Search results for "SCAFFOLD"

showing 10 items of 470 documents

Robust Antigen-Specific T Cell Activation within Injectable 3D Synthetic Nanovaccine Depots

2021

Contains fulltext : 244693.pdf (Publisher’s version ) (Open Access) Synthetic cancer vaccines may boost anticancer immune responses by co-delivering tumor antigens and adjuvants to dendritic cells (DCs). The accessibility of cancer vaccines to DCs and thereby the delivery efficiency of antigenic material greatly depends on the vaccine platform that is used. Three-dimensional scaffolds have been developed to deliver antigens and adjuvants locally in an immunostimulatory environment to DCs to enable sustained availability. However, current systems have little control over the release profiles of the cargo that is incorporated and are often characterized by an initial high-burst release. Here,…

Cancer development and immune defence Radboud Institute for Molecular Life Sciences [Radboudumc 2]T-LymphocytesT cellBiomedical Engineering02 engineering and technologySDG 3 – Goede gezondheid en welzijnantigen-specific T cellsCancer VaccinesArticleBiomaterials03 medical and health sciencesbiomaterial-based scaffoldsImmune systemAntigenSDG 3 - Good Health and Well-beingAntigen specificControlled deliverymedicineLactic Aciddendritic cells030304 developmental biology0303 health sciencesChemistryBiomaterial021001 nanoscience & nanotechnologyCell biologymedicine.anatomical_structureDelivery efficiencynanoparticles0210 nano-technologycancer vaccinationNanomedicine Radboud Institute for Molecular Life Sciences [Radboudumc 19]Polyglycolic Acid
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Epicardial delivery of collagen patches with adipose-derived stem cells in rat and minipig models of chronic myocardial infarction.

2013

Although transplantation of adipose-derived stem cells (ADSC) in chronic myocardial infarction (MI) models is associated with functional improvement, its therapeutic value is limited due to poor long-term cell engraftment and survival. Thus, the objective of this study was to examine whether transplantation of collagen patches seeded with ADSC could enhance cell engraftment and improve cardiac function in models of chronic MI. With that purpose, chronically infarcted Sprague-Dawley rats (n = 58) were divided into four groups and transplanted with media, collagen scaffold (CS), rat ADSC, or CS seeded with rat ADSC (CS-rADSC). Cell engraftment, histological changes, and cardiac function were …

Cardiac function curvemedicine.medical_specialtySwinemedicine.medical_treatmentBiophysicsMyocardial InfarctionAdipose tissueBioengineeringRevascularizationBiomaterialsRats Sprague-DawleyVasculogenesisFibrosisInternal medicinemedicineAnimalsMyocardial infarctionTissue Scaffoldsbusiness.industryHeartmedicine.diseaseRatsTransplantationDisease Models Animalsurgical procedures operativeAdipose TissueMechanics of MaterialsChronic DiseaseCeramics and CompositesCardiologySwine MiniatureCollagenStem cellbusinessPericardiumStem Cell TransplantationBiomaterials
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Biostable Scaffolds of Polyacrylate Polymers Implanted in the Articular Cartilage Induce Hyaline-Like Cartilage Regeneration in Rabbits

2017

[EN] Purpose: To study the influence of scaffold properties on the organization of ¿in vivo¿ cartilage regeneration. Our hypothesis is that stress transmission to the cells seeded inside the scaffold pores or surrounding it, which is highly dependent on the scaffold properties, determine differentiation of both mesenchymal cells and dedifferentiated autologous chondrocytes. Methods: Four series of porous scaffolds made of different polyacrylate polymers, previously seeded with cultured rabbit chondrocytes or without cells preseeded, were implanted in cartilage defects in rabbits. Subchondral bone was always injured during the surgery in order to allow blood to reach the implantation site an…

