4.5 Article

Disulfide bond formation protects Arabidopsis thaliana glutathione transferase tau 23 from oxidative damage

Journal

BIOCHIMICA ET BIOPHYSICA ACTA-GENERAL SUBJECTS
Volume 1862, Issue 3, Pages 775-789

Publisher

ELSEVIER SCIENCE BV
DOI: 10.1016/j.bbagen.2017.10.007

Keywords

Glutathione transferase; Kinetics; X-ray structure; Thermodynamics; Methionine sulfoxide; Disulfide bond

Funding

  1. Vlaams Instituut voor Biotechnologie (VIB)
  2. FWO PhD fellowship
  3. Fonds voor Wetenschappelijk Onderzoek Vlaanderen (FWO project: Sulfenomics: oxidatieve schakelaars in planten. Hoe zwavelhoudende planteneiwitten via 'agressieve' zuurstof praten) [G0D7914N]
  4. Omics@VIB Marie Curie COFUND fellowship
  5. Hercules foundation [HERC16]
  6. Strategic Research Programme of the VUB [SRP34]

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Background: Glutathione transferases play an important role as detoxifying enzymes. In A. thaliana, elevated levels of reactive oxygen species (ROS), provoked during biotic and abiotic stress, influence the activity of GSTU23. The aim of this study is to determine the impact of oxidative stress on the function and structure of GSTU23. Methods: The impact of oxidation on the function of GSTU23 was studied using a glutathione transferase biochemical assay and mass spectrometry. With kinetics, circular dichroism and thermodynamics, we compared reduced with oxidized GSTU23. X-ray crystal structures of GSTU23 visualize the impact of oxidation on methionines and cysteines. Results: In the presence of 100 mu M H2O2, oxidation of the methionine side-chain to a sulfoxide is the prominent post-translational modification, which can be reduced by C. diphtheriae MsrA and MsrB. However, increasing the level to 200 mu M H2O2 results in a reversible intramolecular disulfide between Cys65-Cys110, which is substrate for glutaredoxin. Under these oxidizing conditions, GSTU23 undergoes a structural change and forms a more favourable enzyme-substrate complex to overcome k(cat) decrease. Conclusions and significance: At lower H2O2 levels (100 mu M), GSTU23 forms methionine sulfoxides. Specifically, oxidation of Met14, located near the catalytic Ser13, could interfere with both GSH binding and catalytic activation. At higher H2O2 levels (200 mu M), the Cys65-Cys110 disulfide bond protects other cysteines and also methionines from overoxidation. This study shows the impact of oxidative stress on GSTU23 regulated by methionine sulfoxide reductases and glutaredoxin, and the mechanisms involved in maintaining its catalytic functionality under oxidizing conditions.

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