@phdthesis{Jessen2021, author = {Jessen, Christina}, title = {NRF2 links antioxidant and immune-relevant features in melanoma}, doi = {10.25972/OPUS-23349}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-233495}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2021}, abstract = {The transcription factor NRF2 is considered as the master regulator of cytoprotective and ROS-detoxifying gene expression. Due to their vulnerability to accumulating reactive oxygen species, melanomas are dependent on an efficient oxidative stress response, but to what extent melanomas rely on NRF2 is only scarcely investigated so far. In tumor entities harboring activating mutations of NRF2, such as lung adenocarcinoma, NRF2 activation is closely connected to therapy resistance. In melanoma, activating mutations are rare and triggers and effectors of NRF2 are less well characterized. This work revealed that NRF2 is activated by oncogenic signaling, cytokines and pro-oxidant triggers, released cell-autonomously or by the tumor microenvironment. Moreover, silencing of NRF2 significantly reduced melanoma cell proliferation and repressed well-known NRF2 target genes, indicating basal transcriptional activity of NRF2 in melanoma. Transcriptomic analysis showed a large set of deregulated gene sets, besides the well-known antioxidant effectors. NRF2 suppressed the activity of MITF, a marker for the melanocyte lineage, and induced expression of epidermal growth factor receptor (EGFR), thereby stabilizing the dedifferentiated melanoma phenotype and limiting pigmentation markers and melanoma-associated antigens. In general, the dedifferentiated melanoma phenotype is associated with a reduced tumor immunogenicity. Furthermore, stress-inducible cyclooxygenase 2 (COX2) expression, a crucial immune-modulating gene, was regulated by NRF2 in an ATF4-dependent manner. Only in presence of both transcription factors was COX2 robustly induced by H2O2 or TNFα. COX2 catalyzes the first step of the prostaglandin E2 (PGE2) synthesis, which was described to be associated with tumor immune evasion and reduction of the innate immune response. In accordance with these potentially immune-suppressive features, immunocompetent mice injected with NRF2 knockout melanoma cells had a strikingly longer tumor-free survival compared to NRF2-proficient cells. In line with the in vitro data, NRF2-deficient tumors showed suppression of COX2 and induction of MITF. Furthermore, transcriptomic analyses of available tumors revealed a strong induction of genes belonging to the innate immune response, such as RSAD2 and IFIH1. The expression of these genes strongly correlated with immune evasion parameters in human melanoma datasets and NRF2 activation or PGE2 supplementation limited the innate immune response in vitro. In summary, the stress dependent NRF2 activation stabilizes the dedifferentiated melanoma phenotype and facilitates the synthesis of PGE2. As a result, NRF2 reduces gene expression of the innate immune response and promotes the generation of an immune-cold tumor microenvironment. Therefore, NRF2 not only elevated the ROS resilience, but also strongly contributed to tumor growth, maintenance, and immune control in cutaneous melanoma.}, subject = {Melanom}, language = {en} } @phdthesis{Brandes2010, author = {Brandes, Nicolas}, title = {Oxidative Thiol Modifications in Pro- and Eukaryotic Organisms}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-46542}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2010}, abstract = {Cystein spielt eine wichtige Rolle in der Biochemie vieler Proteine. Aufgrund der Redox-Eigenschaften und der hohen Reaktivit{\"a}t der freien Thiol-Gruppe sowie dessen F{\"a}higkeit Metallionen zu koordinieren, ist Cystein oft Bestandteil von katalytischen Zentren vieler Enzyme. Zudem lassen sich Cysteine durch reaktive Sauerstoff- und Stickstoffspezies leicht reversibel oxidativ modifizieren. In den letzten Jahren wurde gezeigt, dass Proteine redox-bedingte Thiol-Modifikationen nutzen, um Ver{\"a}nderungen ihrer Aktivit{\"a}t zu steuern. Diese redox-regulierten Proteine spielen eine zentrale Rolle in vielen physiologischen Prozessen. Das erste Ziel meiner Arbeit war die Identifizierung von Stickstoffmonoxid (NO)-sensitiven Proteinen in E. coli. Die redox-bedingten Funktions{\"a}nderungen