Search results for "MIME"

showing 10 items of 311 documents

In situ polymerization of soil organic matter by oxidative biomimetic catalysis

2017

Abstract Background Agricultural practices that enhance organic matter content in soil can play a central role in sequestering soil organic carbon (SOC) and reducing greenhouse gases emissions. Methods We used a water-soluble iron-porphyrin to catalyze directly in situ oxidative polymerization of soil organic matter in the presence of H2O2 oxidant, with the aim to enhance OC stabilization, and, consequently, reduce CO2 emissions from soil. The occurred SOC stabilization was assessed by monitoring soil aggregate stability, OC distribution in water-soluble aggregates, soil respiration, and extraction yields of humic and fulvic acids. Results Soil treatment with H2O2 and iron-porphyrin increas…

CO2 emissions Soil carbon sequestrate Soil organic matter Soil respiration Oxidative biomimetic catalysisSettore AGR/13 - Chimica Agraria010501 environmental sciencesCO2 emissions01 natural sciencesBiochemistrycomplex mixturesSoil respirationlcsh:AgricultureOrganic matter0105 earth and related environmental scienceschemistry.chemical_classificationSoil organic matterSoil organic matterlcsh:SSoil chemistry04 agricultural and veterinary sciencesSoil carbonMineralization (soil science)Soil respirationOxidative biomimetic catalysischemistryPolymerizationEnvironmental chemistrySoil water040103 agronomy & agriculture0401 agriculture forestry and fisheriesSoil carbon sequestrationAgronomy and Crop ScienceFood ScienceBiotechnologySettore AGR/16 - Microbiologia AgrariaChemical and Biological Technologies in Agriculture
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In vitro evaluation of biomimetic chitosan-calcium phosphate scaffolds with potential application in bone tissue engineering.

2013

This work reports on the physicochemical properties and in vitro cytotoxicity assessment of chitosan–calcium phosphate (Cs–CP) scaffolds for bone tissue engineering, which were synthesized by a novel biomimetic co-precipitation method. X-ray diffraction (XRD) along with scanning electron microscopy (SEM) analysis confirmed the porous morphology of the scaffolds and the amorphous nature of the inorganic phase with different crystallite sizes and the formation of various forms of calcium phosphate. Compressive mechanical testing revealed that the Young’s modulus of the biomaterials is in the range of human trabecular bone. In vitro tests were performed on the biomaterials for up to 14 days to…

Calcium PhosphatesMaterials scienceCompressive StrengthCell SurvivalBiomedical EngineeringBioengineeringBone remodelingCell LineBiomaterialschemistry.chemical_compoundIn vivoBiomimetic MaterialsHardnessElastic ModulusMaterials TestingmedicineHumansViability assayCytotoxicityChitosanOsteoblastsOsteoblastIn vitroVascular endothelial growth factormedicine.anatomical_structurechemistryCell cultureBone SubstitutesBiophysicsBiomedical engineeringBiomedical materials (Bristol, England)
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Fake Landscapes

2016

L'articolo affronta i risvolti architettonici del camuffamento strategico effettuato per scopi militari durante la Seconda Guerra Mondiale. Si tratta di una pratica particolare messa in atto soprattutto in California nascondendo con enormi teloni dipinti interi edifici o capannoni facendolo apparire come altre cose e quindi evitando il riconoscimento da parte dei bombardieri. Si trattava quindi di fatto di ampie operazioni di land art o di un ambito dove l'architettura del paesaggio incontra la scenografia. Camouflage was a strategic technique used during the Second World War mainly in California but aslo elsewhere. It consisted in a massive operation on the landscape. The essay analyses it…

CamouflageMimesiSettore ICAR/14 - Composizione Architettonica E UrbanaArchitettura del PaesaggioLand artScenografiaPaesaggioLandscape Design
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Modulating carbohydrate-based hydrogels as viscoelastic lubricant substitute for articular cartilages

