Cargando…

Development of Composite Scaffolds Based on Cerium Doped-Hydroxyapatite and Natural Gums—Biological and Mechanical Properties

Hydroxyapatite (HAp) is a ceramic material composing the inorganic portion of bones. Ionic substitutions enhance characteristics of HAp, for example, calcium ions (Ca(2+)) by cerium ions (Ce(3+)). The use of HAp is potentialized through biopolymers, cashew gum (CG), and gellan gum (GG), since CG/GG...

Descripción completa

Detalles Bibliográficos
Autores principales: Vinicius Beserra dos Santos, Marcus, Bastos Nogueira Rocha, Lorenna, Gomes Vieira, Ewerton, Leite Oliveira, Ana, Oliveira Lobo, Anderson, de Carvalho, Maria Acelina Martins, Anteveli Osajima, Josy, Cavalcanti Silva-Filho, Edson
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6695794/
https://www.ncbi.nlm.nih.gov/pubmed/31357470
http://dx.doi.org/10.3390/ma12152389
_version_ 1783444118604611584
author Vinicius Beserra dos Santos, Marcus
Bastos Nogueira Rocha, Lorenna
Gomes Vieira, Ewerton
Leite Oliveira, Ana
Oliveira Lobo, Anderson
de Carvalho, Maria Acelina Martins
Anteveli Osajima, Josy
Cavalcanti Silva-Filho, Edson
author_facet Vinicius Beserra dos Santos, Marcus
Bastos Nogueira Rocha, Lorenna
Gomes Vieira, Ewerton
Leite Oliveira, Ana
Oliveira Lobo, Anderson
de Carvalho, Maria Acelina Martins
Anteveli Osajima, Josy
Cavalcanti Silva-Filho, Edson
author_sort Vinicius Beserra dos Santos, Marcus
collection PubMed
description Hydroxyapatite (HAp) is a ceramic material composing the inorganic portion of bones. Ionic substitutions enhance characteristics of HAp, for example, calcium ions (Ca(2+)) by cerium ions (Ce(3+)). The use of HAp is potentialized through biopolymers, cashew gum (CG), and gellan gum (GG), since CG/GG is structuring agents in the modeling of structured biocomposites, scaffolds. Ce-HApCG biocomposite was synthesized using a chemical precipitation method. The obtained material was frozen (–20 °C for 24 h), and then vacuum dried for 24 h. The Ce-HApCG was characterized by X-Ray diffractograms (XRD), X-ray photoemission spectra (XPS), Fourier transform infrared spectroscopy (FTIR), field emission scanning electron microscopy (FESEM), and energy dispersive spectroscopy (EDS). XRD and FTIR showed that Ce-HApCG was successfully synthesized. XRD showed characteristic peaks at 2θ = 25.87 and 32.05, corresponding to the crystalline planes (0 0 2) and (2 1 1), respectively, while phosphate bands were present at 1050 cm(−1) and 1098 cm(−1), indicating the success of composite synthesis. FESEM showed pores and incorporated nanostructured granules of Ce-HApCG. The mechanical test identified that Ce-HApCG has a compressive strength similar to the cancellous bone’s strength and some allografts used in surgical procedures. In vitro tests (MTT assay and hemolysis) showed that scaffold was non-toxic and exhibited low hemolytic activity. Thus, the Ce-HApCG has potential for application in bone tissue engineering.
format Online
Article
Text
id pubmed-6695794
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-66957942019-09-05 Development of Composite Scaffolds Based on Cerium Doped-Hydroxyapatite and Natural Gums—Biological and Mechanical Properties Vinicius Beserra dos Santos, Marcus Bastos Nogueira Rocha, Lorenna Gomes Vieira, Ewerton Leite Oliveira, Ana Oliveira Lobo, Anderson de Carvalho, Maria Acelina Martins Anteveli Osajima, Josy Cavalcanti Silva-Filho, Edson Materials (Basel) Article Hydroxyapatite (HAp) is a ceramic material composing the inorganic portion of bones. Ionic substitutions enhance characteristics of HAp, for example, calcium ions (Ca(2+)) by cerium ions (Ce(3+)). The use of HAp is potentialized through biopolymers, cashew gum (CG), and gellan gum (GG), since CG/GG is structuring agents in the