Search results for "Pori"

showing 10 items of 761 documents

Bioorganic/inorganic hybrid composition of sponge spicules: matrix of the giant spicules and of the comitalia of the deep sea hexactinellid Monorhaph…

2007

The giant basal spicules of the siliceous sponges Monorhaphis chuni and Monorhaphis intermedia (Hexactinellida) represent the largest biosilica structures on earth (up to 3 m long). Here we describe the construction (lamellar organization) of these spicules and of the comitalia and highlight their organic matrix in order to understand their mechanical properties. The spicules display three distinct regions built of biosilica: (i) the outer lamellar zone (radius: >300 mu m), (ii) the bulky axial cylinder (radius: <75 mu m), and (iii) the central axial canal (diameter: <2 mu m) with its organic axial filament. The spicules are loosely covered with a collagen net which is regularly perforated …

SpiculeMaterials scienceBinding SitesbiologyHexactinellidScanning electron microscopebiology.organism_classificationPoriferaCrystallographySponge spiculeStructural BiologyMicroscopy Electron ScanningAnimalsLamellar structureCollagenComposite materialElasticity (economics)PorosityDissolutionPeptide HydrolasesJournal of structural biology
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Crystalline nanorods as possible templates for the synthesis of amorphous biosilica during spicule formation in Demospongiae.

2009

In tandem: High-resolution TEM shows that during the initial stages of demosponge spicule formation, a primordial crystalline structure is formed within the axial filament. The recently developed electron diffraction tomography technique (ADT) reveals that the nanorods have a layered structure that matches smectitic phyllosilicates. These intracellular nanorods have been considered as precursors of mature spicules. High-resolution microscopy shows that, during the initial stages of demosponge spicule formation, a primordial crystalline structure is formed within the axial filament. The recently developed electron diffraction tomography technique reveals that the nanorods have a layered stru…

SpiculeMaterials scienceElectronsCrystal structureBiochemistrybioinorganic chemistryDemospongeSponge spiculeMicroscopy Electron TransmissionX-Ray DiffractionnanostructuresAnimalsMolecular BiologyNanotubesbiologyElectron crystallographysilicateinOrganic Chemistrybioinorganic chemistry; electron crystallography; nanostructures; silicatein; spiculesbiology.organism_classificationSilicon DioxidespiculesAmorphous solidPoriferaCrystallographyelectron crystallographyElectron diffractionMicroscopy Electron ScanningMolecular MedicineNanorodChembiochem : a European journal of chemical biology
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Silicateins - A Novel Paradigm in Bioinorganic Chemistry: Enzymatic Synthesis of Inorganic Polymeric Silica

2013

The inorganic matrix of the siliceous skeletal elements of sponges, that is, spicules, is formed of amorphous biosilica. Until a decade ago, it remained unclear how the hard biosilica monoliths of the spicules are formed in sponges that live in a silica-poor (<50 mu m) aquatic environment. The following two discoveries caused a paradigm shift and allowed an elucidation of the processes underlying spicule formation; first the discovery that in the spicules only one major protein, silicatein, exists and second, that this protein displays a bio-catalytical, enzymatic function. These findings caused a paradigm shift, since silicatein is the first enzyme that catalyzes the formation of an inorga…

SpiculeNew horizonsPolymersNanotechnology02 engineering and technologyCatalysisCalcium Carbonate03 medical and health sciencesSponge spiculeAnimals030304 developmental biology0303 health sciencesInorganic polymerChemistrySilicatesOrganic ChemistrySubstrate (chemistry)Bioinorganic chemistryGeneral ChemistryEnzymatic synthesisSilicon Dioxide021001 nanoscience & nanotechnologyCathepsinsPoriferaChemistry BioinorganicChemical engineeringBiocatalysisInorganic matrixSuberites0210 nano-technology
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Circumferential spicule growth by pericellular silica deposition in the hexactinellid sponge Monorhaphis chuni.

2011

SUMMARY The giant basal spicule of the hexactinellid sponge Monorhaphis chuni represents the longest natural siliceous structure on Earth. This spicule is composed of concentrically arranged lamellae that are approximately 10 μm thick. In the present study, we investigated the formation of outer lamellae on a cellular level using microscopic and spectroscopic techniques. It is shown that the formation of an outermost lamella begins with the association of cell clusters with the surface of the thickening and/or growing spicule. The cells release silica for controlled formation of a lamella. The pericellular (silica) material fuses to a delimited and textured layer of silica with depressions …

SpiculePhysiologyMineralogy02 engineering and technologyAquatic Science03 medical and health sciencesAnimalsComposite materialMolecular BiologyEcology Evolution Behavior and Systematics030304 developmental biology0303 health sciencesbiologyMonorhaphisHexactinellidSpectrometry X-Ray Emission021001 nanoscience & nanotechnologybiology.organism_classificationSilicon DioxideSilica depositionPoriferaSpongeLamella (surface anatomy)Insect ScienceAnimal Science and ZoologyThickening0210 nano-technologyLayer (electronics)The Journal of experimental biology
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Identification of a silicatein(-related) protease in the giant spicules of the deep-sea hexactinellid Monorhaphis chuni.

