AbstractThe proposed double in-line displacement mechanism of Escherichia coli alkaline phosphatase (AP) involving two-metal ion catalysis is based on NMR spectroscopic and X-ray crystallographic studies. This mechanism is further supported by the X-ray crystal structures of the covalent phospho-enzyme intermediate of the H331Q mutant AP and of the transition state complex between the wild-type enzyme and vanadate, a transition state analog. Kinetic and structural studies on several genetically engineered versions of AP illustrate the overall importance of the active site’s metal geometry, hydrogen bonding network and electrostatic potential in the catalytic mechanism
In recent years, it has become increasingly clear that promiscuity plays a key role in the evolution...
AbstractTo monitor structural changes during the binding of Pi to the active site of mammalian alkal...
Catalytic promiscuity, an evolutionary concept, also provides a powerful tool for gaining mechanisti...
AbstractThe proposed double in-line displacement mechanism of Escherichia coli alkaline phosphatase ...
Alkaline phosphatases (APs) are commercially applied enzymes that catalyze the hydrolysis of phospha...
Comparisons among evolutionarily related enzymes offer opportunities to reveal how structural differ...
The catalytic promiscuity of E. coli alkaline phosphatase (AP) and many other enzymes provides a uni...
Comparisons among evolutionarily related enzymes offer opportunities to reveal how structural differ...
The catalytic promiscuity of E. coli alkaline phosphatase (AP) and many other enzymes provides a uni...
Enzyme-catalyzed phosphoryl transfer reactions have frequently been suggested to proceed through tra...
The alkaline phosphatase (AP) is a bi-metalloenzyme of potential applications in biotechnology and b...
ABSTRACT: Catalytic promiscuity, an evolutionary concept, also provides a powerful tool for gaining ...
We here present a theoretical study of the alkaline hydrolysis of a phosphodiester (methyl p-nitroph...
A study of the effect of pH on kinetic parameters of Escherichia coli alkaline phosphatase, in prese...
The metalloenzyme Escherichia coli (E. coli) Alkaline Phosphatase (AP) has a homo-dimeric quaternary...
In recent years, it has become increasingly clear that promiscuity plays a key role in the evolution...
AbstractTo monitor structural changes during the binding of Pi to the active site of mammalian alkal...
Catalytic promiscuity, an evolutionary concept, also provides a powerful tool for gaining mechanisti...
AbstractThe proposed double in-line displacement mechanism of Escherichia coli alkaline phosphatase ...
Alkaline phosphatases (APs) are commercially applied enzymes that catalyze the hydrolysis of phospha...
Comparisons among evolutionarily related enzymes offer opportunities to reveal how structural differ...
The catalytic promiscuity of E. coli alkaline phosphatase (AP) and many other enzymes provides a uni...
Comparisons among evolutionarily related enzymes offer opportunities to reveal how structural differ...
The catalytic promiscuity of E. coli alkaline phosphatase (AP) and many other enzymes provides a uni...
Enzyme-catalyzed phosphoryl transfer reactions have frequently been suggested to proceed through tra...
The alkaline phosphatase (AP) is a bi-metalloenzyme of potential applications in biotechnology and b...
ABSTRACT: Catalytic promiscuity, an evolutionary concept, also provides a powerful tool for gaining ...
We here present a theoretical study of the alkaline hydrolysis of a phosphodiester (methyl p-nitroph...
A study of the effect of pH on kinetic parameters of Escherichia coli alkaline phosphatase, in prese...
The metalloenzyme Escherichia coli (E. coli) Alkaline Phosphatase (AP) has a homo-dimeric quaternary...
In recent years, it has become increasingly clear that promiscuity plays a key role in the evolution...
AbstractTo monitor structural changes during the binding of Pi to the active site of mammalian alkal...
Catalytic promiscuity, an evolutionary concept, also provides a powerful tool for gaining mechanisti...