@phdthesis{MaierverhHartmann2024, author = {Maier [verh. Hartmann], Carina Ramona}, title = {Regulation of the Mevalonate Pathway by the Deubiquitinase USP28 in Squamous Cancer}, doi = {10.25972/OPUS-34874}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-348740}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2024}, abstract = {The reprogramming of metabolic pathways is a hallmark of cancer: Tumour cells are dependent on the supply with metabolites and building blocks to fulfil their increased need as highly proliferating cells. Especially de novo synthesis pathways are upregulated when the cells of the growing tumours are not able to satisfy the required metabolic levels by uptake from the environment. De novo synthesis pathways are often under the control of master transcription factors which regulate the gene expression of enzymes involved in the synthesis process. The master regulators for de novo fatty acid synthesis and cholesterogenesis are sterol regulatory element-binding proteins (SREBPs). While SREBP1 preferably controls the expression of enzymes involved in fatty acid synthesis, SREBP2 regulates the transcription of the enzymes of the mevalonate pathway and downstream processes namely cholesterol, isoprenoids and building blocks for ubiquinone synthesis. SREBP activity is tightly regulated at different levels: The post-translational modification by ubiquitination decreases the stability of active SREBPs. The attachment of K48-linked ubiquitin chains marks the transcription factors for the proteasomal degradation. In tumour cells, high levels of active SREBPs are essential for the upregulation of the respective metabolic pathways. The increased stability and activity of SREBPs were investigated in this thesis. SREBPs are ubiquitinated by the E3 ligase Fbw7 which leads to the subsequential proteolysis of the transcription factors. The work conducted in this thesis identified the counteracting deubiquitination enzyme USP28 which removes the ubiquitin chains from SREBPs and prevents their proteasomal degradation. It further revealed that the stabilization of SREBP2 by USP28 plays an important role in the context of squamous cancers. Increased USP28 levels are associated with a poor survival in patients with squamous tumour subtypes. It was shown that reduced USP28 levels in cell lines and in vivo result in a decrease of SREBP2 activity and downregulation of the mevalonate pathway. This manipulation led to reduced proliferation and tumour growth. A direct comparison of adenocarcinomas and squamous cell carcinomas in lung cancer patients revealed an upregulation of USP28 as well as SREBP2 and its target genes. Targeting the USP28-SREBP2 regulatory axis in squamous cell lines by inhibitors also reduced cell viability and proliferation. In conclusion, this study reports evidence for the importance of the mevalonate pathway regulated by the USP28-SREBP2 axis in tumour initiation and progression of squamous cancer. The combinatorial inhibitor treatment of USP28 and HMGCR, the rate limiting enzyme of the mevalonate pathway, by statins opens the possibility for a targeted therapeutic treatment of squamous cancer patients.}, subject = {Ubiquitin}, language = {en} } @phdthesis{Mayer2021, author = {Mayer, Alexander E.}, title = {Protein kinase D3 signaling in the regulation of liver metabolism}, doi = {10.25972/OPUS-20797}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-207978}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2021}, abstract = {The liver plays a pivotal role in maintaining energy homeostasis. Hepatic carbohydrate and lipid metabolism are tightly regulated in order to adapt quickly to changes in nutrient availability. Postprandially, the liver lowers the blood glucose levels and stores nutrients in form of glycogen and triglycerides (TG). In contrast, upon fasting, the liver provides glucose, TG, and ketone bodies. However, obesity resulting from a discrepancy in food intake and energy expenditure leads to abnormal fat accumulation in the liver, which is associated with the development of hepatic insulin resistance, non-alcoholic fatty liver disease, and diabetes. In this context, hepatic insulin resistance is directly linked to the accumulation of diacylglycerol (DAG) in the liver. Besides being an intermediate product of TG synthesis, DAG serves as second messenger in response to G-protein coupled receptor