0000000000286643

AUTHOR

Hartmut Oehring

showing 2 related works from this author

Comparative evaluation of the impact on endothelial cells induced by different nanoparticle structures and functionalization

2015

In the research field of nanoparticles, many studies demonstrated a high impact of the shape, size and surface charge, which is determined by the functionalization, of nanoparticles on cell viability and internalization into cells. This work focused on the comparison of three different nanoparticle types to give a better insight into general rules determining the biocompatibility of gold, Janus and semiconductor (quantum dot) nanoparticles. Endothelial cells were subject of this study, since blood is the first barrier after intravenous nanoparticle application. In particular, stronger effects on the viability of endothelial cells were found for nanoparticles with an elongated shape in compa…

Materials scienceBiocompatibilitymedia_common.quotation_subjectJanus particlesGeneral Physics and AstronomyNanoparticleJanus particlesNanotechnologyquantum dotslcsh:Chemical technologylcsh:TechnologyFull Research PaperNanotechnologylcsh:TP1-1185General Materials ScienceViability assayElectrical and Electronic Engineeringlcsh:ScienceInternalizationNanoparticle Applicationcell viabilitymedia_commonlcsh:Tlcsh:QC1-999internalizationNanoscienceColloidal goldgold nanoparticlesSurface modificationlcsh:Qlcsh:PhysicsBeilstein Journal of Nanotechnology
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Anti-oxidative effects and harmlessness of asymmetric Au@Fe3O4 Janus particles on human blood cells

2014

AbstractThe physical properties of asymmetric Janus particles are highly promising for future biomedical applications. However, only a few data is available on their biological impact on human cells. We investigated the biological impact of different Au@Fe3O4 Janus particle formulations in vitro to analyse specific uptake modalities and their potential cytotoxic effects on human cells of the blood regarding intravenous injection. We demonstrate that Au@Fe3O4 Janus particles exhibit a similar or even better biocompatibility compared to the well-studied spherical iron oxide nanoparticles. The impact of Janus particles on cells depends mainly on three factors. (1) Surface functionalization: NH…

Blood cellsMaterials scienceBiophysicsUptakeNanoparticleBioengineeringJanus particlesNanotechnologyBiomaterialsCell membranechemistry.chemical_compoundAmino functionalizationmedicineJanusCell metabolismAdhesionJanus particlemedicine.anatomical_structurechemistryMechanics of MaterialsCeramics and CompositesBiophysicsParticleSurface modificationCell membraneIron oxide nanoparticlesBiomaterials
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