When nanomaterials enter biological fluids, they are immediately covered by biomolecules, particularly proteins, forming the so-called protein corona. The dynamic nature and complexity of the protein corona can impact upon the biological effects and distribution of nanomaterials with an organism. Therefore, the protein corona is an important factor in determining the biological impact of any nanomaterials. The protein adsorption pattern is determined by various factors, including the bio-fluids’ protein composition, the nanomaterials’ physicochemical properties, as well as the time and type of exposure. Predominantly, research has focused upon spherical nano-objects, however, due to their ever-increasing potential use within human based app...
International audienceProtein adsorption on a surface is generally evaluated in terms of the evoluti...
Nanoparticles used for biological and biomedical applications encounter a host of extracellular prot...
International audienceMagnetic mesoporous silica nanoparticles (M-MSNs) represent promising targetin...
International audienceBiomolecules, and particularly proteins, bind on nanoparticle (NP) surfaces to...
When nanoparticles enter biological environments, proteins adsorb to form the "protein corona" which...
International audienceProtein adsorption on nanoparticles is an important field of study, particular...
When nanoparticles are exposed to biological environments, proteins rapidly adsorb to the surface an...
International audienceProtein adsorption on nanoparticles is an important field of study, particular...
Interaction of nanoparticles with proteins is the basis of nanoparticle bio-reactivity. This interac...
In biological environments, nanoparticles are enshrouded by a layer of biomolecules, predominantly p...
International audienceProtein adsorption on nanoparticles is an important field of study, particular...
International audienceProtein adsorption on a surface is generally evaluated in terms of the evoluti...
Nanoparticles used for biological and biomedical applications encounter a host of extracellular prot...
International audienceMagnetic mesoporous silica nanoparticles (M-MSNs) represent promising targetin...
International audienceBiomolecules, and particularly proteins, bind on nanoparticle (NP) surfaces to...
When nanoparticles enter biological environments, proteins adsorb to form the "protein corona" which...
International audienceProtein adsorption on nanoparticles is an important field of study, particular...
When nanoparticles are exposed to biological environments, proteins rapidly adsorb to the surface an...
International audienceProtein adsorption on nanoparticles is an important field of study, particular...
Interaction of nanoparticles with proteins is the basis of nanoparticle bio-reactivity. This interac...
In biological environments, nanoparticles are enshrouded by a layer of biomolecules, predominantly p...
International audienceProtein adsorption on nanoparticles is an important field of study, particular...
International audienceProtein adsorption on a surface is generally evaluated in terms of the evoluti...
Nanoparticles used for biological and biomedical applications encounter a host of extracellular prot...
International audienceMagnetic mesoporous silica nanoparticles (M-MSNs) represent promising targetin...