Cartilage ArticularHyalinScaffold0206 medical engineeringBiomedical EngineeringMedicine (miscellaneous)Biocompatible MaterialsBioengineering02 engineering and technologyBiomaterialsBiopolymersChondrocytesTissue engineeringIn vivomedicineAnimalsRegenerationTissue engineeringOriginal Research ArticleHyalineScaffoldschemistry.chemical_classificationTissue ScaffoldsGuided Tissue RegenerationRegeneration (biology)CartilageMesenchymal stem cellCell DifferentiationMesenchymal Stem CellsGeneral MedicinePolymerAnatomy021001 nanoscience & nanotechnology020601 biomedical engineeringAnimal modelsDisease Models AnimalCartilagemedicine.anatomical_structureAcrylateschemistryFISICA APLICADAMAQUINAS Y MOTORES TERMICOSRabbits0210 nano-technologyBiomedical engineeringThe International Journal of Artificial Organs
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PLLA scaffolds produced by thermally induced phase separation (TIPS) allow human chondrocyte growth and extracellular matrix formation dependent on p…

2016

Damage of hyaline cartilage species such as nasoseptal or joint cartilage requires proper reconstruction, which remains challenging due to the low intrinsic repair capacity of this tissue. Implantation of autologous chondrocytes in combination with a biomimetic biomaterial represents a promising strategy to support cartilage repair. The aim of this work was to assess the viability, attachment, morphology, extracellular matrix (ECM) production of human articular and nasoseptal chondrocytes cultured in vitro in porous poly(L-lactic) (PLLA) scaffolds of two selected pore sizes (100 and 200 μm). The PLLA scaffolds with 100 and 200 μm pore sizes were prepared via ternary thermally induced ph…

Cartilage ArticularMaterials sciencePolyesters0206 medical engineeringType II collagenBioengineeringCondensed Matter Physic02 engineering and technologyChondrocyteBiomaterialsExtracellular matrixChondrocytesTissue engineeringmedicineHumansMechanics of MaterialCells CulturedAggrecanType II collagenSettore ING-IND/24 - Principi Di Ingegneria ChimicaTissue EngineeringTissue ScaffoldsHyaline cartilageMechanical EngineeringCartilageSettore ING-IND/34 - Bioingegneria IndustrialeAnatomy021001 nanoscience & nanotechnology020601 biomedical engineeringExtracellular MatrixArticular chondrocyteCartilagemedicine.anatomical_structureMechanics of MaterialsBiophysicsPoly(L)lactic acidMaterials Science (all)0210 nano-technologyPorosityNasoseptal chondrocyteType I collagenMaterials Science and Engineering: C
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Highly porous novel chondro-instructive bioactive glass scaffolds tailored for cartilage tissue engineering

2021

Abstract Cartilage injuries remain challenging since the regenerative capacity of cartilage is extremely low. The aim was to design a novel type of bioactive glass (BG) scaffold with suitable topology that allows the formation of cartilage-specific extracellular matrix (ECM) after colonization with chondrogenic cells for cartilage repair. Highly porous scaffolds with interconnecting pores consisting of 100 % BG were manufactured using a melting, milling, sintering and leaching technique. Scaffolds were colonized with porcine articular chondrocytes (pAC) and undifferentiated human mesenchymal stromal cells (hMSC) for up to 35 days. Scaffolds displayed high cytocompatibility with no major pH …

Cartilage ArticularMaterials scienceSwineType II collagenBioengineeringCell morphologylaw.inventionBiomaterialsExtracellular matrixChondrocyteslawmedicineAnimalsHumansCells CulturedAggrecanTissue EngineeringTissue ScaffoldsCartilageMesenchymal stem cellChondrogenesisCell biologyCartilagemedicine.anatomical_structureMechanics of MaterialsBioactive glassChondrogenesisPorosityMaterials Science and Engineering: C
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Phenotypic redifferentiation and cell cluster formation of cultured human articular chondrocytes in a three-dimensional oriented gelatin scaffold in …