2017

Viscosupplementation is a therapeutic approach for osteoarthritis treatment, where the synovial fluid, the natural lubricant of the joints, is replaced by viscoelastic solutions with rheological properties comparable or better than the starting material. This study presents the development of an innovative platform for viscosupplementation, based on the optimization of polysaccharide-based colloidal hydrogel, aiming to reduce on-site enzyme degradation and enhance the possibility of hyaluronic acid substitution with alternative biomaterials. Catanionic vesicles are proposed as physical crosslinker that can guarantee the formation of a 'soft', tunable network, offering a dual-therapeutic app…

Cartilage ArticularMaterials scienceNanotechnology02 engineering and technology010402 general chemistry01 natural sciencesBiochemistryViscoelasticityCryo-SEMViscosupplementationchemistry.chemical_compoundRheologyBiomimetic MaterialsPolysaccharidesStructural BiologySynovial FluidHyaluronic acidLubricantMolecular BiologyCatanionic vesicles; Colloidal hydrogel; Cryo-SEM; Modified cellulose; Viscosupplementation; Structural Biology; Biochemistry; Molecular Biologychemistry.chemical_classificationCatanionic vesiclesViscosityHydrogelsGeneral MedicinePolymerColloidal hydrogelModified cellulose021001 nanoscience & nanotechnologyCatanionic vesicleElasticity0104 chemical scienceschemistrySettore CHIM/09 - Farmaceutico Tecnologico ApplicativoSelf-healing hydrogelsViscosupplementationViscoelastic Solutions0210 nano-technology
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Multipotential Role of Growth Factor Mimetic Peptides for Osteochondral Tissue Engineering

2022

Articular cartilage is characterized by a poor self-healing capacity due to its aneural and avascular nature. Once injured, it undergoes a series of catabolic processes which lead to its progressive degeneration and the onset of a severe chronic disease called osteoarthritis (OA). In OA, important alterations of the morpho-functional organization occur in the cartilage extracellular matrix, involving all the nearby tissues, including the subchondral bone. Osteochondral engineering, based on a perfect combination of cells, biomaterials and biomolecules, is becoming increasingly successful for the regeneration of injured cartilage and underlying subchondral bone tissue. To this end, recently,…

Cartilage ArticularTissue ScaffoldsOrganic ChemistryBiocompatible MaterialsGeneral Medicinetissue regenerationCatalysisComputer Science ApplicationsInorganic Chemistryosteoarthritisphage-based functional peptidesOsteogenesistissue engineeringHumansIntercellular Signaling Peptides and Proteinsbiomimetic peptidesPhysical and Theoretical ChemistryPeptidescartilageMolecular BiologySpectroscopy
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Growth of human cells on a non-woven silk fibroin net: a potential for use in tissue engineering.

2003

We have examined a novel biomaterial consisting of a non-woven fibroin net produced from silk (Bombyx mori) cocoons for its ability to support the growth of human cells. Various human cells of different tissue and cell types (endothelial, epithelial, fibroblast, glial, keratinocyte, osteoblast) were examined for adherence and growth on the nets by confocal laser microscopy after staining of the cells with calcein-AM and by electron microscopy. All the cells readily adhered and spread over the individual fibers of the nets. Most of the cells were able to grow and survive on the nets for at least 7 weeks and growth not only covered the individual fibers of the net but generally bridged the ga…

Cell typeMaterials scienceManufactured MaterialsAdolescentBiophysicsSilkFibroinBioengineeringNanotechnologyBiocompatible MaterialsBiomaterialsTissue engineeringBombyx moriBiomimetic MaterialsCell MovementCulture TechniquesMaterials TestingmedicineCell AdhesionAnimalsHumansFibroblastCells CulturedbiologyTissue EngineeringTextilesfungiBiomaterialOsteoblastMembranes Artificialbiology.organism_classificationBombyxExtracellular Matrixmedicine.anatomical_structureSILKMechanics of MaterialsCeramics and CompositesBiophysicsInsect ProteinsAdsorptionFibroinsCell DivisionBiomaterials
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Malonato complexes of oxidovanadium(IV): Synthesis, structural characterization and exploration of their insulin mimetic properties

