Search results for "Scaffold"

showing 10 items of 470 documents

In vitro validation of biomedical polyester-based scaffolds: Poly(lactide-co-glycolide) as model-case

2018

[EN] Monitoring and understanding the in vitro behaviour of polyester based scaffolds both comprising the study of the hydrolytic degradation and the cell seeding viability is essential to ensure the desired functionality, according to a given biomedical purpose. As a model case to compare the performance of techniques to monitor the in vitro behaviour, poly(lactide-co-glycolide) (PLGA) scaffolds were chosen. The in vitro hydrolytic degradation of PLGA scaffolds was carried out in water and phosphate buffered saline (PBS). The evolution of the mass loss, the molar mass, the thermal properties and the surface morphology were monitored. The hydrolytic degradation media was correspondingly eva…

ScaffoldSolucions polimèriquesMaterials sciencePolymers and PlasticsBiocompatibilitypoly(lactide-co-glycolide) (PLGA)Polyester02 engineering and technology010402 general chemistry01 natural sciencesScaffoldchemistry.chemical_compoundCIENCIA DE LOS MATERIALES E INGENIERIA METALURGICAPoly(lactide-co-glycolide) (PLGA)Cell adhesionMaterialsMolar massOrganic ChemistryPolymer testing021001 nanoscience & nanotechnologyIn vitro0104 chemical sciencesPolyesterPLGAchemistryIn vitro validationMAQUINAS Y MOTORES TERMICOSDegradation (geology)BiocompatibilityMATEMATICA APLICADA0210 nano-technologyBiomedical engineeringPolymer Testing
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Cover Picture: NanoSIMS: Insights into the Organization of the Proteinaceous Scaffold within Hexactinellid Sponge Spicules (ChemBioChem 8/2010)

2010

ScaffoldSpiculePaleontologySponge spiculebiologyHexactinellidOrganic ChemistryMolecular MedicineCover (algebra)biology.organism_classificationMolecular BiologyBiochemistryChemBioChem
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NanoSIMS: insights into the organization of the proteinaceous scaffold within Hexactinellid sponge spicules.

2010

The giant basal spicules (GBS) from Monorhaphis chuni (Porifera [sponges], Hexactinellida) represent the largest biosilica structures on Earth and can reach lengths of 300 cm (diameter of 1.1 cm). The amorphous silica of the inorganic matrix is formed enzymatically by silicatein. During this process, the enzyme remains trapped inside the lamellar-organized spicules. In order to localize the organic silicatein scaffold, the inside of a lamella has been analyzed by nano-secondary ion mass spectrometry (NanoSIMS). It is shown that the GBSs are composed of around 245 concentrically arranged individual siliceous lamellae. These surround an internal siliceous axial cylinder. The lamellae adjacent…

ScaffoldSpiculebiologyHexactinellidOrganic ChemistryMatrix (biology)biology.organism_classificationSilicon DioxideBiochemistryCarbonMass SpectrometryPoriferaCrystallographySponge spiculeLamella (surface anatomy)Chemical engineeringMolecular MedicineAnimalsInorganic matrixAmorphous silicaMolecular BiologySulfurChembiochem : a European journal of chemical biology
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Heteroaromatic Inhibitors of the Astacin Proteinases Meprin α, Meprin β and Ovastacin Discovered by a Scaffold-Hopping Approach.

2020

Abstract Astacin metalloproteinases, in particular meprins α and β, as well as ovastacin, are emerging drug targets. Drug‐discovery efforts have led to the development of the first potent and selective inhibitors in the last few years. However, the most recent compounds are based on a highly flexible tertiary amine scaffold that could cause metabolic liabilities or decreased potency due to the entropic penalty upon binding to the target. Thus, the aim of this study was to discover novel conformationally constrained scaffolds as starting points for further inhibitor optimization. Shifting from flexible tertiary amines to rigid heteroaromatic cores resulted in a boost in inhibitory activity. …

ScaffoldTertiary amineStereochemistryCell SurvivalAntineoplastic Agentsscaffold hoppingMatrix metalloproteinaseScaffold hoppinghydroxamate01 natural sciencesBiochemistryHydrocarbons AromaticmetalloproteinasesStructure-Activity RelationshipmeprinVery Important PaperDrug DiscoveryTumor Cells CulturedHumansProtease InhibitorsGeneral Pharmacology Toxicology and PharmaceuticsAminesPharmacologyDose-Response Relationship DrugMolecular StructureFull Paper010405 organic chemistryChemistryOrganic ChemistryMetalloendopeptidasesFull PapersovastacinRecombinant Proteinsheteroaromatics0104 chemical sciences010404 medicinal & biomolecular chemistryMetalloproteasesMolecular MedicineAstacinDrug Screening Assays AntitumorSelectivityChemMedChem
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Fine-tuning scaffolds for tissue regeneration: effects of formic acid processing on tissue reaction to silk fibroin

2010

Formic acid (FA) plays a key role in the preparation of silk fibroin (SF) scaffolds from cocoons of Bombyx mori and is used for fibre distribution. In this study, we used a subcutaneous implantation model in Wistar rats to examine SF scaffolds prepared by treating the degummed cocoon with FA for either 30 or 60 min. The tissue reaction and inflammatory response to SF was assessed by qualitative histology at intervals from 3 to 180 days. Additionally, dynamic biomaterial-induced vascularization and biomaterial degradation were quantified using a technique for analysing an image of the entire implanted biomaterial. Varying the FA treatment time led to different scaffold morphologies and resul…

