Search results for "Peptide amphiphile"

showing 5 items of 5 documents

Carboxylated-xyloglucan and peptide amphiphile co-assembly in wound healing.

2021

Abstract Hydrogel wound dressings can play critical roles in wound healing protecting the wound from trauma or contamination and providing an ideal environment to support the growth of endogenous cells and promote wound closure. This work presents a self-assembling hydrogel dressing that can assist the wound repair process mimicking the hierarchical structure of skin extracellular matrix. To this aim, the co-assembly behaviour of a carboxylated variant of xyloglucan (CXG) with a peptide amphiphile (PA-H3) has been investigated to generate hierarchical constructs with tuneable molecular composition, structure, and properties. Transmission electron microscopy and circular dichroism at a low c…

Circular dichroismHYDROGELSwound healingSCAFFOLDSskin tissue engineeringBiomaterialsExtracellular matrixchemistry.chemical_compoundTissue engineeringDESIGNCIRCULAR-DICHROISM SPECTRAPeptide amphiphileABSORPTIONFORMULATIONSRELEASETEMPO-MEDIATED OXIDATIONintegumentary systemself-assemblyXyloglucanSettore ING-IND/22 - Scienza E Tecnologia Dei MaterialiPOLYSACCHARIDEchemistrypeptide nanofiberSelf-healing hydrogelsBiophysicsSettore CHIM/07 - Fondamenti Chimici Delle TecnologieSelf-assemblyAcademicSubjects/SCI01410MEMBRANEhydrogelWound healingAcademicSubjects/MED00010Hydrogel Peptide nanofiber Self-assembly Skin tissue engineering Wound healingResearch ArticleRegenerative biomaterials
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Supramolecular polymerization of sulfated dendritic peptide amphiphiles into multivalent L-selectin binders

2021

The synthesis of a sulfate-modified dendritic peptide amphiphile and its self-assembly into one-dimensional rod-like architectures in aqueous medium is reported. The influence of the ionic strength on the supramolecular polymerization was probed via circular dichroism spectroscopy and cryogenic transmission electron microscopy. Physiological salt concentrations efficiently screen the charges of the dendritic building block equipped with eight sulfate groups and trigger the formation of rigid supramolecular polymers. Since multivalent sulfated supramolecular structures mimic naturally occurring L-selectin ligands, the corresponding affinity was evaluated using a competitive SPR binding assay…

Circular dichroismSupramolecular chemistryPeptidemacromolecular substancesFull Research Paperlcsh:QD241-441lcsh:Organic chemistryAmphiphilePeptide amphiphilelcsh:Sciencel-selectin binderssupramolecular polymerschemistry.chemical_classificationOrganic Chemistrytechnology industry and agriculture547multivalencyCombinatorial chemistryself-assembly in waterSupramolecular polymersChemistry500 Naturwissenschaften und Mathematik::540 Chemie::547 Organische ChemiechemistryPolymerizationIonic strengthlcsh:QBeilstein Journal of Organic Chemistry
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Dynamic In Vivo Biocompatibility of Angiogenic Peptide Amphiphile Nanofibers

2009

Biomaterials that promote angiogenesis have great potential in regenerative medicine for rapid revascularization of damaged tissue, survival of transplanted cells, and healing of chronic wounds. Supramolecular nanofibers formed by self-assembly of a heparin-binding peptide amphiphile and heparan sulfate-like glycosaminoglycans were evaluated here using a dorsal skinfold chamber model to dynamically monitor the interaction between the nanofiber gel and the microcirculation, representing a novel application of this model. We paired this model with a conventional subcutaneous implantation model for static histological assessment of the interactions between the gel and host tissue. In the stati…

Materials scienceBiocompatibilityAngiogenesisBiophysicsConnective tissueBioengineeringBiocompatible Materials02 engineering and technology010402 general chemistry01 natural sciencesRegenerative medicineArticleMicrocirculationBiomaterialsMiceImplants ExperimentalFluorescence microscopemedicinePeptide amphiphileAnimalsAngiogenic ProteinsMicrocirculation021001 nanoscience & nanotechnology0104 chemical sciences3. Good healthmedicine.anatomical_structureMicroscopy FluorescenceMechanics of MaterialsNanofiberCeramics and CompositesFemaleHeparitin Sulfate0210 nano-technologyBiomedical engineering
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Programmable assembly of peptide amphiphile via noncovalent-to-covalent bond conversion

2017

Controlling the number of monomers in a supramolecular polymer has been a great challenge in programmable self-assembly of organic molecules. One approach has been to make use of frustrated growth of the supramolecular assembly by tuning the balance of attractive and repulsive intermolecular forces. We report here on the use of covalent bond formation among monomers, compensating for intermolecular electrostatic repulsion, as a mechanism to control the length of a supramolecular nanofiber formed by self-assembly of peptide amphiphiles. Circular dichroism spectroscopy in combination with dynamic light scattering, size-exclusion chromatography, and transmittance electron microscope analyses r…

Mechanical bondStereochemistryChemistry MultidisciplinaryStatic ElectricitySupramolecular chemistry02 engineering and technology010402 general chemistryPhotochemistryNANOSTRUCTURES01 natural sciencesBiochemistryArticleCatalysisSupramolecular assemblySurface-Active AgentsColloid and Surface ChemistryMicroscopy Electron TransmissionSYSTEMSPeptide amphiphileDRUG-DELIVERYCONTROLLED LENGTHchemistry.chemical_classificationScience & TechnologyMICELLESMolecular StructureChemistryHydrogen bondIntermolecular forceHydrogen BondingGeneral Chemistry021001 nanoscience & nanotechnology0104 chemical sciencesSUPRAMOLECULAR POLYMERSSupramolecular polymersChemistryPOLYMERIZATIONCovalent bondPhysical SciencesGROWTHPeptides0210 nano-technologyNANOFIBERS
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Interfacial Self-Assembly to Spatially Organize Graphene Oxide Into Hierarchical and Bioactive Structures

2020

Multicomponent self-assembly holds great promise for the generation of complex and functional biomaterials with hierarchical microstructure. Here, we describe the use of supramolecular co-assembly between an elastin-like recombinamer (ELR5) and a peptide amphiphile (PA) to organize graphene oxide (GO) flakes into bioactive structures across multiple scales. The process takes advantage of a reaction—diffusion mechanism to enable the incorporation and spatial organization of GO within multiple ELR5/PA layers. Scanning electron microscopy (SEM), transmission electron microscopy (TEM), and ImageJ software were used to demonstrate the hierarchical organization of GO flakes within the ELR5/PA lay…

TechnologyMaterials scienceBiocompatibilityScanning electron microscopeMaterials Science (miscellaneous)Materials Sciencecomposite materialsFABRICATIONMaterials Science Multidisciplinaryhierarchical biomaterialsNanotechnology02 engineering and technology010402 general chemistrylcsh:Technology01 natural scienceselastin-like recombinamerlaw.inventionDESIGNlawPeptide amphiphileBIOMATERIALS0912 Materials EngineeringCHITOSANScience & Technology1007 Nanotechnologylcsh:TGrapheneSCAFFOLD021001 nanoscience & nanotechnologyMicrostructurepeptide amphiphiles0104 chemical sciencesmulticomponent self-assemblyDIFFERENTIATIONMembraneTransmission electron microscopygraphene oxideSelf-assembly0210 nano-technologyFILMFrontiers in Materials
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