Search results for "Biocompatibility"

showing 10 items of 233 documents

Poly-sarcosine and poly(ethylene-glycol) interactions with proteins investigated using molecular dynamics simulations

2018

Nanoparticles coated with hydrophilic polymers often show a reduction in unspecific interactions with the biological environment, which improves their biocompatibility. The molecular determinants of this reduction are not very well understood yet, and their knowledge may help improving nanoparticle design. Here we address, using molecular dynamics simulations, the interactions of human serum albumin, the most abundant serum protein, with two promising hydrophilic polymers used for the coating of therapeutic nanoparticles, poly(ethylene-glycol) and poly-sarcosine. By simulating the protein immersed in a polymer-water mixture, we show that the two polymers have a very similar affinity for the…

SarcosineBiocompatibilityPoly-peptoidlcsh:BiotechnologyBiophysicsFOS: Physical sciencesNanoparticle02 engineering and technologyCondensed Matter - Soft Condensed MatterProtein aggregation010402 general chemistry01 natural sciencesBiochemistryNanoparticle protein coronachemistry.chemical_compoundMolecular dynamicsAdsorptionStructural Biologylcsh:TP248.13-248.65GeneticsmedicinePhysics - Biological Physicschemistry.chemical_classificationBiomolecules (q-bio.BM)MD simulationPolymer021001 nanoscience & nanotechnologyHuman serum albuminPEG0104 chemical sciencesComputer Science ApplicationsQuantitative Biology - BiomoleculeschemistryChemical engineeringBiological Physics (physics.bio-ph)FOS: Biological sciencesSoft Condensed Matter (cond-mat.soft)Poly-sarcosine0210 nano-technologyResearch ArticleBiotechnologymedicine.drug
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Channeled scaffolds implanted in adult rat brain.

2012

Scaffolds with aligned channels based on acrylate copolymers, which had previously demonstrated good com- patibility with neural progenitor cells were studied as coloniz- able structures both in vitro with neural progenitor cells and in vivo, implanted without cells in two different locations, in the cortical plate of adult rat brains and close to the subven- tricular zone. In vitro, neuroprogenitors colonize the scaffold and differentiate into neurons and glia within its channels. When implanted in vivo immunohistochemical analysis by confocal microscopy for neural and endothelial cells markers demonstrated that the scaffolds maintained continuity with the surrounding neural tissue and wer…

ScaffoldAgingMaterials scienceAngiogenesisbrainBiomedical EngineeringSubventricular zoneNeovascularization PhysiologicScaffold SeedingNeural tissue engineeringGlial scarScaffoldBiomaterialsangiogenesisbiocompatibilityImplants ExperimentalNeural Stem CellsIn vivomedicineAnimalsRats WistarCerebral CortexNeuronsTissue ScaffoldsMetals and AlloysBrainCell DifferentiationNeural stem cellRatsAdult Stem Cellsmedicine.anatomical_structureMicroscopy FluorescenceMAQUINAS Y MOTORES TERMICOSCeramics and CompositesMicroscopy Electron ScanningFemaleneural regenerationNeurogliaBiomedical engineeringStem Cell TransplantationJournal of biomedical materials research. Part A
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Biosilica-loaded poly(ϵ-caprolactone) nanofibers mats provide a morphogenetically active surface scaffold for the growth and mineralization of the os…

2014

Bioprinting/3D cell printing procedures for the preparation of scaffolds/implants have the potential to revolutionize regenerative medicine. Besides biocompatibility and biodegradability, the hardness of the scaffold material is of critical importance to allow sufficient mechanical protection and, to the same extent, allow migration, cell–cell, and cell–substrate contact formation of the matrix-embedded cells. In the present study, we present a strategy to encase a bioprinted, cell-containing, and soft scaffold with an electrospun mat. The electrospun poly(e-caprolactone) (PCL) nanofibers mats, containing tetraethyl orthosilicate (TEOS), were subsequently incubated with silicatein. Silicate…

ScaffoldBiocompatibilityPolyestersNanofibersOsteoclastsNanotechnologyBiocompatible MaterialsApplied Microbiology and BiotechnologyMineralization (biology)chemistry.chemical_compoundCalcification PhysiologicOsteoclastCell Line TumormedicineHumansNanotechnologySaos-2 cellsCell ProliferationTissue ScaffoldsChemistrytechnology industry and agricultureGeneral MedicineSilicon DioxideElectrospinning3. Good healthTetraethyl orthosilicatemedicine.anatomical_structureChemical engineeringNanofiberMolecular MedicineBiotechnologyBiotechnology journal
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The use of hydrogels in bone-tissue engineering

