Search results for "Silicates"

showing 8 items of 98 documents

Comparative Biological Properties and Mineralization Potential of 3 Endodontic Materials for Vital Pulp Therapy: Theracal PT, Theracal LC, and Bioden…

2021

INTRODUCTION The aim of this study was to assess the biological properties and mineralization potential of the new Theracal PT (Bisco Inc, Schaumburg, IL) compared with its predecessor Theracal LC (Bisco Inc) and the hydraulic silicate-based cement Biodentine (Septodont, Saint-Maur-des-Fosses, France) on human dental pulp stem cells (hDPSCs) in vitro. METHODS Standardized sample discs were obtained for each material (n = 30) together with 1:1, 1:2, and 1:4 material eluates. Previously characterized hDPSCs were cultured with the different materials in standardized conditions, and the following assays were performed: a 3-(4,5-dimethylthiazol-2-yl)-2,5-diphenyltetrazolium bromide assay, a woun…

chemistry.chemical_classificationReactive oxygen speciesbiologyChemistrySilicatesStem CellsALIZARIN REDOxidesCalcium CompoundsMineralization (biology)Molecular biologyStainingDrug CombinationsDentin sialophosphoproteinDental pulp stem cellsMaterials Testingbiology.proteinHumansOsteonectinCytotoxicityGeneral DentistryDental PulpJournal of endodontics
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CLAYS IN COSMETICS AND PERSONAL-CARE PRODUCTS

2021

Clays are used in various cosmetic formulations, such as sunscreens, toothpastes, deodorants, creams, hair cosmetics, makeups, nail polish, facial masks, and shampoos, among others, to improve the organoleptic and physicochemical characteristics, to increase the stability, or to facilitate elaboration. Together with their technological functionalities, clays are cosmetologically active ingredients with cleaning, anti-aging, anti-wrinkling, and sun-care functionalities. Talc, kaolinite, mica, and some smectites are the clay minerals used most frequently in cosmetic products, but several other phyllosilicates as well as modified and synthetic clays are also used. Sometimes, clays are useful i…

clay mineralsGeochemistry and PetrologyTrade namesEarth and Planetary Sciences (miscellaneous)Clays and clay mineralsSoil ScienceClaysCosmeticsSettore CHIM/06 - Chimica OrganicaPhyllosilicatesWater Science and TechnologyCosmetological functionsINCI names
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Solvated copper(I) hexafluorosilicate π-complexes based on [Cu2(amtd)2]2+ (amtd = 2-allylamino-5-methyl-1,3,4-thiadiazole) dimer

2016

[Cu2(amdt)2]SiF6·C6H6 and [Cu2(amdt)2(H2O)2]SiF6·CH3CN·2H2O (amdt = 2-allylamino-5- methyl-1,3,4-thiadiazole) were obtained by alternating-current electrochemical synthesis, starting from water–acetonitrile–benzene mixtures containing 2-allylamino-5-methyl-1,3,4- thiadiazole and CuSiF6·4H2O. The electrochemical reduction of the saturated copper hexafluorosilicate water solution beneath the neatly poured layer of acetonitrile-benzene amdt solution resulted in the formation of crystalline [Cu2(amdt)2]SiF6·C6H6. The initial stirring of the same mixture before subjecting it to the electrochemical reduction resulted in the formation of [Cu2(amdt)2(H2O)2]SiF6·CH3CN·2H2O. A sluggish hydrolysis of …

computational modelingDimerInorganic chemistrycopper(I) hexafluorosilicateschemistry.chemical_element010402 general chemistry010403 inorganic & nuclear chemistryElectrochemistry01 natural sciencesBiochemistryInorganic Chemistrychemistry.chemical_compoundHydrolysissymbols.namesakeraman spectroscopyMaterials ChemistryMother liquorPhysical and Theoretical ChemistryAcetonitrileta116heterocyclesOrganic ChemistryCopper0104 chemical scienceschemistrysymbolsPhysical chemistryRaman spectroscopyJournal of Organometallic Chemistry
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Iron Induces Proliferation and Morphogenesis in Primmorphs from the Marine SpongeSuberites domuncula

2002

Dissociated cells from marine demosponges retain their proliferation capacity if they are allowed to form special aggregates, the primmorphs. On the basis of incorporation studies and septin gene expression, we show that Fe3+ ions are required for the proliferation of cells in primmorphs from Suberites domuncula. In parallel, Fe3+ induced the expression of ferritin and strongly stimulated the synthesis of spicules. This result is supported by the finding that the enzymatic activity of silicatein, converting organosilicon to silicic acid, depends on Fe3+. Moreover, the expression of a scavenger receptor molecule, possibly involved in the morphology of spicules, depends on the presence of Fe3…

inorganic chemicalsIronMolecular Sequence DataMorphogenesisFluorescent Antibody TechniqueSeptinModels BiologicalPolymerase Chain ReactionFungal ProteinsSponge spiculeGene expressionGeneticsAnimalsHistidineAmino Acid SequenceReceptors ImmunologicScavenger receptorMolecular BiologyPhylogenyReceptors LipoproteinReceptors ScavengerSequence Homology Amino AcidbiologyEcologySilicatesMembrane ProteinsDNACell BiologyGeneral MedicineScavenger Receptors Class BBlotting Northernbiology.organism_classificationCathepsinsRecombinant ProteinsPoriferaCell biologySuberites domunculaFerritinSpongeFerritinsbiology.proteinCell DivisionDNA and Cell Biology
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Successful treatment of paraquat poisoning: activated charcoal per os and "continuous hemoperfusion".

