Zheng_2008_J.Comput.Aided.Mol.Des_22_661

Reference

Title : Rational design of an enzyme mutant for anti-cocaine therapeutics - Zheng_2008_J.Comput.Aided.Mol.Des_22_661
Author(s) : Zheng F , Zhan CG
Ref : J Comput Aided Mol Des , 22 :661 , 2008
Abstract :

(-)-Cocaine is a widely abused drug and there is no available anti-cocaine therapeutic. The disastrous medical and social consequences of cocaine addiction have made the development of an effective pharmacological treatment a high priority. An ideal anti-cocaine medication would be to accelerate (-)-cocaine metabolism producing biologically inactive metabolites. The main metabolic pathway of cocaine in body is the hydrolysis at its benzoyl ester group. Reviewed in this article is the state-of-the-art computational design of high-activity mutants of human butyrylcholinesterase (BChE) against (-)-cocaine. The computational design of BChE mutants have been based on not only the structure of the enzyme, but also the detailed catalytic mechanisms for BChE-catalyzed hydrolysis of (-)-cocaine and (+)-cocaine. Computational studies of the detailed catalytic mechanisms and the structure-and-mechanism-based computational design have been carried out through the combined use of a variety of state-of-the-art techniques of molecular modeling. By using the computational insights into the catalytic mechanisms, a recently developed unique computational design strategy based on the simulation of the rate-determining transition state has been employed to design high-activity mutants of human BChE for hydrolysis of (-)-cocaine, leading to the exciting discovery of BChE mutants with a considerably improved catalytic efficiency against (-)-cocaine. One of the discovered BChE mutants (i.e., A199S/S287G/A328W/Y332G) has a approximately 456-fold improved catalytic efficiency against (-)-cocaine. The encouraging outcome of the computational design and discovery effort demonstrates that the unique computational design approach based on the transition-state simulation is promising for rational enzyme redesign and drug discovery.

PubMedSearch : Zheng_2008_J.Comput.Aided.Mol.Des_22_661
PubMedID: 17989928

Related information

Substrate Cocaine

Citations formats

Zheng F, Zhan CG (2008)
Rational design of an enzyme mutant for anti-cocaine therapeutics
J Comput Aided Mol Des 22 :661

Zheng F, Zhan CG (2008)
J Comput Aided Mol Des 22 :661