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Insights into ascorbate regeneration in plants: investigating the redox and structural properties of dehydroascorbate reductases from Populus trichocarpa

Authors :
Claude Didierjean
Nicolas Rouhier
Thomas Roret
José M. Gualberto
Jean-Michel Girardet
Pascale Tsan
Pierre-Alexandre Lallement
Arnaud Hecker
Interactions Arbres-Microorganismes (IAM)
Université de Lorraine (UL)-Institut National de la Recherche Agronomique (INRA)
Cristallographie, Résonance Magnétique et Modélisations (CRM2)
Université de Lorraine (UL)-Centre National de la Recherche Scientifique (CNRS)
Institut de biologie moléculaire des plantes (IBMP)
Université de Strasbourg (UNISTRA)-Centre National de la Recherche Scientifique (CNRS)
Institut National de la Recherche Agronomique (INRA)-Université de Lorraine (UL)
Centre National de la Recherche Scientifique (CNRS)-Université de Strasbourg (UNISTRA)
ANR (ANR-11-LABX-0002-01)
Source :
Biochemical Journal, Biochemical Journal, Portland Press, 2016, 473 (6), pp.717-31. ⟨10.1042/BJ20151147⟩
Publication Year :
2016
Publisher :
HAL CCSD, 2016.

Abstract

International audience; Dehydroascorbate reductases (DHARs), enzymes belonging to the GST superfamily, catalyse the GSH-dependent reduction of dehydroascorbate into ascorbate in plants. By maintaining a reduced ascorbate pool, they notably participate to H2O2 detoxification catalysed by ascorbate peroxidases (APXs). Despite this central role, the catalytic mechanism used by DHARs is still not well understood and there is no supportive 3D structure. In this context, we have performed a thorough biochemical and structural analysis of the three poplar DHARs and coupled this to the analysis of their transcript expression patterns and subcellular localizations. The transcripts for these genes are mainly detected in reproductive and green organs and the corresponding proteins are expressed in plastids, in the cytosol and in the nucleus, but not in mitochondria and peroxisomes where ascorbate regeneration is obviously necessary. Comparing the kinetic properties and the sensitivity to GSSG-mediated oxidation of DHAR2 and DHAR3A, exhibiting 1 or 3 cysteinyl residues respectively, we observed that the presence of additional cysteines in DHAR3A modifies the regeneration mechanism of the catalytic cysteine by forming different redox states. Finally, from the 3D structure of DHAR3A solved by NMR, we were able to map the residues important for the binding of both substrates (GSH and DHA), showing that DHAR active site is very selective for DHA recognition and providing further insights into the catalytic mechanism and the roles of the additional cysteines found in some DHARs.

Details

Language :
English
ISSN :
02646021 and 14708728
Database :
OpenAIRE
Journal :
Biochemical Journal, Biochemical Journal, Portland Press, 2016, 473 (6), pp.717-31. ⟨10.1042/BJ20151147⟩
Accession number :
edsair.doi.dedup.....83bcb27224f7a75f8c6ede857d239411