signaling. Protein kinase D (PKD) family members are DAG effectors that integrate multiple metabolic inputs. However, the impact of PKD signaling on liver physiology has not been studied so far. In this thesis, PKD3 was identified as the predominantly expressed isoform in liver. Stimulation of primary hepatocytes with DAG as well as high-fat diet (HFD) feeding of mice led to an activation of PKD3, indicating its relevance during obesity. HFD-fed mice lacking PKD3 specifically in hepatocytes displayed significantly improved glucose tolerance and insulin sensitivity. However, at the same time, hepatic deletion of PKD3 in mice resulted in elevated liver weight as a consequence of increased hepatic lipid accumulation. Lack of PKD3 in hepatocytes promoted sterol regulatory element-binding protein (SREBP)-mediated de novo lipogenesis in vitro and in vivo, and thus increased hepatic triglyceride and cholesterol content. Furthermore, PKD3 suppressed the activation of SREBP by impairing the activity of the insulin effectors protein kinase B (AKT) and mechanistic target of rapamycin complexes (mTORC) 1 and 2. In contrast, liver-specific overexpression of constitutive active PKD3 promoted glucose intolerance and insulin resistance. Taken together, lack of PKD3 improves hepatic insulin sensitivity but promotes hepatic lipid accumulation. For this reason, manipulating PKD3 signaling might be a valid strategy to improve hepatic lipid content or insulin sensitivity. However, the exact molecular mechanism by which PKD3 regulates hepatocytes metabolism remains unclear. Unbiased proteomic approaches were performed in order to identify PKD3 phosphorylation targets. In this process, numerous potential targets of PKD3 were detected, which are implicated in different aspects of cellular metabolism. Among other hits, phenylalanine hydroxylase (PAH) was identified as a target of PKD3 in hepatocytes. PAH is the enzyme that is responsible for the conversion of phenylalanine to tyrosine. In fact, manipulation of PKD3 activity using genetic tools confirmed that PKD3 promotes PAH-dependent conversion of phenylalanine to tyrosine. Therefore, the data in this thesis suggests that PKD3 coordinates lipid and amino acid metabolism in the liver and contributes to the development of hepatic dysfunction.}, subject = {Metabolismus}, language = {en} } @phdthesis{Dejure2018, author = {Dejure, Francesca Romana}, title = {Investigation of the role of MYC as a stress responsive protein}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-158587}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2018}, abstract = {The transcription factor MYC is deregulated in over 70\% of all human tumors and, in its oncogenic form, plays a major role in the cancer metabolic reprogramming, promoting the uptake of nutrients in order to sustain the biosynthetic needs of cancer cells. The research presented in this work aimed to understand if MYC itself is regulated by nutrient availability, focusing on the two major fuels of cancer cells: glucose and glutamine. Initial observations showed that endogenous MYC protein levels strongly depend on the availability of glutamine, but not of glucose. Subsequent analysis highlighted that the mechanism which accounts for the glutamine-mediated regulation of MYC is dependent on the 3´-untranslated region (3´-UTR) of MYC. Enhanced glutamine utilization by tumors has been shown to be directly linked to MYC oncogenic activity and MYC-dependent apoptosis has been observed under glutamine starvation. Such effect has been described in experimental systems which are mainly based on the use of MYC transgenes that do not contain the 3´-UTR. It was observed in the present study that cells are able to survive under glutamine starvation, which leads to cell cycle arrest and not apoptosis, as previously reported. However, enforced expression of a MYC transgene, which lacks the 3´-UTR, strongly increases the percentage of apoptotic cells upon starvation. Evaluation of glutamine-derived metabolites allowed to identify adenosine nucleotides as the specific stimulus responsible for the glutamine-mediated regulation of MYC, in a 3´-UTR-dependent way. Finally, glutamine-dependent MYC-mediated effects on RNA Polymerase II (RNAPII) function were evaluated, since MYC is involved in different steps of global transcriptional regulation. A global loss of RNAPII recruitment at the transcriptional start site results upon glutamine withdrawal. Such effect is overcome by enforced MYC expression under the same condition. This study shows that the 3´UTR of MYC acts as metabolic sensor and that MYC globally regulates the RNAPII function according to the availability of glutamine. The observations presented in this work underline the importance of considering stress-induced mechanisms impinging on the 3´UTR of MYC.