Differential molecular response of monodehydroascorbate reductase and glutathione reductase by nitration and S-nitrosylation

被引:121
作者
Begara-Morales, Juan C. [1 ]
Sanchez-Calvo, Beatriz [1 ]
Chaki, Mounira [1 ]
Mata-Perez, Capilla [1 ]
Valderrama, Raquel [1 ]
Padilla, Maria N. [1 ]
Lopez-Jaramillo, Javier [2 ]
Luque, Francisco [3 ]
Corpas, Francisco J. [4 ]
Barroso, Juan B. [1 ,3 ]
机构
[1] Univ Jaen, Grp Biochem & Cell Signaling Nitr Oxide, Biochem & Mol Biol Div, Dept Expt Biol,Fac Expt Sci, E-23071 Jaen, Spain
[2] Univ Granada, Inst Biotechnol, E-18071 Granada, Spain
[3] Univ Jaen, Ctr Adv Studies Olives & Olive Oil, E-23071 Jaen, Spain
[4] CSIC, Grp Antioxidants Free Radicals & Nitr Oxide Biote, Dept Biochem Cell & Mol Biol Plants, Estn Expt Zaidin, E-18080 Granada, Spain
关键词
Glutathione reductase; monodehydroascorbate reductase; nitration; nitric oxide; peroxynitrite; reactive nitrogen species; salinity; S-nitrosylation; S-nitrosoglutathione; PROTEIN-TYROSINE NITRATION; NITRO-OXIDATIVE STRESS; ASCORBATE PEROXIDASE; NITROSATIVE STRESS; RADICAL REDUCTASE; ABIOTIC STRESS; ANTIOXIDANT ENZYMES; CRYSTAL-STRUCTURE; OXIDE SYNTHASE; PEA-PLANTS;
D O I
10.1093/jxb/erv306
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Nitration and S-nitrosylation, two post-translational modifications (PTMs) mediated by nitric oxide, differentially regulate MDAR and GR activities which are key components of the ascorbate-glutathione cycle.The ascorbate-glutathione cycle is a metabolic pathway that detoxifies hydrogen peroxide and involves enzymatic and non-enzymatic antioxidants. Proteomic studies have shown that some enzymes in this cycle such as ascorbate peroxidase (APX), monodehydroascorbate reductase (MDAR), and glutathione reductase (GR) are potential targets for post-translational modifications (PMTs) mediated by nitric oxide-derived molecules. Using purified recombinant pea peroxisomal MDAR and cytosolic and chloroplastic GR enzymes produced in Escherichia coli, the effects of peroxynitrite (ONOO-) and S-nitrosoglutathione (GSNO) which are known to mediate protein nitration and S-nitrosylation processes, respectively, were analysed. Although ONOO- and GSNO inhibit peroxisomal MDAR activity, chloroplastic and cytosolic GR were not affected by these molecules. Mass spectrometric analysis of the nitrated MDAR revealed that Tyr213, Try292, and Tyr345 were exclusively nitrated to 3-nitrotyrosine by ONOO-. The location of these residues in the structure of pea peroxisomal MDAR reveals that Tyr345 is found at 3.3 <remove> of His313 which is involved in the NADP-binding site. Site-directed mutagenesis confirmed Tyr345 as the primary site of nitration responsible for the inhibition of MDAR activity by ONOO-. These results provide new insights into the molecular regulation of MDAR which is deactivated by nitration and S-nitrosylation. However, GR was not affected by ONOO- or GSNO, suggesting the existence of a mechanism to conserve redox status by maintaining the level of reduced GSH. Under a nitro-oxidative stress induced by salinity (150mM NaCl), MDAR expression (mRNA, protein, and enzyme activity levels) was increased, probably to compensate the inhibitory effects of S-nitrosylation and nitration on the enzyme. The present data show the modulation of the antioxidative response of key enzymes in the ascorbate-glutathione cycle by nitric oxide (NO)-PTMs, thus indicating the close involvement of NO and reactive oxygen species metabolism in antioxidant defence against nitro-oxidative stress situations in plants.
引用
收藏
页码:5983 / 5996
页数:14
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