modeling of structured biocomposites, scaffolds. Ce-HApCG biocomposite was synthesized using a chemical precipitation method. The obtained material was frozen (–20 °C for 24 h), and then vacuum dried for 24 h. The Ce-HApCG was characterized by X-Ray diffractograms (XRD), X-ray photoemission spectra (XPS), Fourier transform infrared spectroscopy (FTIR), field emission scanning electron microscopy (FESEM), and energy dispersive spectroscopy (EDS). XRD and FTIR showed that Ce-HApCG was successfully synthesized. XRD showed characteristic peaks at 2θ = 25.87 and 32.05, corresponding to the crystalline planes (0 0 2) and (2 1 1), respectively, while phosphate bands were present at 1050 cm(−1) and 1098 cm(−1), indicating the success of composite synthesis. FESEM showed pores and incorporated nanostructured granules of Ce-HApCG. The mechanical test identified that Ce-HApCG has a compressive strength similar to the cancellous bone’s strength and some allografts used in surgical procedures. In vitro tests (MTT assay and hemolysis) showed that scaffold was non-toxic and exhibited low hemolytic activity. Thus, the Ce-HApCG has potential for application in bone tissue engineering. MDPI 2019-07-26 /pmc/articles/PMC6695794/ /pubmed/31357470 http://dx.doi.org/10.3390/ma12152389 Text en © 2019 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Vinicius Beserra dos Santos, Marcus
Bastos Nogueira Rocha, Lorenna
Gomes Vieira, Ewerton
Leite Oliveira, Ana
Oliveira Lobo, Anderson
de Carvalho, Maria Acelina Martins
Anteveli Osajima, Josy
Cavalcanti Silva-Filho, Edson
Development of Composite Scaffolds Based on Cerium Doped-Hydroxyapatite and Natural Gums—Biological and Mechanical Properties
title Development of Composite Scaffolds Based on Cerium Doped-Hydroxyapatite and Natural Gums—Biological and Mechanical Properties
title_full Development of Composite Scaffolds Based on Cerium Doped-Hydroxyapatite and Natural Gums—Biological and Mechanical Properties
title_fullStr Development of Composite Scaffolds Based on Cerium Doped-Hydroxyapatite and Natural Gums—Biological and Mechanical Properties
title_full_unstemmed Development of Composite Scaffolds Based on Cerium Doped-Hydroxyapatite and Natural Gums—Biological and Mechanical Properties
title_short Development of Composite Scaffolds Based on Cerium Doped-Hydroxyapatite and Natural Gums—Biological and Mechanical Properties
title_sort development of composite scaffolds based on cerium doped-hydroxyapatite and natural gums—biological and mechanical properties
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6695794/
https://www.ncbi.nlm.nih.gov/pubmed/31357470
http://dx.doi.org/10.3390/ma12152389
work_keys_str_mv AT viniciusbeserradossantosmarcus developmentofcompositescaffoldsbasedonceriumdopedhydroxyapatiteandnaturalgumsbiologicalandmechanicalproperties
AT bastosnogueirarochalorenna developmentofcompositescaffoldsbasedonceriumdopedhydroxyapatiteandnaturalgumsbiologicalandmechanicalproperties
AT gomesvieiraewerton developmentofcompositescaffoldsbasedonceriumdopedhydroxyapatiteandnaturalgumsbiologicalandmechanicalproperties
AT leiteoliveiraana developmentofcompositescaffoldsbasedonceriumdopedhydroxyapatiteandnaturalgumsbiologicalandmechanicalproperties
AT oliveiraloboanderson developmentofcompositescaffoldsbasedonceriumdopedhydroxyapatiteandnaturalgumsbiologicalandmechanicalproperties
AT decarvalhomariaacelinamartins developmentofcompositescaffoldsbasedonceriumdopedhydroxyapatiteandnaturalgumsbiologicalandmechanicalproperties
AT anteveliosajimajosy developmentofcompositescaffoldsbasedonceriumdopedhydroxyapatiteandnaturalgumsbiologicalandmechanicalproperties
AT cavalcantisilvafilhoedson developmentofcompositescaffoldsbasedonceriumdopedhydroxyapatiteandnaturalgumsbiologicalandmechanicalproperties