The ability to selectively kill cancerous cell populations while leaving healthy cells unaffected is a key goal in anticancer therapeutics. The use of nanoporous silica-based materials as drug-delivery vehicles has recently proven successful, yet production of these materials requires costly and toxic chemicals. Here we use diatom microalgae-derived nanoporous biosilica to deliver chemotherapeutic drugs to cancer cells. The diatom Thalassiosira pseudonana is genetically engineered to display an IgG-binding domain of protein G on the biosilica surface, enabling attachment of cell-targeting antibodies. Neuroblastoma and B-lymphoma cells are selectively targeted and killed by biosilica displaying specific antibodies sorbed with drug-loaded nan...
Diatomite is a natural porous silica material of sedimentary origin. Due to its peculiar properties,...
Diatomite is a natural porous silica material of sedimentary origin. Due to its peculiar properties,...
Drug delivery using synthetic nanoparticles including porous silicon has been extensively used to ov...
The ability to selectively kill cancerous cell populations while leaving healthy cells unaffected is...
The ability to selectively kill cancerous cell populations while leaving healthy cells unaffected is...
Diatom microalgae are the most outstanding natural source of porous silica. The diatom cell is enclo...
Diatom microalgae are the most outstanding natural source of porous silica. The diatom cell is enclo...
Diatom microalgae are the most outstanding natural source of porous silica. The diatom cell is enclo...
Mesoporous silica nanoparticles (MSNs) have great potential for applications as a drug delivery syst...
Diatoms are the most abundant resource of biosilica on Earth. These microalgae are encased in a 3-D ...
Diatoms are the most abundant resource of biosilica on Earth. These microalgae are encased in a 3-D ...
Drug delivery using synthetic mesoporous nanomaterials, including porous silicon, has been extensive...
Diatoms are the most abundant resource of biosilica on Earth. These microalgae are encased in a 3-D ...
Diatoms are the most abundant resource of biosilica on Earth. These microalgae are encased in a 3-D ...
Diatoms are unicellular photosynthetic algae enclosed in porous 3D nanopatterned silica enclosures c...
Diatomite is a natural porous silica material of sedimentary origin. Due to its peculiar properties,...
Diatomite is a natural porous silica material of sedimentary origin. Due to its peculiar properties,...
Drug delivery using synthetic nanoparticles including porous silicon has been extensively used to ov...
The ability to selectively kill cancerous cell populations while leaving healthy cells unaffected is...
The ability to selectively kill cancerous cell populations while leaving healthy cells unaffected is...
Diatom microalgae are the most outstanding natural source of porous silica. The diatom cell is enclo...
Diatom microalgae are the most outstanding natural source of porous silica. The diatom cell is enclo...
Diatom microalgae are the most outstanding natural source of porous silica. The diatom cell is enclo...
Mesoporous silica nanoparticles (MSNs) have great potential for applications as a drug delivery syst...
Diatoms are the most abundant resource of biosilica on Earth. These microalgae are encased in a 3-D ...
Diatoms are the most abundant resource of biosilica on Earth. These microalgae are encased in a 3-D ...
Drug delivery using synthetic mesoporous nanomaterials, including porous silicon, has been extensive...
Diatoms are the most abundant resource of biosilica on Earth. These microalgae are encased in a 3-D ...
Diatoms are the most abundant resource of biosilica on Earth. These microalgae are encased in a 3-D ...
Diatoms are unicellular photosynthetic algae enclosed in porous 3D nanopatterned silica enclosures c...
Diatomite is a natural porous silica material of sedimentary origin. Due to its peculiar properties,...
Diatomite is a natural porous silica material of sedimentary origin. Due to its peculiar properties,...
Drug delivery using synthetic nanoparticles including porous silicon has been extensively used to ov...