Literature DB >> 24175952

The sensitive balance between the fully folded and locally unfolded conformations of a model peroxiredoxin.

Arden Perkins1, Kimberly J Nelson, Jared R Williams, Derek Parsonage, Leslie B Poole, P Andrew Karplus.   

Abstract

To reduce peroxides, peroxiredoxins (Prxs) require a key "peroxidatic" Cys that, in a substrate-ready fully folded (FF) conformation, is oxidized to sulfenic acid and then, after a local unfolding (LU) of the active site, forms a disulfide bond with a second "resolving" Cys. For Salmonella typhimurium alkyl hydroperoxide reductase C (StAhpC) and some other Prxs, the FF structure is only known for a peroxidatic CysSer variant, which may not accurately represent the wild-type enzyme. Here, we obtain the structure of authentic reduced wild-type StAhpC by dithiothreitol treatment of disulfide form crystals that fortuitously accommodate both the LU and FF conformations. The unique environment of one molecule in the crystal reveals a thermodynamic linkage between the folding of the active site loop and C-terminal regions, and comparisons with the Ser variant show structural and mobility differences from which we infer that the CysSer mutation stabilizes the FF active site. A structure for the C165A variant (a resolving Cys to Ala mutant) in the same crystal form reveals that this mutation destabilizes the folding of the C-terminal region. These structures prove that subtle modifications to Prx structures can substantially influence enzymatic properties. We also present a simple thermodynamic framework for understanding the various mixtures of FF and LU conformations seen in these structures. On the basis of this framework, we rationalize how physiologically relevant regulatory post-translational modifications may modulate activity, and we propose a nonconventional strategy for designing selective Prx inhibitors.

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Year:  2013        PMID: 24175952      PMCID: PMC3932808          DOI: 10.1021/bi4011573

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


  66 in total

1.  Catalase (KatA) and alkyl hydroperoxide reductase (AhpC) have compensatory roles in peroxide stress resistance and are required for survival, persistence, and nasal colonization in Staphylococcus aureus.

Authors:  Kate Cosgrove; Graham Coutts; Ing-Marie Jonsson; Andrej Tarkowski; John F Kokai-Kun; James J Mond; Simon J Foster
Journal:  J Bacteriol       Date:  2006-11-17       Impact factor: 3.490

Review 2.  Hydrogen bonding in globular proteins.

Authors:  E N Baker; R E Hubbard
Journal:  Prog Biophys Mol Biol       Date:  1984       Impact factor: 3.667

3.  Glutathionylation of peroxiredoxin I induces decamer to dimers dissociation with concomitant loss of chaperone activity.

Authors:  Ji Won Park; Grzegorz Piszczek; Sue Goo Rhee; P Boon Chock
Journal:  Biochemistry       Date:  2011-03-25       Impact factor: 3.162

4.  Dimers to doughnuts: redox-sensitive oligomerization of 2-cysteine peroxiredoxins.

Authors:  Zachary A Wood; Leslie B Poole; Roy R Hantgan; P Andrew Karplus
Journal:  Biochemistry       Date:  2002-04-30       Impact factor: 3.162

5.  The conserved Cys76 plays a crucial role for the conformation of reduced glutathione peroxidase-type tryparedoxin peroxidase.

Authors:  Claudia Muhle-Goll; Florian Füller; Anne S Ulrich; R Luise Krauth-Siegel
Journal:  FEBS Lett       Date:  2010-01-31       Impact factor: 4.124

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

Authors:  T Geoff G Battye; Luke Kontogiannis; Owen Johnson; Harold R Powell; Andrew G W Leslie
Journal:  Acta Crystallogr D Biol Crystallogr       Date:  2011-03-18

7.  Cysteine pK(a) values for the bacterial peroxiredoxin AhpC.

Authors:  Kimberly J Nelson; Derek Parsonage; Andrea Hall; P Andrew Karplus; Leslie B Poole
Journal:  Biochemistry       Date:  2008-12-02       Impact factor: 3.162

8.  Geometric characteristics of hydrogen bonds involving sulfur atoms in proteins.

Authors:  Peng Zhou; Feifei Tian; Fenglin Lv; Zhicai Shang
Journal:  Proteins       Date:  2009-07

Review 9.  Sulfiredoxin, the cysteine sulfinic acid reductase specific to 2-Cys peroxiredoxin: its discovery, mechanism of action, and biological significance.

