Search results for "Materials Testing"

showing 10 items of 254 documents

An injectable bone substitute composed of beta-tricalcium phosphate granules, methylcellulose and hyaluronic acid inhibits connective tissue influx i…

2011

In this study, the in vivo tissue reaction to a new triphasic and injectable paste-like bone-substitute material composed of beta-tricalcium phosphate (β-TCP), methylcellulose and hyaluronic acid was analyzed. Using a subcutaneous implantation model, the interaction of these materials and the peri-implant tissue reaction were tested in Wistar rats for up to 60 days by means of established histological methods, including histomorphometrical analysis. The study focused on tissue integration, classification of the cellular inflammatory response and the degradation of the material. Groups composed of animals injected only with β-TCP granules, sham-operated animals and animals injected with sali…

Calcium PhosphatesBone RegenerationTime FactorsMaterials sciencemedicine.medical_treatmentBiomedical EngineeringNeovascularization PhysiologicConnective tissueMethylcelluloseBiochemistryBiomaterialsNeovascularizationchemistry.chemical_compoundCell MovementIn vivoMaterials TestingHyaluronic acidmedicineAnimalsHyaluronic AcidRats WistarMolecular BiologySalinePhagocytesGranule (cell biology)General MedicinePhosphateRatsmedicine.anatomical_structurechemistryBone SubstitutesImplantmedicine.symptomBiotechnologyBiomedical engineeringActa Biomaterialia
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Crystallized nano-sized alpha-tricalcium phosphate from amorphous calcium phosphate: microstructure, cementation and cell response

2015

New insight on the conversion of amorphous calcium phosphate (ACP) to nano-sized alpha tricalcium phosphate (α-TCP) provides a faster pathway to calcium phosphate bone cements. In this work, synthesized ACP powders were treated with either water or ethanol, dried, crystallized between 700 and 800 °C, and then cooled at different cooling rates. Particle size was measured in a scanning electron microscope, but crystallite size calculated by Rietveld analysis. Phase composition and bonding in the crystallized powder was assessed by x-ray diffraction and Fourier-transform infrared spectroscopy. Results showed that 50 nm sized α-TCP formed after crystallization of lyophilized powders. Water trea…

Calcium PhosphatesHot TemperatureMaterials scienceScanning electron microscopeBiomedical EngineeringMineralogyBioengineeringApatitelaw.inventionBiomaterialslawApatitesMaterials TestingSpectroscopy Fourier Transform InfraredHumansAmorphous calcium phosphateParticle SizeCrystallizationCells CulturedRietveld refinementBone CementsMesenchymal Stem CellsMicrostructureChemical engineeringvisual_artMicroscopy Electron Scanningvisual_art.visual_art_mediumNanoparticlesParticle sizeCrystallitePowdersCrystallizationPowder DiffractionBiomedical Materials
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Biocompatibility studies of endothelial cells on a novel calcium phosphate/SiO 2 -xerogel composite for bone tissue engineering

2008

The bone biomaterial BONITmatrix®, a nanoporous, granular scaffold composed of hydroxylapatite, calcium phosphate and SiO2, linked by a dense collagen mesh, was tested for its biocompatibility using endothelial cells (EC) in the form of macrovascular HUVEC, microvascular HDMEC and the endothelial cell line ISOHAS-1. Cells were examined for their adherence and growth on the biomaterial and this was followed by confocal laser scanning microscopy after vital staining or immunocytochemical reactions, as well as by scanning electron microscopy. Macro- and microvascular ECs predominantly spread on BONITmatrix®-collagen mesh-covered surfaces and fibres and maintained their typical morphology. As E…

Calcium PhosphatesMaterials scienceBiocompatibilityCell SurvivalBiomedical Engineeringchemistry.chemical_elementBioengineeringCalciumBiomaterialschemistry.chemical_compoundTissue engineeringIn vivoMaterials TestingHumansCells CulturedCell ProliferationTissue EngineeringEndothelial CellsBiomaterialHydroxylapatiteSilicon DioxideIn vitroEndothelial stem cellchemistryBone SubstitutesBiophysicsGelsBiomedical engineeringBiomedical Materials
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In vitro evaluation of biomimetic chitosan-calcium phosphate scaffolds with potential application in bone tissue engineering.

