AbstractDendrimers are branched polymers with spherical morphology. Their tuneable chemistry and surface modification make them valuable nanomaterials for biomedical applications. In view of possible dendrimer uses as brain-aimed nanocarriers, the authors studied amine- and lipid-functionalised (G4) polyamidoamine (PAMAM) biocompatibility with cell population forming the blood–brain barrier (BBB). Both amine-PAMAM and lipid-PAMAM dendrimers were able to enter endothelial and primary neural cells. However, only amine-PAMAM damaged cell membranes in a dose-dependent manner. Transmission electron microscopy evidenced the ability of dendrimers to precipitate salts and serum components present in culture medium that slightly increased toxicity o...
Drug delivery to the central nervous system is restricted by the blood-brain barrier (BBB). However,...
Dendrimers have been described as one of the most tunable and therefore potentially applicable nanop...
Dendrimers have been described as one of the most tunable and therefore potentially applicable nanop...
One of the most studied nanocarriers for drug delivery are polyamidoamine (PAMAM) dendrimers. Howeve...
Polyamidoamine (PAMAM) dendrimers are one of the smallest and most precise nanomolecules available t...
Polyamidoamine (PAMAM) dendrimers are one of the smallest and most precise nanomolecules available t...
Drug delivery into the central nervous system (CNS) is challenging due to the blood–brain barrier (B...
Drug delivery into the central nervous system (CNS) is challenging due to the blood–brain barrier (B...
Dendrimers are highly branched macromolecules of low polydispersity that provide many exciting oppor...
Dendrimers are highly branched macromolecules of low polydispersity that provide many exciting oppor...
Dendrimers are highly branched macromolecules of low polydispersity that provide many exciting oppor...
Dendrimers are highly branched macromolecules of low polydispersity that provide many exciting oppor...
Dendrimers are highly branched macromolecules of low polydispersity that provide many exciting oppor...
Dendrimers are highly branched macromolecules of low polydispersity that provide many exciting oppor...
Dendrimers are highly branched macromolecules of low polydispersity that provide many exciting oppor...
Drug delivery to the central nervous system is restricted by the blood-brain barrier (BBB). However,...
Dendrimers have been described as one of the most tunable and therefore potentially applicable nanop...
Dendrimers have been described as one of the most tunable and therefore potentially applicable nanop...
One of the most studied nanocarriers for drug delivery are polyamidoamine (PAMAM) dendrimers. Howeve...
Polyamidoamine (PAMAM) dendrimers are one of the smallest and most precise nanomolecules available t...
Polyamidoamine (PAMAM) dendrimers are one of the smallest and most precise nanomolecules available t...
Drug delivery into the central nervous system (CNS) is challenging due to the blood–brain barrier (B...
Drug delivery into the central nervous system (CNS) is challenging due to the blood–brain barrier (B...
Dendrimers are highly branched macromolecules of low polydispersity that provide many exciting oppor...
Dendrimers are highly branched macromolecules of low polydispersity that provide many exciting oppor...
Dendrimers are highly branched macromolecules of low polydispersity that provide many exciting oppor...
Dendrimers are highly branched macromolecules of low polydispersity that provide many exciting oppor...
Dendrimers are highly branched macromolecules of low polydispersity that provide many exciting oppor...
Dendrimers are highly branched macromolecules of low polydispersity that provide many exciting oppor...
Dendrimers are highly branched macromolecules of low polydispersity that provide many exciting oppor...
Drug delivery to the central nervous system is restricted by the blood-brain barrier (BBB). However,...
Dendrimers have been described as one of the most tunable and therefore potentially applicable nanop...
Dendrimers have been described as one of the most tunable and therefore potentially applicable nanop...