0000000000016451

AUTHOR

Laura Besch

showing 4 related works from this author

Bone Scaffolds Based on Degradable Vaterite/PEG‐Composite Microgels

2019

Vaterite, a metastable modification of calcium carbonate, embedded in a flexible microgel packaging with adjustable mechanical properties, functionality, and biocompatibility, provides a powerful scaffolding for bone tissue regeneration, as it is easily convertible to bone-like hydroxyapatite (HA). In this study, the synthesis and physical analysis of a packaging material to encapsulate vaterite particles and osteoblast cells into monodisperse, sub-millimeter-sized microgels, is described whereby a systematic approach is used to tailor the microgel properties. The size and shape of the microgels is controlled via droplet-based microfluidics. Key requirements for the polymer system, such as …

BiocompatibilityDispersityBiomedical EngineeringPharmaceutical Science02 engineering and technology010402 general chemistryBone tissue01 natural sciencesBone and BonesCalcium CarbonateBiomaterialschemistry.chemical_compoundOsteogenesisVateritePEG ratiomedicineddc:610chemistry.chemical_classificationMicrogelsOsteoblastPolymer021001 nanoscience & nanotechnology0104 chemical sciencesmedicine.anatomical_structurechemistryChemical engineering0210 nano-technologyGelsEthylene glycol
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Insights into the In Vitro Formation of Apatite from Mg‐Stabilized Amorphous Calcium Carbonate

2020

Materials sciencechemistry.chemical_elementCalciumCondensed Matter PhysicsApatiteIn vitroAmorphous calcium carbonateElectronic Optical and Magnetic MaterialsAmorphous solidBiomaterialschemistry.chemical_compoundCalcium carbonatechemistryvisual_artElectrochemistryvisual_art.visual_art_mediumNuclear chemistryAdvanced Functional Materials
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Acid‐Cleavable Poly(ethylene glycol) Hydrogels Displaying Protein Release at pH 5

2020

Abstract PEG is the gold standard polymer for pharmaceutical applications, however it lacks degradability. Degradation under physiologically relevant pH as present in endolysosomes, cancerous and inflammatory tissues is crucial for many areas. The authors present anionic ring‐opening copolymerization of ethylene oxide with 3,4‐epoxy‐1‐butene (EPB) and subsequent modification to introduce acid‐degradable vinyl ether groups as well as methacrylate (MA) units, enabling radical cross‐linking. Copolymers with different molar ratios of EPB, molecular weights (M n) up to 10 000 g mol−1 and narrow dispersities (Đ<1.05) were prepared. Both the P(EG‐co‐isoEPB)MA copolymer and the hydrogels showed pH‐…

540 Chemistry and allied sciencesVinyl CompoundsBiocompatible MaterialsDegree of polymerization010402 general chemistry01 natural sciencesCatalysisPolyethylene GlycolsPolymerizationchemistry.chemical_compoundHydrolysisPolymer chemistryPEG ratioCopolymermedicinehydrogelsPolymer Technologieschemistry.chemical_classificationFull PaperEthylene oxide010405 organic chemistryHydrolysisOrganic ChemistryBiochemistry and Molecular BiologyProteinsprotein releaseHydrogelsGeneral ChemistryPolymerFull PapersHydrogen-Ion ConcentrationVinyl etherPolymerteknologiPEG0104 chemical sciencescopolymerizationchemistry540 Chemiedrug deliverySelf-healing hydrogelsMethacrylatesBiokemi och molekylärbiologimedicine.drugChemistry – A European Journal
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Particles of vaterite, a metastable CaCO3polymorph, exhibit high biocompatibility for human osteoblasts and endothelial cells and may serve as a biom…

2018

We have previously described a promising alternative to conventional synthetic bone biomaterials using vaterite, a metastable CaCO3 polymorph that increases the local Ca2+ concentration in vitro and leads to an oversaturation of phosphate, the primary bone mineral. This stimulates a natural bone-like mineralisation in a short period of time. In this study, sterile and endotoxin-free vaterite particles were synthesised in a nearly quantitative yield. The 500-1,000 nm vaterite particles did not exhibit any cytotoxic effects as measured by MTS, lactate dehydrogenase, or crystal violet assays on the human osteoblast cell line (MG-63) exposed to concentrations up to 500 μg/ml vaterite up to 72 h…

BiocompatibilityChemistryCellular differentiationBiomedical EngineeringMedicine (miscellaneous)Biomaterial02 engineering and technology010402 general chemistry021001 nanoscience & nanotechnology01 natural sciences0104 chemical sciencesBiomaterialsCell cultureVateriteSelf-healing hydrogelsBiophysicsAlkaline phosphatase0210 nano-technologyBone regenerationJournal of Tissue Engineering and Regenerative Medicine
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