The biotin-streptavidin technology has been extensively exploited to engineer artificial metalloenzymes (ArMs) that catalyze a dozen different reactions. Despite its versatility, the homotetrameric nature of streptavidin (Sav) and the noncooperative binding of biotinylated cofactors impose two limitations on the genetic optimization of ArMs: (i) point mutations are reflected in all four subunits of Sav, and (ii) the noncooperative binding of biotinylated cofactors to Sav may lead to an erosion in the catalytic performance, depending on the cofactor:biotin-binding site ratio. To address these challenges, we report on our efforts to engineer a (monovalent) single-chain dimeric streptavidin (scdSav) as scaffold for Sav-based ArMs. The versatil...
Artificial metalloenzymes, based on the incorporation of a biotinylated catalytically active organom...
Here, we combine the use of host screening, protein crystallography and QM/MM molecular dynamics sim...
The present PhD Thesis summarizes the scientific work performed in the research group of Prof. Dr. W...
The biotin-streptavidin technology has been extensively exploited to engineer artificial metalloenzy...
The biotin–streptavidin technology offers an attractive means to engineer artificial metalloenzymes ...
Artificial metalloenzymes (ArMs) result from anchoring a metal-containing moiety within a macro mole...
The streptavidin scaffold was expanded with well-structured naturally occurring motifs. These chimer...
Artificial metalloenzymes (ArMs) based on the incorporation of a biotinylated metal cofactor within ...
Artificial metalloenzymes, resulting from incorporation of a metal cofactor within a host protein, h...
Artificial metalloenzymes result from anchoring an organometallic catalyst within an evolvable prote...
By anchoring a metal cofactor within a host protein, so-called artificial metalloenzymes can be gene...
Incorporation of biotinylated racemic three-legged d6-piano stool complexes in streptavidin yields e...
Artificial metalloenzymes (ArMs hereafter) combine attractive features of both homogeneous catalysts...
Over billions of years, enzymes evolved to be nature’s catalyst. Under (aqueous) mild conditions the...
Here, we combine the use of host screening, protein crystallography and QM/MM molecular dynamics sim...
Artificial metalloenzymes, based on the incorporation of a biotinylated catalytically active organom...
Here, we combine the use of host screening, protein crystallography and QM/MM molecular dynamics sim...
The present PhD Thesis summarizes the scientific work performed in the research group of Prof. Dr. W...
The biotin-streptavidin technology has been extensively exploited to engineer artificial metalloenzy...
The biotin–streptavidin technology offers an attractive means to engineer artificial metalloenzymes ...
Artificial metalloenzymes (ArMs) result from anchoring a metal-containing moiety within a macro mole...
The streptavidin scaffold was expanded with well-structured naturally occurring motifs. These chimer...
Artificial metalloenzymes (ArMs) based on the incorporation of a biotinylated metal cofactor within ...
Artificial metalloenzymes, resulting from incorporation of a metal cofactor within a host protein, h...
Artificial metalloenzymes result from anchoring an organometallic catalyst within an evolvable prote...
By anchoring a metal cofactor within a host protein, so-called artificial metalloenzymes can be gene...
Incorporation of biotinylated racemic three-legged d6-piano stool complexes in streptavidin yields e...
Artificial metalloenzymes (ArMs hereafter) combine attractive features of both homogeneous catalysts...
Over billions of years, enzymes evolved to be nature’s catalyst. Under (aqueous) mild conditions the...
Here, we combine the use of host screening, protein crystallography and QM/MM molecular dynamics sim...
Artificial metalloenzymes, based on the incorporation of a biotinylated catalytically active organom...
Here, we combine the use of host screening, protein crystallography and QM/MM molecular dynamics sim...
The present PhD Thesis summarizes the scientific work performed in the research group of Prof. Dr. W...