The impressive rate accelerations that enzymes display in nature often result from boosting the inherent catalytic activities of side chains by their precise positioning inside a protein binding pocket. Such fine‐tuning is also possible for catalytic unnatural amino acids. Specifically, the directed evolution of a recently described designer enzyme, which utilizes an aniline side chain to promote a model hydrazone formation reaction, is reported. Consecutive rounds of directed evolution identified several mutations in the promiscuous binding pocket, in which the unnatural amino acid is embedded in the starting catalyst. When combined, these mutations boost the turnover frequency (kcat) of the designer enzyme by almost 100‐fold. This results...
The bacterial phosphotriesterases catalyze hydrolysis of the pesticide paraoxon with very fast turn...
The emergence of robust methods to expand the genetic code allows incorporation of non-canonical ami...
The efficiency, selectivity and sustainability benefits offered by enzymes are enticing chemists to ...
The impressive rate accelerations that enzymes display in nature often result from boosting the inhe...
The impressive rate accelerations that enzymes display in nature often result from boosting the inhe...
Creating designer enzymes with the ability to catalyse abiological transformations is a formidable c...
Enzyme design and evolution strategies rely exclusively on Nature’s standard amino acid alphabet of ...
The combination of computational enzyme design and laboratory evolution provides an attractive platf...
Protein design is a challenging problem. We do not fully understand the rules of protein folding, an...
The ability of one enzyme to catalyse multiple, mechanistically distinct transformations likely play...
The bacterial phosphotriesterases catalyze hydrolysis of the pesticide paraoxon with very fastturnov...
Although enzymes are the product of millions of years of natural evolution, their properties are fre...
Directed evolution is a powerful algorithm for engineering proteins to have novel and useful propert...
The bacterial phosphotriesterases catalyze hydrolysis of the pesticide paraoxon with very fast turn...
The emergence of robust methods to expand the genetic code allows incorporation of non-canonical ami...
The efficiency, selectivity and sustainability benefits offered by enzymes are enticing chemists to ...
The impressive rate accelerations that enzymes display in nature often result from boosting the inhe...
The impressive rate accelerations that enzymes display in nature often result from boosting the inhe...
Creating designer enzymes with the ability to catalyse abiological transformations is a formidable c...
Enzyme design and evolution strategies rely exclusively on Nature’s standard amino acid alphabet of ...
The combination of computational enzyme design and laboratory evolution provides an attractive platf...
Protein design is a challenging problem. We do not fully understand the rules of protein folding, an...
The ability of one enzyme to catalyse multiple, mechanistically distinct transformations likely play...
The bacterial phosphotriesterases catalyze hydrolysis of the pesticide paraoxon with very fastturnov...
Although enzymes are the product of millions of years of natural evolution, their properties are fre...
Directed evolution is a powerful algorithm for engineering proteins to have novel and useful propert...
The bacterial phosphotriesterases catalyze hydrolysis of the pesticide paraoxon with very fast turn...
The emergence of robust methods to expand the genetic code allows incorporation of non-canonical ami...
The efficiency, selectivity and sustainability benefits offered by enzymes are enticing chemists to ...