solcher Proteine erkl{\"a}ren m{\"o}glicherweise die ver{\"a}nderte Physiologie von E. coli Zellen, die unter NO-Stress leiden. Um E. coli Proteine zu identifizieren, die unter Einwirkung von NO-Stress reversibel Thiol-modifiziert werden, wandte ich eine Kombination aus differentiellem Thiol-Trapping und 2D Gel-Elektrophorese an. Es wurden zehn Proteinen identifiziert, welche NO-sensitive Thiol-Gruppen enthalten. Genetische Studien ergaben, dass Modifikationen an AceF \& IlvC mitverantwortlich sind f{\"u}r die NO-induzierte Wachstumshemmung. Bemerkenswert ist es, dass die Mehrheit der identifizierten Proteine speziell nur gegen reaktive Stickstoffspezies empfindlich ist, welches an einem der identifizierten Stickstoffmonoxid-sensitiven Proteinen, der kleinen Untereinheit von Glutamate synthase, getestet wurde. In vivo und in vitro Aktivit{\"a}tsstudien zeigten, dass es zu einer schnellen Inaktivierung von Glutamate synthase nach NO-Behandlung kommt, das Protein aber resistent gegen{\"u}ber anderen Oxidationsmittel ist. Diese Resultate implizieren, dass reaktive Sauerstoff- und Stickstoffspezies unterschiedliche physiologische Vorg{\"a}nge in Bakterien beeinflussen. Das zweite Ziel meiner Arbeit war es, redox-sensitive Proteine in S. cerevisiae zu identifizieren und deren Redox-Zustand als in vivo Read-Out zu verwenden, um die Rolle von oxidativen Stress w{\"a}hrend des Alterungsprozess eukaryotischer Zellen zu analysieren. Zun{\"a}chst bestimmte ich in Hefezellen mit Hilfe von OxICAT, einer hochsensiblen quantitativen Methode, die Thiol-Trapping mit Massenspektrometrie verbindet, den exakten in vivo Thiol-Status von fast 300 Proteinen. Diese Proteine lassen sich in vier Gruppen einteilen: 1) Proteine, deren Cysteinreste resistent gegen Oxidation sind; 2) Proteine, in denen Cysteinmodifikationen strukturelle Aufgaben {\"u}bernehmen; 3) Proteine mit oxidationsempfindlichen Cysteinen, die bereits eine gewisse Oxidation in exponentiell wachsenden Hefezellen aufweisen; 4) Proteine, die reduziert sind, aber redox-sensitive Cysteinreste enthalten, die die Funktion der Proteine bei Vorhandensein von oxidativen Stress beeinflussen. Die Sensitivit{\"a}t dieser Proteine gegen{\"u}ber oxidativen Stress wurde durch Exposition subletaler Konzentrationen von H2O2 oder Superoxid auf Hefezellen nachgewiesen. Es wurde gezeigt, dass die wichtigsten zellul{\"a}ren Angriffspunkte von H2O2- und Superoxid-bedingtem Stress Proteine sind, die an Vorg{\"a}ngen der Translation, Glykolyse, des Citratzyklus und der Aminos{\"a}ure-Biosynthese beteiligt sind. Diese Zielproteine zeigen, dass Zellen f{\"u}r die Bek{\"a}mpfung von oxidativen Stress Metabolite schnell in Richtung des Pentosephosphatweges umleiten, um die Produktion des Reduktionsmittels NADPH sicherzustellen. Die hier pr{\"a}sentierten Ergebnisse belegen, dass die quantitative Bestimmung des Oxidationsstatus von Proteinen eine wertvolle Methode ist, um redox-sensitive Cysteinreste zu identifizieren. Die OxICAT Technologie wurde dann verwendet, um das genaue Ausmaß und die Entstehung von oxidativen Stress in chronologisch alternden S. cerevisiae Zellen zu bestimmen. F{\"u}r diese Bestimmung wurde der Oxidationsstatus von Proteinen in alternden Hefezellen als physiologischer Read-Out verwendet. Ich zeigte, dass die zellul{\"a}re Redox-Hom{\"o}ostase in chronologisch alternden Hefezellen global zusammenbricht, wobei es sich dabei um einen Prozess handelt, der dem Zelltod vorausgeht. Der Beginn dieses Zusammenbruchs scheint mit der Lebensdauer der Hefezellen zu korrelieren, da Kalorienrestriktion die Lebensdauer der Hefezellen erh{\"o}ht und den Zusammenbruch des Redox-Gleichgewichts verz{\"o}gert. Die Oxidation einer kleinen Anzahl an Proteinen (z.B. Thioredoxin reductase) geht dem Redox-Zusammenbruch deutlich voraus, was maßgeblich zum Verlust der Redox-Hom{\"o}ostase beitragen k{\"o}nnte. Diese Studien an alternden Hefezellen erweitern unser Verst{\"a}ndnis, wie sich Ver{\"a}nderungen in der Redox-Hom{\"o}ostase auf die Lebensdauer von Hefezellen auswirken. Zudem best{\"a}tigen die hier pr{\"a}sentierten Ergebnisse die Bedeutung von oxidativen Thiol-Modifikationen als eine der wichtigsten posttranslationalen Proteinmodifikationen in pro-und eukaryotischen Organismen}, subject = {Oxidativer Stress}, language = {en} } @phdthesis{Schmid2008, author = {Schmid, Ursula}, title = {Protection against oxidative DNA damage by antioxidants, hormone-receptor blockers and HMG-CoA-reductase inhibitors}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-28379}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2008}, abstract = {In the course of this study, several endogenous compounds and model substances were used to mimic the conditions in patients suffering from hypertension. As endogenous compounds, angiotensin II and aldosterone were chosen. As model substances, 4-nitroquinoline-1-oxide (NQO), hydrogen peroxide and phorbol 12-myristate 13-acetate (PMA) were selected. Benfotiamine as well as \&\#945;-tocopherol proved in the course of the experiments to be able to prevent angiotensin II-induced formation of oxidative DNA strand breaks and micronuclei. This could be due to a prior inhibition of the release of reactive oxygen species and is in contrast to results which were achieved using thiamine. Furthermore, experiments in which cells were pre-incubated with benfotiamine followed by incubation with NQO showed that benfotiamine was not able to prevent the induction of oxidative stress. The hypothesis that benfotiamine has, like \&\#945;-tocopherol, direct antioxidative capacity was fortified by measurements in cell free systems. In brief, a new working mechanism for benfotiamine in addition to the ones already known could be provided. In the second part of the study, angiotensin II was shown to be dose-dependently genotoxic. This effect is mediated via the angiotensin II type 1 receptor (AT1R) which. Further experiments were extended from in vitro settings to the isolated perfused kidney. Here it could be shown that angiotensin II caused vasoconstriction and DNA strand breaks. Co-perfusion of kidneys with angiotensin II and candesartan prevented vasoconstriction and formation of strand breaks. DNA strand break formation due to mechanical stress or hypoxia could be ruled out after additional experiments with the thromboxane mimetic U 46619. Detailed investigation of the DNA damage in vitro revealed that angiotensin II induces single strand breaks, double strand breaks and 8-hydroxydeoxyguanosine (8-oxodG)-adducts as well as abasic sites. Investigations of the effects of aldosterone-treatment in kidney cells showed an increase of oxidative stress, DNA strand breaks and micronuclei which could be prevented by the steroidal mineralocorticoid receptor antagonist eplerenone. Additional experiments with the non-steroidal mineralocorticoid receptor antagonist (S)-BR-4628 revealed that this substance was also able to prevent oxidative stress and genomic damage and proved to be more potent than eplerenone. In vivo, hyperaldosteronism was imitated in rats by aid of the deoxycorticosteroneacetate (DOCA) salt model. After this treatment, levels of DNA strand breaks and chromosomal aberrations in the kidney could be observed. Furthermore, an increase in the release of ROS could be measured. Treatment of these animals with spironolactone , BR-4628 and enalaprile revealed that all antagonists were effective BR-4628 was the most potent drug. Finally, rosuvastatin was investigated. In HL-60 cells phorbol 12-myristate 13-acetate caused oxidative stress. Rosuvastatin was able to prevent the release of ROS and subsequent oxidative DNA damage when co-incubated with PMA. Furthermore, not only an inhibition of PMA-induced oxidative stress but also inhibition of the unspecific release of ROS induced by hydrogen peroxide was observable. Addition of farnesyl pyrophosphate (FPP), geranylgeranyl pyrophosphate (GGPP), and mevalonate, intermediates of the cholesterol pathway, caused only a marginal increase of oxidative stress in cells treated simultaneously with PMA and rosuvastatin, thus indicating the effect of rosuvastatin to be HMG-CoA-reductase-independent. Investigation of the gene expression of subunits of NAD(P)H oxidase revealed a down-regulation of p67phox following rosuvastatin-treatment. Furthermore, it could be shown that rosuvastatin treatment alone or in combination with PMA increased total glutathione levels probably due to an induction of the gene expression and enzyme activity of \&\#947;-glutamylcysteine synthetase (\&\#947;-GCS).}, subject = {Oxidativer Stress}, language = {en} }