2011

Abstract Several bis-malonatooxidovanadium(IV) complexes of the general type [M2(H2O)n][VO(mal)2(H2O)] (where M = Li(1), Na(2), K(3), Cs(4) and NH4(5); n = 3.5, 1, 3, 1 and 1, respectively) were isolated in good yield and high purity. These complexes were fully characterized by various physicochemical techniques (elemental analysis, UV–Vis, IR, EPR, CV, etc.) complexes 1, 2 and 3 were structurally characterized by single crystal X-ray diffraction technique. In vivo antidiabetic properties of bis-malonato complexes 1, 2, 3 and 5 have been studied using Streptozotocin induced diabetic rats. Significant lowering of blood sugar level has been noticed. At the same time these complexes were found…

Chelating ligandsStereochemistryChemistryStreptozotocinMedicinal chemistrylaw.inventionInorganic ChemistryIn vivolawYield (chemistry)X-ray crystallographyMaterials ChemistrymedicinePhysical and Theoretical ChemistryInsulin mimeticElectron paramagnetic resonanceSingle crystalmedicine.drugInorganica Chimica Acta
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Bioinspired self-assembly of tyrosinase-modified silicatein and fluorescent core-shell silica spheres.

2014

Inspired by the intermolecular cross-linking of mussel foot proteins and their adhesive properties, tyrosinase has been used to modify recombinant silicatein. DOPA/DOPAquinone-mediated cross-linking and interfacial interactions enhanced both self-assembly of silicatein building blocks and templating of core–shell silica spheres, resulting in fluorescent biomimetic silicatein–silica hybrid mesofibers.

ChemistryMonophenol MonooxygenaseTyrosinaseBiophysicsNanotechnologySilicon DioxideBiochemistryFluorescenceCathepsinsPoriferaCore shellNanoporesBiomimetic MaterialsMaterials TestingMolecular MedicineAnimalsSelf-assemblyAdhesiveEngineering (miscellaneous)NanospheresBiotechnologyFluorescent DyesBioinspirationbiomimetics
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A pH-tunable nanofluidic diode: electrochemical rectification in a reconstituted single ion channel.

2006

We report pH-dependent electrochemical rectification in a protein ion channel (the bacterial porin OmpF) reconstituted on a planar phospholipid membrane. The measurements performed at single-channel level show that the electric current is controlled by the protein fixed charge and it can be tuned by adjusting the local pH. Under highly asymmetric pH conditions, the channel behaves like a liquid diode. Unlike other nanofluidic devices that display also asymmetric conductance, here the microscopic charge distribution of the system can be explored by using the available high-resolution (2.4 A) channel crystallographic structure. Continuum electrostatics calculations confirm the hypothesized bi…

ChemistryStatic ElectricityAnalytical chemistryConductanceCharge densityPorinsHydrogen-Ion ConcentrationCrystallography X-RayIon ChannelsSurfaces Coatings and FilmsMembraneRectificationBacterial ProteinsBiomimeticsStatic electricityMaterials ChemistryElectrochemistryNanotechnologyPhysical and Theoretical ChemistryElectric currentIon channelDiodeThe journal of physical chemistry. B
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Nonlinear chiral transport in Dirac semimetals

2018

We study the current of chiral charge density in a Dirac semimetal with two Dirac points in momentum space, subjected to an externally applied time dependent electric field and in the presence of a magnetic field. Based on the kinetic equation approach, we find contributions to the chiral charge current, that are proportional to the second power of the electric field and to the first and second powers of the magnetic field, describing the interplay of the chiral anomaly and the drift motion of electrons moving under the action of electric and magnetic fields.

Chiral anomalyPhysicsDirac semimetalsCondensed Matter - Mesoscale and Nanoscale Physicsta114chiral charge densityHigh Energy Physics::LatticeDirac (software)FOS: Physical sciencesCharge densityPosition and momentum space02 engineering and technologyElectron021001 nanoscience & nanotechnology01 natural sciencesAction (physics)Magnetic fieldQuantum electrodynamicsElectric fieldMesoscale and Nanoscale Physics (cond-mat.mes-hall)0103 physical sciences010306 general physics0210 nano-technologyPhysical Review B
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