In the past few years, characterization of the protein corona (PC) that forms around liposomal systems has gained increasing interest for the development of novel therapeutic and diagnostic technologies. At the crossroads of fast-moving research fields, the interdisciplinarity of protein corona investigations poses challenges for experimental design and reporting. Isolation of liposome-protein complexes from biological fluids has been identified as a fundamental step of the entire workflow of PC characterization but exact specifications for conditions to optimize pelleting remain elusive. In the present work, key factors affecting precipitation of liposome-protein complexes by centrifugation, including time of centrifugation, total sample v...
The adsorption of proteins and their layering onto nanoparticle surfaces has been called the “protei...
The self‐assembled layered adsorption of proteins onto nanoparticle (NP) surfaces, once in contact w...
Corona formation in biological fluids strongly affects nanomedicine interactions with cells. However...
Methodological constraints have limited our ability to study protein corona formation, slowing nanom...
Following systemic administration, liposomes are covered by a ‘corona’ of proteins, and preserving t...
Nano-sized objects such as liposomes are modified by adsorption of biomolecules in biological fluids...
This trends article describes the analytical approaches for the in-depth characterization of the pro...
When drug nanocarriers enter a physiological environment, their surface gets coated by a dynamic bio...
Protein adsorption to the surface of a nanoparticle can fundamentally alter the character, behavior,...
When liposomes are exposed to biological fluids, a dynamic coating of proteins immediately covers th...
In physiological environments (e.g. the blood), nanoparticles (NPs) are surrounded by a layer of bio...
A thorough understanding of interactions occurring at the interface between nanocarriers and biologi...
As soon as nanomaterials, such as nanoparticles (NPs), are injected into a physiological environment...
International audienceIn order to direct nanocarriers to their targets efficiently, we have to under...
Background: When nanoparticles (NPs) are applied into a biological fluid, such as blood, proteins bi...
The adsorption of proteins and their layering onto nanoparticle surfaces has been called the “protei...
The self‐assembled layered adsorption of proteins onto nanoparticle (NP) surfaces, once in contact w...
Corona formation in biological fluids strongly affects nanomedicine interactions with cells. However...
Methodological constraints have limited our ability to study protein corona formation, slowing nanom...
Following systemic administration, liposomes are covered by a ‘corona’ of proteins, and preserving t...
Nano-sized objects such as liposomes are modified by adsorption of biomolecules in biological fluids...
This trends article describes the analytical approaches for the in-depth characterization of the pro...
When drug nanocarriers enter a physiological environment, their surface gets coated by a dynamic bio...
Protein adsorption to the surface of a nanoparticle can fundamentally alter the character, behavior,...
When liposomes are exposed to biological fluids, a dynamic coating of proteins immediately covers th...
In physiological environments (e.g. the blood), nanoparticles (NPs) are surrounded by a layer of bio...
A thorough understanding of interactions occurring at the interface between nanocarriers and biologi...
As soon as nanomaterials, such as nanoparticles (NPs), are injected into a physiological environment...
International audienceIn order to direct nanocarriers to their targets efficiently, we have to under...
Background: When nanoparticles (NPs) are applied into a biological fluid, such as blood, proteins bi...
The adsorption of proteins and their layering onto nanoparticle surfaces has been called the “protei...
The self‐assembled layered adsorption of proteins onto nanoparticle (NP) surfaces, once in contact w...
Corona formation in biological fluids strongly affects nanomedicine interactions with cells. However...