Literature DB >> 8114681

Differential effects of "peripheral" site ligands on Torpedo and chicken acetylcholinesterase.

J Eichler1, A Anselment, J L Sussman, J Massoulié, I Silman.   

Abstract

Comparison of the effect of three 'peripheral' site ligands, propidium, d-tubocurarine, and gallamine, on acetylcholinesterase (acetylcholine hydrolase; EC 3.1.1.7) of Torpedo and chicken shows that all three are substantially more effective inhibitors of the Torpedo enzyme than of the chicken enzyme. In contrast, edrophonium, which is directed to the "anionic" subsite of the active site, inhibits the chicken and Torpedo enzymes equally effectively. Two bisquaternary ligands, decamethonium and 1,5-bis(4-allydimethylammoniumphenyl)pentan-3-one dibromide, which are believed to bridge the anionic subsite of the active site and the "peripheral" anionic site, are much weaker inhibitors of the chicken enzyme than of Torpedo acetylcholinesterase, whereas the shorter bisquaternary ligand hexamethonium inhibits the two enzymes similarly. The concentration dependence of activity towards the natural substrate acetylcholine is almost identical for the two enzymes, whereas substrate inhibition of chicken acetylcholinesterase is somewhat weaker than that of the Torpedo enzyme. The experimental data can be rationalized on the basis of the three-dimensional structure of the Torpedo enzyme and alignment of the chicken and Torpedo sequences; it is suggested that the absence, in the chicken enzyme, of two aromatic residues, Tyr-70 and Trp-279, that contribute to the peripheral site of Torpedo acetylcholinesterase is responsible for the differential effects of peripheral site ligands on the two enzymes.

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Year:  1994        PMID: 8114681

Source DB:  PubMed          Journal:  Mol Pharmacol        ISSN: 0026-895X            Impact factor:   4.436


  12 in total

1.  Structural insights into ligand interactions at the acetylcholinesterase peripheral anionic site.

Authors:  Yves Bourne; Palmer Taylor; Zoran Radić; Pascale Marchot
Journal:  EMBO J       Date:  2003-01-02       Impact factor: 11.598

2.  Structural insights into substrate traffic and inhibition in acetylcholinesterase.

Authors:  Jacques-Philippe Colletier; Didier Fournier; Harry M Greenblatt; Jure Stojan; Joel L Sussman; Giuseppe Zaccai; Israel Silman; Martin Weik
Journal:  EMBO J       Date:  2006-06-08       Impact factor: 11.598

3.  Effects of Anticholinesterases on Catalysis and Induced Conformational Change of the Peripheral Anionic Site of Murine Acetylcholinesterase.

Authors:  Fan Tong; Rafique M Islam; Paul R Carlier; Ming Ma; Fredrik Ekström; Jeffrey R Bloomquist
Journal:  Pestic Biochem Physiol       Date:  2013-07-01       Impact factor: 3.963

4.  Flexibility of aromatic residues in the active-site gorge of acetylcholinesterase: X-ray versus molecular dynamics.

Authors:  Yechun Xu; Jacques-Philippe Colletier; Martin Weik; Hualiang Jiang; John Moult; Israel Silman; Joel L Sussman
Journal:  Biophys J       Date:  2008-05-23       Impact factor: 4.033

5.  Structure and dynamics of the active site gorge of acetylcholinesterase: synergistic use of molecular dynamics simulation and X-ray crystallography.

Authors:  P H Axelsen; M Harel; I Silman; J L Sussman
Journal:  Protein Sci       Date:  1994-02       Impact factor: 6.725

6.  The acetylcholinesterase inhibitor BW284c51 is a potent blocker of Torpedo nicotinic AchRs incorporated into the Xenopus oocyte membrane.

Authors:  Silvia Olivera-Bravo; Isabel Ivorra; Andrés Morales
Journal:  Br J Pharmacol       Date:  2005-01       Impact factor: 8.739

7.  Synthesis, pharmacological assessment, and molecular modeling of acetylcholinesterase/butyrylcholinesterase inhibitors: effect against amyloid-β-induced neurotoxicity.

Authors:  Daniel Silva; Mourad Chioua; Abdelouahid Samadi; Paula Agostinho; Pedro Garção; Rocío Lajarín-Cuesta; Cristobal de Los Ríos; Isabel Iriepa; Ignacio Moraleda; Laura Gonzalez-Lafuente; Eduarda Mendes; Concepción Pérez; María Isabel Rodríguez-Franco; José Marco-Contelles; M Carmo Carreiras
Journal:  ACS Chem Neurosci       Date:  2013-02-04       Impact factor: 4.418

8.  The impact of crystallization conditions on structure-based drug design: A case study on the methylene blue/acetylcholinesterase complex.

Authors:  Orly Dym; Wanling Song; Clifford Felder; Esther Roth; Valery Shnyrov; Yacov Ashani; Yechun Xu; Robbie P Joosten; Lev Weiner; Joel L Sussman; Israel Silman
Journal:  Protein Sci       Date:  2016-03-28       Impact factor: 6.725

9.  Inhibitor profile of bis(n)-tacrines and N-methylcarbamates on acetylcholinesterase from Rhipicephalus (Boophilus) microplus and Phlebotomus papatasi.

Authors:  Daniel R Swale; Fan Tong; Kevin B Temeyer; Andrew Li; Polo C-H Lam; Maxim M Totrov; Paul R Carlier; Adalberto A Pérez de León; Jeffrey R Bloomquist
Journal:  Pestic Biochem Physiol       Date:  2013-07-01       Impact factor: 3.963

10.  In vitro cholinesterase inhibitory action of Cannabis sativa L. Cannabaceae and in silico study of its selected phytocompounds.

Authors:  Isaac Karimi; Namdar Yousofvand; Baydaa Abed Hussein
Journal:  In Silico Pharmacol       Date:  2021-01-21
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