Authors:  S G Rhee; W Jeong; T-S Chang; H A Woo
Journal:  Kidney Int Suppl       Date:  2007-08       Impact factor: 10.545

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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  20 in total

1.  Novel hyperoxidation resistance motifs in 2-Cys peroxiredoxins.

Authors:  Jesalyn A Bolduc; Kimberly J Nelson; Alexina C Haynes; Jingyun Lee; Julie A Reisz; Aaron H Graff; Jill E Clodfelter; Derek Parsonage; Leslie B Poole; Cristina M Furdui; W Todd Lowther
Journal:  J Biol Chem       Date:  2018-06-08       Impact factor: 5.157

2.  Experimentally Dissecting the Origins of Peroxiredoxin Catalysis.

Authors:  Kimberly J Nelson; Arden Perkins; Amanda E D Van Swearingen; Steven Hartman; Andrew E Brereton; Derek Parsonage; Freddie R Salsbury; P Andrew Karplus; Leslie B Poole
Journal:  Antioxid Redox Signal       Date:  2017-04-04       Impact factor: 8.401

3.  Dissecting peroxiredoxin catalysis: separating binding, peroxidation, and resolution for a bacterial AhpC.

Authors:  Derek Parsonage; Kimberly J Nelson; Gerardo Ferrer-Sueta; Samantha Alley; P Andrew Karplus; Cristina M Furdui; Leslie B Poole
Journal:  Biochemistry       Date:  2015-02-10       Impact factor: 3.162

4.  Urate hydroperoxide oxidizes human peroxiredoxin 1 and peroxiredoxin 2.

Authors:  Larissa A C Carvalho; Daniela R Truzzi; Thamiris S Fallani; Simone V Alves; José Carlos Toledo; Ohara Augusto; Luís E S Netto; Flavia C Meotti
Journal:  J Biol Chem       Date:  2017-03-27       Impact factor: 5.157

5.  Evolution and function of the Mycoplasma hyopneumoniae peroxiredoxin, a 2-Cys-like enzyme with a single Cys residue.

Authors:  Taylor Gonchoroski; Veridiana G Virginio; Claudia E Thompson; Jéssica A Paes; Cláudio X Machado; Henrique B Ferreira
Journal:  Mol Genet Genomics       Date:  2016-11-17       Impact factor: 3.291

Review 6.  A primer on peroxiredoxin biochemistry.

Authors:  P Andrew Karplus
Journal:  Free Radic Biol Med       Date:  2014-10-19       Impact factor: 7.376

7.  Nitration transforms a sensitive peroxiredoxin 2 into a more active and robust peroxidase.

Authors:  Lía M Randall; Bruno Manta; Martín Hugo; Magdalena Gil; Carlos Batthyàny; Madia Trujillo; Leslie B Poole; Ana Denicola
Journal:  J Biol Chem       Date:  2014-04-09       Impact factor: 5.157

8.  Peroxiredoxin Catalysis at Atomic Resolution.

Authors:  Arden Perkins; Derek Parsonage; Kimberly J Nelson; O Maduka Ogba; Paul Ha-Yeon Cheong; Leslie B Poole; P Andrew Karplus
Journal:  Structure       Date:  2016-09-01       Impact factor: 5.006

Review 9.  Peroxiredoxins: guardians against oxidative stress and modulators of peroxide signaling.

Authors:  Arden Perkins; Kimberly J Nelson; Derek Parsonage; Leslie B Poole; P Andrew Karplus
Journal:  Trends Biochem Sci       Date:  2015-06-09       Impact factor: 13.807

10.  Native state fluctuations in a peroxiredoxin active site match motions needed for catalysis.

Authors:  Aidan B Estelle; Patrick N Reardon; Seth H Pinckney; Leslie B Poole; Elisar Barbar; P Andrew Karplus
Journal:  Structure       Date:  2021-10-21       Impact factor: 5.006

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