4 resultados para THIOLTRANSFERASE


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Die an der Glutathionsynthese im Chloroplasten von Spinatblättern beteiligten Enzyme sind auf eine lichtabhängige Regulation durch Thioredoxine (Trx) und Glutaredoxine (Grx) hin untersucht worden. Dazu wurde eine neue, vereinfachte Methode zur Aktivitätsbestimmung für die gamma-Glutamylcystein- und Glutathionsynthetase auf der Kapillarelektrophorese entwickelt. Untersuchungen mit den homologen Thioredoxinen Trx m und Trx f aus Spinatchloroplasten und mit dem E.coli Trx und E.coli Grx 1 zeigten, dass bei beiden Enzymen keine Redoxmodulation durch diese Proteine stattfindet. Weitere Untersuchungen mit der Glutathionsynthetase zeigten keinen Einfluss von Dithiothreit, Sulfit-Ionen und Ascorbat auf die Enzymaktivität. Nur H2O2, in unphysiologischen Konzentrationen, bewirkte eine leichte Abnahme der Ausgangsaktivität. Im Fall der gamma-Glutamylcysteinsynthetase konnten verschiedene Einflüsse ausgemacht werden. So war mit Dithiothreit und H2O2 bei niedrigen Konzentrationen eine Stimulation und bei höheren Konzentration eine Inhibition der Enzymaktivität festzustellen: Sulfit-Ionen zeigten eine starke Stimulierung der gamma-Glutamylcysteinsynthetase über einen weiten Konzentrationsbereich, wobei eine starke pH-Wert-Abhängigkeit der Stimulation zu beobachten war. Ascorbat zeigte, wie bei der Glutathionsynthetase, keinen Einfluss auf die Enzymaktivität der gamma-Glutamyl-cysteinsynthetase. In einem zweiten Teil der Arbeit über die Glutaredoxine des Spinats konnte ein 12,4 kDa Protein mit Thioltransferase-Aktivität, das bisher als cytosolisches Glutaredoxin beschrieben wurde, aufgereinigt und mittels N-terminaler Sequenzierung eindeutig als ein Glutaredoxin identifiziert werden. Überdies konnte ein noch nicht beschriebenes 12,8 kDa Protein mit Thioltransferase-Aktivität aus Spinatchloroplasten aufgereinigt werden. Durch Peptid-Sequenzierung gelang es dieses Protein auch als ein Glutaredoxin zu identifizieren. Beide pflanzlichen Glutaredoxine zeigten keine Modulation der Aktivitäten der chloroplastidären Fructosebisphosphatase (FbPase) und NADPH-Malatdehydrogenase (NADPH-MDH). Auch war mit beiden Glutaredoxinen keine Dehydroascorbatreduktase-Aktivität, oder eine Stimulation der Ribonucleotidreduktase aus Lactobacillus leichmannii festzustellen.

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The yeast 20S proteasome is subject to sulfhydryl redox alterations, such as the oxidation of cysteine residues (Cys-SH) into cysteine sulfenic acid (Cys-SOH), followed by S-glutathionylation (Cys-S-SG). Proteasome S-glutathionylation promotes partial loss of chymotrypsin-like activity and post-acidic cleavage without alteration of the trypsin-like proteasomal activity. Here we show that the 20S proteasome purified from stationary-phase cells was natively S-glutathionylated. Moreover, recombinant glutaredoxin 2 removes glutathione from natively or in vitro S-glutathionylated 20S proteasome, allowing the recovery of chymotrypsin-like activity and post-acidic cleavage. Glutaredoxin 2 deglutathionylase activity was dependent on its entry into the core particle, as demonstrated by stimulating S-glutathionylated proteasome opening. Under these conditions, deglutathionylation of the 20S proteasome and glutaredoxin 2 degradation were increased when compared to non-stimulated samples. Glutaredoxin 2 fragmentation by the 20S proteasome was evaluated by SDS-PAGE and mass spectrometry, and S-glutathionylation was evaluated by either western blot analyses with anti-glutathione IgG or by spectrophotometry with the thiol reactant 7-chloro-4-nitrobenzo-2-oxa-1,3-diazole. It was also observed in vivo that glutaredoxin 2 was ubiquitinated in cellular extracts of yeast cells grown in glucose-containing medium. Other cytoplasmic oxido-reductases, namely thioredoxins 1 and 2, were also active in 20S proteasome deglutathionylation by a similar mechanism. These results indicate for the first time that 20S proteasome cysteinyl redox modification is a regulated mechanism coupled to enzymatic deglutathionylase activity.

