The synthesis of polyurethane microsphere-gold nanoparticle "core-shell" structures and their use in the immobilization of the enzyme endoglucanase are described. Assembly of gold nanoparticles on the surface of polymer microspheres occurs through interaction of the nitrogens in the polymer with the nanoparticles, thereby precluding the need for modifying the polymer microspheres to enable such nanoparticle binding. Endoglucanse could thereafter be bound to the gold nanoparticles decorating the polyurethane microspheres, leading to a highly stable biocatalyst with excellent reuse characteristics. The immobilized enzyme retains its biocatalytic activity and exhibits improved thermal stability relative to free enzyme in solution. The high sur...
Bacterial microcompartments (MCPs) are polyhedral organelles containing an enzyme cluster wrapped in...
New approaches are constantly being developed for both the synthesis of inorganic nanomaterials and ...
Gold nanoparticles (AuNPs) can be described as nanozymes, species that are able to mimic the catalyt...
We report herein the formation of Endoglucanase–colloidal gold bioconjugates under enzyme friendly c...
Core-shell gold nanoparticles [AuNPs], stabilized with a hydrophilic polymer, poly(3-dimethylammoniu...
Immobilization enables enzymes to be held in place so that they can be easily separated from the pro...
Gold nanoparticles are excellent biocompatible surfaces for the immobilization of enzymes. However, ...
Native and adamantane-modified L-phenylalanine dehydrogenase was immobilised on b-cyclodextrin coate...
Nanoparticles (NPs) have been widely used for immobilization of wide ranges of enzymes. However, the...
We demonstrate herein the formation of a free-standing gold nanoparticle membrane and its use in the...
Increasing the shelf life of enzymes and making them reusable is a prominent topic in biotechnology....
Gold nanoparticles provide a user-friendly and efficient surface for immobilization of enzymes and p...
The unique chemical and physical properties of gold nanoparticles (GNPs) render them as effective ca...
Gold nanoparticles have been synthesized and stabilized onto the surface of well-defined polyurethan...
Nanoparticles of silver and gold were synthesized by chemical methods. Nanoparticles of silver were ...
Bacterial microcompartments (MCPs) are polyhedral organelles containing an enzyme cluster wrapped in...
New approaches are constantly being developed for both the synthesis of inorganic nanomaterials and ...
Gold nanoparticles (AuNPs) can be described as nanozymes, species that are able to mimic the catalyt...
We report herein the formation of Endoglucanase–colloidal gold bioconjugates under enzyme friendly c...
Core-shell gold nanoparticles [AuNPs], stabilized with a hydrophilic polymer, poly(3-dimethylammoniu...
Immobilization enables enzymes to be held in place so that they can be easily separated from the pro...
Gold nanoparticles are excellent biocompatible surfaces for the immobilization of enzymes. However, ...
Native and adamantane-modified L-phenylalanine dehydrogenase was immobilised on b-cyclodextrin coate...
Nanoparticles (NPs) have been widely used for immobilization of wide ranges of enzymes. However, the...
We demonstrate herein the formation of a free-standing gold nanoparticle membrane and its use in the...
Increasing the shelf life of enzymes and making them reusable is a prominent topic in biotechnology....
Gold nanoparticles provide a user-friendly and efficient surface for immobilization of enzymes and p...
The unique chemical and physical properties of gold nanoparticles (GNPs) render them as effective ca...
Gold nanoparticles have been synthesized and stabilized onto the surface of well-defined polyurethan...
Nanoparticles of silver and gold were synthesized by chemical methods. Nanoparticles of silver were ...
Bacterial microcompartments (MCPs) are polyhedral organelles containing an enzyme cluster wrapped in...
New approaches are constantly being developed for both the synthesis of inorganic nanomaterials and ...
Gold nanoparticles (AuNPs) can be described as nanozymes, species that are able to mimic the catalyt...