Search results for "Sclerocyte"

showing 7 items of 7 documents

Genetic, biological and structural hierarchies during sponge spicule formation: from soft sol–gels to solid 3D silica composite structures

2012

Structural biomaterials are hierarchically organized and biofabricated. Although the structural complexity of most bioskeletons can be traced back from the millimeter-scale to the micrometer- or submicrometer-scale, the biological and/or genetic basis controlling the synthesis of these skeletons and their building blocks remained unknown. There is one distinguished example, the spicules of the siliceous sponges, for which the principle molecules and molecular-biological processes involved in their formation have been elucidated in the last few years. In this review, recent data on the different levels of molecular, biological and structural hierarchies controlling the synthesis of the pictu…

0303 health sciencesSpiculeInorganic polymerSyneresisNanotechnology02 engineering and technologyGeneral Chemistry021001 nanoscience & nanotechnologyCondensed Matter Physics03 medical and health scienceschemistry.chemical_compoundSponge spiculechemistryPolymerizationChemical engineeringOrthosilicate0210 nano-technologyFunction (biology)030304 developmental biologySclerocyteSoft Matter
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Formation of spicules by sclerocytes from the freshwater spongeEphydatia muelleri in short-term cultures in vitro

1995

Cells from the freshwater sponge Ephydatia muelleri were isolated by dissociating hatching gemmules. During the first 24 h the cells reaggregated, but the aggregates progressively disintegrated again to single cells, among which the spicule-forming sclerocytes were recognized. Such cultures were used to study spicule (megascleres) formation in vitro. The isolated sclerocytes formed the organic central axial filament onto which they deposited inorganic silicon. The size of the spicules (200 to 350 microns in length) as well as the rate of spicule formation (1 to 10 microns/h) under in vitro conditions were similar to the values measured in vivo. Immediately after completion of spicule format…

SpiculebiologySilicatesFresh WaterCell BiologyGeneral Medicinebiology.organism_classificationIn vitroCulture MediaPoriferaCell biologyMicroscopy ElectronSpongeSponge spiculeCell cultureBotanyAnimalsEphydatia muelleriDevelopmental biologyCells CulturedDevelopmental BiologySclerocyteIn Vitro Cellular & Developmental Biology - Animal
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Silicateins, silicatein interactors and cellular interplay in sponge skeletogenesis: formation of glass fiber-like spicules

2012

Biomineralization processes are characterized by controlled deposition of inorganic polymers/minerals mediated by functional groups linked to organic templates. One metazoan taxon, the siliceous sponges, has utilized these principles and even gained the ability to form these polymers/minerals by an enzymatic mechanism using silicateins. Silicateins are the dominant protein species present in the axial canal of the skeletal elements of the siliceous sponges, the spicules, where they form the axial filament. Silicateins also represent a major part of the organic components of the silica lamellae, which are cylindrically arranged around the axial canal. With the demosponge Suberites domuncula …

0303 health sciencesSpiculebiology02 engineering and technologyCell BiologyAnatomyFlagellum021001 nanoscience & nanotechnologybiology.organism_classificationBiochemistrySuberites domuncula03 medical and health sciencesSpongeSponge spiculeDemospongeBiophysics0210 nano-technologyMolecular Biology030304 developmental biologySclerocyteBiomineralizationFEBS Journal
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Apposition of silica lamellae during growth of spicules in the demosponge Suberites domuncula: Biological/biochemical studies and chemical/biomimetic…

2006

Recently it has been discovered that the formation of the siliceous spicules of Demospongiae proceeds enzymatically (via silicatein) and occurs matrix guided (on galectin strings). In addition, it could be demonstrated that silicatein, if immobilized onto inorganic surfaces, provides the template for the synthesis of biosilica. In order to understand the formation of spicules in the intact organism, detailed studies with primmorphs from Suberites domuncula have been performed. The demosponge spicules are formed from several silica lamellae which are concentrically arranged around the axial canal, harboring the axial filament composed of silicatein. Now we show that the appositional growth o…

Silicon dioxideNanotechnologyCatalysischemistry.chemical_compoundDemospongeSponge spiculeBiomimeticsStructural BiologyAnimalsSclerocyteNanotubesPropylaminesbiologyVesicleSilanesEnzymes ImmobilizedSilicon Dioxidebiology.organism_classificationCathepsinsSuberites domunculaLamella (surface anatomy)chemistryMicroscopy Electron ScanningBiophysicsSuberitesSuberitesJournal of Structural Biology
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Common genetic denominators for Ca++-based skeleton in Metazoa: role of osteoclast-stimulating factor and of carbonic anhydrase in a calcareous spong…