}, subject = {Myc}, language = {en} } @phdthesis{Quenzer2018, author = {Quenzer, Anne}, title = {Der antiproliferative Effekt des Multidrug resistance-Protein 1 (MRP1)-Inhibitors Reversan und der Laktatdehydrogenase (LDH)-Inhibitoren Natriumoxamat und Galloflavin an kolorektalen Karzinomzellen bei tumorphysiologischen Sauerstoffkonzentrationen}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-156051}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2018}, abstract = {Ziel der vorliegenden Arbeit waren pharmakologische Untersuchungen zum antiproliferativen Effekt der beiden Laktatdehydrogenase (LDH)-Inhibitoren Natriumoxamat und Galloflavin sowie des MRP1-Inhibitors Reversan einzeln und in Kombination bei verschiedenen Sauerstoffkonzentrationen in vitro zu untersuchen. Zus{\"a}tzlich wurde der antiproliferative Effekt der drei Inhibitoren mit dem antiproliferativen Effekt von 5-FU verglichen. Das Konzept zu dieser Arbeit basiert auf Gemeinsamkeiten zwischen LDH und MRP1 in malignen Zellen. Eine ist, dass beide Molek{\"u}le von zahlreichen Tumoren {\"u}berexprimiert werden. Weiter sind beide an der Ausbildung von Chemoresistenz beteiligt und beide werden auch in Hypoxie exprimiert. Zudem wird das f{\"u}r die Funktion von MRP1 notwendige ATP in malignen Zellen haupts{\"a}chlich mit der hyperaktiven Glykoloyse gebildet, deren Stoffumsatz auch von der LDH-Aktivit{\"a}t abh{\"a}ngig ist. Eine kombinierte Inhibition beider Zielstrukturen scheint somit geeignet zu sein, um die Proliferation maligner Zellen gezielt zu hemmen. Da in großen Teilen solider Tumoren hypoxische bzw. anoxische Bedingungen vorherrschen, wurde die Wirksamkeit der drei Inhibitoren auch bei 5 \% und 1 \% Sauerstoff, die als tumorphysiologisch gelten, untersucht. Die wichtigsten Ergebnisse aus dieser Arbeit sind, dass die beiden LDH-Inhibitoren Natriumoxamat und Galloflavin und der MRP1-Inhibitor Reversan einen antiproliferativen Effekt bei kolorektalen Karzinomzellen ausl{\"o}sen, der auch f{\"u}r tumorphysiologische Sauerstoffkonzentrationen nachzuweisen war. So verringerte sich durch Natriumoxamat bzw. Galloflavin der Anteil vitaler Zellen um bis zu 45 \% und durch Reversan um bis zu 60 \% bei 5 \% und 1 \% Sauerstoff im Vergleich zur unbehandelten Kontrolle. Auch unterschiedliche Kombination aus Natriumoxamat, Galloflavin und Reversan f{\"u}hrten zu einer Steigerung des antiproliferativen Effektes, der auch immer bei tumorphysiologischen Konzentrationen nachzuweisen war. Den st{\"a}rksten antiproli-ferativen Effekt wies die Dreifachkombination aus Galloflavin, Natriumoxamat und Reversan auf. So verringerte sich der Anteil vitaler Zellen bei 1 \% Sauerstoff durch diese Kombination auf bis zu 28 \% bei vier der f{\"u}nf kolorektalen Karzinomzelllinien. Die Dreifachkombination wies einen gleichstarken bzw. st{\"a}rkeren antiproliferativen Effekt auf als das Chemotherapeutikum 5-FU und zwar ebenfalls bei 5 \% und 1 \% Sauerstoff. Die Ergebnisse der vorliegenden Arbeit zum antiproliferativen Effekt von Natriumoxamat, Galloflavin (beides LDH-Inhibitoren) und Reversan (MRP1-Inhibitor) in vitro lassen den Schluss zu, dass das Konzept der Arbeit, einen antiproliferativen Effekt auch bei tumorphysiologischen Sauerstoffkonzentrationen zu induzieren, grunds{\"a}tzlich best{\"a}tigt wurde. Auch l{\"o}ste die gemeinsame Hemmung von LDH und MRP1 einen teilweise st{\"a}rkeren antiproliferativen Effekt aus als 5-FU. Weitere Untersuchungen sind aber ohne Frage n{\"o}tig, um die molekularen Interaktion zwischen LDH und MRP1 sowie ihrer Inhibition im Detail zu verstehen.