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Maturation of biomimetic hydroxyapatite in physiological fluids: a physicochemical and proteomic study
- Source :
- Dipòsit Digital de la UB, Universidad de Barcelona, Materials Today Bio, r-FSJD. Repositorio Institucional de Producción Científica de la Fundació Sant Joan de Déu, instname, Materials Today Bio, Vol 12, Iss, Pp 100137-(2021), UPCommons. Portal del coneixement obert de la UPC, Universitat Politècnica de Catalunya (UPC)
- Publication Year :
- 2021
-
Abstract
- Biomimetic calcium-deficient hydroxyapatite (CDHA) as a bioactive material exhibits exceptional intrinsic osteoinductive and osteogenic properties because of its nanostructure and composition, which promote a favorable microenvironment. Its high reactivity has been hypothesized to play a relevant role in the in vivo performance, mediated by the interaction with the biological fluids, which is amplified by its high specific surface area. Paradoxically, this high reactivity is also behind the in vitro cytotoxicity of this material, especially pronounced in static conditions. The present work explores the structural and physicochemical changes that CDHA undergoes in contact with physiological fluids and to investigate its interaction with proteins. Calcium-deficient hydroxyapatite discs with different micro/nanostructures, coarse (C) and fine (F), were exposed to cell-free complete culture medium over extended periods of time: 1, 7, 14, 21, 28, and 50 days. Precipitate formation was not observed in any of the materials in contact with the physiological fluid, which would indicate that the ionic exchanges were linked to incorporation into the crystal structure of CDHA or in the hydrated layer. In fact, CDHA experienced a maturation process, with a progressive increase in crystallinity and the Ca/P ratio, accompanied by an uptake of Mg and a B-type carbonation process, with a gradual propagation into the core of the samples. However, the reactivity of biomimetic hydroxyapatite was highly dependent on the specific surface area and was amplified in nanosized needle-like crystal structures (F), whereas in coarse specimens the ionic exchanges were restricted to the surface, with low penetration in the material bulk. In addition to showing a higher protein adsorption on F substrates, the proteomics study revealed the existence of protein selectivity toward F or C microstructures, as well as the capability of CDHA, and more remarkably of F-CDHA, to concentrate specific proteins from the culture medium. Finally, a substantial improvement in the material's ability to support cell proliferation was observed after the CDHA maturation process.<br />Graphical abstract Image 1
- Subjects :
- Proteomics
Medicine (General)
Nanostructure
QH301-705.5
Nanostructura
Biomedical Engineering
Ionic bonding
Bioengineering
Protein adsorption
Proteòmica
Bescanvi iònic
Fosfato de calcio
Biomaterials
Crystallinity
R5-920
Intercanvi iònic
Full Length Article
Specific surface area
Reactivity (chemistry)
Biology (General)
Molecular Biology
Nanoestructures
Absorción de proteínas
Chemistry
Nanoestructuras
Enginyeria biomèdica [Àrees temàtiques de la UPC]
Cell Biology
Penetration (firestop)
Microstructure
Espectroscòpia Raman
Nanostructures
Adsorció de proteïnes
Calcium phosphate
Raman spectroscopyIon exchange
Calcium phosphates
Materials biomèdics
Intercambio iónico
Raman spectroscopy
Biophysics
Fosfat de calci
Biomedical materials
Espectroscopia Raman
Ion exchange
Biotechnology
Subjects
Details
- ISSN :
- 25900064
- Database :
- OpenAIRE
- Journal :
- Dipòsit Digital de la UB, Universidad de Barcelona, Materials Today Bio, r-FSJD. Repositorio Institucional de Producción Científica de la Fundació Sant Joan de Déu, instname, Materials Today Bio, Vol 12, Iss, Pp 100137-(2021), UPCommons. Portal del coneixement obert de la UPC, Universitat Politècnica de Catalunya (UPC)
- Accession number :
- edsair.doi.dedup.....a2ea86c93dca754824c8a0919a7cf8d6