2013

This work reports on the physicochemical properties and in vitro cytotoxicity assessment of chitosan–calcium phosphate (Cs–CP) scaffolds for bone tissue engineering, which were synthesized by a novel biomimetic co-precipitation method. X-ray diffraction (XRD) along with scanning electron microscopy (SEM) analysis confirmed the porous morphology of the scaffolds and the amorphous nature of the inorganic phase with different crystallite sizes and the formation of various forms of calcium phosphate. Compressive mechanical testing revealed that the Young’s modulus of the biomaterials is in the range of human trabecular bone. In vitro tests were performed on the biomaterials for up to 14 days to…

Calcium PhosphatesMaterials scienceCompressive StrengthCell SurvivalBiomedical EngineeringBioengineeringBone remodelingCell LineBiomaterialschemistry.chemical_compoundIn vivoBiomimetic MaterialsHardnessElastic ModulusMaterials TestingmedicineHumansViability assayCytotoxicityChitosanOsteoblastsOsteoblastIn vitroVascular endothelial growth factormedicine.anatomical_structurechemistryCell cultureBone SubstitutesBiophysicsBiomedical engineeringBiomedical materials (Bristol, England)
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Microstructure, mechanical characteristics and cell compatibility of β-tricalcium phosphate reinforced with biodegradable Fe–Mg metal phase

2015

The use of beta-tricalcium phosphate (β-TCP) ceramic as a bioresorbable bone substitute is limited to non-load-bearing sites by the material׳s brittleness and low bending strength. In the present work, new biocompatible β-TCP-based composites with improved mechanical properties were developed via reinforcing the ceramic matrix with 30 vol% of a biodegradable iron-magnesium metallic phase. β-TCP-15Fe15Mg and β-TCP-24Fe6Mg (vol%) composites were fabricated using a combination of high energy attrition milling, cold sintering/high pressure consolidation of powders at room temperature and annealing at 400 °C. The materials synthesized had a hierarchical nanocomposite structure with a nanocrystal…

Calcium PhosphatesMaterials scienceIronComposite numberBiomedical EngineeringSinteringBiocompatible Materials02 engineering and technology010402 general chemistryCeramic matrix composite01 natural sciencesCell LineBiomaterialsFlexural strengthMaterials TestingHumansMagnesiumCeramicComposite materialMechanical PhenomenaOsteoblastsNanocompositeEndothelial Cells021001 nanoscience & nanotechnologyMicrostructureNanocrystalline material0104 chemical sciencesMechanics of Materialsvisual_artvisual_art.visual_art_medium0210 nano-technologyJournal of the Mechanical Behavior of Biomedical Materials
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Bioresorbable β-TCP-FeAg nanocomposites for load bearing bone implants: High pressure processing, properties and cell compatibility.

2017

In this paper, the processing and properties of iron-toughened bioresorbable β-tricalcium phosphate (β-TCP) nanocomposites are reported. β-TCP is chemically similar to bone mineral and thus a good candidate material for bioresorbable bone healing devices; however intrinsic brittleness and low bending strength make it unsuitable for use in load-bearing sites. Near fully dense β-TCP-matrix nanocomposites containing 30vol% Fe, with and without addition of silver, were produced employing high energy attrition milling of powders followed by high pressure consolidation/cold sintering at 2.5GPa. In order to increase pure iron's corrosion rate, 10 to 30vol% silver were added to the metal phase. The…

Calcium PhosphatesMaterials scienceSinteringBioengineeringBiocompatible Materials02 engineering and technology010402 general chemistry01 natural sciencesCorrosionNanocompositesBiomaterialsMetalWeight-BearingBrittlenessFlexural strengthAbsorbable ImplantsMaterials TestingGalvanic cellPressureHumansComposite materialchemistry.chemical_classificationNanocompositePolymer021001 nanoscience & nanotechnology0104 chemical scienceschemistryMechanics of Materialsvisual_artvisual_art.visual_art_medium0210 nano-technologyMaterials scienceengineering. C, Materials for biological applications
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Collagen-embedded hydroxylapatite–beta-tricalcium phosphate–silicon dioxide bone substitute granules assist rapid vascularization and promote cell gr…

2010

In the present study we assessed the biocompatibility in vitro and in vivo of a low-temperature sol-gel-manufactured SiO(2)-based bone graft substitute. Human primary osteoblasts and the osteoblastic cell line, MG63, cultured on the SiO(2) biomatrix in monoculture retained their osteoblastic morphology and cellular functionality in vitro. The effect of the biomaterial in vivo and its vascularization potential was tested subcutaneously in Wistar rats and demonstrated both rapid vascularization and good integration within the peri-implant tissue. Scaffold degradation was progressive during the first month after implantation, with tartrate-resistant acid phosphatase-positive macrophages being …

