Sanson_2011_Protein.Sci_20_1114

Reference

Title : Backdoor opening mechanism in acetylcholinesterase based on X-ray crystallography and molecular dynamics simulations - Sanson_2011_Protein.Sci_20_1114
Author(s) : Sanson B , Colletier JP , Xu Y , Lang PT , Jiang H , Silman I , Sussman JL , Weik M
Ref : Protein Science , 20 :1114 , 2011
Abstract :

The transient opening of a backdoor in the active-site wall of acetylcholinesterase, one of nature's most rapid enzymes, has been suggested to contribute to the efficient traffic of substrates and products. A crystal structure of Torpedo californica acetylcholinesterase in complex with the peripheral-site inhibitor aflatoxin is now presented, in which a tyrosine at the bottom of the active-site gorge rotates to create a 3.4-A wide exit channel. Molecular dynamics simulations show that the opening can be further enlarged by movement of Trp84. The crystallographic and molecular dynamics simulation data thus point to the interface between Tyr442 and Trp84 as the key element of a backdoor, whose opening permits rapid clearance of catalysis products from the active site. Furthermore, the crystal structure presented provides a novel template for rational design of inhibitors and reactivators, including anti-Alzheimer drugs and antidotes against organophosphate poisoning.

PubMedSearch : Sanson_2011_Protein.Sci_20_1114
PubMedID: 21594947
Gene_locus related to this paper: torca-ACHE

Related information

Inhibitor Aflatoxin-B1
Gene_locus torca-ACHE
Structure 2XI4

Citations formats

Sanson B, Colletier JP, Xu Y, Lang PT, Jiang H, Silman I, Sussman JL, Weik M (2011)
Backdoor opening mechanism in acetylcholinesterase based on X-ray crystallography and molecular dynamics simulations
Protein Science 20 :1114

Sanson B, Colletier JP, Xu Y, Lang PT, Jiang H, Silman I, Sussman JL, Weik M (2011)
Protein Science 20 :1114