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Halloysite nanotubes as carriers of vancomycin in alginate-based wound dressing

The influence of an inorganic support – halloysite nanotubes – on the release rate and biological activity of the antibiotic encapsulated in alginate-based dressings was studied. The halloysite samples were loaded with approx. 10 wt.% of the antibiotic and then encapsulated in Alginate and Gelatin/A...

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Autores principales: Kurczewska, Joanna, Pecyna, Paulina, Ratajczak, Magdalena, Gajęcka, Marzena, Schroeder, Grzegorz
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5605850/
https://www.ncbi.nlm.nih.gov/pubmed/28951678
http://dx.doi.org/10.1016/j.jsps.2017.02.007
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author Kurczewska, Joanna
Pecyna, Paulina
Ratajczak, Magdalena
Gajęcka, Marzena
Schroeder, Grzegorz
author_facet Kurczewska, Joanna
Pecyna, Paulina
Ratajczak, Magdalena
Gajęcka, Marzena
Schroeder, Grzegorz
author_sort Kurczewska, Joanna
collection PubMed
description The influence of an inorganic support – halloysite nanotubes – on the release rate and biological activity of the antibiotic encapsulated in alginate-based dressings was studied. The halloysite samples were loaded with approx. 10 wt.% of the antibiotic and then encapsulated in Alginate and Gelatin/Alginate gels. The material functionalized with aliphatic amine significantly extended the release of vancomycin from alginate-based gels as compared to that achieved when silica was used. After 24 h, the released amounts of the antibiotic immobilized at silica reached 70%, while for the drug immobilized at halloysite the released amount of vancomycin reached 44% for Alginate discs. The addition of gelatin resulted in even more prolonged sustained release of the drug. The antibiotic was released from the system with a double barrier with Higuchi kinetic model and Fickian diffusion mechanism. Only the immobilized drug encapsulated in Alginate gel demonstrated very good antimicrobial activity against various bacteria. The inhibition zones were greater than those of the standard discs for the staphylococci and enterococci bacteria tested. The addition of gelatin adversely affected the biological activity of the system. The inhibition zones were smaller than those of the reference samples. A reduction in the drug dose by half had no significant effect on changing the release rate and microbiological activity. The in vivo toxicity studies of the material with immobilized drug were carried out with Acutodesmus acuminatus and Daphnia magna. The material studied had no effect on the living organisms used in the bioassays. The proposed system with a double barrier demonstrated high storage stability.
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spelling pubmed-56058502017-09-26 Halloysite nanotubes as carriers of vancomycin in alginate-based wound dressing Kurczewska, Joanna Pecyna, Paulina Ratajczak, Magdalena Gajęcka, Marzena Schroeder, Grzegorz Saudi Pharm J Original Article The influence of an inorganic support – halloysite nanotubes – on the release rate and biological activity of the antibiotic encapsulated in alginate-based dressings was studied. The halloysite samples were loaded with approx. 10 wt.% of the antibiotic and then encapsulated in Alginate and Gelatin/Alginate gels. The material functionalized with aliphatic amine significantly extended the release of vancomycin from alginate-based gels as compared to that achieved when silica was used. After 24 h, the released amounts of the antibiotic immobilized at silica reached 70%, while for the drug immobilized at halloysite the released amount of vancomycin reached 44% for Alginate discs. The addition of gelatin resulted in even more prolonged sustained release of the drug. The antibiotic was released from the system with a double barrier with Higuchi kinetic model and Fickian diffusion mechanism. Only the immobilized drug encapsulated in Alginate gel demonstrated very good antimicrobial activity against various bacteria. The inhibition zones were greater than those of the standard discs for the staphylococci and enterococci bacteria tested. The addition of gelatin adversely affected the biological activity of the system. The inhibition zones were smaller than those of the reference samples. A reduction in the drug dose by half had no significant effect on changing the release rate and microbiological activity. The in vivo toxicity studies of the material with immobilized drug were carried out with Acutodesmus acuminatus and Daphnia magna. The material studied had no effect on the living organisms used in the bioassays. The proposed system with a double barrier demonstrated high storage stability. Elsevier 2017-09 2017-02-16 /pmc/articles/PMC5605850/ /pubmed/28951678 http://dx.doi.org/10.1016/j.jsps.2017.02.007 Text en © 2017 The Authors http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Original Article
Kurczewska, Joanna
Pecyna, Paulina
Ratajczak, Magdalena
Gajęcka, Marzena
Schroeder, Grzegorz
Halloysite nanotubes as carriers of vancomycin in alginate-based wound dressing
title Halloysite nanotubes as carriers of vancomycin in alginate-based wound dressing
title_full Halloysite nanotubes as carriers of vancomycin in alginate-based wound dressing
title_fullStr Halloysite nanotubes as carriers of vancomycin in alginate-based wound dressing
title_full_unstemmed Halloysite nanotubes as carriers of vancomycin in alginate-based wound dressing
title_short Halloysite nanotubes as carriers of vancomycin in alginate-based wound dressing
title_sort halloysite nanotubes as carriers of vancomycin in alginate-based wound dressing
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5605850/
https://www.ncbi.nlm.nih.gov/pubmed/28951678
http://dx.doi.org/10.1016/j.jsps.2017.02.007
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