0000000000009420

AUTHOR

Xavier Fernàndez-busquets

showing 6 related works from this author

Advanced strategy to exploit wine-making waste by manufacturing antioxidant and prebiotic fibre-enriched vesicles for intestinal health.

2020

Grape extract-loaded fibre-enriched vesicles, nutriosomes, were prepared by combining antioxidant extracts obtained from grape pomaces and a prebiotic, soluble fibre (Nutriose®FM06). The nutriosomes were small in size (from ∼140 to 260 nm), homogeneous (polydispersity index < 0.2) and highly negative (∼ −79 mV). The vesicles were highly stable during 12 months of storage at 25 °C. When diluted with warmed (37 °C) acidic medium (pH 1.2) of high ionic strength, the vesicles only displayed an increase of the mean diameter and a low release of the extract, which were dependent on Nutriose concentration. The formulations were highly biocompatible and able to protect intestinal cells (Caco-2) fro…

Dietary FiberAntioxidantmedicine.medical_treatmentWine02 engineering and technologyGut flora01 natural sciencesAntioxidantsMiceColloid and Surface ChemistryPhospholipid vesiclesFood scienceMice Inbred BALB CSoluble fibre010304 chemical physicsbiologyChemistryVesiclefood and beveragesSurfaces and InterfacesGeneral Medicine021001 nanoscience & nanotechnologyGrape pomaceIntestinal cellsIntestinesHomogeneousFemale0210 nano-technologyBiotechnologyPhospholipid vesiclesCell SurvivalSurface PropertiesGut microbiotaIn vivo studiesAntioxidant activity0103 physical sciencesmedicineAnimalsHumansPrebiotic activityPhysical and Theoretical ChemistryParticle SizeWineWaste ProductsPrebioticfungibiology.organism_classificationGastrointestinal MicrobiomeOxidative StressPrebioticsNutriosomesCaco-2 CellsColloids and surfaces. B, Biointerfaces
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Bifunctional viscous nanovesicles co-loaded with resveratrol and gallic acid for skin protection against microbial and oxidative injuries.

2017

Resveratrol and gallic acid were co-loaded in phospholipid vesicles aiming at protecting the skin from external injuries, such as oxidative stress and microbial infections. Liposomes were prepared using biocompatible phospholipids dispersed in water. To improve vesicle stability and applicability, the phospholipids and the phenols were dispersed in water/propylene glycol or water/glycerol, thus obtaining PEVs and glycerosomes, respectively. The vesicles were characterized by size, morphology, physical stability, and their therapeutic efficacy was investigated in vitro. The vesicles were spherical, unilamellar and small in size: liposomes and glycerosomes were around 70nm in diameter, while …

0301 basic medicineKeratinocytesCell SurvivalSwinePharmaceutical Science02 engineering and technologyResveratrolIn Vitro Techniquesmedicine.disease_causeSkin DiseasesAntioxidants03 medical and health scienceschemistry.chemical_compoundDrug StabilityGallic AcidStilbenesGlycerolmedicineAnimalsHumansGallic acidPhenolsParticle SizeBifunctionalPhospholipidsLiposomeChromatographyViscosityVesicleGeneral MedicineSkin Diseases BacterialFibroblasts021001 nanoscience & nanotechnology030104 developmental biologychemistryAnimals NewbornResveratrolLiposomesAnti-Infective Agents Local0210 nano-technologyOxidative stressBiotechnologyEuropean journal of pharmaceutics and biopharmaceutics : official journal of Arbeitsgemeinschaft fur Pharmazeutische Verfahrenstechnik e.V
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Functional response of novel bioprotective poloxamer-structured vesicles on inflamed skin

2017

[EN] Resveratrol and gallic acid, a lipophilic and a hydrophilic phenol, were co-loaded in innovative, biocompatible nanovesicles conceived for ensuring the protection of the skin from oxidative-and inflammatory-related affections. The basic vesicles, liposomes and glycerosomes, were produced by a simple, one-step method involving the dispersion of phospholipid and phenols in water or water/glycerol blend, respectively. Liposomes and glycerosomes were modified by the addition of poloxamer, a stabilizer and viscosity enhancer, thus obtaining viscous or semisolid dispersions of structured vesicles. The vesicles were spherical, unilamellar and small in size (similar to 70 nm in diameter). The …

