Search results for "bioengineering"

showing 10 items of 1963 documents

Marine biominerals: perspectives and challenges for polymetallic nodules and crusts.

2009

Deep sea minerals in polymetallic nodules, crusts and hydrothermal vents are not only formed by mineralization but also by biologically driven processes involving microorganisms (biomineralization). Within the nodules, free-living and biofilm-forming bacteria provide the matrix for manganese deposition, and in cobalt-rich crusts, coccolithophores represent the dominant organisms that act as bio-seeds for an initial manganese deposition. These (bio)minerals are economically important: manganese is an important alloying component and cobalt forms part of special steels in addition to being used, along with other rare metals, in plasma screens, hard-disk magnets and hybrid car motors. Recent p…

Mineralization (geology)Geologic SedimentsManganeseMineralsMineralHot TemperatureBacteriaOceans and SeasMetallurgychemistry.chemical_elementEukaryotaBioengineeringManganeseHybrid carCobaltGeologic SedimentsDeep seachemistryEnvironmental chemistryBiofilmsWater MicrobiologyBiomineralizationHydrothermal ventBiotechnologyTrends in biotechnology
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Mitochondrial inheritance and fermentative : oxidative balance in hybrids between Saccharomyces cerevisiae and Saccharomyces uvarum.

2008

Breeding between Saccharomyces species is a useful tool for obtaining improved wine yeast strains, combining fermentative features of parental species. In this work, 25 artificial Saccharomyces cerevisiae × Saccharomyces uvarum hybrids were constructed by spore conjugation. A multi-locus PCR‐restriction fragment length polymorphism (PCR‐RFLP) analysis, targeting six nuclear gene markers and the ribosomal region including the 5.8S rRNA gene and the two internal transcribed spacers, showed that the hybrid genome is the result of two chromosome sets, one coming from S. cerevisiae and the other from S. uvarum. Mitochondrial DNA (mtDNA) typing showed uniparental inheritance in all hybrids. Furth…

Mitochondrial DNANuclear geneSaccharomyces cerevisiaeUniparental inheritanceBioengineeringSaccharomyces cerevisiaeBiologyApplied Microbiology and BiotechnologyBiochemistryGenomeDNA MitochondrialDNA RibosomalPolymerase Chain ReactionSaccharomyces cerevisiae; Saccharomyces uvarum; yeast hybrid; gene expression; mitochondrial DNAGeneticsMycological Typing TechniquesGeneHexose transportCrosses GeneticGeneticsRibosomal RNAbiology.organism_classificationRNA Ribosomal 5.8SGenes MitochondrialFermentationHybridization GeneticBiotechnologyYeast (Chichester, England)
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Computational analysis of lung deformation after murine pneumonectomy. [corrected].

2012

In many mammalian species, the removal of one lung (pneumonectomy) is associated with the compensatory growth of the remaining lung. To investigate the hypothesis that parenchymal deformation may trigger lung regeneration, we used microCT scanning to create 3-dimensional finite element geometric models of the murine lung pre- and post-pneumonectomy (24 hours). The structural correspondence between models was established using anatomic landmarks and an iterative computational algorithm. When compared with the pre-pneumonectomy lung, the post-pneumonectomy models demonstrated significant translation and rotation of the cardiac lobe into the post-pneumonectomy pleural space. 2-dimensional maps…

Models AnatomicPathologymedicine.medical_specialtyX-ray microtomographymedicine.medical_treatmentFinite Element AnalysisBiomedical EngineeringCompensatory growth (organ)BioengineeringBiologyDeformation (meteorology)ArticlePneumonectomyMiceParenchymamedicineAnimalsRegenerationComputational analysisPneumonectomyLungLungGeneral MedicineAnatomyX-Ray Microtomographyrespiratory systemLoberespiratory tract diseasesComputer Science ApplicationsHuman-Computer InteractionMice Inbred C57BLmedicine.anatomical_structureComputer methods in biomechanics and biomedical engineering
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Polymeric prodrug for release of an antitumoral agent by specific enzymes.