}, subject = {Lactatdehydrogenase}, language = {de} } @phdthesis{Muelek2015, author = {M{\"u}lek, Melanie}, title = {Distribution and metabolism of constituents and metabolites of a standardized maritime pine bark extract (Pycnogenol®) in human serum, blood cells and synovial fluid of patients with severe osteoarthritis}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-128085}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2015}, abstract = {Dietary polyphenols have been related to beneficial effects on humans' health. Pycnogenol®, a dietary polyphenol-rich food supplement complies with the monograph "Maritime pine extract" in the United States Pharmacopeia (USP) and has demonstrated effects in different diseases. Several human trials concerning knee osteoarthritis have shown significant improvement of the symptoms like reducing the pain and the stiffness of the joint(s) upon intake of Pycnogenol®. After oral intake of multiple doses of Pycnogenol® previously low concentrations in the nanomolar range of monomeric extract constituents have been found in human plasma as well as a bioactive metabolite, δ-(3,4-dihydroxy-phenyl)-γ-valerolactone (M1), which is formed by the human intestinal flora from the procyanidins' catechin units. It is not clear yet which compound(s) of the complex extract is (are) mainly responsible for the described clinical effects of Pycnogenol®. To gain deeper insights into the in vivo fate of the pine bark extract the distribution of its constitutents and metabolites was closer investigated in the present thesis. Initial in vitro experiments suggested a facilitated cellular uptake of M1 into human erythrocytes, possibly via GLUT-1 transporter. For elucidating further the in vitro and in vivo metabolism of M1 in human blood cells, a metabolomic approach was performed using UPLC-ESI-qTOF-MSE analysis, which revealed a comprehensive and rapid metabolism of M1 to a variety of biotransformation products in human blood cells. Predominant metabolites were found to be conjugates of glutathione (GSH) isomers, namely M1-S-GSH and M1-N-GSH. Further sulfur-containing biotransformation products of M1 were conjugates with oxidized glutathione (M1-GSSG) and cysteine (M1-CYS) and the sulfated derivative of M1 (M1-sulfated). Other in vitro biotransformation products constituted the open-chained ester form of M1 (M1-COOH), hydroxybenzoic acid and the methylated (M1-methylated), acetylated (M1-acetylated), hydroxylated (M1-hydroxylated) and ethylated (M1-ethylated) derivatives of M1. Indeed, six of these in vitro metabolites, respectively M1-COOH, M1-sulfated, hydroxybenzoic acid, M1-S-GSH, M1-methylated and M1-acetylated, were also identified in vivo in blood cells of human volunteers after ingestion of Pycnogenol®. Related reference material was synthesized for reliable confirmation of the metabolites M1-GSH, M1-GSSG, M1-CYS and M1-COOH. In the course of a randomized controlled clinical trial patients suffering from severe osteoarthritis ingested multiple doses of 200 mg/day Pycnogenol® for three weeks before they were scheduled for an elective knee replacement surgery. Various biological specimen, respectively blood cells, synovial fluid and serum samples, were to be analyzed to investigate the distribution and disposition of possibly bioactive constituents and metabolites. Therefore, highly sensitive methods were developed using liquid chromatography tandem mass spectrometry (LC-MS/MS)- technology because of the expected low concentrations of the analytes in the related matrices. Initially, for each matrix different sample preparation techniques (protein precipitation, liquid-liquid extraction, solid phase extraction and useful combinations thereof) were compared to achieve maximum detection sensitivity of the analytes that were of highest interest, namely M1, ferulic acid and taxifolin. By comparing 32 various sample clean-up procedures in human serum, the highest recovery of the metabolite M1 was achieved using a liquid-liquid extraction with ethyl acetate and tert-butyl methyl ether at a serum pH-value of 3.2. A similar extraction method was also chosen for analyte detection in human synovial fluid after comparing 31 different sample preparation techniques. Whole blood or blood cells are difficult to handle because of their high viscosity and strong coloration. The QuEChERS (quick, easy, cheap, effective, rugged and safe) approach which was originally developed for the food safety and thus for the determination of pesticide residues in fruits and vegetables yielded the highest total recovery rate of M1 in human blood cells when assessing 18 different sample clean-up techniques. By applying the QuEChERS method for the first time for the simultaneous and highly sensitive quantification of selected polyphenols in human blood cells it was demonstrated