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Two different strategies to enhance osseointegration in porous titanium : Inorganic thermo-chemical treatment versus organic coating by peptide adsorption
- Source :
- Dipòsit Digital de Documents de la UAB, Universitat Autònoma de Barcelona, Recercat. Dipósit de la Recerca de Catalunya, instname, International Journal of Molecular Sciences, Volume 19, Issue 9, UPCommons. Portal del coneixement obert de la UPC, Universitat Politècnica de Catalunya (UPC), International Journal of Molecular Sciences, Vol 19, Iss 9, p 2574 (2018)
- Publication Year :
- 2018
-
Abstract
- In this study, highly-interconnected porous titanium implants were produced by powder sintering with different porous diameters and open interconnectivity. The actual foams were produced using high cost technologies: Chemical Vapor Deposition (CVD), Physical Vapor Deposition (PVD), and spark plasma sintering, and the porosity and/or interconnection was not optimized. The aim was to generate a bioactive surface on foams using two different strategies, based on inorganic thermo-chemical treatment and organic coating by peptide adsorption, to enhance osseointegration. Porosity was produced using NaCl as a space holder and polyethyleneglicol as a binder phase. Static and fatigue tests were performed in order to determine mechanical behaviors. Surface bioactivation was performed using a thermo-chemical treatment or by chemical adsorption with peptides. Osteoblast-like cells were cultured and cytotoxicity was measured. Bioactivated scaffolds and a control were implanted in the tibiae of rabbits. Histomorphometric evaluation was performed at 4 weeks after implantation. Interconnected porosity was 53% with an average diameter of 210 &micro<br />m and an elastic modulus of around 1 GPa with good mechanical properties. The samples presented cell survival values close to 100% of viability. Newly formed bone was observed inside macropores, through interconnected porosity, and on the implant surface. Successful bone colonization of inner structure (40%) suggested good osteoconductive capability of the implant. Bioactivated foams showed better results than non-treated ones, suggesting both bioactivation strategies induce osteointegration capability.
- Subjects :
- Sintering
02 engineering and technology
Chemical vapor deposition
01 natural sciences
titanium foams
lcsh:Chemistry
Coating
Coated Materials, Biocompatible
Titani -- Aliatges
lcsh:QH301-705.5
Spectroscopy
Cells, Cultured
Titanium
Implantes dentales
Temperature
General Medicine
Prostheses and Implants
021001 nanoscience & nanotechnology
Computer Science Applications
Sal
Titanio
Female
Pèptids
Rabbits
0210 nano-technology
Porosity
Materials science
porosity
Cell Survival
Surface Properties
Sodium chloride
Spark plasma sintering
616.3
engineering.material
010402 general chemistry
Enginyeria dels materials [Àrees temàtiques de la UPC]
Catalysis
Osseointegration
Article
Inorganic Chemistry
Adsorption
Animals
Titanium alloys
Physical and Theoretical Chemistry
Bioactive materials
Molecular Biology
Osteoblasts
Porositat
Implants dentals
Tibia
Titanium foams
Dental implants
Organic Chemistry
technology, industry, and agriculture
bioactive materials
Péptidos
osseointegration
Titani
equipment and supplies
0104 chemical sciences
lcsh:Biology (General)
lcsh:QD1-999
Chemical engineering
Physical vapor deposition
engineering
Stress, Mechanical
Peptides
Subjects
Details
- Database :
- OpenAIRE
- Journal :
- Dipòsit Digital de Documents de la UAB, Universitat Autònoma de Barcelona, Recercat. Dipósit de la Recerca de Catalunya, instname, International Journal of Molecular Sciences, Volume 19, Issue 9, UPCommons. Portal del coneixement obert de la UPC, Universitat Politècnica de Catalunya (UPC), International Journal of Molecular Sciences, Vol 19, Iss 9, p 2574 (2018)
- Accession number :
- edsair.doi.dedup.....5745c23b6eed6ddc6555154841bba7ef