Literature DB >> 8960363

Molecular mechanisms underlying he interaction of motuporin and microcystins with type-1 and type-2A protein phosphatases.

M Craig1, H A Luu, T L McCready, D Williams, R J Andersen, C F Holmes.   

Abstract

Heptapeptide microcystin and pentapeptide motuporin (nodularin-V) are equipotent inhibitors of type-1 and type-2A protein phosphatase catalytic subunits (PP-1c and PP-2Ac). Herein we describe elucidation of the molecular mechanisms involved in the interaction of these structurally similar hepatotoxins with PP-1c/PP-2Ac and identification of an important functional difference between their mode of interaction with these enzymes. Microcystin-LR, microcystin-LA, and microcystin-LL were found to interact with PP-2Ac and PP-1c by a two-step mechanism involving rapid binding and inactivation of the protein phosphatase (PPase) catalytic subunit, followed by a slower covalent interaction (within hours). Covalent adducts comprising PPase-toxin complexes were separated from free PPase by C-18 reverse-phase liquid chromatography, thus allowing the time course of covalent adduct formation to be quantitated. In contrast to microcystins, motuporin (nodularin-V) and nodularin-R were unable to form covalent complexes with either PP-1c or PP-2Ac even after 96 h incubation. Specific reduction of microcystin-LA to dihydromicrocystin-LA abolished the ability of the toxin to form a covalent adduct with PP-2Ac. Specific methyl esterification of the single Glu residue in microcystin-LR rendered this toxin inactive as a PPase inhibitor and abolished subsequent formation of a covalent adduct. Our data indicate that inactivation of PP-2Ac/PP-1c by microcystins precedes covalent modification of the PPases via a Michael addition reaction between a nucleophilic phosphatase residue and Mdha in the heptapeptide toxin. In contrast, following rapid inactivation of PP-2Ac/PP-1c by motuporin, the equivalent N-methyldehydrobutyrine residue in this toxin is unreactive and does not form a covalent bond with the PPases. These results are consistent with structural data for (i) the NMR solution structures of microcystin-LR and motuporin, which indicate a striking difference in the relative positions of their corresponding dehydroamino acids in the toxin peptide backbone, and (ii) X-ray crystallographic data on an inactive complex between PP-1c and microcystin-LR, which show a covalent bond between Cys-273 and the bound toxin.

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Year:  1996        PMID: 8960363     DOI: 10.1139/o96-061

Source DB:  PubMed          Journal:  Biochem Cell Biol        ISSN: 0829-8211            Impact factor:   3.626


  27 in total

1.  A critical review of ionizing radiation technologies for the remediation of waters containing Microcystin-LR and M. aeruginosa.

Authors:  Alexandra M Folcik; Suresh D Pillai
Journal:  Radiat Phys Chem Oxf Engl 1993       Date:  2020-08-16       Impact factor: 2.858

2.  Myosin regulatory light chain diphosphorylation slows relaxation of arterial smooth muscle.

Authors:  Cindy Sutherland; Michael P Walsh
Journal:  J Biol Chem       Date:  2012-05-31       Impact factor: 5.157

3.  Reactivity of Biliatresone, a Natural Biliary Toxin, with Glutathione, Histamine, and Amino Acids.

Authors:  Kyung A Koo; Orith Waisbourd-Zinman; Rebecca G Wells; Michael Pack; John R Porter
Journal:  Chem Res Toxicol       Date:  2016-01-13       Impact factor: 3.739

4.  Optimization of extraction methods for quantification of microcystin-LR and microcystin-RR in fish, vegetable, and soil matrices using UPLC-MS/MS.

Authors:  Manjunath Manubolu; Jiyoung Lee; Kenneth M Riedl; Zi Xun Kua; Lindsay P Collart; Stuart A Ludsin
Journal:  Harmful Algae       Date:  2018-05-16       Impact factor: 4.273

5.  NF-κB mediates the induction of Fas receptor and Fas ligand by microcystin-LR in HepG2 cells.

Authors:  Gong Feng; Musa Abdalla; Ying Li; Yansheng Bai
Journal:  Mol Cell Biochem       Date:  2011-02-26       Impact factor: 3.396

6.  Covalent Modifiers: A Chemical Perspective on the Reactivity of α,β-Unsaturated Carbonyls with Thiols via Hetero-Michael Addition Reactions.

Authors:  Paul A Jackson; John C Widen; Daniel A Harki; Kay M Brummond
Journal:  J Med Chem       Date:  2016-12-20       Impact factor: 7.446

Review 7.  Molecular mechanisms of microcystin toxicity in animal cells.

Authors:  Alexandre Campos; Vitor Vasconcelos
Journal:  Int J Mol Sci       Date:  2010-01-21       Impact factor: 6.208

Review 8.  Cyanobacterial cyclopeptides as lead compounds to novel targeted cancer drugs.

Authors:  Ioannis Sainis; Demosthenes Fokas; Katerina Vareli; Andreas G Tzakos; Valentinos Kounnis; Evangelos Briasoulis
Journal:  Mar Drugs       Date:  2010-03-15       Impact factor: 5.118

Review 9.  Viewing serine/threonine protein phosphatases through the eyes of drug designers.

Authors:  Mengmeng Zhang; S D Yogesha; Joshua E Mayfield; Gordon N Gill; Yan Zhang
Journal:  FEBS J       Date:  2013-09-05       Impact factor: 5.542

10.  Detection of total microcystin in fish tissues based on lemieux oxidation, and recovery of 2-methyl-3-methoxy-4-phenylbutanoic acid (MMPB) by solid-phase microextraction gas chromatography-mass spectrometry (SPME-GC/MS).

Authors:  Patricia Suchy; John Berry
Journal:  Int J Environ Anal Chem       Date:  2012-05-15       Impact factor: 2.826

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