that this fast and inexpensive technique can be applied in clinical fields for cleaning-up highly complex and thus challenging biological matrices. All developed methods for the different biological specimen were optimized to achieve maximum sensitivity of the target analytes. The determined lower limits of quantification (LLOQs) were sufficient for the quantification of the study samples. The LLOQs ranged from 113 pg/mL for taxifolin to 48 ng/mL for caffeic acid in blood cells and from 80 pg/mL for taxifolin to 3 ng/mL for caffeic acid in synovial fluid. In human serum the LLOQs even ranged down to 35 pg/mL for taxifolin and up to 8 ng/mL for caffeic acid. All analytical methods were subjected to a full validation according to current EMA and FDA guidelines and fulfilled those criteria, showing excellent performance and reliability of the developed and optimized methods. Serum, blood cells and synovial fluid samples of the osteoarthritis patients were all processed with an enzymatic incubation with ß-glucuronidase/sulfatase to hydrolyse conjugates (phase-II-metabolism) prior the actual sample preparation. Additionally, serum samples of the osteoarthritis patients were prepared without enzymatic hydrolysis to determine the individual degree of conjugation with sulfate and glucuronic acid of the analytes. All determined concentrations in the patients' samples were in the lower ng/mL range. Notably, highest total concentrations of the polyphenols were not detected in serum, in which the degree of analyte conjugation with sulfate and glucuronic acid ranged from 54.29 ± 26.77\% for catechin to 98.34 ± 4.40\% for M1. The flavonoids catechin and taxifolin mainly partitioned into blood cells, whereas the metabolite M1, ferulic and caffeic acid primarily resided in the synovial fluid. The concentration of M1 in the blood cells was low, however, this could be explained by the previously observed extensive and rapid intracellular metabolism in vitro. This was now supported by the in vivo evidence in samples of patients who received Pycnogenol® in which the open-chained ester form of M1 (M1-COOH) as well as the glutathione conjugate of M1 (M1-GSH) were identified, indicating that M1 does not accumulate in its original form in vivo. Possibly, a variety of bioactive metabolites exist which might play an important role for the clinical effects of Pycnogenol®. Although the study participants were requested to avoid polyphenol-rich food and beverages within the last two days before the blood samplings this was obviously difficult for most of the patients. Hence, no statistically significantly difference was observed in the mean polyphenol concentrations in serum, blood cells and synovial fluid between the intervention and the control group. Nevertheless, it was possible to identify marker compounds for Pycnogenol® intake under real life conditions with occasional or regular consumption of polyphenol-rich foods and beverages. Thereby, ferulic acid was found in serum samples exclusively after intake of Pycnogenol®, confirming that ferulic acid is a suitable marker of consumption of French maritime pine bark extract. Taxifolin was present in serum and synovial fluid exclusively in the intervention group indicating a role as further marker of Pycnogenol® intake. Taxifolin, ferulic acid and caffeic acid were detected in both serum and synovial fluid only in the intervention group. Moreover, the metabolite M1, taxifolin and ferulic acid were only detected simultaneously in all matrices (serum, blood cells and synovial fluid) after ingestion of Pycnogenol®. Thus, deeper insights into the distribution of bioactive constituents and metabolites of Pycnogenol® into serum, blood cells and synovial fluid after oral administration to patients with severe osteoarthritis were gained. The present study provides the first evidence that polyphenols indeed distribute into the synovial fluid of patients with osteoarthritis where they might contribute to clinical effects.