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Glutaredoxins (Grxs) are small (9-12 kDa) heat-stable proteins that are ubiquitously distributed. In Saccharomyces cerevisiae, seven Grx enzymes have been identified. Two of them (yGrx1 and yGrx2) are dithiolic, possessing a conserved Cys-Pro-Tyr-Cys motif. Here, we show that yGrx2 has a specific activity 15 times higher than that of yGrx1, although these two oxidoreductases share 64% identity and 85% similarity with respect to their amino acid sequences. Further characterization of the enzymatic activities through two-substrate kinetics analysis revealed that yGrx2 possesses a lower Km for glutathione and a higher turnover than yGrx1. To better comprehend these biochemical differences, the pK(a) of the N-terminal active-site cysteines (Cys27) of these two proteins and of the yGrx2-C30S mutant were determined. Since the pK(a) values of the yGrx1 and yGix2 Cys27 residues are very similar, these parameters cannot account for the difference observed between their specific activities. Therefore, crystal structures of yGrx2 in the oxidized form and with a glutathionyl mixed disulfide were determined at resolutions of 2.05 and 1.91 angstrom, respectively. Comparisons of yGrx2 structures with the recently determined structures of yGrx1 provided insights into their remarkable functional divergence. We hypothesize that the substitutions of Ser23 and Gln52 in yGrx1 by Ala23 and Glu52 in yGrx2 modify the capability of the active-site C-terminal cysteine to attack the mixed disulfide between the N-terminal active-site cysteine and the glutathione molecule. Mutagenesis studies supported this hypothesis. The observed structural and functional differences between yGrx1 and yGrx2 may reflect variations in substrate specificity. (C) 2008 Elsevier Ltd. All rights reserved.

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Reactive oxygen species (ROS) are increased in ischemic tissues and necessary for revascularization; however, the mechanism remains unclear. Exposure of cysteine residues to ROS in the presence of glutathione (GSH) generates GSH-protein adducts that are specifically reversed by the cytosolic thioltransferase, glutaredoxin-1 (Glrx). Here, we show that a key angiogenic transcriptional factor hypoxia-inducible factor (HIF)-1α is stabilized by GSH adducts, and the genetic deletion of Glrx improves ischemic revascularization. In mouse muscle C2C12 cells, HIF-1α protein levels are increased by increasing GSH adducts with cell-permeable oxidized GSH (GSSG-ethyl ester) or 2-acetylamino-3-[4-(2-acetylamino-2-carboxyethylsulfanyl thiocarbonylamino) phenylthiocarbamoylsulfanyl] propionic acid (2-AAPA), an inhibitor of glutathione reductase. A biotin switch assay shows that GSSG-ester-induced HIF-1α contains reversibly modified thiols, and MS confirms GSH adducts on Cys520 (mouse Cys533). In addition, an HIF-1α Cys520 serine mutant is resistant to 2-AAPA–induced HIF-1α stabilization. Furthermore, Glrx overexpression prevents HIF-1α stabilization, whereas Glrx ablation by siRNA increases HIF-1α protein and expression of downstream angiogenic genes. Blood flow recovery after femoral artery ligation is significantly improved in Glrx KO mice, associated with increased levels of GSH-protein adducts, capillary density, vascular endothelial growth factor (VEGF)-A, and HIF-1α in the ischemic muscles. Therefore, Glrx ablation stabilizes HIF-1α by increasing GSH adducts on Cys520 promoting in vivo HIF-1α stabilization, VEGF-A production, and revascularization in the ischemic muscles