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Myxobacteria are on order of Gram-negative, soil dwelling bacteria that feature an impressive number of properties: they can glide on solid surfaces by using two different motility motors, subsist by preying on other microorganisms, are often producers of multiple natural products, and upon adverse environmental conditions, they are able to form multicellular structures called “fruiting bodies”. The process, in which these macroscopically visible structures arise from independent single cells, has been the predominant subject of myxobacterial research for many decades. More precisely, researchers have strived for the discovery of genes, proteins and small molecules that act as signals, receivers or modulators of this complex process. In this regard, the species Myxococcus xanthus has evolved into the model organism due to its relatively simple and reliable handling in a laboratory environment. The research underlying this thesis focused on the identification and biosynthesis of lipids that may act as intercellular signaling molecules during the course of fruiting body formation of the myxobacterium Myxococcus xanthus as part of the “E-signal” system. In general, lipids containing branched-chain fatty acids with an uneven number of carbon atoms were found to be important players in this particular process. Nevertheless, their exact roles remain largely unknown as of this day. The first publication that is part of this thesis deals with an aspect that even strengthened the importance of role of iso-branched compounds in myxobacteria: myxobacterial metabolism is able to transform precursors of iso-lipids to isoprenoids. It addresses the question whether isoprenoids in general are important for fruiting body formation. Phenotypic analysis of mutants impaired in the biosynthesis of the central isoprenoid precursor 3-hydroxymethylglutaryl-Coenzyme A (3-HMG-CoA) from acetate and/or branched chain keto acids and their genetic and metabolic complementation clearly showed that isoprenoids are essential for fruiting body formation and confirmed that leucine derived isovalerate is an important source for isoprenoid precursors in myxobacteria. The second, and by far and away most tedious and sophisticated study, addressed the question as to how myxobacteria form fatty acid derived iso-branched ether lipids and to what extent they are important for fruiting body formation and sporulation. In a previous study, those unusual lipids were identified as specific biomarkers for myxobacterial development. No biochemical pathways to ether lipids specific for prokaryotes were known by then. In this study, a putative candidate gene that may be in involved in ether lipid biosynthesis was investigated. A combination of gene disruption and complementation experiments, phenotypic analysis and monitoring of ether lipid formation by means of GC-MS demonstrated its involvement in myxobacterial ether lipid biosynthesis and the importance of these lipids for the developmental process. Heterologous expression and biochemical testing of this gene together with in-silico sequence analysis and docking experiments confirmed the functions of its predicted domains. The discussion section provides an additional suggestion on how the ether bond formation is performed. Furthermore and most importantly, iso-branched ether lipids were found to be essential for sporulation but not for fruiting body formation. In summary, one or several molecules derived from an iso-branched alkylglycerol seem to play a role during sporulation in M. xanthus and a multidomain enzyme unique for myxobacteria is involved in their biosynthesis. The last manuscript addresses the complexity of lipid metabolism in myxobacteria. Prior to this work, there was limited knowledge about the exact composition of the myxobacterial lipidome and no method was available to monitor putative changes in the myxobacterial lipidome down to the single molecular species for studying lipid biosynthesis or regulation. An ultra-performance liquid chromatography coupled with mass spectrometry based method with electrospray ionization (UPLC-ESI-MS) utilizing standard equipment and a water/acetonitrile/isopropanol based eluent system proved to be geared for the construction of lipid profiles for wild type and mutant cells of M. xanthus and to show their differences. Fragmentation spectra based structure elucidation of lipid molecular species resulted in the identification of 99 molecular species comprising glycerophosphoethanolamines, glycerophosphoglycerols, glycerolipids, ceramides and ceramide phosphoinositols. The latter have never been described for any prokaryotes before. Three dimensional plots were created from the relative intensity differences of the single molecular ion species between the different samples to provide an efficient and versatile visualization of the data and enable the researcher to quickly detect differences.
Heme-copper oxidases (HCOs) are the terminal enzymes of the aerobic respiratory chain in the inner mitochondrial membrane or the plasma membrane in many prokaryotes. These multi-subunit membrane protein complexes catalyze the reduction of oxygen to water, coupling this exothermic reaction to the establishment of an electrochemical proton gradient across the membrane in which they are embedded. The energy stored in the electrochemical proton gradient is used e.g. by the FOF1-ATP synthase to generate ATP from ADP and inorganic phosphate. The superfamily of HCOs is phylogenetically classified into three major families: A, B and C. The A-family HCOs, represented by the well-studied aa3-type cytochrome c oxidases (aa3-CcOs), are found in mitochondria and many bacteria. The B-family of HCOs contains a number of bacterial and archaeal oxidases. The C-family comprises only the cbb3-type cytochrome c oxidase (cbb3-CcO) and is most distantly related to the mitochondrial respiratory oxidases.