}, subject = {Pycnogenol}, language = {en} } @phdthesis{Schmalbach2014, author = {Schmalbach, Katja}, title = {Identification of factors influencing 17beta-estradiol metabolism in female mammary gland}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-109300}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2014}, abstract = {The female sex hormone 17beta-estradiol, produced naturally in the body, seems to play an important role in the development of breast cancer, since (i) it can be activated to reactive metabolites, which are known to damage DNA and (ii) the stimulation of the estrogen receptor alpha by 17beta-estradiol enhances cell proliferation. Both processes together increase mutation frequency and subsequently lead to transformation of epithelial cells. Therefore, the aim of this work was to characterize the influence of polymorphisms and lifestyle factors on 17beta-estradiol metabolism in normal mammary gland tissue. [...] In sum, the tissue specific 17beta-estradiol metabolism was described in mammary gland tissue homogenate, whereas differences in proliferation of epithelial cells were only reflected in isolated epithelial cells. Factors associated with breast cancer risk (age, BMI and age-related changes in mammary gland morphology) were shown to affect 17beta-estradiol tissue levels. The 17beta-estradiol mediated genotoxicity was evaluated using bioinformatically calculated DNA adduct fluxes, which were predominately influenced by individual mRNA patterns rather than individual genotypes and (DNA adduct fluxes) were correlated with known breast cancer risk factors (age, parity, BMI and polymorphism of glutathione-S-transferase theta 1).}, subject = {Milchdr{\"u}se}, language = {en} } @phdthesis{Froelich2012, author = {Fr{\"o}lich, Nadine}, title = {Analyse der µ-Opiatrezeptoraktivierung und Signaltransduktion in lebenden Zellen mittels FRET-Mikroskopie}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-71009}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2012}, abstract = {Der Fluoreszenz-Resonanz-Energie-Transfer ist ein Ph{\"a}nomen, welches erstmals 1948 von Theodor F{\"o}rster beschrieben wurde. Mit der Entwicklung von Fluoreszenzproteinen konnten in Kombination mit Mikroskopietechniken Einblicke in zellbiologische Vorg{\"a}nge gewonnen werden, die durch biochemische oder physiologische Experimente nicht m{\"o}glich sind. Dabei spielt die hohe zeitliche und r{\"a}umliche Aufl{\"o}sung eine wichtige Rolle. Auf dem Forschungsgebiet der GPCR, welche die gr{\"o}ßte Gruppe von Membranproteinen bei den S{\"a}ugetieren darstellen, wurden insbesondere Erkenntnisse {\"u}ber Konformations{\"a}nderungen der Rezeptoren, die Kinetik der Rezeptoraktivierung und die Interaktion mit intrazellul{\"a}ren Signalproteinen gewonnen. Der µ-Opioidrezeptor geh{\"o}rt zur Familie der GPCR und stellt aufgrund seiner analgetischen Wirkungen eine wichtige pharmakologische Zielstruktur dar. Das Ziel dieser Arbeit war sowohl den Rezeptor als auch seine Signalwege mittels FRET-Mikroskopie zu untersuchen. Zun{\"a}chst sollte ein intramolekularer FRET-Sensor des µ-Opioidrezeptors entwickelt werden, dazu wurden basierend auf den Kenntnissen {\"u}ber die Terti{\"a}rstruktur und dem Aufbau bereits bekannter GPCR-Sensoren verschiedene Rezeptorkonstrukte kloniert. Bei den Konstrukten wurden entweder zwei Fluoreszenzproteine oder ein Fluoreszenzprotein und ein Fluorophor-bindendes Tetracysteinmotiv kombiniert. Auch die Positionen der eingef{\"u}gten Sequenzen wurden in den intrazellul{\"a}ren Dom{\"a}nen variiert, da der Rezeptor auf die Modifikationen mit beeintr{\"a}chtigter Membranlokalisation reagierte. Durch die Optimierung wurden Rezeptoren konstruiert, die an der Zellmembran lokalisiert waren. Jedoch zeigte keines der Rezeptorkonstrukte Funktionalit{\"a}t im Hinblick auf die Rezeptoraktivierung. Im zweiten Teil wurden die pharmakologischen Effekte der Metabolite von Morphin am humanen µ-Opioidrezeptor systematisch analysiert. Dazu wurde die F{\"a}higkeit der Metabolite, Gi-Proteine zu aktivieren und β-Arrestin2 zu rekrutieren, mittels FRET-basierter Messungen an lebenden Zellen untersucht. Außerdem wurde die Affinit{\"a}t der Metabolite zum humanen µ Opioidrezeptor anhand der Verdr{\"a}ngung eines radioaktiven Liganden analysiert. Meine Experimente identifizierten eine Gruppe mit stark agonistischen und eine mit schwach agonistischen Eigenschaften. Die starken Partialagonisten aktivieren den Rezeptor bereits bei nanomolaren Konzentrationen, w{\"a}hrend die schwachen Metabolite den Rezeptor erst bei Konzentrationen im mikromolaren Bereich aktivieren. Die Metabolite Normorphin, Morphin-6-Glucuronid und 6-Acetylmorphin zeigen geringere Potenz als Morphin bei der Gi-Aktivierung aber {\"u}berraschenderweise h{\"o}here Potenz und Effizienz f{\"u}r die β-Arrestin-Rekrutierung. Dies deutet auf eine bevorzugte Aktivierung von β-Arrestin2 hin. Die aus diesen Studien gewonnenen Ergebnisse liefern Hinweise darauf, welche Metabolite bei der Signalverarbeitung am µ Opioidrezeptor in vivo beteiligt sind.