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Development of New Collagen/Clay Composite Biomaterials

The fabrication of collagen-based biomaterials for skin regeneration offers various challenges for tissue engineers. The purpose of this study was to obtain a novel series of composite biomaterials based on collagen and several types of clays. In order to investigate the influence of clay type on dr...

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Autores principales: Marin, Maria Minodora, Ianchis, Raluca, Leu Alexa, Rebeca, Gifu, Ioana Catalina, Kaya, Madalina Georgiana Albu, Savu, Diana Iulia, Popescu, Roxana Cristina, Alexandrescu, Elvira, Ninciuleanu, Claudia Mihaela, Preda, Silviu, Ignat, Madalina, Constantinescu, Roxana, Iovu, Horia
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8745677/
https://www.ncbi.nlm.nih.gov/pubmed/35008826
http://dx.doi.org/10.3390/ijms23010401
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author Marin, Maria Minodora
Ianchis, Raluca
Leu Alexa, Rebeca
Gifu, Ioana Catalina
Kaya, Madalina Georgiana Albu
Savu, Diana Iulia
Popescu, Roxana Cristina
Alexandrescu, Elvira
Ninciuleanu, Claudia Mihaela
Preda, Silviu
Ignat, Madalina
Constantinescu, Roxana
Iovu, Horia
author_facet Marin, Maria Minodora
Ianchis, Raluca
Leu Alexa, Rebeca
Gifu, Ioana Catalina
Kaya, Madalina Georgiana Albu
Savu, Diana Iulia
Popescu, Roxana Cristina
Alexandrescu, Elvira
Ninciuleanu, Claudia Mihaela
Preda, Silviu
Ignat, Madalina
Constantinescu, Roxana
Iovu, Horia
author_sort Marin, Maria Minodora
collection PubMed
description The fabrication of collagen-based biomaterials for skin regeneration offers various challenges for tissue engineers. The purpose of this study was to obtain a novel series of composite biomaterials based on collagen and several types of clays. In order to investigate the influence of clay type on drug release behavior, the obtained collagen-based composite materials were further loaded with gentamicin. Physiochemical and biological analyses were performed to analyze the obtained nanocomposite materials after nanoclay embedding. Infrared spectra confirmed the inclusion of clay in the collagen polymeric matrix without any denaturation of triple helical conformation. All the composite samples revealed a slight change in the 2-theta values pointing toward a homogenous distribution of clay layers inside the collagen matrix with the obtaining of mainly intercalated collagen-clay structures, according X-ray diffraction analyses. The porosity of collagen/clay composite biomaterials varied depending on clay nanoparticles sort. Thermo-mechanical analyses indicated enhanced thermal and mechanical features for collagen composites as compared with neat type II collagen matrix. Biodegradation findings were supported by swelling studies, which indicated a more crosslinked structure due additional H bonding brought on by nanoclays. The biology tests demonstrated the influence of clay type on cellular viability but also on the antimicrobial behavior of composite scaffolds. All nanocomposite samples presented a delayed gentamicin release when compared with the collagen-gentamicin sample. The obtained results highlighted the importance of clay type selection as this affects the performances of the collagen-based composites as promising biomaterials for future applications in the biomedical field.
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spelling pubmed-87456772022-01-11 Development of New Collagen/Clay Composite Biomaterials Marin, Maria Minodora Ianchis, Raluca Leu Alexa, Rebeca Gifu, Ioana Catalina Kaya, Madalina Georgiana Albu Savu, Diana Iulia Popescu, Roxana Cristina Alexandrescu, Elvira Ninciuleanu, Claudia Mihaela Preda, Silviu Ignat, Madalina Constantinescu, Roxana Iovu, Horia Int J Mol Sci Article The fabrication of collagen-based biomaterials for skin regeneration offers various challenges for tissue engineers. The purpose of this study was to obtain a novel series of composite biomaterials based on collagen and several types of clays. In order to investigate the influence of clay type on drug release behavior, the obtained collagen-based composite materials were further loaded with gentamicin. Physiochemical and biological analyses were performed to analyze the obtained nanocomposite materials after nanoclay embedding. Infrared spectra confirmed the inclusion of clay in the collagen polymeric matrix without any denaturation of triple helical conformation. All the composite samples revealed a slight change in the 2-theta values pointing toward a homogenous distribution of clay layers inside the collagen matrix with the obtaining of mainly intercalated collagen-clay structures, according X-ray diffraction analyses. The porosity of collagen/clay composite biomaterials varied depending on clay nanoparticles sort. Thermo-mechanical analyses indicated enhanced thermal and mechanical features for collagen composites as compared with neat type II collagen matrix. Biodegradation findings were supported by swelling studies, which indicated a more crosslinked structure due additional H bonding brought on by nanoclays. The biology tests demonstrated the influence of clay type on cellular viability but also on the antimicrobial behavior of composite scaffolds. All nanocomposite samples presented a delayed gentamicin release when compared with the collagen-gentamicin sample. The obtained results highlighted the importance of clay type selection as this affects the performances of the collagen-based composites as promising biomaterials for future applications in the biomedical field. MDPI 2021-12-30 /pmc/articles/PMC8745677/ /pubmed/35008826 http://dx.doi.org/10.3390/ijms23010401 Text en © 2021 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
Marin, Maria Minodora
Ianchis, Raluca
Leu Alexa, Rebeca
Gifu, Ioana Catalina
Kaya, Madalina Georgiana Albu
Savu, Diana Iulia
Popescu, Roxana Cristina
Alexandrescu, Elvira
Ninciuleanu, Claudia Mihaela
Preda, Silviu
Ignat, Madalina
Constantinescu, Roxana
Iovu, Horia
Development of New Collagen/Clay Composite Biomaterials
title Development of New Collagen/Clay Composite Biomaterials
title_full Development of New Collagen/Clay Composite Biomaterials
title_fullStr Development of New Collagen/Clay Composite Biomaterials
title_full_unstemmed Development of New Collagen/Clay Composite Biomaterials
title_short Development of New Collagen/Clay Composite Biomaterials
title_sort development of new collagen/clay composite biomaterials
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8745677/
https://www.ncbi.nlm.nih.gov/pubmed/35008826
http://dx.doi.org/10.3390/ijms23010401
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