Search results for "Sponge spicule"

showing 10 items of 66 documents

Silica-protein composite layers of the giant basal spicules from Monorhaphis: Basis for their mechanical stability

2010

The hexactinellid sponge Monorhaphis chuni possesses with its giant basal spicules the largest biosilica structure on Earth. The approximately 8.5-mm-thick spicules are composed of up to 800 lamellae. By application of high-resolution electron microscopy (HR-SEM), it is shown that within the siliceous lamellae a proteinaceous scaffold exists which is composed of one protein of a size of 27 kDa. Analyses with Fourier transform infrared (FT-IR) emission and energy-dispersive X-ray (EDX) spectroscopy support this localization of the protein. No evidence for the presence of protein on the surfaces of the lamellae could be obtained. Heating the giant basal spicule to 600 °C destroys and eliminat…

SpiculebiologyChemistryHexactinellidGeneral Chemical EngineeringComposite numberMineralogyEuplectellaGeneral Chemistrybiology.organism_classificationSilicatelaw.inventionSpongechemistry.chemical_compoundSponge spiculeChemical engineeringlawElectron microscopePure and Applied Chemistry
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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 & Developmental Biology - Animal
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ChemInform Abstract: Genetic, Biological and Structural Hierarchies During Sponge Spicule Formation: from Soft Sol-Gels to Solid 3D Silica Composite …

2012

Sponge spiculeChemical engineeringChemistryComposite numberGeneral MedicineChemInform
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Paracrobeles psammophilus sp. nov. (Nematoda: Cephalobidae) from El Saler, Valencia (Spain)

1999

Paracrobeles psammophilus sp. nov. (Nematoda: Cephalobidae) is described from soil of the Dehesa de El Saler (province of Valencia, Spain). This is the second record of a species of the genus Paracrobeles Heyns, 1968. The new species is characterized by rounded cheilorhabdions and the large spicules and gubernaculum of males.

Sponge spiculebiologyEcologyGenusParacrobelesPsammophilusZoologyAnimal Science and Zoologybiology.organism_classificationValenciaEcology Evolution Behavior and SystematicsJournal of Zoology
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Chapter 3 Giant Siliceous Spicules From the Deep‐sea Glass Sponge Monorhaphis chuni

2009

Only 13 years after realizing, during a repair of a telegraph cable pulled out from the deep sea, that the depth of the ocean is plentifully populated with a highly diverse fauna and flora, the Challenger expedition (1873-1876) treasured up a rich collection of vitreous sponges (Hexactinellida). They had been described by Schulze and represent the phylogenetically oldest class of siliceous sponges (phylum Porifera); they are eye-catching because of their distinct body plan, which relies on a filigree skeleton. It is constructed by an array of morphologically determined elements, the spicules. Soon after, during the German Deep Sea Expedition "Valdivia" (1898-1899), Schulze could describe th…

SpongeSpiculePaleontologyMorphology (linguistics)Sponge spiculebiologyMonorhaphisMechanical stabilityHexactinellidbiology.organism_classificationDeep sea
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Siliceous spicules enhance fracture-resistance and stiffness of pre-colonial Amazonian ceramics

2015

AbstractPottery was a traditional art and technology form in pre-colonial Amazonian civilizations, widely used for cultural expression objects, utensils and as cooking vessels. Abundance and workability of clay made it an excellent choice. However, inferior mechanical properties constrained their functionality and durability. The inclusion of reinforcement particles is a possible route to improve its resistance to mechanical and thermal damage. The Amazonian civilizations incorporated freshwater tree sponge spicules (cauixí) into the clay presumably to prevent shrinkage and crack propagation during drying, firing and cooking. Here we show that isolated siliceous spicules are almost defect-f…

ToughnessMultidisciplinaryAmazonianFracture (mineralogy)ModulusFracture mechanicsBiologyBioinformaticsArticleSponge spiculevisual_artvisual_art.visual_art_mediumCeramicComposite materialShrinkageScientific Reports
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Co-expression and Functional Interaction of Silicatein with Galectin

2006

Sponges (phylum Porifera) of the class of Demospongiae are stabilized by a siliceous skeleton. It is composed of silica needles (spicules), which provide the morphogenetic scaffold of these metazoans. In the center of the spicules there is an axial filament that consists predominantly of silicatein, an enzyme that catalyzes the synthesis of biosilica. By differential display of transcripts we identified additional proteins involved in silica formation. Two genes were isolated from the marine demosponge Suberites domuncula; one codes for a galectin and the other for a fibrillar collagen. The galectin forms aggregates to which silicatein molecules bind. The extent of the silicatein-mediated s…

biologyNanotechnologyCell BiologyImmunogold labellingMatrix (biology)Flagellumbiology.organism_classificationBiochemistryCell biologySuberites domunculaDemospongeSponge spiculeMolecular BiologyPeptide sequenceGalectinJournal of Biological Chemistry
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The unique skeleton of siliceous sponges (Porifera; Hexactinellida and Demospongiae) that evolved first from the Urmetazoa during the Proterozoic: a …

2007

Abstract. Sponges (phylum Porifera) had been considered as an enigmatic phylum, prior to the analysis of their genetic repertoire/tool kit. Already with the isolation of the first adhesion molecule, galectin, it became clear that the sequences of the sponge cell surface receptors and those of the molecules forming the intracellular signal transduction pathways, triggered by them, share high similarity to those identified in other metazoan phyla. These studies demonstrated that all metazoan phyla, including the Porifera, originate from one common ancestor, the Urmetazoa. The sponges evolved during a time prior to the Ediacaran-Cambrian boundary (542 million years ago (myr)). They appeared du…

biologyPhylum[SDU.OCEAN] Sciences of the Universe [physics]/Ocean Atmospherelcsh:QE1-996.5lcsh:Lifemyrbiology.organism_classification[SDU.ASTR] Sciences of the Universe [physics]/Astrophysics [astro-ph][SDU.ENVI] Sciences of the Universe [physics]/Continental interfaces environmentSuberites domunculaIntracellular signal transductionlcsh:GeologySpongelcsh:QH501-531Body planSponge spiculeEvolutionary biology[PHYS.ASTR.CO] Physics [physics]/Astrophysics [astro-ph]/Cosmology and Extra-Galactic Astrophysics [astro-ph.CO]lcsh:QH540-549.5Botany[SDU.STU] Sciences of the Universe [physics]/Earth Scienceslcsh:EcologyLiving fossilEcology Evolution Behavior and SystematicsEarth-Surface Processes
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Poly(silicate)-metabolizing silicatein in siliceous spicules and silicasomes of demosponges comprises dual enzymatic activities (silica polymerase an…

2007

Siliceous sponges can synthesize poly(silicate) for their spicules enzymatically using silicatein. We found that silicatein exists in silica-filled cell organelles (silicasomes) that transport the enzyme to the spicules. We show for the first time that recombinant silicatein acts as a silica polymerase and also as a silica esterase. The enzymatic polymerization/polycondensation of silicic acid follows a distinct course. In addition, we show that silicatein cleaves the ester-like bond in bis(p-aminophenoxy)-dimethylsilane. Enzymatic parameters for silica esterase activity are given. The reaction is completely blocked by sodium hexafluorosilicate and E-64. We consider that the dual function o…

chemistry.chemical_classificationCondensation polymerbiologyCell Biologyrespiratory systemBiochemistryEsteraseSilicatechemistry.chemical_compoundEnzymeSponge spiculechemistryPolymerizationBiochemistryPolymer chemistrybiology.proteinSilicic acidMolecular BiologyPolymeraseFEBS Journal
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