use just micromechanical testing that does not require large specimens. MDPI 2022-01-30 /pmc/articles/PMC8840403/ /pubmed/35161043 http://dx.doi.org/10.3390/ma15031101 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Gajdosova, Veronika
Strachota, Beata
Strachota, Adam
Michalkova, Danuse
Krejcikova, Sabina
Fulin, Petr
Nyc, Otakar
Brinek, Adam
Zemek, Marek
Slouf, Miroslav
Biodegradable Thermoplastic Starch/Polycaprolactone Blends with Co-Continuous Morphology Suitable for Local Release of Antibiotics
title Biodegradable Thermoplastic Starch/Polycaprolactone Blends with Co-Continuous Morphology Suitable for Local Release of Antibiotics
title_full Biodegradable Thermoplastic Starch/Polycaprolactone Blends with Co-Continuous Morphology Suitable for Local Release of Antibiotics
title_fullStr Biodegradable Thermoplastic Starch/Polycaprolactone Blends with Co-Continuous Morphology Suitable for Local Release of Antibiotics
title_full_unstemmed Biodegradable Thermoplastic Starch/Polycaprolactone Blends with Co-Continuous Morphology Suitable for Local Release of Antibiotics
title_short Biodegradable Thermoplastic Starch/Polycaprolactone Blends with Co-Continuous Morphology Suitable for Local Release of Antibiotics
title_sort biodegradable thermoplastic starch/polycaprolactone blends with co-continuous morphology suitable for local release of antibiotics
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8840403/
https://www.ncbi.nlm.nih.gov/pubmed/35161043
http://dx.doi.org/10.3390/ma15031101
work_keys_str_mv AT gajdosovaveronika biodegradablethermoplasticstarchpolycaprolactoneblendswithcocontinuousmorphologysuitableforlocalreleaseofantibiotics
AT strachotabeata biodegradablethermoplasticstarchpolycaprolactoneblendswithcocontinuousmorphologysuitableforlocalreleaseofantibiotics
AT strachotaadam biodegradablethermoplasticstarchpolycaprolactoneblendswithcocontinuousmorphologysuitableforlocalreleaseofantibiotics
AT michalkovadanuse biodegradablethermoplasticstarchpolycaprolactoneblendswithcocontinuousmorphologysuitableforlocalreleaseofantibiotics
AT krejcikovasabina biodegradablethermoplasticstarchpolycaprolactoneblendswithcocontinuousmorphologysuitableforlocalreleaseofantibiotics
AT fulinpetr biodegradablethermoplasticstarchpolycaprolactoneblendswithcocontinuousmorphologysuitableforlocalreleaseofantibiotics
AT nycotakar biodegradablethermoplasticstarchpolycaprolactoneblendswithcocontinuousmorphologysuitableforlocalreleaseofantibiotics
AT brinekadam biodegradablethermoplasticstarchpolycaprolactoneblendswithcocontinuousmorphologysuitableforlocalreleaseofantibiotics
AT zemekmarek biodegradablethermoplasticstarchpolycaprolactoneblendswithcocontinuousmorphologysuitableforlocalreleaseofantibiotics
AT sloufmiroslav biodegradablethermoplasticstarchpolycaprolactoneblendswithcocontinuousmorphologysuitableforlocalreleaseofantibiotics