Literature DB >> 9485442

Semifunctional site-specific mutants affecting the hydrolytic half-reaction of microsomal epoxide hydrolase.

H F Tzeng1, L T Laughlin, R N Armstrong.   

Abstract

Microsomal epoxide hydrolase (MEH) is a member of the alpha/beta-hydrolase fold family of enzymes, each of which has a catalytic triad consisting of a nucleophile involved in the formation of a covalent intermediate and a general base and charge relay carboxylate that catalyze the hydrolysis of the intermediate. The rate-limiting step in the catalytic mechanism of MEH is hydrolysis of the ester intermediate. An efficient bacterial expression system for a C-terminal hexahistidine tagged version of the native enzyme, which facilitates the isolation of mutant enzymes in which residues involved in the hydrolytic half-reaction have been altered, is described. The H431S mutant of this enzyme is efficiently alkylated by substrate to form the ester intermediate but is unable to hydrolyze the ester to complete the catalytic cycle, a fact that confirms that H431 acts as the base in the hydrolytic half-reaction. The charge relay carboxylate, which is not apparent in paired sequence alignments with other alpha/beta-hydrolase fold enzymes, is thought to be located between residues 340 and 405. A mutagenic survey of all eight Asp and Glu residues in this region reveals that only two (E376 and E404) influence the catalytic mechanism. Steady-state and pre-steady-state kinetic analyses of these residues suggest that both E404 and E376 may serve the charge relay function in the hydrolysis half-reaction. Finally, the tryptophan residue (W150), which resides in the oxyanion hole sequence HGWP, is demonstrated to contribute to the large change in intrinsic protein fluorescence observed when the enzyme is alkylated.

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Year:  1998        PMID: 9485442     DOI: 10.1021/bi9727388

Source DB:  PubMed          Journal:  Biochemistry        ISSN: 0006-2960            Impact factor:   3.162


  8 in total

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Authors:  Franz Oesch; Jan Georg Hengstler; Michael Arand
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2.  Visualizing the Mechanism of Epoxide Hydrolysis by the Bacterial Virulence Enzyme Cif.

Authors:  Christopher D Bahl; Kelli L Hvorecny; Christophe Morisseau; Scott A Gerber; Dean R Madden
Journal:  Biochemistry       Date:  2016-01-22       Impact factor: 3.162

3.  Cloning and molecular characterization of a soluble epoxide hydrolase from Aspergillus niger that is related to mammalian microsomal epoxide hydrolase.

Authors:  M Arand; H Hemmer; H Dürk; J Baratti; A Archelas; R Furstoss; F Oesch
Journal:  Biochem J       Date:  1999-11-15       Impact factor: 3.857

4.  Catalysis of potato epoxide hydrolase, StEH1.

Authors:  Lisa T Elfström; Mikael Widersten
Journal:  Biochem J       Date:  2005-09-01       Impact factor: 3.857

5.  Catalytic triad of microsomal epoxide hydrolase: replacement of Glu404 with Asp leads to a strongly increased turnover rate.

Authors:  M Arand; F Müller; A Mecky; W Hinz; P Urban; D Pompon; R Kellner; F Oesch
Journal:  Biochem J       Date:  1999-01-01       Impact factor: 3.857

6.  Evidence for a complex formation between CYP2J5 and mEH in living cells by FRET analysis of membrane protein interaction in the endoplasmic reticulum (FAMPIR).

Authors:  Anette Carolina Orjuela Leon; Anne Marwosky; Michael Arand
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Review 7.  Epoxide hydrolysis as a model system for understanding flux through a branched reaction scheme.

Authors:  Åsa Janfalk Carlsson; Paul Bauer; Doreen Dobritzsch; Shina C L Kamerlin; Mikael Widersten
Journal:  IUCrJ       Date:  2018-03-22       Impact factor: 4.769

Review 8.  Mechanisms of promiscuity among drug metabolizing enzymes and drug transporters.

Authors:  William M Atkins
Journal:  FEBS J       Date:  2019-11-12       Impact factor: 5.542

  8 in total

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