Materials scienceCell SurvivalSwineSkin AbsorptionBiomedical EngineeringPhospholipidPharmaceutical ScienceMedicine (miscellaneous)Bioengineering02 engineering and technologyPoloxamerResveratrol010402 general chemistry01 natural sciencesCell Linechemistry.chemical_compoundMiceIn vivoGallic AcidStilbenesGlycerolAnimalsEdemaGeneral Materials SciencePhenolsSkinLiposomePhenolVesicleAnti-Inflammatory Agents Non-SteroidalSkin inflammationPoloxamerFibroblasts021001 nanoscience & nanotechnology0104 chemical sciencesOxidative StresschemistryBiochemistryResveratrolLiposomesPhospholipid vesicleBiophysicsMolecular MedicineFemale0210 nano-technology
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Topical anti-inflammatory potential of quercetin in lipid-based nanosystems: In vivo and in vitro evaluation

2013

Purpose: To develop quercetin-loaded phospholipid vesicles, namely liposomes and PEVs (Penetration Enhancer-containing Vesicles), and to investigate their efficacy on TPA-induced skin inflammation. Methods: Vesicles were made from a mixture of phospholipids, quercetin and polyethylene glycol 400 (PEG), specifically added to increase drug solubility and penetration through the skin. Vesicle morphology and self-assembly were probed by Cryo-Transmission Electron Microscopy and Small/Wide Angle X-ray Scattering, as well as the main physico-chemical features by Light Scattering. The anti-inflammatory efficacy of quercetin nanovesicles was assessed in vivo on TPA-treated mice dorsal skin by the d…

dermal fibroblastsmiceSkin AbsorptionAnti-Inflammatory AgentsDrug Evaluation PreclinicalPharmaceutical ScienceInflammationPharmacologyAdministration Cutaneousquercetinchemistry.chemical_compoundX-Ray DiffractionIn vivoskin inflammationmedicineAnimalsheterocyclic compoundsPharmacology (medical)PharmacologyDrug CarriersLiposomevesiclesintegumentary systemVesiclefungiOrganic Chemistry3T3 CellsPenetration (firestop)In vitrochemistryLiposomesNanoparticlesMolecular MedicineFemaleTopical anti-inflammatorymedicine.symptomQuercetinBiotechnology
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Use of poly(amidoamine) drug conjugates for the delivery of antimalarials to Plasmodium

2013

Current malaria therapeutics demands strategies able to selectively deliver drugs to Plasmodium-infected red blood cells (pRBCs) in order to limit the appearance of parasite resistance. Here, the poly(amidoamines) AGMA1 and ISA23 have been explored for the delivery of antimalarial drugs to pRBCs. AGMA1 has antimalarial activity per se as shown by its inhibition of the in vitro growth of Plasmodium falciparum, with an IC50 of 13.7 μM. Fluorescence-assisted cell sorting data and confocal fluorescence microscopy and transmission electron microscopy images indicate that both polymers exhibit preferential binding to and internalization into pRBCs versus RBCs, and subcellular targeting to the par…

Drug3003PlasmodiumPolyamineErythrocytesPrimaquinemedia_common.quotation_subjectmalariaPharmaceutical ScienceAntimalarialPrimaquinePharmacologyParasitemiatargeted drug deliveryAntimalarialsMiceChloroquineparasitic diseasesPolyaminesmedicineAnimalsInternalizationDrug Carriermedia_commonDrug CarriersMice Inbred BALB CbiologyAnimalPlasmodium falciparumChloroquinePoly(amidoamine)polyamidoaminebiology.organism_classificationnanomedicineErythrocyteTargeted drug deliveryFemalepolymer-drug carrierPlasmodium yoeliimedicine.drug
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Development of curcumin loaded sodium hyaluronate immobilized vesicles (hyalurosomes) and their potential on skin inflammation and wound restoring.

2015

In the present work new highly biocompatible nanovesicles were developed using polyanion sodium hyaluronate to form polymer immobilized vesicles, so called hyalurosomes. Curcumin, at high concentration was loaded into hyalurosomes and physico-chemical properties and in vitro/in vivo performances of the formulations were compared to those of liposomes having the same lipid and drug content. Vesicles were prepared by direct addition of dispersion containing the polysaccharide sodium hyaluronate and the polyphenol curcumin to a commercial mixture of soy phospholipids, thus avoiding the use of organic solvents. An extensive study was carried out on the physico-chemical features and properties o…

Materials scienceCurcuminBiocompatibilitySwineSodium hyaluronateBiophysicsBioengineeringDermatitisBiomaterialschemistry.chemical_compoundMicroscopy Electron TransmissionHyaluronic acidAnimalsHumansHyaluronic AcidCells CulturedSkinLiposomeWound HealingVesiclechemistryBiochemistryMechanics of MaterialsCeramics and CompositesCurcuminNanocarriersWound healingBiomaterials
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