Literature DB >> 8062821

Electrostatic attraction by surface charge does not contribute to the catalytic efficiency of acetylcholinesterase.

A Shafferman1, A Ordentlich, D Barak, C Kronman, R Ber, T Bino, N Ariel, R Osman, B Velan.   

Abstract

Acetylcholinesterases (AChEs) are characterized by a high net negative charge and by an uneven surface charge distribution, giving rise to a negative electrostatic potential extending over most of the molecular surface. To evaluate the contribution of these electrostatic properties to the catalytic efficiency, 20 single- and multiple-site mutants of human AChE were generated by replacing up to seven acidic residues, vicinal to the rim of the active-center gorge (Glu84, Glu285, Glu292, Asp349, Glu358, Glu389 and Asp390), by neutral amino acids. Progressive simulated replacement of these charged residues results in a gradual decrease of the negative electrostatic potential which is essentially eliminated by neutralizing six or seven charges. In marked contrast to the shrinking of the electrostatic potential, the corresponding mutations had no significant effect on the apparent bimolecular rate constants of hydrolysis for charged and non-charged substrates, or on the Ki value for a charged active center inhibitor. Moreover, the kcat values for all 20 mutants are essentially identical to that of the wild type enzyme, and the apparent bimolecular rate constants show a moderate dependence on the ionic strength, which is invariant for all the enzymes examined. These findings suggest that the surface electrostatic properties of AChE do not contribute to the catalytic rate, that this rate is probably not diffusion-controlled and that long-range electrostatic interactions play no role in stabilization of the transition states of the catalytic process.

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Year:  1994        PMID: 8062821      PMCID: PMC395247          DOI: 10.1002/j.1460-2075.1994.tb06650.x

Source DB:  PubMed          Journal:  EMBO J        ISSN: 0261-4189            Impact factor:   11.598


  40 in total

1.  A new and rapid colorimetric determination of acetylcholinesterase activity.

Authors:  G L ELLMAN; K D COURTNEY; V ANDRES; R M FEATHER-STONE
Journal:  Biochem Pharmacol       Date:  1961-07       Impact factor: 5.858

2.  Simulation of the diffusion-controlled reaction between superoxide and superoxide dismutase. II. Detailed models.

Authors:  S A Allison; R J Bacquet; J A McCammon
Journal:  Biopolymers       Date:  1988-02       Impact factor: 2.505

3.  Kinetics of acetylthiocholine binding to electric eel acetylcholinesterase in glycerol/water solvents of increased viscosity. Evidence for a diffusion-controlled reaction.

Authors:  B B Hasinoff
Journal:  Biochim Biophys Acta       Date:  1982-05-21

4.  Interaction of fluorescence probes with acetylcholinesterase. The site and specificity of propidium binding.

Authors:  P Taylor; S Lappi
Journal:  Biochemistry       Date:  1975-05-06       Impact factor: 3.162

5.  Effective charge on acetylcholinesterase active sites determined from the ionic strength dependence of association rate constants with cationic ligands.

Authors:  H J Nolte; T L Rosenberry; E Neumann
Journal:  Biochemistry       Date:  1980-08-05       Impact factor: 3.162

6.  Kinetic, equilibrium, and spectroscopic studies on dealkylation ("aging") of alkyl organophosphonyl acetylcholinesterase. Electrostatic control of enzyme topography.

Authors:  H A Berman; M M Decker
Journal:  J Biol Chem       Date:  1986-08-15       Impact factor: 5.157

7.  Effects of volume and surface property in hydrolysis by acetylcholinesterase. The trimethyl site.

Authors:  S G Cohen; J L Elkind; S B Chishti; J L Giner; H Reese; J B Cohen
Journal:  J Med Chem       Date:  1984-12       Impact factor: 7.446

8.  Fractional diffusion-limited component of reactions catalyzed by acetylcholinesterase.

Authors:  M Bazelyansky; E Robey; J F Kirsch
Journal:  Biochemistry       Date:  1986-01-14       Impact factor: 3.162

9.  Structure and mechanism of copper, zinc superoxide dismutase.

Authors:  J A Tainer; E D Getzoff; J S Richardson; D C Richardson
Journal:  Nature       Date:  1983 Nov 17-23       Impact factor: 49.962

10.  Synthesis and in vitro properties of a powerful quaternary methylphosphonate inhibitor of acetylcholinesterase. A new marker in blood-brain barrier research.

Authors:  D Levy; Y Ashani
Journal:  Biochem Pharmacol       Date:  1986-04-01       Impact factor: 5.858

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  14 in total

1.  A modular treatment of molecular traffic through the active site of cholinesterase.

Authors:  S A Botti; C E Felder; S Lifson; J L Sussman; I Silman
Journal:  Biophys J       Date:  1999-11       Impact factor: 4.033

2.  Long route or shortcut? A molecular dynamics study of traffic of thiocholine within the active-site gorge of acetylcholinesterase.

Authors:  Yechun Xu; Jacques-Philippe Colletier; Martin Weik; Guangrong Qin; Hualiang Jiang; Israel Silman; Joel L Sussman
Journal:  Biophys J       Date:  2010-12-15       Impact factor: 4.033

3.  Electrostatic steering and ionic tethering in enzyme-ligand binding: insights from simulations.

Authors:  R C Wade; R R Gabdoulline; S K Lüdemann; V Lounnas
Journal:  Proc Natl Acad Sci U S A       Date:  1998-05-26       Impact factor: 11.205

4.  Backbone makes a significant contribution to the electrostatics of alpha/beta-barrel proteins.

Authors:  S Raychaudhuri; F Younas; P A Karplus; C H Faerman; D R Ripoll
Journal:  Protein Sci       Date:  1997-09       Impact factor: 6.725

5.  Influence of the water structure on the acetylcholinesterase efficiency.

Authors:  Angela S F Ramos; Simone Techert
Journal:  Biophys J       Date:  2005-07-01       Impact factor: 4.033

6.  Electrooptical measurements demonstrate a large permanent dipole moment associated with acetylcholinesterase.

Authors:  D Porschke; C Créminon; X Cousin; C Bon; J Sussman; I Silman
Journal:  Biophys J       Date:  1996-04       Impact factor: 4.033

7.  Overloading and removal of N-glycosylation targets on human acetylcholinesterase: effects on glycan composition and circulatory residence time.

Authors:  Theodor Chitlaru; Chanoch Kronman; Baruch Velan; Avigdor Shafferman
Journal:  Biochem J       Date:  2002-05-01       Impact factor: 3.857

8.  Acetylcholinesterase: from 3D structure to function.

Authors:  Hay Dvir; Israel Silman; Michal Harel; Terrone L Rosenberry; Joel L Sussman
Journal:  Chem Biol Interact       Date:  2010-02-04       Impact factor: 5.192

9.  Excessive expression of acetylcholinesterase impairs glutamatergic synaptogenesis in hippocampal neurons.

Authors:  Haiheng Dong; Yun-Yan Xiang; Noa Farchi; William Ju; Yaojiong Wu; Liwen Chen; Yutian Wang; Binyamin Hochner; Burton Yang; Hermona Soreq; Wei-Yang Lu
Journal:  J Neurosci       Date:  2004-10-13       Impact factor: 6.167

10.  Bovine acetylcholinesterase: cloning, expression and characterization.

Authors:  I Mendelson; C Kronman; N Ariel; A Shafferman; B Velan
Journal:  Biochem J       Date:  1998-08-15       Impact factor: 3.857

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