2013

Modern tissue engineering strategies comprise three elemental parameters: cells, scaffolds and growth factors. Articular cartilage represents a highly specialized tissue which allows frictionless gliding of corresponding articulating surfaces. As the regenerative potential of cartilage is low, tissue engineering-based strategies for cartilage regeneration represent a huge challenge. Prostaglandins function as regulators in cartilage development and metabolism, especially in growth plate chondrocytes. In this study, it was analyzed if prostaglandin E2 (PGE2) has an effect on the phenotypic differentiation of human chondrocytes cultured in a three-dimensional (3D) gelatin-based scaffold made …

Cartilage ArticularScaffoldMaterials sciencefood.ingredientBiomedical EngineeringPilot ProjectsGelatinCollagen Type IDinoprostoneBiomaterials3D cell cultureChondrocytesfoodTissue engineeringmedicineHumansCollagen Type IICells CulturedTissue EngineeringTissue ScaffoldsCartilageRegeneration (biology)Metals and AlloysCell DifferentiationPhenotypeCell biologymedicine.anatomical_structureGene Expression RegulationCeramics and CompositesGelatinFunction (biology)Biomedical engineeringJournal of Biomedical Materials Research Part A
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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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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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κ-Carrageenan and PVA blends as bioinks to 3D print scaffolds for cartilage reconstruction.

2022

3D printing of polymeric scaffolds and autologous stem cells is a promising tool for damaged facial cartilage reconstruction surgeries. To this end, suitable bioinks are needed to generate scaffolds with the required morphological and functional features. We formulated hydrogel bioinks using k-Carrageen (kC) and poly(vinyl alcohol) (PVA) in three different weight ratios. The kC gives the systems the ability to undergo rapid sol-to-gel transitions upon cooling from 60 °C and above to body temperature, while the PVA is used as rheology modifier and porogen. The latter is crosslinked after molding or printing by freeze-thaw cycling for 1 day (FT1) or 5 days (FT5). To select the most suitable f…

CartilageTissue ScaffoldsTissue EngineeringStructural BiologyPrinting Three-DimensionalHydrogelsGeneral MedicineCarrageenanMolecular BiologyBiochemistryspheroids from human adipose stem cells 3D printing hydrogel bioinksInternational journal of biological macromolecules
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Implantation of a polycaprolactone scaffold with subchondral bone anchoring ameliorates nodules formation and other tissue alterations

2015

Purpose: Articular cartilage has limited repair capacity. Two different implant devices for articular cartilage regeneration were tested in vivo in a sheep model to evaluate the effect of subchondral bone anchoring for tissue repair. Methods: The implants were placed with press-fit technique in a cartilage defect after microfracture surgery in the femoral condyle of the knee joint of the sheep and histologic and mechanical evaluation was done 4.5 months later. The first group consisted of a biodegradable polycaprolactone (PCL) scaffold with double porosity. The second test group consisted of a PCL scaffold attached to a poly(L-lactic acid) (PLLA) pin anchored to the subchondral bone. Result…

CartílagsCartilage ArticularScaffoldTime FactorsPolymersPolyestersBiomedical EngineeringMedicine (miscellaneous)BioengineeringKnee JointBone NailsProsthesis DesignBiomaterials03 medical and health scienceschemistry.chemical_compound0302 clinical medicineTissue engineeringTeixit ossiAbsorbable ImplantsmedicineAnimalsOrthopedic ProceduresTissue engineeringLactic Acid030222 orthopedicsSheepTissue ScaffoldsChemistryCartilageRegeneration (biology)Cartilage engineering030229 sport sciencesGeneral MedicineChondrogenesisSubchondral bone alterationsPolycaprolactonemedicine.anatomical_structureFISICA APLICADAPolycaprolactoneModels AnimalMAQUINAS Y MOTORES TERMICOSFemaleJointsImplantChondrogenesisPorosityBiomedical engineering
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