1982

AbstractIngestion of paraquat results in an extremely dangerous poisoning. The first aim is to clear the gastrointestinal tract by inducing emesis and performing gastric/gut lavage; as much activated charcoal as possible should be administered per os and as quickly as possible. The best measure to eliminate paraquat from blood and tissue is hemoperfusion with coated activated charcoal; it has to be performed in the sense of “continuous hemoperfusion” about 8 h/d over a period of 2–3 weeks. These measures give a chance to lower the lethality of paraquat poisoning.

inorganic chemicalsMaleParaquatTime FactorsAdolescentHealth Toxicology and Mutagenesismedicine.medical_treatmentMagnesium CompoundsToxicologychemistry.chemical_compoundParaquatMedicineAnimalsHumansAluminum CompoundsKaolinTherapeutic IrrigationGastrointestinal tractbusiness.industrySilicatesRats Inbred StrainsHemoperfusionPARAQUAT POISONINGRatsHemoperfusionchemistryActivated charcoalAnesthesiaCharcoalBentoniteAluminum SilicatesFemaleAdsorptionbusinessJournal of toxicology. Clinical toxicology
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Biological interactions between calcium silicate-based endodontic biomaterials and periodontal ligament stem cells: A systematic review of in vitro s…

2021

Background Most recently, the biological interactions, that is cytocompatibility, cell differentiation and mineralization potential, between calcium silicate-based biomaterials and periodontal ligament stem cells (PDLSCs) have been studied at an in vitro level, in order to predict their clinical behaviour during endodontic procedures involving direct contact with periodontal tissues, namely root canal treatment, endodontic surgery and regenerative endodontic treatment. Objective The aim of the present systematic review was to present a qualitative synthesis of available in vitro studies assessing the biological interaction of PDLSCs and calcium silicate-based biomaterials. Methodology The p…

medicine.medical_specialtyPeriodontal ligament stem cellsBiocompatibilitybusiness.industryPeriodontal Ligamentmedicine.medical_treatmentSilicatesStem CellsDentistryBiocompatible MaterialsStem-cell therapyCalcium CompoundsEndodonticsIn vitroRoot Canal Filling Materialschemistry.chemical_compoundchemistryBiological propertyCalcium silicatemedicineStem cellbusinessGeneral DentistryInternational endodontic journalREFERENCES
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Silicate modulates the cross-talk between osteoblasts (SaOS-2) and osteoclasts (RAW 264.7 cells): inhibition of osteoclast growth and differentiation

2012

It has been shown that inorganic monomeric and polymeric silica/silicate, in the presence of the biomineralization cocktail, increases the expression of osteoprotegerin (OPG) in osteogenic SaOS-2 sarcoma cells in vitro. In contrast, silicate does not affect the steady-state gene expression level of the osteoclastogenic ligand receptor activator of NF-κB ligand (RANKL). In turn it can be expected that the concentration ratio of the mediators OPG/RANKL increases in the presence of silicate. In addition, silicate enhances the growth potential of SaOS-2 cells in vitro, while it causes no effect on RAW 264.7 cells within a concentration range of 10-100 µM. Applying a co-cultivation assay system,…

musculoskeletal diseasesCell SurvivalCellular differentiationmedicine.medical_treatmentAcid PhosphataseMineralogyOsteoclastsCell Count02 engineering and technologyCell CommunicationBiochemistryCell Line03 medical and health sciencesMiceOsteoprotegerinOsteoclastOsteogenesismedicineAnimalsHumansMolecular BiologyRAW 264.7 Cells030304 developmental biologyTartrate-resistant acid phosphataseCell Proliferation0303 health sciencesOsteoblastsbiologyBone Density Conservation AgentsChemistryTartrate-Resistant Acid PhosphataseMacrophagesSilicatesRANK LigandCell DifferentiationCell Biology021001 nanoscience & nanotechnologyCoculture TechniquesCell biologyIsoenzymesmedicine.anatomical_structureCytokineCell cultureRANKLbiology.protein0210 nano-technologyJ. Cell. Biochem.
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Impact of silicates and detergents on primary production and total biomass of algae in a short-term laboratory experiment

2006

silicatesdetergentsalgal biomassprimary productionArchives of Environmental Protection
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