Search results for "alginate"

showing 10 items of 88 documents

Protection of yeast cells in micro-organized shells of natural polyelectrolytes during drying process

2016

The encapsulation techniques are applied in various fields and for various applications. The layer-by-layer self-assembly (LbL), one of the encapsulation techniques, is built by the electrostatic attraction between oppositely charged polyelectrolytes, and the topmost layer determines essentially the sur-face properties of the edifice. This technique offers several advantages (low cost, simplicity of process and equipment, biocompatibility and biodegra-dation, etc.). In this present paper, results of the protection of Saccharomyces cerevisiae yeast cells in microorganized shell of natural polyelectrolytes during dehydration process are reported. To apply the LbL method to individually encaps…

[SDV] Life Sciences [q-bio]IRTF[ SDV ] Life Sciences [q-bio]FTIRβ-lactoglobuline[SDV]Life Sciences [q-bio]AlginateDehydratationDéshydratationEncapsulationLevureLayer-by-layerYeast
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Enhancing Biocompatibility and Antibacterial Activity of Ti6Al4V by Entrapping Ag and Hydroxyapatite Inside Alginate Filled Pores of TiO 2 Layer Grow…

2022

A three-step electrochemical process is developed to grow a coating on Ti6Al4V alloy for biomedical applications aimed to enhance its bioactivity. The coating is composed by a porous titanium oxide filled with Ag, alginic acid, and hydroxyapatite to provide antibacterial properties and, at the same time, osteointegration capability. Anodized and treated with the electrochemical process samples are characterized by Scanning Electron Microscopy (SEM), Energy-Dispersive X-ray Spectroscopy (EDX), X-Ray Diffraction, and Raman Spectroscopy to have information about morphology and composition soon after the fabrication and after immersion in Hanks' solution. Bioactivity of the samples is also prov…

Settore ING-IND/23 - Chimica Fisica Applicataantibacterial activitybioactivityMechanics of MaterialsMechanical EngineeringhydroxyapatitealginateAgTi alloysAdvanced Materials Interfaces
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CRYOPRESERVATION OF PEACH SHOOT TIPS BY ENCAPSULATION DEHYDRATION

2011

HorticultureChemistryShootBotanymedicineShoot tips Alginate beadsDehydrationHorticulturemedicine.diseaseCryopreservationEncapsulation (networking)Acta Horticulturae
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Efecto del quitosán de alto peso molecular y del alginato de sodio sobre la hidrofobicidad y adhesión de Candida albicans a células

2006

Objetivo: Evaluar el efecto del quitosán de alto peso molecular (QAPM) y del alginato de sodio (NaAL) sobre la hidrofobicidad superficial de Candida albicans y la adhesión de esta levadura a células epiteliales y fibroblastos de distinto origen. Diseño del estudio: Para el estudio de la hidrofobicidad, las levaduras (n=7) se hicieron crecer en agar glucosado de Sabouraud suplementado con QAPM o NaAL o en ausencia de los mismos (controles). La determinación de la hidrofobicidad se realizó por el método de adhesión a hidrocarburos utilizando dos solventes orgánicos (xileno y cloroformo). En los estudios de adhesión, las levaduras se pusieron en contacto con soluciones de biopolímeros y luego …

adhesionhidrofobicidadadhesiónUNESCO::CIENCIAS MÉDICASCandida albicansalginatoalginatequitosánchitosan:CIENCIAS MÉDICAS [UNESCO]hydrophobicity
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Lactic acid bacteria strains for bioprotection application with cells entrapment in biopolymeric matrices

2013

Among the various methods to control foodborne pathogenic and/or food spoilage microorganisms in food chain, bioprotective lactic acid bacteria (LAB) appear to be promising tools for food biopreservation. This collaborative study, between PAPC (Agrosup Dijon, University of Burgundy) and BioDyMIA (University Lyon1-Lyon Isara) laboratories, concerned the development of sodium alginate/sodium caseinate polymeric matrices intended to entrap LAB cells selected for their anti-Listeria spp. activity. First, 4 LAB strains from 19 LAB strains were selected for their anti-Listeria spp. activity: this screening was performed by the method of agar diffusion against three Listeria spp strains. Then, ant…

Cultivabilité[SDV.SA] Life Sciences [q-bio]/Agricultural sciencesGelBiopréservationCaséinate de sodium[ SDV.AEN ] Life Sciences [q-bio]/Food and NutritionActivité anti-ListeriaAlginate de sodiumBiopreservationCulturability[SDV.AEN] Life Sciences [q-bio]/Food and NutritionBactéries lactiquesSodium caseinate[CHIM.OTHE] Chemical Sciences/OtherSéparation de phase[ CHIM.OTHE ] Chemical Sciences/OtherLactic acid bacteriaAqueous two-phase systemAnti-listerial activitySodium alginateEntrapment[ SDV.SA ] Life Sciences [q-bio]/Agricultural sciencesConfinement
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Kinetic and equilibrium studies for uranyl removal from aqueous solution by adsorption onto alginate gel beads. DPV and ICP measurements

2014

Settore CHIM/01 - Chimica AnaliticaUranyl Voltammetry DPV ICP-OES Alginate gel beads.
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Encapsulation of black mulberry microcuttings: studies on capsules and synthetic seeds