}, subject = {Opiatrezeptor}, language = {de} } @article{GoetzEylertEisenreichetal.2010, author = {Goetz, Andreas and Eylert, Eva and Eisenreich, Wolfgang and Goebel, Werner}, title = {Carbon Metabolism of Enterobacterial Human Pathogens Growing in Epithelial Colorectal Adenocarcinoma (Caco-2) Cells}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-68555}, year = {2010}, abstract = {Analysis of the genome sequences of the major human bacterial pathogens has provided a large amount of information concerning their metabolic potential. However, our knowledge of the actual metabolic pathways and metabolite fluxes occurring in these pathogens under infection conditions is still limited. In this study, we analysed the intracellular carbon metabolism of enteroinvasive Escherichia coli (EIEC HN280 and EIEC 4608-58) and Salmonella enterica Serovar Typhimurium (Stm 14028) replicating in epithelial colorectal adenocarcinoma cells (Caco-2). To this aim, we supplied [U-13C6]glucose to Caco-2 cells infected with the bacterial strains or mutants thereof impaired in the uptake of glucose, mannose and/or glucose 6-phosphate. The 13C-isotopologue patterns of protein-derived amino acids from the bacteria and the host cells were then determined by mass spectrometry. The data showed that EIEC HN280 growing in the cytosol of the host cells, as well as Stm 14028 replicating in the Salmonella-containing vacuole (SCV) utilised glucose, but not glucose 6-phosphate, other phosphorylated carbohydrates, gluconate or fatty acids as major carbon substrates. EIEC 4608-58 used C3-compound(s) in addition to glucose as carbon source. The labelling patterns reflected strain-dependent carbon flux via glycolysis and/or the Entner-Doudoroff pathway, the pentose phosphate pathway, the TCA cycle and anapleurotic reactions between PEP and oxaloacetate. Mutants of all three strains impaired in the uptake of glucose switched to C3-substrate(s) accompanied by an increased uptake of amino acids (and possibly also other anabolic monomers) from the host cell. Surprisingly, the metabolism of the host cells, as judged by the efficiency of 13C-incorporation into host cell amino acids, was not significantly affected by the infection with either of these intracellular pathogens.}, subject = {Metabolismus}, language = {en} } @phdthesis{Blume2009, author = {Blume, Constanze}, title = {Cellular functions of VASP phosphorylations}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-48321}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2009}, abstract = {Members of the enabled/vasodilator-stimulated phosphoprotein (Ena/VASP) family are important regulators of the actin cytoskeleton dynamics. VASP functions as well as its interactions with other proteins are regulated by phosphorylation at three sites - serine157 (S157), serine239 (S239), and threonine278 (T278) in humans. cAMP- and cGMP- dependent protein kinases phosphorylate S157 and S239, respectively. In contrast, the kinase responsible for T278 was as yet unknown and identified in the first part of this thesis. In a screen for T278 phosphorylating kinases using a phospho-specific antibody against phosphorylated T278 AMP-activated protein kinase (AMPK) was identified in endothelial cells. Mutants of AMPK with altered kinase-activity modulate T278-phosphorylation levels in cells. AMPK-driven T278-phosphorylation impaired stress fiber formation and changed cell morphology in living cells. AMPK is a fundamental sensor of cellular and whole body energy homeostasis. Zucker Diabetic Fatty (ZDF) rats, which are an animal model for type II diabetes mellitus, were used to analyze the impact of phosphorylated T278 in vivo. AMPK-activity and T278-phosphorylation were substantially reduced in arterial vessel walls of ZDF rats in comparison to control animals. These findings demonstrate that VASP is a new AMPK substrate, that VASP phosphorylation mediates the effects of metabolic regulation on actin cytoskeleton rearrangements, and that this signaling system becomes down-regulated in diabetic vessel disorders in rats. In the second part of this thesis, a functional analysis of differential VASP phosphorylations was