Literature DB >> 16388596

Implications for an ionized alkyl-enzyme intermediate during StEH1-catalyzed trans-stilbene oxide hydrolysis.

Lisa T Elfström1, Mikael Widersten.   

Abstract

The catalytic mechanism of epoxide hydrolase (EC 3.3.2.3) involves acid-assisted ring opening of the oxirane during the alkylation half-reaction of hydrolysis. Two tyrosyl residues in the active site of epoxide hydrolases have been shown to contribute to the catalysis of enzyme alkylation, but their mechanism of action has not been fully described. We have investigated the involvement of the active site Tyr154 and Tyr235 during S,S-trans-stilbene oxide hydrolysis catalyzed by potato epoxide hydrolase StEH1. Tyr phenol ionizations of unliganded enzyme as well as under pre-steady-state conditions during catalysis were studied by direct absorption spectroscopy. A transient UV absorption, indicative of tyrosinate formation, was detected during the lifetime of the alkyl-enzyme intermediate. The apparent pKa of Tyr ionization was 7.3, a value more than 3 pH units below the estimated pKa of protein Tyr residues in the unliganded enzyme. In addition, the pH dependencies of microscopic kinetic rates of catalyzed S,S-trans-stilbene oxide hydrolysis were determined. The alkylation rate increased with pH and displayed a pKa value identical to that of Tyr ionization (7.3), whereas the reverse (epoxidation) reaction did not display any pH dependence. The rate of alkyl-enzyme hydrolysis was inversely dependent on tyrosinate formation, decreasing with its buildup in the active site. Since alkyl-enzyme hydrolysis is the rate-limiting step of the overall reaction, kcat displayed the same decrease with pH as the hydrolysis rate. The compiled results suggested that the role of the Tyr154/Tyr235 pair was not as ultimate proton donor to the alkoxide anion but to stabilize the negatively charged alkyl-enzyme through electrophilic catalysis via hydrogen bonding.

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Year:  2006        PMID: 16388596     DOI: 10.1021/bi051893g

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


  7 in total

1.  X-ray structure of potato epoxide hydrolase sheds light on substrate specificity in plant enzymes.

Authors:  Sherry L Mowbray; Lisa T Elfström; Kerstin M Ahlgren; C Evalena Andersson; Mikael Widersten
Journal:  Protein Sci       Date:  2006-06-02       Impact factor: 6.725

2.  Removal of distal protein-water hydrogen bonds in a plant epoxide hydrolase increases catalytic turnover but decreases thermostability.

Authors:  Ann Thomaeus; Agata Naworyta; Sherry L Mowbray; Mikael Widersten
Journal:  Protein Sci       Date:  2008-05-30       Impact factor: 6.725

3.  Role of the NC-loop in catalytic activity and stability in lipase from Fervidobacterium changbaicum.

Authors:  Binchun Li; Guangyu Yang; Lie Wu; Yan Feng
Journal:  PLoS One       Date:  2012-10-08       Impact factor: 3.240

4.  Determinants of reactivity and selectivity in soluble epoxide hydrolase from quantum mechanics/molecular mechanics modeling.

Authors:  Richard Lonsdale; Simon Hoyle; Daniel T Grey; Lars Ridder; Adrian J Mulholland
Journal:  Biochemistry       Date:  2012-02-10       Impact factor: 3.162

5.  Expanding the Catalytic Triad in Epoxide Hydrolases and Related Enzymes.

Authors:  Beat A Amrein; Paul Bauer; Fernanda Duarte; Åsa Janfalk Carlsson; Agata Naworyta; Sherry L Mowbray; Mikael Widersten; Shina C L Kamerlin
Journal:  ACS Catal       Date:  2015-08-17       Impact factor: 13.084

6.  Conformational diversity and enantioconvergence in potato epoxide hydrolase 1.

Authors:  P Bauer; Å Janfalk Carlsson; B A Amrein; D Dobritzsch; M Widersten; S C L Kamerlin
Journal:  Org Biomol Chem       Date:  2016-04-06       Impact factor: 3.876

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

  7 in total

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