2010

Many different types of scaffold materials have been used for tissue engineering applications, and hydrogels form one group of materials that have been used in a wide variety of applications. Hydrogels are hydrophilic polymer networks and they represent an important class of biomaterials in biotechnology and medicine because many hydrogels exhibit excellent biocompatibility with minimal inflammatory responses and tissue damage. Many studies have demonstrated the use of hydrogels in bone-tissue engineering applications. In this report, the summary was conducted on various kinds of polymers and different modification methods of hydrogels to enhance bone formation. The results revealed that hy…

ScaffoldBiocompatibilityTissue EngineeringTissue ScaffoldsChemistrytechnology industry and agricultureNanotechnologyHydrogelsmacromolecular substances:CIENCIAS MÉDICAS [UNESCO]complex mixturesBone tissue engineeringBone and BonesOtorhinolaryngologyTissue engineeringTissue damageSelf-healing hydrogelsUNESCO::CIENCIAS MÉDICASSurgeryBone formationBone regenerationGeneral Dentistry
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Electrospun PHEA-PLA/PCL Scaffold for Vascular Regeneration: A Preliminary in Vivo Evaluation

2017

Abstract Background There is increasing interest in the development of vessel substitutes, and many studies are currently focusing on the development of biodegradable scaffolds capable of fostering vascular regeneration. We tested a new biocompatible and biodegradable material with mechanical properties similar to those of blood vessels. Methods The material used comprises a mixture of α,β-poly(N-2-hydroxyethyl)- d,l -aspartamide (PHEA) and polylactic acid (PLA), combined with polycaprolactone (PCL) by means of electrospinning technique. Low-molecular-weight heparin was also linked to the copolymer. A tubular PHEA-PLA/PCL sample was used to create an arteriovenous fistula in a pig model wit…

ScaffoldMaterials scienceBiocompatibilityPolymersSwinePolyesters0206 medical engineering02 engineering and technologySettore MED/22 - Chirurgia VascolareNeovascularizationchemistry.chemical_compoundPolylactic acidBlood vessel prosthesismedicineAnimalsTransplantationRegeneration (biology)Bioabsorbable scaffold Bioengineered vascular scaffold Experimental surgery021001 nanoscience & nanotechnology020601 biomedical engineeringBlood Vessel ProsthesisSettore MED/18 - Chirurgia GeneraleCoagulative necrosischemistrySettore CHIM/09 - Farmaceutico Tecnologico ApplicativoPolycaprolactoneSurgerymedicine.symptomPeptides0210 nano-technologyBiomedical engineeringTransplantation Proceedings
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A COMPOSITE PLLA SCAFFOLD FOR REGENERATION OF COMPLEX TISSUES

2010

A composite biodegradable scaffold incorporating an integrated network of synthetic blood vessels was designed and prepared, in line with the requirements of a scaffold effectively supporting the regeneration of highly vascularized tissues. In other words, this composite scaffold should allow the regeneration of complex injured tissue (e.g. dermis) and, at the same time, favour the development of a vascular network on its inner, i.e. a 3D polymeric scaffolds embedding synthetic blood vessel-like structures for nutrient supply and metabolite removal. PLLA assures a high degree of biocompatibility and a low level of inflammation response upon implantation, while the embedded tubular vessel-li…

ScaffoldSettore ING-IND/24 - Principi Di Ingegneria ChimicaSettore ING-IND/26 - Teoria Dello Sviluppo Dei Processi ChimiciMaterials scienceBiocompatibilityRegeneration (biology)Composite numberPlla scaffoldPhase separation tissue engineering Poly-L-Lactic acidmedicine.anatomical_structureDermisTissue engineeringBiodegradable scaffoldSettore BIO/10 - BiochimicaTissue engineering vasculogenesis Poly-lactic acidmedicineGeneral Materials ScienceBiomedical engineering
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In vitro validation of biomedical polyester-based scaffolds: Poly(lactide-co-glycolide) as model-case

2018

[EN] Monitoring and understanding the in vitro behaviour of polyester based scaffolds both comprising the study of the hydrolytic degradation and the cell seeding viability is essential to ensure the desired functionality, according to a given biomedical purpose. As a model case to compare the performance of techniques to monitor the in vitro behaviour, poly(lactide-co-glycolide) (PLGA) scaffolds were chosen. The in vitro hydrolytic degradation of PLGA scaffolds was carried out in water and phosphate buffered saline (PBS). The evolution of the mass loss, the molar mass, the thermal properties and the surface morphology were monitored. The hydrolytic degradation media was correspondingly eva…

