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Octacalcium Phosphate for Bone Tissue Engineering: Synthesis, Modification, and In Vitro Biocompatibility Assessment

Octacalcium phosphate (OCP, Ca(8)H(2)(PO(4))(6)·5H(2)O) is known to be a possible precursor of biological hydroxyapatite formation of organic bone tissue. OCP has higher biocompatibility and osseointegration rate compared to other calcium phosphates. In this work, the synthesis of low-temperature ca...

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Autores principales: Teterina, Anastasia Yu., Smirnov, Igor V., Fadeeva, Irina S., Fadeev, Roman S., Smirnova, Polina V., Minaychev, Vladislav V., Kobyakova, Margarita I., Fedotov, Aleksandr Yu., Barinov, Sergey M., Komlev, Vladimir S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8657881/
https://www.ncbi.nlm.nih.gov/pubmed/34884557
http://dx.doi.org/10.3390/ijms222312747
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author Teterina, Anastasia Yu.
Smirnov, Igor V.
Fadeeva, Irina S.
Fadeev, Roman S.
Smirnova, Polina V.
Minaychev, Vladislav V.
Kobyakova, Margarita I.
Fedotov, Aleksandr Yu.
Barinov, Sergey M.
Komlev, Vladimir S.
author_facet Teterina, Anastasia Yu.
Smirnov, Igor V.
Fadeeva, Irina S.
Fadeev, Roman S.
Smirnova, Polina V.
Minaychev, Vladislav V.
Kobyakova, Margarita I.
Fedotov, Aleksandr Yu.
Barinov, Sergey M.
Komlev, Vladimir S.
author_sort Teterina, Anastasia Yu.
collection PubMed
description Octacalcium phosphate (OCP, Ca(8)H(2)(PO(4))(6)·5H(2)O) is known to be a possible precursor of biological hydroxyapatite formation of organic bone tissue. OCP has higher biocompatibility and osseointegration rate compared to other calcium phosphates. In this work, the synthesis of low-temperature calcium phosphate compounds and substituted forms of those at physiological temperatures is shown. Strontium is used to improve bioactive properties of the material. Strontium was inserted into the OCP structure by ionic substitution in solutions. The processes of phase formation of low-temperature OCP with theoretical substitution of strontium for calcium up to 50 at.% in conditions close to physiological, i.e., temperature 35–37 °C and normal pressure, were described. The effect of strontium substitution range on changes in the crystal lattice of materials, the microstructural features, surface morphology and biological properties in vitro has been established. The results of the study indicate the effectiveness of using strontium in OCP for improving biocompatibility of OCP based composite materials intended for bone repair.
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spelling pubmed-86578812021-12-10 Octacalcium Phosphate for Bone Tissue Engineering: Synthesis, Modification, and In Vitro Biocompatibility Assessment Teterina, Anastasia Yu. Smirnov, Igor V. Fadeeva, Irina S. Fadeev, Roman S. Smirnova, Polina V. Minaychev, Vladislav V. Kobyakova, Margarita I. Fedotov, Aleksandr Yu. Barinov, Sergey M. Komlev, Vladimir S. Int J Mol Sci Article Octacalcium phosphate (OCP, Ca(8)H(2)(PO(4))(6)·5H(2)O) is known to be a possible precursor of biological hydroxyapatite formation of organic bone tissue. OCP has higher biocompatibility and osseointegration rate compared to other calcium phosphates. In this work, the synthesis of low-temperature calcium phosphate compounds and substituted forms of those at physiological temperatures is shown. Strontium is used to improve bioactive properties of the material. Strontium was inserted into the OCP structure by ionic substitution in solutions. The processes of phase formation of low-temperature OCP with theoretical substitution of strontium for calcium up to 50 at.% in conditions close to physiological, i.e., temperature 35–37 °C and normal pressure, were described. The effect of strontium substitution range on changes in the crystal lattice of materials, the microstructural features, surface morphology and biological properties in vitro has been established. The results of the study indicate the effectiveness of using strontium in OCP for improving biocompatibility of OCP based composite materials intended for bone repair. MDPI 2021-11-25 /pmc/articles/PMC8657881/ /pubmed/34884557 http://dx.doi.org/10.3390/ijms222312747 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
Teterina, Anastasia Yu.
Smirnov, Igor V.
Fadeeva, Irina S.
Fadeev, Roman S.
Smirnova, Polina V.
Minaychev, Vladislav V.
Kobyakova, Margarita I.
Fedotov, Aleksandr Yu.
Barinov, Sergey M.
Komlev, Vladimir S.
Octacalcium Phosphate for Bone Tissue Engineering: Synthesis, Modification, and In Vitro Biocompatibility Assessment
title Octacalcium Phosphate for Bone Tissue Engineering: Synthesis, Modification, and In Vitro Biocompatibility Assessment
title_full Octacalcium Phosphate for Bone Tissue Engineering: Synthesis, Modification, and In Vitro Biocompatibility Assessment
title_fullStr Octacalcium Phosphate for Bone Tissue Engineering: Synthesis, Modification, and In Vitro Biocompatibility Assessment
title_full_unstemmed Octacalcium Phosphate for Bone Tissue Engineering: Synthesis, Modification, and In Vitro Biocompatibility Assessment
title_short Octacalcium Phosphate for Bone Tissue Engineering: Synthesis, Modification, and In Vitro Biocompatibility Assessment
title_sort octacalcium phosphate for bone tissue engineering: synthesis, modification, and in vitro biocompatibility assessment
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8657881/
https://www.ncbi.nlm.nih.gov/pubmed/34884557
http://dx.doi.org/10.3390/ijms222312747
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