2001

The clinical usefulness of antitumor chemotherapy has been strongly limited by the lack of specificity of most anticancer drugs, which act also against healthy cells. The aim of this work was to design, synthesize, and evaluate a macromolecular prodrug of Cytarabine, a known antitumor drug, which is a specific substrate for plasmin enzyme whose concentration is high in various kinds of tumor mass as a result of plasminogen activator secretion. alpha,beta-Poly(N-hydroxyethyl)-DL-aspartamide (PHEA), a known synthetic and biocompatible polyamino acid, was used as a drug carrier, and Cytarabine was linked to PHEA by D-Val-Leu-Lys spacer synthesized beginning from Cbz-D-Val-LeuOH dipeptide and N…

Models MolecularAntimetabolites AntineoplasticPlasminBiomedical EngineeringPharmaceutical ScienceBioengineeringchemistry.chemical_compoundPlasmaDrug StabilitymedicineHumansProdrugsFibrinolysinPharmacologychemistry.chemical_classificationDrug CarriersDipeptideChemistryOrganic ChemistryCytarabineIn vitroKineticsEnzymeBiochemistryDrug DesignCytarabineDrug carrierPeptidesPlasminogen activatorOligopeptidesBiotechnologymedicine.drugConjugateBioconjugate chemistry
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Click chemistry-assisted bioconjugates for hapten immunodiagnostics

2020

Bioorthogonal reactions have revolutionized the way low molecular weight compounds are coupled to biomolecules. Organic chemistry, polymer science, and chemical biology are among the disciplines that are benefited the most from this breakthrough. Despite the reliability of the click chemistry concept for the efficient and chemoselective functionalization of biomacromolecules with haptens at preferred positions, the fact that azide–alkyne cycloaddition reactions originate new chemical moieties as part of the linker may have delayed their application in the immunodiagnostic field. Using the mycotoxin ochratoxin A as a model compound, we herein demonstrate for the first time that bioconjugates…

Models MolecularAzidesMolecular ConformationBiomedical EngineeringChemical biologyPharmaceutical ScienceBioengineeringNanotechnology02 engineering and technology01 natural sciencesImmunoassayPharmacologychemistry.chemical_classificationImmunodiagnostics010405 organic chemistryChemistryBiomoleculeOrganic Chemistry021001 nanoscience & nanotechnologyOchratoxins0104 chemical sciencesAlkynesClick chemistryClick ChemistryBioorthogonal chemistry0210 nano-technologyHaptensHaptenBiotechnology
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Fractal-related assembly of the axial filament in the demosponge Suberites domuncula: relevance to biomineralization and the formation of biogenic si…

2007

Abstract The siliceous spicules of sponges (Porifera) show great variations of sizes, shapes and forms; they constitute the chief supporting framework of these animals; these skeletal elements are synthesized enzymatically by silicatein. Each sponge species synthesizes at least two silicateins, which are termed − α and − β . In the present study, using the demosponge Suberites domuncula , we studied if the silicateins of the axial filament contribute to the shape formation of the spicules. For these experiments native silicateins have been isolated by a new Tris/glycerol extraction procedure. Silicateins isolated by this procedure are monomeric (24 kDa), but readily form dimers through non-…

Models MolecularBiophysicsBioengineeringNanotechnologyBiomaterialsProtein filamentchemistry.chemical_compoundDemospongeSponge spiculeMicroscopy Electron TransmissionAnimalsAmino Acid SequenceCytoskeletonBinding SitesbiologyAnimal StructuresSilicon Dioxidebiology.organism_classificationImmunohistochemistryPoriferaSuberites domunculaSpongeFractalsMonomerchemistryMechanics of MaterialsCeramics and CompositesBiophysicsSelf-assemblyDimerizationBiomineralization
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Inverse Spin Fractionation:  a Tool to Fractionate Sodium Hyaluronate

2006

Models MolecularChromatographyPolymers and PlasticsMolecular massViscosityChemistrySodium hyaluronateInverseBioengineeringFractionationPolyelectrolyteMolecular WeightBiomaterialschemistry.chemical_compoundPhysical separationChromatography GelMaterials ChemistryHyaluronic AcidSpin (physics)Biomacromolecules
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Unexpected multivalent display of proteins by temperature triggered self-assembly of elastin-like polypeptide block copolymers

2012

We report herein the unexpected temperature triggered self-assembly of proteins fused to thermally responsive elastin-like polypeptides (ELPs) into spherical micelles. A set of six ELP block copolymers (ELP(BC)) differing in hydrophilic and hydrophobic block lengths were genetically fused to two single domain proteins, thioredoxin (Trx) and a fibronectin type III domain (Fn3) that binds the α(v)β(3) integrin. The self-assembly of these protein-ELP(BC) fusions as a function of temperature was investigated by UV spectroscopy, light scattering, and cryo-TEM. Self-assembly of the ELP(BC) was unexpectedly retained upon fusion to the two proteins, resulting in the formation of spherical micelles …