2012

Calcium-based matrices serve predominantly as inorganic, hard skeletal systems in Metazoa from calcareous sponges [phylum Porifera; class Calcarea] to proto- and deuterostomian multicellular animals. The calcareous sponges form their skeletal elements, the spicules, from amorphous calcium carbonate (ACC). Treatment of spicules from Sycon raphanus with sodium hypochlorite (NaOCl) results in the disintegration of the ACC in those skeletal elements. Until now a distinct protein/enzyme involved in ACC metabolism could not been identified in those animals. We applied the technique of phage display combinatorial libraries to identify oligopeptides that bind to NaOCl-treated spicules: those oligop…

Anatomy and PhysiologyMarine and Aquatic Scienceslcsh:MedicineBiochemistryCalcium Chloridechemistry.chemical_compoundMolecular Cell BiologySycon raphanuslcsh:ScienceCarbonic AnhydrasesSclerocytechemistry.chemical_classification0303 health sciencesMultidisciplinaryCalcareous spongebiology030302 biochemistry & molecular biologyIntracellular Signaling Peptides and ProteinsRecombinant ProteinsAmorphous calcium carbonatePoriferaEnzymesChemistrymedicine.anatomical_structureBiochemistryMedicineOligopeptidesResearch ArticleBiotechnologyDNA ComplementaryMolecular Sequence DataMarine BiologyCalcium Carbonate03 medical and health sciencesSponge spiculeOsteoclastCarbonic anhydraseChemical BiologymedicineAnimalsAmino Acid SequenceBiology030304 developmental biologySequence Homology Amino AcidEvolutionary Developmental Biologylcsh:Rbiology.organism_classificationEnzymechemistryEarth Sciencesbiology.proteinCalciumlcsh:QPeptidesPhysiological ProcessesDevelopmental BiologyPLoS ONE
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Differentiation capacity of epithelial cells in the sponge Suberites domuncula.

2004

Sponges (phylum Porifera) represent the oldest metazoans. Their characteristic metazoan adhesion molecules and transcription factors enable them to establish a complex "Bauplan" ; three major differentiated cell types (epithelial cells, skeletal cells/sclerocytes, and contractile cells) can be distinguished. Since no molecular markers are as yet available to distinguish these somatic cells or the corresponding embryonic cells from which they originate, we have selected the following three genes for their characterization: noggin (a signaling molecule in development), a caspase that encodes an apoptotic molecule, and silicatein. Silicatein is an enzyme that is involved in the synthesis of si…

HistologySuberites domuncula; sponges; cell differentiationCellular differentiationMolecular Sequence DataPinacodermBiologyPathology and Forensic MedicineEvolution MolecularDemospongeMesohylAnimalsAmino Acid SequenceNogginCloning MolecularPhylogenySclerocyteCell AggregationSequence Homology Amino AcidSilicatesProteinsCell DifferentiationCell BiologyAnatomybiology.organism_classificationCell biologySuberites domunculaSpongeCaspasesCarrier ProteinsSuberitesCell and tissue research
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Localization and Characterization of Ferritin in Demospongiae: A Possible Role on Spiculogenesis

2014

Iron, as inorganic ion or as oxide, is widely used by biological systems in a myriad of biological functions (e.g., enzymatic, gene activation and/or regulation). In particular, marine organisms containing silica structures—diatoms and sponges—grow preferentially in the presence of iron. Using primary sponge cell culture from S. domuncula–primmorphs—as an in vitro model to study the Demospongiae spiculogenesis, we found the presence of agglomerates 50 nm in diameter exclusively inside sponge specialized cells called sclerocytes. A clear phase/material separation is observed between the agglomerates and the initial stages of intracellular spicule formation. STEM-HRTEM-EDX analysis of the agg…

SpiculeIronIron oxidePharmaceutical ScienceNanotechnologyFerric CompoundsArticle<i>Suberites domuncula</i>; primmorphs; iron; ferritin; spiculogenesischemistry.chemical_compoundprimmorphsDrug DiscoveryAnimalslcsh:QH301-705.5Pharmacology Toxicology and Pharmaceutics (miscellaneous)Cells CulturedSclerocyteDiatomsbiologyferritinHematitebiology.organism_classificationSilicon DioxideSuberites domunculaspiculogenesisPoriferaFerritinSuberites domunculaSpongelcsh:Biology (General)chemistryvisual_artFerritinsbiology.proteinBiophysicsvisual_art.visual_art_mediumSuberitesSuberitesMarine Drugs
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