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Cysteines play important roles in the biochemistry of many proteins. The high reactivity, redox properties, and ability of the free thiol group to coordinate metal ions designate cysteines as the amino acids of choice to form key catalytic components of many enzymes. Also, cysteines readily react with reactive oxygen and nitrogen species to form reversible oxidative thiol modifications. Over the last few years, an increasing number of proteins have been identified that use redox-mediated thiol modifications to modulate their function, activity, or localization. These redox-regulated proteins are central players in numerous important cellular processes. First aim of this study was to discover nitric oxide (NO) sensitive proteins in E. coli, whose redox-mediated functional changes might explain the physiological alterations observed in E. coli cells suffering from NO-stress. To identify E. coli proteins that undergo reversible thiol modifications upon NO-treatment in vivo, I applied a differential thiol trapping technique combined with two-dimensional gel analysis. 10 proteins were found to contain thiol groups sensitive to NO-treatment. Subsequent genetic studies revealed that the oxidative modifications of AceF & IlvC are, in part, responsible for the observed NO-induced growth inhibition. Noteworthy, the majority of identified protein targets turned out to be specifically sensitive towards reactive nitrogen species. This oxidant specificity was tested on one NO-sensitive protein, the small subunit of glutamate synthase. In vivo and in vitro activity studies demonstrated that glutamate synthase rapidly inactivates upon nitric oxide treatment but is resistant towards other oxidative stressors. These results imply that reactive oxygen and nitrogen species affect distinct physiological processes in bacteria. The second aim of my study was to identify redox-sensitive proteins in S. cerevisiae and to use their redox state as in vivo read-out to assess the role of oxidative stress during the eukaryotic aging process. I first determined the precise in vivo thiol status of almost 300 yeast proteins located in the cytosol and sub-cellular compartments of yeast cells using a highly quantitative mass spectrometry based thiol trapping technique, called OxICAT. The identified proteins can be clustered in four groups: 1) proteins, whose cysteine residues are oxidation resistant; 2) proteins with structurally or functionally important cysteine modifications 3) proteins with highly oxidation-sensitive active site cysteines, which are partially oxidized in exponentially growing yeast cells due to their exquisite sensitivity towards low amounts of ROS; 4) proteins that are reduced in exponentially growing cells but harbor redox-sensitive cysteine(s) that affect the catalytic function of the protein during oxidative stress. These oxidative stress sensitive proteins were identified by exposure of yeast cells to sublethal concentrations of H2O2 or superoxide. It was shown that the major targets of peroxide- and superoxide-mediated stress in the cell are proteins involved in translation, glycolysis, TCA cycle and amino acid biosynthesis. These targets indicate that cells rapidly redirect the metabolic flux and energy towards the pentose phosphate pathway in an attempt to ensure the production of the reducing equivalent NADPH to counterattack oxidative stress. These results reveal that the quantitative assessment of a protein’s oxidation state is a valuable tool to identify catalytically active and redox-sensitive cysteine residues. The OxICAT technology was then used to precisely determine extent and onset of oxidative stress in chronologically aging S. cerevisiae cells by utilizing the redox status of proteins as physiological read-out. I found that chronological aging yeast cells undergo a global collapse of the cellular redox homeostasis, which precedes cell death. The onset of this collapse appears to correlate with the yeast life span, as caloric restriction increases the life span and delays the redox collapse. These results suggest that maintenance of the redox balance might contribute to the life expanding benefits of regulating the caloric intake of yeast. Clustering analysis of all oxidatively modified proteins in chronological aging yeast revealed a subset of proteins whose oxidative thiol modifications significantly precede the general redox collapse. Oxidation of these early target proteins, which most likely results in a loss of their activity, might contribute to or even cause the observed loss of redox homeostasis (i.e., thioredoxin reductase) in chronologically aging yeast. These studies in aging yeast expand our understanding how changes in redox homeostasis affect the life span of yeast cells and confirm the importance of oxidative thiol modifications as key posttranslational modifications in pro- and eukaryotic organisms.
Jasmonsäure und verwandte Oxylipine wurden bisher als Substanzen, die an der Regulation von Initialisierung und Progression der Blattseneszenz beteiligt sein sollen, kontrovers diskutiert. Bisherige Studien haben sich dabei auf die exogene Applikation von Jasmonaten oder die Messung endogener Spiegel beschränkt. Um die Funktion von Jasmonaten in der Seneszenz-Regulation zu klären, wurden in dieser Arbeit die Profile freier und membranveresterter Oxylipine sowie die Auswirkungen verminderter Oxylipinbildung während der natürlichen Seneszenz und Seneszenz-ähnlicher Prozesse induziert durch Dunkel- und Sorbitol-Inkubation in Blättern von Arabidopsis thaliana untersucht. Jasmonsäure sowie freie 12-Oxo-Phytodiensäure steigen während dieser drei Prozesse an, mit dem stärksten Anstieg von Jasmonsäure nach Dunkelinkubation. Eine deutliche Akkumulation membranveresterter Oxylipine (Arabidopside) konnte lediglich nach Flottierung auf Sorbitol festgestellt werden. Die Mengen an plastidären Mono- und Digalaktosyl-Diacylglycerolen verringerten sich jedoch während der Behandlungen bzw. im Verlauf der Alterung. Zur Untersuchung möglicher Funktionen ansteigender Jasmonat-Konzentrationen wurden Lipoxygenase 2 RNAi-Pflanzen konstruiert, welche basal Jasmonsäure und 12-Oxo-Phytodiensäure produzieren können, jedoch keinen Anstieg während Seneszenz- bzw. Stress-Prozessen zeigen. Die Gehalte an Chlorophyll und Membranlipiden sowie die Genexpression entwicklungsspezifischer Seneszenzmarker waren während der natürlichen und der dunkelinduzierten Seneszenz in diesen Pflanzen nicht verändert. Dies legt nahe, dass diese Oxylipine im Verhältnis zu anderen endogenen Faktoren keine bzw. nur geringe Wirkungen auf die Seneszenz-Progression haben. Aus den gemachten Beobachtungen kann vielmehr geschlossen werden, dass bei diesen Prozessen die Akkumulation von Jasmonaten eher die Folge eines veränderten Lipid-Metabolismus als ein Auslöser der Seneszenz ist. Im Gegensatz dazu zeigen die Lipoxygenase 2 RNAi-Linien eine verlangsamte Seneszenz nach Sorbitol-Behandlung. Ähnlich verhält sich die Allenoxid-Synthase Mutante dde2-2, die zwar 13-Lipoxygenase-Produkte aber keine Jasmonate bilden kann. Dies bedeutet, dass die Jasmonate und nicht andere 13-Lipoxygenase-Produkte für die Seneszenz-ähnlichen Symptome unter diesen Bedingungen verantwortlich sind. Dabei stellt die Sorbitol-induzierte Seneszenz einen Stress-Prozess dar, der sich in vielen Punkten von der natürlichen Seneszenz unterscheidet aber große Ähnlichkeiten zur Seneszenz-Induktion nach exogener Jasmonat-Applikation aufweist. Lipoxygenase 2 ist also durch die Bereitstellung von Oxylipinen weniger in Entwicklungs- als vielmehr in Stress-Prozesse involviert.