Once in biological fluids, the surface of nanoparticles (NPs) is rapidly covered with a layer of biomolecules (i.e., the “protein corona”) whose composition strongly determines their biological identity, regulates interactions with biological entities including cells and the immune system, and consequently directs the biological fate and pharmacokinetics of nanoparticles. We recently introduced the concept of a “personalized protein corona” which refers to the formation of different biological identities of the exact same type of NP after being exposed to extract plasmas from individuals who have various types of diseases. As different diseases have distinct metabolomic profiles and metabolites can interact with proteins, it is legitimate t...
Upon contact with plasma or other protein-containing biological fluids, the surface of nanoparticles...
In biological environments, nanoparticles are enshrouded by a layer of biomolecules, predominantly p...
When nanoparticles come into contact with biological media, they are covered by a biomolecular 'coro...
Nanoparticles are currently finding increasing use as drug delivery systems in the treatment of canc...
It is now well known that the primary interactions of biological entities (e. g., tissues and cells)...
It is now well known that the primary interactions of biological entities (e. g., tissues and cells)...
BACKGROUND: Nanoparticles in contact with biological fluids interact with proteins and other biomole...
Injection of nanoparticles (NP) into the bloodstream leads to the formation of a so-called "nano-bio...
Background: Nanoparticles in contact with biological fluids interact with proteins and other biomole...
It is now well understood that once in contact with biological fluids, nanoscale objects lose their ...
When in contact with biological fluids, nanoparticles dynamically absorb biomolecules like proteins ...
In physiological environments (e.g. the blood), nanoparticles (NPs) are surrounded by a layer of bio...
The development and testing of nanomaterials is an area of interest due to promising diagnostic and ...
Upon contact with plasma or other protein-containing biological fluids, the surface of nanoparticles...
In biological environments, nanoparticles are enshrouded by a layer of biomolecules, predominantly p...
When nanoparticles come into contact with biological media, they are covered by a biomolecular 'coro...
Nanoparticles are currently finding increasing use as drug delivery systems in the treatment of canc...
It is now well known that the primary interactions of biological entities (e. g., tissues and cells)...
It is now well known that the primary interactions of biological entities (e. g., tissues and cells)...
BACKGROUND: Nanoparticles in contact with biological fluids interact with proteins and other biomole...
Injection of nanoparticles (NP) into the bloodstream leads to the formation of a so-called "nano-bio...
Background: Nanoparticles in contact with biological fluids interact with proteins and other biomole...
It is now well understood that once in contact with biological fluids, nanoscale objects lose their ...
When in contact with biological fluids, nanoparticles dynamically absorb biomolecules like proteins ...
In physiological environments (e.g. the blood), nanoparticles (NPs) are surrounded by a layer of bio...
The development and testing of nanomaterials is an area of interest due to promising diagnostic and ...
Upon contact with plasma or other protein-containing biological fluids, the surface of nanoparticles...
In biological environments, nanoparticles are enshrouded by a layer of biomolecules, predominantly p...
When nanoparticles come into contact with biological media, they are covered by a biomolecular 'coro...