Literature DB >> 28375740

Experimentally Dissecting the Origins of Peroxiredoxin Catalysis.

Kimberly J Nelson1,2, Arden Perkins3, Amanda E D Van Swearingen1,2, Steven Hartman3, Andrew E Brereton3, Derek Parsonage1,2, Freddie R Salsbury2,4, P Andrew Karplus3, Leslie B Poole1,2.   

Abstract

AIMS: Peroxiredoxins (Prxs) are ubiquitous cysteine-based peroxidases involved in oxidant defense and signal transduction. Despite much study, the precise roles of conserved residues remain poorly defined. In this study, we carried out extensive functional and structural characterization of 10 variants of such residues in a model decameric bacterial Prx.
RESULTS: Three active site proximal mutations of Salmonella typhimurium AhpC, T43V, R119A, and E49Q, lowered catalytic efficiency with hydrogen peroxide by 4-5 orders of magnitude, but did not affect reactivity toward their reductant, AhpF. pKa values of the peroxidatic cysteine were also shifted up by 1-1.3 pH units for these and a decamer disruption mutant, T77I. Except for the decamer-stabilizing T77V, all mutations destabilized decamers in the reduced form. In the oxidized form, three mutants-T77V, T43A, and T43S-exhibited stabilized decamers and were more efficiently reduced by AhpF than wild-type AhpC. Crystal structures of most mutants were solved and many showed alterations in stability of the fully folded active site loop. INNOVATION: This is the first study of Prx mutants to comprehensively assess the effects of mutations on catalytic activities, the active site cysteine pKa, and the protein structure and oligomeric status.
CONCLUSION: The Arg119 side chain must be properly situated for efficient catalysis, but for other debilitating variants, the functional defects could be explained by structural perturbations and/or associated decamer destabilization rather than direct effects. This underscores the importance of our comprehensive approach. A remarkable new finding was the preference of the reductant for decamers. Antioxid. Redox Signal. 28, 521-536.

Entities:  

Keywords:  AhpC; decamer; enzyme mechanism; peroxide signaling; regulation; thiol peroxidase

Mesh:

Substances:

Year:  2017        PMID: 28375740      PMCID: PMC5806077          DOI: 10.1089/ars.2016.6922

Source DB:  PubMed          Journal:  Antioxid Redox Signal        ISSN: 1523-0864            Impact factor:   8.401


  70 in total

1.  Model for the exceptional reactivity of peroxiredoxins 2 and 3 with hydrogen peroxide: a kinetic and computational study.

Authors:  Péter Nagy; Amir Karton; Andrea Betz; Alexander V Peskin; Paul Pace; Robert J O'Reilly; Mark B Hampton; Leo Radom; Christine C Winterbourn
Journal:  J Biol Chem       Date:  2011-03-08       Impact factor: 5.157

2.  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

3.  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

4.  Energetics of complementary side-chain packing in a protein hydrophobic core.

Authors:  J T Kellis; K Nyberg; A R Fersht
Journal:  Biochemistry       Date:  1989-05-30       Impact factor: 3.162

5.  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

Review 6.  Structure, mechanism and regulation of peroxiredoxins.

Authors:  Zachary A Wood; Ewald Schröder; J Robin Harris; Leslie B Poole
Journal:  Trends Biochem Sci       Date:  2003-01       Impact factor: 13.807

7.  Crystal structure of peroxiredoxin from Aeropyrum pernix K1 complexed with its substrate, hydrogen peroxide.

Authors:  Tsutomu Nakamura; Yuji Kado; Takafumi Yamaguchi; Hiroyoshi Matsumura; Kazuhiko Ishikawa; Tsuyoshi Inoue
Journal:  J Biochem       Date:  2009-10-09       Impact factor: 3.387

8.  Glutathione Is the Resolving Thiol for Thioredoxin Peroxidase Activity of 1-Cys Peroxiredoxin Without Being Consumed During the Catalytic Cycle.