Calcium PhosphatesScaffoldMaterials scienceBiocompatibilityBiomedical EngineeringNeovascularization PhysiologicBioengineeringCell LineBiomaterialschemistry.chemical_compoundVasculogenesisIn vivoMaterials TestingHumansCell ProliferationOsteoblastsCell growthBiomaterialHydroxylapatiteSilicon DioxideIn vitroCell biologychemistryBone SubstitutesBlood VesselsCollagenBiomedical engineeringBiomedical Materials
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Desferrioxamine as an appropriate chelator for 90Nb: Comparison of its complexation properties for M-Df-Octreotide (M=Nb, Fe, Ga, Zr)

2014

The niobium-90 radioisotope ((90)Nb) holds considerable promise for use in immuno-PET, due to its decay parameters (t½ = 14.6h, positron yield=53%, Eß(+)(mean) = 0.35 MeV and Eß(+)(max) = 1.5 MeV). In particular, (90)Nb appears well suited to detect in vivo the pharmacokinetics of large targeting vectors (50-150 kDa). In order to be useful for immuno-PET chelators are required to both stabilize the radionuclide in terms of coordination chemistry and to facilitate the covalent attachment to the targeting vector. Different chelators were evaluated for this purpose in terms of radiolabelling efficiency and stability of the radiolabelled Nb(V) complex and in order to determine the most suitable…

Cancer ResearchStereochemistryNiobiumMetal ions in aqueous solutionKineticsOctreotideRadiation DosageCoordination complexTransmetalationDrug StabilityMaterials TestingMoleculeRadiology Nuclear Medicine and imagingChelationChelating AgentsIonsRadioisotopeschemistry.chemical_classificationChemistryMetalsCovalent bondIsotope LabelingMolecular MedicineRadiopharmaceuticalsNuclear chemistryConjugateNuclear Medicine and Biology
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Response of human chondrocytes to a non-uniform distribution of hydrophilic domains on poly (ethyl acrylate-co-hydroxyethyl methacrylate) copolymers.

2005

A series of polymer and copolymer networks with varying hydrophilicity and distribution of the hydrophilic groups was synthesized and biologically tested with monolayer culture of human chondrocytes in vitro. Cell viability (MTT), proliferation (BrdU incorporation) and aggrecan expression (PG ELISA) were quantified at 7 and 14 days from seeding. Both assays (MTT and BrdU) showed complementary results that are consistent with positive cellular adhesion on the material. When human chondrocytes were cultured on polymer substrates in which the hydrophilic groups were homogeneously distributed, hydrophobic substrates showed higher values in all the biological parameters analysed. Adhesion, proli…

Cartilage ArticularMaterials scienceCell SurvivalSurface PropertiesBiophysicsBioengineeringBiocompatible Materials(Hydroxyethyl)methacrylateMethacrylateBiomaterialschemistry.chemical_compoundChondrocytesPolymer chemistryMaterials TestingCopolymerCell AdhesionHumansViability assayCell adhesionCells CulturedCell Proliferationchemistry.chemical_classificationAdhesionPolymerCells ImmobilizedchemistryChemical engineeringMechanics of MaterialsCeramics and CompositesEthyl acrylateMethacrylatesHydrophobic and Hydrophilic InteractionsBiomaterials
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Growth of human cells on polyethersulfone (PES) hollow fiber membranes.

2004

A novel material of porous hollow fibers made of polyethersulfone (PES) was examined for its ability to support the growth of human cells. This material was made in the absence of solvents and had pore diameters smaller than 100 microm. Human cell lines of different tissue and cell types (endothelial, epithelial, fibroblast, glial, keratinocyte, osteoblast) were investigated for adherence, growth, spread and survival on PES by confocal laser microscopy after staining of the cells with Calcein-AM. Endothelial cell attachment and growth required pre-coating PES with either fibronectin or gelatin. The other cell types exhibited little difference in growth, spread or survival on coated or uncoa…

Cell typeMaterials scienceBiocompatibilityPolymersSurface PropertiesConfocalBiophysicsCell Culture TechniquesBioengineeringNanotechnologyBiocompatible MaterialsCell LineBiomaterialsTissue engineeringCell MovementMaterials TestingmedicineCell AdhesionHumansSulfonesCell ProliferationTissue EngineeringOsteoblastMembranes Artificialbody regionsEndothelial stem cellMembranemedicine.anatomical_structureMechanics of MaterialsCell cultureCeramics and CompositesBiophysicshuman activitiesPorosityBiomaterials
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