performed. To systematically address VASP phosphorylation patterns, a set of VASP phosphomimetic mutants was cloned. These mutants enable the mimicking of defined phosphorylation patterns and the specific analysis of single kinase-mediated phosphorylations. VASP localization to the cell periphery was increased by S157- phosphorylation and modulated by phosphorylation at S239 and T278. Latter phosphorylations synergistically reduced actin polymerization. In contrast, S157- phosphorylation had no effect on actin-dynamics. Taken together, the results of the second part show that phosphorylation of VASP serves as a fine regulator of localization and actin polymerization activity. In summary, this study revealed the functions of VASP phosphorylations and established novel links between signaling pathways and actin cytoskeleton rearrangement.}, subject = {Vasodilatator-stimuliertes Phosphoprotein}, language = {en} } @phdthesis{Drescher2008, author = {Drescher, Daniel Georg}, title = {Untersuchungen zum Einfluss von Alter und Geschlecht auf die Konversion von DHEA in humanen peripheren mononukle{\"a}ren Blutzellen}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-37359}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2008}, abstract = {Dehydroepiandrosteron wirkt haupts{\"a}chlich indirekt {\"u}ber nachfolgende Umwandlung in Androgene und {\"O}strogene sowie deren Zwischenprodukte in den peripheren Zielzellen, respektive Immunzellen. In vitro Versuche erbrachten den Nachweis von gesteigerter Interleukin-2 Sekretion durch T-Lymphozyten nach Gabe von DHEA, wohingegen es zu einer Inhibierung der Interleukin-6 Sekretion kam. Dementgegen wird im Altersprozess ein Abfall von DHEA und Interleukin-2 beobachtet bei gleichzeitigem Anstieg von Interleukin-6. Diese Arbeit besch{\"a}ftigt sich mit der Frage, in wieweit humane periphere mononukle{\"a}re Blutzellen (PBMCs) {\"u}ber Expression und funktionale Aktivit{\"a}t der im DHEA-Downstream-Metabolismus essentiellen Enzyme verf{\"u}gen und ob es alters- bzw. geschlechtsspezifische Unterschiede gibt. Die Studie wurde an 8 gesunden j{\"u}ngeren Frauen sowie 8 gesunden j{\"u}ngeren und 8 gesunden {\"a}lteren M{\"a}nnern durchgef{\"u}hrt. Zur Bestimmung der mRNA-Expression der im DHEA-Downstreammetabolismus notwendigen Steroidenzyme in humanen PBMCs wurden qualitative, semiquantitative und quantitative RT-PCR Analysen sowie PBMC-Enzymfunktionsassays durchgef{\"u}hrt. Hierbei wurden PBMCs mit radioaktiv markiertem 4-14C-Testosteron, 4-14C-Androstendion bzw. 4-14C-DHEA inkubiert, extrahiert und mittels D{\"u}nnschichtchromatographie separiert. Die anschließende quantitative Auswertung der Konversionsprodukte erfolgte durch Phosphorimager-Analyse. Zusammenfassend l{\"a}sst sich aussagen, dass humane periphere mononukle{\"a}re Blutzellen (PBMCs) ausgehend von DHEA {\"u}ber alle notwendigen Steroidenzyme f{\"u}r einen effizienten Downstreammetabolismus zu aktiven Androgenen verf{\"u}gen. Dies konnte sowohl durch den qualitativen und quantitativen Nachweis von mRNA der betreffenden Enzyme als auch durch die nachgewiesene Aktivit{\"a}t in PBMC-Enzymfunktionsassays best{\"a}tigt werden. Dabei zeigten sich signifikante alters- und geschlechtsspezifische Ver{\"a}nderungen im Androgenmetabolismus. Insbesondere konnte eine erh{\"o}hte 17beta-HSD5-Aktivit{\"a}t und -Expression in der {\"a}lteren m{\"a}nnlichen und weiblichen Probandengruppe im Vergleich zur j{\"u}ngeren m{\"a}nnlichen nachgewiesen werden, was sich in signifikant h{\"o}heren Konversionsraten von DHEA zu Androstenediol und Androstenedion zu Testosteron widerspiegelte. Ebenso konnte eine signifikant erh{\"o}hte 5alpha-Reduktase-Aktivit{\"a}t in der {\"a}lteren m{\"a}nnlichen Probandengruppe im Vergleich zur j{\"u}ngeren m{\"a}nnlichen aufgezeigt werden. Dementgegen waren die Konversionsraten von DHEA zu Androstenedion via 3beta-Aktivit{\"a}t unter den einzelnen Probandengruppen {\"a}hnlich. Die vermehrte Konversion von DHEA zum immunmodulatorisch wirksamen Metabolit Androstendiol sowie von Androstendion zu Testosteron entspricht einer vermehrten Androgenaktivierung. Dieses Hochregulieren k{\"o}nnte einen kompensatorischen Mechanismus der peripheren Zielzelle darstellen, dem sinkenden DHEA-Serumspiegel w{\"a}hrend des Alterungsprozesses entgegenzuwirken und kann einen endokrinen Hinweis auf eine „Immunseneszenz" geben.}, subject = {Testosteron}, language = {de} }