ScaffoldSolucions polimèriquesMaterials sciencePolymers and PlasticsBiocompatibilitypoly(lactide-co-glycolide) (PLGA)Polyester02 engineering and technology010402 general chemistry01 natural sciencesScaffoldchemistry.chemical_compoundCIENCIA DE LOS MATERIALES E INGENIERIA METALURGICAPoly(lactide-co-glycolide) (PLGA)Cell adhesionMaterialsMolar massOrganic ChemistryPolymer testing021001 nanoscience & nanotechnologyIn vitro0104 chemical sciencesPolyesterPLGAchemistryIn vitro validationMAQUINAS Y MOTORES TERMICOSDegradation (geology)BiocompatibilityMATEMATICA APLICADA0210 nano-technologyBiomedical engineeringPolymer Testing
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Fine-tuning scaffolds for tissue regeneration: effects of formic acid processing on tissue reaction to silk fibroin

2010

Formic acid (FA) plays a key role in the preparation of silk fibroin (SF) scaffolds from cocoons of Bombyx mori and is used for fibre distribution. In this study, we used a subcutaneous implantation model in Wistar rats to examine SF scaffolds prepared by treating the degummed cocoon with FA for either 30 or 60 min. The tissue reaction and inflammatory response to SF was assessed by qualitative histology at intervals from 3 to 180 days. Additionally, dynamic biomaterial-induced vascularization and biomaterial degradation were quantified using a technique for analysing an image of the entire implanted biomaterial. Varying the FA treatment time led to different scaffold morphologies and resul…

ScaffoldTime FactorsFormatesBiocompatibilityBiomedical EngineeringNeovascularization PhysiologicMedicine (miscellaneous)FibroinConnective tissueRegenerative MedicineRegenerative medicineBiomaterialsTissue engineeringmedicineAnimalsRegenerationRats WistarStaining and LabelingTissue EngineeringTissue ScaffoldsChemistryBiomaterialHistologyRatsmedicine.anatomical_structureMicroscopy Electron ScanningFibroinsBiomedical engineeringJournal of Tissue Engineering and Regenerative Medicine
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Conductive polycaprolactone/gelatin/polyaniline nanofibres as functional scaffolds for cardiac tissue regeneration

2022

Abstract The endorsement of functional features such as biocompatibility, mechanical integrity, or electrical conductivity to tissue engineering (TE) scaffolds is essential to stimulate cell adhesion and proliferation. In this study, electrospun nanofibers based on polycaprolactone (PCL) and gelatin (Ge) (ratios 60/40, 50/50, and 40/60), and polyaniline (PAni) particles (0.25, 0.50, and 1.00%wt) were prepared. The time of dissolution in an acid solvent mixture before electrospinning allowed for obtaining nanofibers with controlled features. Changes in the molar mass (Mn from 90·103 to 15·103 g·mol−1), in the crystalline microstructure (Xc from 60 to 25%) and the surface morphology (diameter…

Semiconductors orgànicsMolar massfood.ingredientSolucions polimèriquesPolymers and PlasticsBiocompatibilityGeneral Chemical EngineeringGeneral ChemistryBiochemistryGelatinElectrospinningchemistry.chemical_compoundfoodchemistryTissue engineeringChemical engineeringNanofiberPolyanilinePolycaprolactoneMaterials ChemistryEnvironmental ChemistryEnginyeria biomèdica
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Cooperative Catechol-Functionalized Polypept(o)ide Brushes and Ag Nanoparticles for Combination of Protein Resistance and Antimicrobial Activity on M…

2018

Prevention of biofouling and microbial contamination of implanted biomedical devices is essential to maintain their functionality and biocompatibility. For this purpose, polypept(o)ide block copolymers have been developed, in which a protein-resistant polysarcosine (pSar) block is combined with a dopamine-modified poly(glutamic acid) block for surface coating and silver nanoparticles (Ag NPs) formation. In the development of a novel, versatile, and biocompatible antibacterial surface coating, block lengths pSar were varied to derive structure-property relationships. Notably, the catechol moiety performs two important tasks in parallel; primarily it acts as an efficient anchoring group to me…

SilverPolymers and PlasticsBiocompatibilityDopamineCatecholsOxideBioengineering02 engineering and technology010402 general chemistry01 natural sciencesSilver nanoparticleBiomaterialsBiofoulingchemistry.chemical_compoundAnti-Infective AgentsMaterials ChemistryCopolymerMoietyCatecholOxides021001 nanoscience & nanotechnologyCombinatorial chemistry0104 chemical sciencesSurface coatingPolyglutamic AcidchemistryNanoparticles0210 nano-technologyBiomacromolecules
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