2017

The encapsulation technology for plant tissue culture can be an efficient tool to optimize the plant management systems and to preserve valuable plant germplasm. In this paper, two experiments were carried out to evaluate the encapsulation efficiency in mulberry (Morus nigra L.). In the first experiment, gel capsules were stored at 4°C for different times (0, 30, 90, 180 and 360 days). The highest percentage of shoot viability (82.5%) and regrowth (72.5%) was scored after 180 days of storage, with an average development of 2.5 shoots/capsule. The second experiment was aimed to point out an efficient protocol to turn the capsules of black mulberry in synthetic seeds ready to develop into who…

0106 biological sciencesMorus nigra (L.)calcium alginate matrix conversion Morus nigra (L.) nodal segments storage timesnodal segmentsNanotechnologyBiologyHorticulture01 natural sciencesEncapsulation (networking)Settore AGR/03 - Arboricoltura Generale E Coltivazioni ArboreeSettore AGR/11 - Entomologia Generale E Applicatacalcium alginate matrixstorage timesNodal segmentconversion010606 plant biology & botanyStorage time
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Localization of Lactococcus lactis ssp lactis bv diacetylactis in alginate gel beads affects biomass density and synthesis of several enzymes involve…

1993

Lactococcus lactis ssp lactis bv diacetylactis, immobilized in calcium alginate beads, was grown in synthetic medium in a continuous flow reactor. Cell distribution inside the gel, as well as the activity of various enzymes, was measured after 30 h of operation. The included biomass tended to concentrate at the periphery of the bead along a section of radius about 100 μm long. ATPase activity was maximal in this zone. The activity of NADH oxidase, alcohol dehydrogenase, diacetyl reductase and acetoin reductase, which are repressed in the presence of citrate, were higher in the deeper zones than at the surface of the beads. This result shows that only the peripheral zone of the bead is respo…

Calcium alginatebiologyAcetoinLactococcus lactisbiology.organism_classificationApplied Microbiology and BiotechnologyBiochemistryDiacetylDiacetyl reductasechemistry.chemical_compoundchemistryBiochemistrybiology.proteinFermentationCitric acidAlcohol dehydrogenaseBiotechnology Techniques
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Alginate-Agarose Hydrogels Improve the In Vitro Differentiation of Human Dental Pulp Stem Cells in Chondrocytes. A Histological Study

2021

[EN] Matrix-assisted autologous chondrocyte implantation (MACI) has shown promising results for cartilage repair, combining cultured chondrocytes and hydrogels, including alginate. The ability of chondrocytes for MACI is limited by different factors including donor site morbidity, dedifferentiation, limited lifespan or poor proliferation in vitro. Mesenchymal stem cells could represent an alternative for cartilage regeneration. In this study, we propose a MACI scaffold consisting of a mixed alginate-agarose hydrogel in combination with human dental pulp stem cells (hDPSCs), suitable for cartilage regeneration. Scaffolds were characterized according to their rheological properties, and their…

QH301-705.5Type II collagenMedicine (miscellaneous)02 engineering and technologyhDPSCsGeneral Biochemistry Genetics and Molecular BiologyChondrocyteArticle03 medical and health sciencesTissue engineeringDental pulp stem cellsmedicinealginateBiology (General)cartilage regenerationAggrecan030304 developmental biology0303 health sciencesChemistryCartilageMesenchymal stem cell021001 nanoscience & nanotechnologyChondrogenesisCell biologymedicine.anatomical_structuretissue engineeringMACIchondrocyte0210 nano-technologyagaroseBiomedicines
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Morphogenetically active scaffold for osteochondral repair (Polyphosphate/alginate/N,O-carboxymethyl chitosan)

2016

Here we describe a novel bioinspired hydrogel material that can be hardened with calcium ions to yield a scaffold material with viscoelastic properties matching those of cartilage. This material consists of a negatively charged biopolymer triplet, composed of morphogenetically active natural inorganic polyphosphate (polyP), along with the likewise biocompatible natural polymers N,O-carboxymethyl chitosan (N,O-CMC) and alginate. The porosity of the hardened scaffold material obtained after calcium exposure can be adjusted by varying the pre-processing conditions. Various compression tests were applied to determine the local (nanoindentation) and bulk mechanical properties (tensile/compressio…

Cartilage ArticularScaffoldlcsh:Diseases of the musculoskeletal systemO-Carboxymethyl chitosanBiocompatible Materials02 engineering and technology01 natural sciencesHydrogel Polyethylene Glycol DimethacrylateChitosanchemistry.chemical_compoundGlucuronic AcidTissue engineeringPolyphosphatesAggrecansTissue ScaffoldsHexuronic AcidsN021001 nanoscience & nanotechnologymedicine.anatomical_structuretissue engineering0210 nano-technologyPorosityAlginatesEpiphyseal platelcsh:Surgeryregenerative medicineengineering.material010402 general chemistryOsteocytesChondrocytesUltimate tensile strengthmedicineHumansRegenerationCollagen Type IIAggrecanCell ProliferationChitosanWound HealingCartilagepolyphosphatelcsh:RD1-811Alkaline Phosphatase0104 chemical sciencesCartilagechemistryengineeringCalciumBiopolymerlcsh:RC925-935Biomedical engineering
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