2008

SUMMARYSilicateins, members of the cathepsin L family, are enzymes that have been shown to be involved in the biosynthesis/condensation of biosilica in spicules from Demospongiae (phylum Porifera), e.g. Tethya aurantium and Suberites domuncula. The class Hexactinellida also forms spicules from this inorganic material. This class of sponges includes species that form the largest biogenic silica structures on earth. The giant basal spicules from the hexactinellids Monorhaphis chuni and Monorhaphis intermedia can reach lengths of up to 3 m and diameters of 10 mm. The giant spicules as well as the tauactines consist of a biosilica shell that surrounds the axial canal, which harbours the axial f…

SpiculePhysiologyOceans and SeasMolecular Sequence DataAquatic ScienceCysteine Proteinase InhibitorsCathepsin LDemospongeSponge spiculeAnimalsAmino Acid SequenceTethya aurantiumMolecular BiologyEcology Evolution Behavior and SystematicsPhylogenyBinding SitesbiologyHexactinellidAnimal StructuresAnatomybiology.organism_classificationCathepsinsCystatinsPoriferaSuberites domunculaMolecular WeightSpongeBiochemistryInsect ScienceMolecular Probesbiology.proteinAnimal Science and ZoologyProtein Processing Post-TranslationalThe Journal of experimental biology
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Involvement of aquaporin channels in water extrusion from biosilica during maturation of sponge siliceous spicules.

2015

Aquaporins are a family of small, pore-forming, integral cell membrane proteins. This ancient protein family functions as water channels and is found in all kingdoms (including archaea, eubacteria, fungi, plants, and animals). We discovered that in sponges aquaporin plays a novel role during the maturation of spicules, their skeletal elements. Spicules are synthesized enzymatically via silicatein following a polycondensation reaction. During this process, a 1:1 stoichiometric release of water per one Si-O-Si bond formed is produced. The product of silicatein, biosilica, is a fluffy, soft material that must be hardened in order to function as a solid rod. Using the model of the demosponge sp…

SpiculeProtein familyAquaporinWaterBiologybiology.organism_classificationAquaporinsSilicon DioxideCell biologyPoriferaSuberites domunculaSpongeDemospongeSponge spiculeComplementary DNABotanyAnimalsGeneral Agricultural and Biological SciencesThe Biological bulletin
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Magnetic resonance imaging of the siliceous skeleton of the demosponge Lubomirskia baicalensis

2005

The skeletal elements (spicules) of the demosponge Lubomirskia baicalensis were analyzed; they are composed of amorphous, non-crystalline silica, and contain in a central axial canal the axial filament which consists of the enzyme silicatein. The axial filament, that orients the spicule in its longitudinal axis exists also in the center of the spines which decorate the spicule. During growth of the sponge, new serially arranged modules which are formed from longitudinally arranged spicule bundles are added at the tip of the branches. X-ray analysis revealed that these serial modules are separated from each other by septate zones (annuli). We describe that the longitudinal bundles of spicule…

SpiculebiologyAnatomyLubomirskia baicalensisbiology.organism_classificationSilicon DioxideSkeleton (computer programming)Magnetic Resonance ImagingModels BiologicalPoriferaRadiographySpongeDemospongeSponge spiculeNuclear magnetic resonanceApex (mollusc)Structural BiologyMicroscopy Electron ScanningAnimalsLongitudinal axisBody PatterningJournal of Structural Biology
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Axial growth of hexactinellid spicules: Formation of cone-like structural units in the giant basal spicules of the hexactinellid Monorhaphis

2008

The glass sponge Monorhaphis chuni (Porifera: Hexactinellida) forms the largest bio-silica structures on Earth; their giant basal spicules reach sizes of up to 3 m and diameters of 8.5 mm. Previously, it had been shown that the thickness growth proceeds by appositional layering of individual lamellae; however, the mechanism for the longitudinal growth remained unstudied. Now we show, that the surface of the spicules have towards the tip serrated relief structures that are consistent in size and form with the protrusions on the surface of the spicules. These protrusions fit into the collagen net that surrounds the spicules. The widths of the individual lamellae do not show a pronounced size …

SpiculebiologyHexactinellidSilicatesImmunogold labellingSilicon Dioxidebiology.organism_classificationPoriferalaw.inventionSuberites domunculaMicroscopy ElectronSpongeCrystallographySponge spiculeStructural BiologylawAnimalsElectrophoresis Polyacrylamide GelCollagenElectron microscopeElongationSuberitesJournal of Structural Biology
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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 &amp; Developmental Biology - Animal
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Hypercalcified sponges from the Upper Triassic (Norian-Rhaetian) reefs of Sicily

2015

The sponge-dominated Upper Triassic (Norian-Rhaetian) reefs of Sicily yielded the most abundant hypercalcified sponge taxa compared with other time equivalent reefs in the world. Chambered sponges (“Sphinctozoa”) are the most abundant group among the hypercalcified sponges. All together almost 150 species of hypercalcified sponges (including sphinctozoans, inozoans, chaetetids, disjectoporids and spongiomorphids) were recognized in the Norian-Rhaetian reefs occurring in different localities in Sicily. 93 species (30 new, 28 as sp. indet.) of sphinctozoans, belonging to 18 families (2 new: Polytubithalamiidae, Globucatenulaiidae) and 35 genera (4 new: Globucatenula, Polytubithalamia, Rostros…

Sponges Sphinctozoa Inozoa Chaetetids Disjectoporids Spongiomorphids Triassic Norian-Rhaetian Cozzo di Lupo Palermo Mountains Madonie Mountains Sicily.Settore GEO/02 - Geologia Stratigrafica E SedimentologicaSettore GEO/01 - Paleontologia E Paleoecologia
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