Models MolecularHydrodynamic radiusPolymers and PlasticsIntegrinBioengineeringFibronectin type III domainMicelleArticleBiomaterialsThioredoxinsMaterials ChemistryCopolymerTumor Cells CulturedHumansParticle SizeMicellesbiologyChemistryTemperatureFibronectinsElastinFibronectinsBiochemistryBiophysicsbiology.proteinSelf-assemblyThioredoxinK562 CellsPeptidesHydrophobic and Hydrophilic Interactions
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DOTAGA-Trastuzumab. A New Antibody Conjugate Targeting HER2/Neu Antigen for Diagnostic Purposes.

2012

International audience; Improved bifunctional chelating agents (BFC) are required for indium-111 radiolabeling of monoclonal antibodies (mAbs) under mild conditions to yield stable, target-specific agents. 2,2',2″-(10-(2,6-Dioxotetrahydro-2H-pyran-3-yl)-1,4,7,10-tetraazacyclododecane-1,4,7-triyl)triacetic acid (DOTAGA-anhydride) was evaluated for mAb conjugation and labeling with indium-111. The DOTA analogue was synthesized and conjugated to trastuzumab-which targets the HER2/neu receptor-in mild conditions (PBS pH 7.4, 25 °C, 30 min) and gave a mean degree of conjugation of 2.6 macrocycle per antibody. Labeling of this immunoconjugate with indium-111 was performed in 75% yield after 1 h a…

Models MolecularImmunoconjugatesReceptor ErbB-2Pharmaceutical Science[CHIM.THER]Chemical Sciences/Medicinal Chemistry[ SDV.CAN ] Life Sciences [q-bio]/CancerMicechemistry.chemical_compound0302 clinical medicineTrastuzumabBreastMice Inbred BALB C0303 health sciencesbiologyChemistry[CHIM.ORGA]Chemical Sciences/Organic chemistryIndium Radioisotopes[ CHIM.COOR ] Chemical Sciences/Coordination chemistry[ CHIM.THER ] Chemical Sciences/Medicinal Chemistry3. Good healthBiochemistry030220 oncology & carcinogenesisMonoclonalFemaleAntibody[CHIM.RADIO]Chemical Sciences/Radiochemistry[ CHIM.RADIO ] Chemical Sciences/RadiochemistryBiotechnologymedicine.drugBiodistributionmedicine.drug_classBiomedical EngineeringBreast NeoplasmsBioengineering[SDV.CAN]Life Sciences [q-bio]/CancerAntibodies Monoclonal HumanizedMonoclonal antibodyAnhydridesHeterocyclic Compounds 1-Ring03 medical and health sciences[ CHIM.ORGA ] Chemical Sciences/Organic chemistryCell Line TumormedicineAnimalsHumansDOTA[CHIM.COOR]Chemical Sciences/Coordination chemistry030304 developmental biologyTomography Emission-Computed Single-PhotonPharmacologyOrganic ChemistryTrastuzumabMolecular biologyIn vitroImmunoconjugatebiology.protein
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Surface plasmons and vibrations of self-assembled silver nanocolumns

2006

6 pags. ; 5 figs. 1 tab.

Models MolecularLightSurface Properties[ PHYS.COND.CM-MS ] Physics [physics]/Condensed Matter [cond-mat]/Materials Science [cond-mat.mtrl-sci]Physics::OpticsBioengineering02 engineering and technologyVibration01 natural sciencesMolecular physicsSelf assembledsymbols.namesakeOpticsMaterials Testing0103 physical sciencesPhysics::Atomic and Molecular ClustersComputer SimulationGeneral Materials ScienceParticle SizeSurface plasmon resonance010306 general physicsCouplingNanotubesChemistrybusiness.industryMechanical EngineeringSurface plasmonGeneral ChemistrySurface Plasmon Resonance021001 nanoscience & nanotechnologyCondensed Matter PhysicsVibrationTransverse planeModels ChemicalMolecular vibrationsymbolsCrystallization0210 nano-technologybusinessRaman scattering
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