Intra-dimer cooperativity between the active site cysteines during the oxidation of peroxiredoxin 2

Peroxiredoxin 2 (Prdx2) and other typical 2-Cys Prdxs function as homodimers in which hydrogen peroxide oxidizes each active site cysteine to a sulfenic acid which then condenses with the resolving cysteine on the alternate chain. Previous kinetic studies have considered both sites as equally reacti...

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Veröffentlicht in:Free radical biology & medicine 2020-10, Vol.158, p.115-125
Hauptverfasser: Peskin, Alexander V., Meotti, Flávia C., de Souza, Luiz F., Anderson, Robert F., Winterbourn, Christine C., Salvador, Armindo
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Sprache:eng
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Zusammenfassung:Peroxiredoxin 2 (Prdx2) and other typical 2-Cys Prdxs function as homodimers in which hydrogen peroxide oxidizes each active site cysteine to a sulfenic acid which then condenses with the resolving cysteine on the alternate chain. Previous kinetic studies have considered both sites as equally reactive. Here we have studied Prdx2 using a combination of non-reducing SDS-PAGE to separate reduced monomers and dimers with one and two disulfide bonds, and stopped flow analysis of tryptophan fluorescence, to investigate whether there is cooperativity between the sites. We have observed positive cooperativity when H2O2 is added as a bolus and oxidation of the second site occurs while the first site is present as a sulfenic acid. Modelling of this reaction showed that the second site reacts 2.2 ± 0.1 times faster. In contrast, when H2O2 was generated slowly and the first active site condensed to a disulfide before the second site reacted, no cooperativity was evident. Conversion of the sulfenic acid to the disulfide showed negative cooperativity, with modelling of the exponential rise in tryptophan fluorescence yielding a rate constant of 0.75 ± 0.08 s-1 when the alternate active site was present as a sulfenic acid and 2.29 ± 0.08-fold lower when it was a disulfide. No difference in the rate of hyperoxidation at the two sites was detected. Our findings imply that oxidation of one active site affects the conformation of the second site and influences which intermediate forms of the protein are favored under different cellular conditions. [Display omitted] •Cooperativity exists between the active sites in the peroxiredoxin 2 homodimer.•With bolus H2O2, the 2nd site is oxidized before the 1st –SOH forms a disulfide and is 2.2-fold more reactive.•With slow H2O2 addition, the 1st -SOH condenses before the 2nd is oxidized and no cooperativity is seen.•Condensation of the 2nd -SOH is 2.4 fold slower when the 1st site is a disulfide than when it is –SOH.
ISSN:0891-5849
1873-4596
DOI:10.1016/j.freeradbiomed.2020.07.007