Literature DB >> 25941976

Enzymatic Mechanism of Leishmania major Peroxidase and the Critical Role of Specific Ionic Interactions.

Georges Chreifi1, Scott A Hollingsworth1, Huiying Li1, Sarvind Tripathi1, Anton P Arce1, Hugo I Magaña-Garcia1, Thomas L Poulos1.   

Abstract

Leishmania major peroxidase (LmP) is very similar to the well-known yeast cytochrome c peroxidase (CcP). Both enzymes catalyze the peroxidation of cytochrome c. Like CcP, LmP reacts with H2O2 to form Compound I, which consists of a ferryl heme and a Trp radical, Fe(IV)═O;Trp(•+). Cytochrome c (Cytc) reduces the Trp radical to give Compound II, Fe(IV)═O;Trp, which is followed by an intramolecular electron transfer to give Fe(III)-OH;Trp(•+), and in the last step, Cytc reduces the Trp radical. In this study, we have used steady-state and single-turnover kinetics to improve our understanding of the overall mechanism of LmP catalysis. While the activity of CcP greatly increases with ionic strength, the kcat for LmP remains relatively constant at all ionic strengths tested. Therefore, unlike CcP, where dissociation of oxidized Cytc is limiting at low ionic strengths, association/dissociation reactions are not limiting at any ionic strength in LmP. We conclude that in LmP, the intramolecular electron transfer reaction, Fe(IV)═O;Trp to Fe(III)-OH;Trp(•+), is limiting at all ionic strengths. Unlike CcP, LmP depends on key intermolecular ion pairs to form the electron transfer competent complex. Mutating these sites causes the initial rate of association to decrease by 2 orders of magnitude and a substantial decrease in kcat. The drop in kcat is due to a switch in the rate-limiting step of the mutants from intramolecular electron transfer to the rate of association in forming the LmP-LmCytc complex. These studies show that while LmP and CcP form very similar complexes and exhibit similar activities, they substantially differ in how their activity changes as a function of ionic strength. This difference is primarily due to the heavy reliance of LmP on highly specific intermolecular ion pairs, while CcP relies mainly on nonpolar interactions.

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Year:  2015        PMID: 25941976      PMCID: PMC4533909          DOI: 10.1021/acs.biochem.5b00338

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


  39 in total

1.  The crystal structure of cytochrome c peroxidase.

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Journal:  J Biol Chem       Date:  1980-01-25       Impact factor: 5.157

2.  Oxidation of cytochrome c peroxidase with hydrogen peroxide: identification of the "endogenous donor".

Authors:  A F Coulson; T Yonetani
Journal:  Biochem Biophys Res Commun       Date:  1972-10-17       Impact factor: 3.575

3.  Reaction of horse cytochrome c with the radical and the oxyferryl heme in cytochrome c peroxidase compound I.

Authors:  S Hahm; M A Miller; L Geren; J Kraut; B Durham; F Millett
Journal:  Biochemistry       Date:  1994-02-15       Impact factor: 3.162

4.  iMOSFLM: a new graphical interface for diffraction-image processing with MOSFLM.

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Journal:  Acta Crystallogr D Biol Crystallogr       Date:  2011-03-18

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Authors:  R Q Liu; M A Miller; G W Han; S Hahm; L Geren; S Hibdon; J Kraut; B Durham; F Millett
Journal:  Biochemistry       Date:  1994-07-26       Impact factor: 3.162

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Journal:  J Biol Chem       Date:  1993-09-25       Impact factor: 5.157

7.  Photoinduced electron transfer between cytochrome c peroxidase and yeast cytochrome c labeled at Cys 102 with (4-bromomethyl-4'-methylbipyridine)[bis(bipyridine)]ruthenium2+.

Authors:  L Geren; S Hahm; B Durham; F Millett
Journal:  Biochemistry       Date:  1991-10-01       Impact factor: 3.162

8.  Heme enzymes. Neutron cryo-crystallography captures the protonation state of ferryl heme in a peroxidase.

Authors:  Cecilia M Casadei; Andrea Gumiero; Clive L Metcalfe; Emma J Murphy; Jaswir Basran; Maria Grazia Concilio; Susana C M Teixeira; Tobias E Schrader; Alistair J Fielding; Andreas Ostermann; Matthew P Blakeley; Emma L Raven; Peter C E Moody
Journal:  Science       Date:  2014-07-10       Impact factor: 47.728

9.  Compounds I of catalase and horse radish peroxidase: pi-cation radicals.

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Journal:  Proc Natl Acad Sci U S A       Date:  1971-03       Impact factor: 11.205

10.  How good are my data and what is the resolution?

Authors:  Philip R Evans; Garib N Murshudov
Journal:  Acta Crystallogr D Biol Crystallogr       Date:  2013-06-13
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  4 in total

1.  Insights into the Dynamics and Dissociation Mechanism of a Protein Redox Complex Using Molecular Dynamics.

Authors:  Scott A Hollingsworth; Brian D Nguyen; Georges Chreifi; Anton P Arce; Thomas L Poulos
Journal:  J Chem Inf Model       Date:  2017-09-12       Impact factor: 4.956

2.  Crystal structure of the pristine peroxidase ferryl center and its relevance to proton-coupled electron transfer.

Authors:  Georges Chreifi; Elizabeth L Baxter; Tzanko Doukov; Aina E Cohen; Scott E McPhillips; Jinhu Song; Yergalem T Meharenna; S Michael Soltis; Thomas L Poulos
Journal:  Proc Natl Acad Sci U S A       Date:  2016-01-19       Impact factor: 11.205

3.  Consecutive Marcus Electron and Proton Transfer in Heme Peroxidase Compound II-Catalysed Oxidation Revealed by Arrhenius Plots.

Authors:  Audrius Laurynėnas; Marius Butkevičius; Marius Dagys; Sergey Shleev; Juozas Kulys
Journal:  Sci Rep       Date:  2019-10-01       Impact factor: 4.379

4.  Rewiring the "Push-Pull" Catalytic Machinery of a Heme Enzyme Using an Expanded Genetic Code.

Authors:  Mary Ortmayer; Karl Fisher; Jaswir Basran; Emmanuel M Wolde-Michael; Derren J Heyes; Colin Levy; Sarah L Lovelock; J L Ross Anderson; Emma L Raven; Sam Hay; Stephen E J Rigby; Anthony P Green
Journal:  ACS Catal       Date:  2020-01-29       Impact factor: 13.084

  4 in total

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