Thermodynamics of the Dimer−Decamer Transition of Reduced Human and Plant 2-Cys Peroxiredoxin

Sergio Barranco-Medina, Sergej Kakorin§, Juan Jos Lzaro and Karl-Josef Dietz*
Biochemistry and Physiology of Plants, Faculty of Biology-W5, Bielefeld University, 33501 Bielefeld, Germany, Biophysical Chemistry, Faculty of Chemistry-F3, Bielefeld University, D-33501 Bielefeld, Germany, and Department of Biochemistry and Cellular and Molecular Biology of Plants, Estacin Experimental del Zaidn, Consejo Superior de Investigaciones Cientficas, E-18008 Granada, Spain
Biochemistry, 2008, 47 (27), pp 7196–7204
DOI: 10.1021/bi8002956
Publication Date (Web): June 14, 2008
Copyright © 2008 American Chemical Society

This work was supported by the DFG (Di 346) and by the SFB 613.

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Faculty of Biology-W5, Bielefeld University.

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Department of Chemistry-F3, Bielefeld University.

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Consejo Superior de Investigaciones Cientficas.

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* To whom correspondence should be addressed: Biochemistry and Physiology of Plants, Faculty of Biology-W5, Bielefeld University, 33501 Bielefeld, Germany. Telephone: +49 521 106 5589. Fax: +49 521 106 6039. E-mail: karl-josef.dietz@uni-bielefeld.de.

Abstract

Abstract Image

Isothermal titration calorimetry (ITC) is a powerful technique for investigating self-association processes of protein complexes and was expected to reveal quantitative data on peroxiredoxin oligomerization by directly measuring the thermodynamic parameters of dimer−dimer interaction. Recombinant classical 2-cysteine peroxoredoxins from Homo sapiens, Arabidopsis thaliana, and Pisum sativum as well as a carboxy-terminally truncated variant were subjected to ITC analysis by stepwise injection into the reaction vessel under various redox conditions. The direct measurement of the decamer−dimer equilibrium of reduced peroxiredoxin revealed a critical concentration in the very low micromolar range. The data suggest a cooperative assembly above this critical transition concentration where a nucleus facilitates assembly. The rather abrupt transition indicates that assembly processes do not occur below the critical transition concentration while oligomerization is efficiently triggered above it. The magnitude of the measured enthalpy confirmed the endothermic nature of the peroxiredoxin oligomerization. Heterocomplexes between peroxiredoxin polypeptides from different species were not formed. We conclude that a functional constraint conserved the dimer−decamer transition with highly similar critical transition concentrations despite emerging sequence variation during evolution.

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  • Published In Issue July 08, 2008
  • Article ASAPJune 14, 2008
  • Received: February 20, 2008
    Revised: April 17, 2008

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