Authors:  José Rafael Pedrajas; Brian McDonagh; Francisco Hernández-Torres; Antonio Miranda-Vizuete; Raúl González-Ojeda; Emilia Martínez-Galisteo; C Alicia Padilla; José Antonio Bárcena
Journal:  Antioxid Redox Signal       Date:  2015-08-19       Impact factor: 8.401

Review 9.  Peroxiredoxins in Regulation of MAPK Signalling Pathways; Sensors and Barriers to Signal Transduction.

Authors:  Heather R Latimer; Elizabeth A Veal
Journal:  Mol Cells       Date:  2016-01-25       Impact factor: 5.034

Review 10.  Distribution and Features of the Six Classes of Peroxiredoxins.

Authors:  Leslie B Poole; Kimberly J Nelson
Journal:  Mol Cells       Date:  2016-01-25       Impact factor: 5.034

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  8 in total

1.  Natural Dicarbonyls Inhibit Peroxidase Activity of Peroxiredoxins.

Authors:  V Z Lankin; M G Sharapov; R G Goncharov; A K Tikhaze; V I Novoselov
Journal:  Dokl Biochem Biophys       Date:  2019-06-14       Impact factor: 0.788

2.  Aromatic Residues at the Dimer-Dimer Interface in the Peroxiredoxin Tsa1 Facilitate Decamer Formation and Biological Function.

Authors:  Matthew A Loberg; Jennifer E Hurtig; Aaron H Graff; Kristin M Allan; John A Buchan; Matthew K Spencer; Joseph E Kelly; Jill E Clodfelter; Kevin A Morano; W Todd Lowther; James D West
Journal:  Chem Res Toxicol       Date:  2019-02-11       Impact factor: 3.739

3.  Plasticity of the peroxidase AhpC links multiple substrates to diverse disulfide-reducing pathways in Shewanella oneidensis.

Authors:  Xue Feng; Kailun Guo; Haichun Gao
Journal:  J Biol Chem       Date:  2020-06-12       Impact factor: 5.157

4.  Coordinated interaction between Lon protease and catalase-peroxidase regulates virulence and oxidative stress management during Salmonellosis.

Authors:  Perumalraja Kirthika; Vijayakumar Jawalagatti; Amal Senevirathne; John Hwa Lee
Journal:  Gut Microbes       Date:  2022 Jan-Dec

5.  Structural insights on the efficient catalysis of hydroperoxide reduction by Ohr: Crystallographic and molecular dynamics approaches.

Authors:  Erika Piccirillo; Thiago G P Alegria; Karen F Discola; José R R Cussiol; Renato M Domingos; Marcos A de Oliveira; Leandro de Rezende; Luis E S Netto; Antonia T-do Amaral
Journal:  PLoS One       Date:  2018-05-21       Impact factor: 3.240

6.  Real-time monitoring of peroxiredoxin oligomerization dynamics in living cells.

Authors:  Daniel Pastor-Flores; Deepti Talwar; Brandán Pedre; Tobias P Dick
Journal:  Proc Natl Acad Sci U S A       Date:  2020-06-29       Impact factor: 11.205

7.  Dynamics of a Key Conformational Transition in the Mechanism of Peroxiredoxin Sulfinylation.

Authors:  Alexandre Kriznik; Marouane Libiad; Hélène Le Cordier; Samia Boukhenouna; Michel B Toledano; Sophie Rahuel-Clermont
Journal:  ACS Catal       Date:  2020-01-31       Impact factor: 13.084

8.  Effects of Serine or Threonine in the Active Site of Typical 2-Cys Prx on Hyperoxidation Susceptibility and on Chaperone Activity.

Authors:  Carlos A Tairum; Melina Cardoso Santos; Carlos Alexandre Breyer; Ana Laura Pires de Oliveira; Vitoria Isabela Montanhero Cabrera; Guilherme Toledo-Silva; Gustavo Maruyama Mori; Marcos Hikari Toyama; Luis Eduardo Soares Netto; Marcos Antonio de Oliveira
Journal:  Antioxidants (Basel)       Date:  2021-06-25
  8 in total

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