ScaffoldTime FactorsFormatesBiocompatibilityBiomedical EngineeringNeovascularization PhysiologicMedicine (miscellaneous)FibroinConnective tissueRegenerative MedicineRegenerative medicineBiomaterialsTissue engineeringmedicineAnimalsRegenerationRats WistarStaining and LabelingTissue EngineeringTissue ScaffoldsChemistryBiomaterialHistologyRatsmedicine.anatomical_structureMicroscopy Electron ScanningFibroinsBiomedical engineeringJournal of Tissue Engineering and Regenerative Medicine
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A synthetic biology approach for the fabrication of functional (fluorescent magnetic) bioorganic–inorganic hybrid materials in sponge primmorphs

2020

During evolution, sponges (Porifera) have honed the genetic toolbox and biosynthetic mechanisms for the fabrication of siliceous skeletal components (spicules). Spicules carry a protein scaffold embedded within biogenic silica (biosilica) and feature an amazing range of optical, structural, and mechanical properties. Thus, it is tempting to explore the low-energy synthetic pathways of spiculogenesis for the fabrication of innovative hybrid materials. In this synthetic biology approach, the uptake of multifunctional nonbiogenic nanoparticles (fluorescent, superparamagnetic) by spicule-forming cells of bioreactor-cultivated sponge primmorphs provides access to spiculogenesis. The ingested nan…

ScaffoldbiologyChemistryNanoparticleBioengineeringNanotechnologySilicon Dioxidebiology.organism_classificationApplied Microbiology and BiotechnologyFluorescencePoriferaSynthetic biologySpongeBioreactorsSponge spiculeMagnetsAnimalsMagnetic Iron Oxide NanoparticlesSynthetic BiologyHybrid materialFluorescent DyesBiotechnologySuperparamagnetismBiotechnology and Bioengineering
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D-Glucose as a Pentavalent Chiral Scaffold

2003

A novel carbohydrate-based scaffold for combinatorial chemistry has been developed. This scaffold allows the selective attachment of five different side chains, giving rise to products of enormous structural diversity. As a demonstration of its usefulness, a series of model compounds has been prepared in high purity and yield by multistep parallel synthesis on a solid phase. (© Wiley-VCH Verlag GmbH & Co. KGaA, 69451 Weinheim, Germany, 2003)

Scaffoldchemistry.chemical_compoundSolid-phase synthesisChemistryD-GlucosePeptidomimeticYield (chemistry)Organic ChemistrySide chainStructural diversityOrganic chemistryPhysical and Theoretical ChemistryCombinatorial chemistryEuropean Journal of Organic Chemistry
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Combinatorial solid-phase synthesis using D-galactose as a chiral five-dimension-deversity scaffold

1999

Abstract All five hydroxy groups of galactose as the scaffold are used for selective coupling of side chains in a combinatorial methodology by application of a set of orthogonally stable protecting groups in combination with a thioglycoside anchor.

Scaffoldchemistry.chemical_compoundSolid-phase synthesisStereochemistryChemistryGalactoseOrganic ChemistryDrug DiscoveryDimension (graph theory)Side chainBiochemistryCombinatorial chemistryTetrahedron Letters
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(-)-Isosteviol as a Versatile Ex-Chiral-Pool Building Block for Organic Chemistry

2013

(–)-Isosteviol is readily available in large quantities by the acidic treatment of a common alternative sweetener. The two functional groups of (–)-isosteviol are presented on the same side of the ent-beyerane scaffold with a mutual C–C distance of about 7 A. Their unique concave arrangement experiences a strong asymmetric environment due to an adjacent methyl group. Consequently, this building block has found several applications in supramolecular chemistry and organocatalysis. These areas and the chemical modification of this scaffold as well as its biological activity are surveyed.

Scaffoldchemistry.chemical_compoundchemistryOrganocatalysisOrganic ChemistrySupramolecular chemistryChemical modificationOrganic chemistryPhysical and Theoretical ChemistryBlock (periodic table)Alternative sweetenerMethyl groupEuropean Journal of Organic Chemistry
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Morphostructural analysis of human follicular stem cells on highly porous bone hydroxyapatite scaffold

2007

In this study we investigated the in vitro behaviour, morphostructure and extracellular matrix synthesis of human dental follicular stem cells (hDFSCs) isolated from human dental bud, which resulted to be positive for mesenchymal markers (CD29, CD90, CD146 and CD166) by FACS analysis. Cells were analysed by light and electronic microscopy to evaluate their biological response either at week 1, that is before differentiation, or at weeks 3–6, when they had been cultured in osteogenic medium onto a highly porous natural scaffold material (Bio-Oss®). Microscopy analysis of primary culture cells showed they had a mesenchymal stem cell-like morphostructure, spindle shaped, similar to the cultur…

Scaffolddental fiollicle stem cells tissue engineering porous bone hydroxyapatite (Bio-Oss (R))ImmunologyDentistryBiocompatible MaterialsExtracellular matrix03 medical and health sciencesdental fiollicle0302 clinical medicineTissue engineeringHighly porousFollicular phaseHumansImmunology and AllergyCells CulturedPharmacologyDental follicleTissue EngineeringTissue Scaffoldsbusiness.industryChemistryStem CellsCell DifferentiationFibroblastsFlow CytometryIn vitroExtracellular MatrixCell biologyDurapatitePhenotypeporous bone hydroxyapatite (Bio-Oss (R))030220 oncology & carcinogenesisMicroscopy Electron ScanningStem cellbusinessPorosityTooth030215 immunology
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