Protein-cage nanoparticles are promising multifunctional platforms for targeted delivery of imaging and therapeutic agents owing to their biocompatibility, biodegradability, and low toxicity. The major advantage of protein-cage nanoparticles is the ability to decorate their surfaces with multiple functionalities through genetic and chemical modification to achieve desired properties for therapeutic and/or diagnostic purposes. Specific peptides identified by phage display can be genetically fused onto the surface of cage proteins to promote the association of nanoparticles with a particular cell type or tissue. Upon symmetrical assembly of the cage, peptides are clustered on the surface of the cage protein in bunches. The resulting PBNC (pep...
SummaryProtein cages, including viral capsids, ferritins, and heat shock proteins (Hsps), can serve ...
Protein cage nanoparticles are made of biomaterials, proteins, and have well-defined cage-like archi...
Protein nanocages are promising multifunctional platforms for nanomedicine owing to the ability to d...
Protein cages, including ferritins, viral capsids, and encapsulins, are biomolecule-based supramolec...
Protein cage nanoparticles are protein-based supramolecular virus-like particles and attractive cand...
Protein cage nanoparticles are biomolecule-based supramolecular biopolymers and attractive candidate...
We genetically introduced the Fc-binding peptide (FcBP) into the loop of a self-assembled protein ca...
Protein cage nanoparticles are excellent candidates for use as multifunctional delivery nanoplatform...
We utilized ferritin protein cage nanoparticles (FPCN) as antigen delivery nanoplatforms for DC-base...
AbstractNanoencapsulation of anticancer drugs improves their therapeutic indices by virtue of the en...
Phage display is commonly used to isolate peptides that bind to a desired cell type. While chemical ...
Protein cage nanoparticles are widely used as targeted delivery nanoplatforms, because they have wel...
Protein nanocages have been explored as potential carriers in biomedicine. Formed by the self-assemb...
Protein cage architectures such as viral capsids, heat shock proteins, and ferritins are naturally o...
Protein cage nanoparticles are biomolecule-based supramolecular biopolymers and attractive candidate...
SummaryProtein cages, including viral capsids, ferritins, and heat shock proteins (Hsps), can serve ...
Protein cage nanoparticles are made of biomaterials, proteins, and have well-defined cage-like archi...
Protein nanocages are promising multifunctional platforms for nanomedicine owing to the ability to d...
Protein cages, including ferritins, viral capsids, and encapsulins, are biomolecule-based supramolec...
Protein cage nanoparticles are protein-based supramolecular virus-like particles and attractive cand...
Protein cage nanoparticles are biomolecule-based supramolecular biopolymers and attractive candidate...
We genetically introduced the Fc-binding peptide (FcBP) into the loop of a self-assembled protein ca...
Protein cage nanoparticles are excellent candidates for use as multifunctional delivery nanoplatform...
We utilized ferritin protein cage nanoparticles (FPCN) as antigen delivery nanoplatforms for DC-base...
AbstractNanoencapsulation of anticancer drugs improves their therapeutic indices by virtue of the en...
Phage display is commonly used to isolate peptides that bind to a desired cell type. While chemical ...
Protein cage nanoparticles are widely used as targeted delivery nanoplatforms, because they have wel...
Protein nanocages have been explored as potential carriers in biomedicine. Formed by the self-assemb...
Protein cage architectures such as viral capsids, heat shock proteins, and ferritins are naturally o...
Protein cage nanoparticles are biomolecule-based supramolecular biopolymers and attractive candidate...
SummaryProtein cages, including viral capsids, ferritins, and heat shock proteins (Hsps), can serve ...
Protein cage nanoparticles are made of biomaterials, proteins, and have well-defined cage-like archi...
Protein nanocages are promising multifunctional platforms for nanomedicine owing to the ability to d...