» Articles » PMID: 20412789

Interaction Kinetics of Oximes with Native, Phosphylated and Aged Human Acetylcholinesterase

Overview
Publisher Elsevier
Date 2010 Apr 24
PMID 20412789
Citations 6
Authors
Affiliations
Soon will be listed here.
Abstract

Oximes are commonly used nucleophilic reactivators of alkyl phosphorylated and alkyl methylphosphonylated acetylcholinesterase (AChE) and butyrylcholinesterase. Covalent inhibition of these enzymes by organophosphate (OP) pesticides results typically in phosphorylated enzymes, while covalent inhibition by nerve agent OPs results in methyl phosphonylated cholinesterases. In this study we determined kinetic constants for interaction of three triazole containing oximes with native human AChE, enzyme diethylphosphorylated by paraoxon, enzyme phosphonylated by VX and cyclosarin as well as enzyme aged upon phosphonylation by soman. Stopped-flow kinetics of oxime interaction was monitored using quenching of intrinsic tryptophan fluorescence of AChE as an indicator of oxime binding. Triazole oximes were efficiently synthesized using copper catalyzed cycloaddition between azide and alkyne building blocks ("Click chemistry"). Equilibrium dissociation constants determined for both native enzymes were in low micromolar range for all three oximes, while dissociation constants for phosphylated (phosphorylated and phosphonylated) enzymes were typically one to two orders of magnitude larger. Dissociation constants for interaction with aged enzymes were similar or smaller than those determined for native enzymes. Similar results were obtained with reference oximes, 2PAM and HI6. Association rate constants for formation of oxime complexes were similar for both native, phosphylated and aged enzymes. In summary our data suggest that modification of active site gorge in AChEs by phosphylation of the active serine compromises oxime binding. Dealkylation of phosphonylated enzyme, however opens space in the gorge allowing oximes to bind tighter.

Citing Articles

Natural Inhibitors of Cholinesterases: Chemistry, Structure-Activity and Methods of Their Analysis.

Smyrska-Wieleba N, Mroczek T Int J Mol Sci. 2023; 24(3).

PMID: 36769043 PMC: 9916849. DOI: 10.3390/ijms24032722.


Structural and dynamic effects of paraoxon binding to human acetylcholinesterase by X-ray crystallography and inelastic neutron scattering.

Gerlits O, Fajer M, Cheng X, Blumenthal D, Radic Z, Kovalevsky A Structure. 2022; 30(11):1538-1549.e3.

PMID: 36265484 PMC: 9637784. DOI: 10.1016/j.str.2022.09.006.


Broad-Spectrum Antidote Discovery by Untangling the Reactivation Mechanism of Nerve-Agent-Inhibited Acetylcholinesterase.

Lindgren C, Forsgren N, Hoster N, Akfur C, Artursson E, Edvinsson L Chemistry. 2022; 28(40):e202200678.

PMID: 35420233 PMC: 9400889. DOI: 10.1002/chem.202200678.


Design, synthesis, studies and evaluation of isatin-pyridine oximes hybrids as novel acetylcholinesterase reactivators.

Kitagawa D, Rodrigues R, Silva T, Dos Santos W, da Rocha V, de Almeida J J Enzyme Inhib Med Chem. 2021; 36(1):1370-1377.

PMID: 34148470 PMC: 8219220. DOI: 10.1080/14756366.2021.1916009.


Productive reorientation of a bound oxime reactivator revealed in room temperature X-ray structures of native and VX-inhibited human acetylcholinesterase.

Gerlits O, Kong X, Cheng X, Wymore T, Blumenthal D, Taylor P J Biol Chem. 2019; 294(27):10607-10618.

PMID: 31138650 PMC: 6615692. DOI: 10.1074/jbc.RA119.008725.


References
1.
Sanson B, Nachon F, Colletier J, Froment M, Toker L, Greenblatt H . Crystallographic snapshots of nonaged and aged conjugates of soman with acetylcholinesterase, and of a ternary complex of the aged conjugate with pralidoxime. J Med Chem. 2009; 52(23):7593-603. DOI: 10.1021/jm900433t. View

2.
Radic Z, Taylor P . Interaction kinetics of reversible inhibitors and substrates with acetylcholinesterase and its fasciculin 2 complex. J Biol Chem. 2000; 276(7):4622-33. DOI: 10.1074/jbc.M006855200. View

3.
Amitai G, Adani R, Yacov G, Yishay S, Teitlboim S, Tveria L . Asymmetric fluorogenic organophosphates for the development of active organophosphate hydrolases with reversed stereoselectivity. Toxicology. 2006; 233(1-3):187-98. DOI: 10.1016/j.tox.2006.09.020. View

4.
Ekstrom F, Hornberg A, Artursson E, Hammarstrom L, Schneider G, Pang Y . Structure of HI-6*sarin-acetylcholinesterase determined by X-ray crystallography and molecular dynamics simulation: reactivator mechanism and design. PLoS One. 2009; 4(6):e5957. PMC: 2693926. DOI: 10.1371/journal.pone.0005957. View

5.
Wang Q, Chan T, Hilgraf R, Fokin V, Sharpless K, Finn M . Bioconjugation by copper(I)-catalyzed azide-alkyne [3 + 2] cycloaddition. J Am Chem Soc. 2003; 125(11):3192-3. DOI: 10.1021/ja021381e. View