RNA modifications are present in all three kingdoms of life and detected in all classes of cellular RNAs. RNA modifications are diverse, with more than 100 types of chemical modifications identified to date. These chemical modifications expand the topological repertoire of RNAs and are expected to fine-tune their functions. Ribosomal RNA (rRNA) contains two types of covalent modifications, either methylation on the sugar (Nm) or bases (mN), or base isomerization (conversion of uridine into pseudouridines, "). Pseudouridylations and ribose methylations are catalyzed by site-specific H/ACA and C/D box snoRNPs, respectively. The RNA component (snoRNA) of both types of snoRNPs is responsible for the site selection by base pairing with the rRNA substrate, whereas the protein component catalyzes the modification reaction: Nop1 in C/D box and Cbf5 in H/ACA box snoRNPs. Contrastingly, base methylations are performed by snoRNA independent, ‘protein-only’, methyltransferases (MTases). rRNA modifications occur at highly conserved positions, all clustering around functional ribosomal sites. Mutations in factors involved in rRNA modification have been linked to severe human diseases (e.g. X-linked Dyskeratosis congenita). Emerging evidences indicate that heterogeneity in RNA modification prevails, i.e. not all positions are modified at all time, and the concept of ‘specialized ribosomes’ has been coined. rRNA modification heterogeneity has been correlated with disease etiology (cancer), and shown to play a role in cell differentiation(hematopoiesis). Remarkably, alteration in rRNA modification patterns profoundly affects the preference of ribosomes for cap- versus IRESdependent translation initiation, with major consequences on cell physiology.
Physical Biology is a field of life sciences dealing with the extraction of quantitative data from biophysical or molecular biological experiments with different levels of complexity. Such data are further used as parameters for mathematical models of the biological system. These models allow to predict reactions on external stimuli by describing the relevant molecular interactions and are therefore used for example to generate a deeper comprehension of complex human diseases. An essential technique in biophysical research on human diseases is fluorescence microscopy. This is a constantly developed toolbox comprising a large number of specific labeling strategies, as well as a broad spectrum of fluorescent probes. It is further minimal invasive and therefore suitable for measurements in living cells or organisms. The sensitivity of modern photo-detectors even allows for the detection of a single fluorescent probe with an accuracy of approximately 10 nm.
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The model-prediction was further verified by two color SMLM experiments. In this work the development and application of imaging-systems are described which provide quantitative data with single-molecule resolution for systems biological model approaches with a low degree of abstractness. In the near future, the impact of mathematical models in the research field of complex human diseases will increase. The predictions of these models will be more exact, the more detailed and accurate the input parameters will become. This work gives an impression of how quantitative data obtained by SMLM may serve as input parameters for mathematical models at the single-cell level.
In den vergangenen Jahren haben ökologische Fragen in der Naturstoffforschung mehr und mehr an Bedeutung gewonnen. Naturstoffe bilden dabei einen wichtigen Aspekt in der Aufrechterhaltung symbiotischer Systeme.
Symbiosen stellen eine der treibenden Kräfte der Evolution dar. Diese artenübergreifende Interaktion zweier Organismen ermöglicht die Evolution in wechselseitiger Anpassung, wobei per Definition in die Kategorien Mutualismus, Kommensalismus und Parasitismus unterschieden wird. Teilweise führt die obligatorische Abhängigkeit eines Organismus zum partiellen Merkmals- und Stoffwechselwegverlust, der durch seinen Symbiose-Partner kompensiert wird. In den meisten Fällen stellt Symbiose ein komplexes Netzwerk aus mehr als zwei Lebewesen dar.
Diese Arbeit beschreibt die Anwendung der Klonierungsmethode ExRec ("overlap extension PCR-yeast homologous recombination") für die vereinfachte Bereitstellung von Naturstoffen. Es konnte ein 45 kb großes Gencluster erfolgreich kloniert und zwei neue Peptide Ambactin und Xenolindicin aus Xenorhabdus charakterisieren werden, wobei letztgenanntes von einem stillen Gencluster stammt. ExRec stellt eine sehr effiziente und wichtige Methode für die Klonierung großer Gencluster als auch für die Klonierung aus Metagenombibliotheken und RNA Pools dar...
Fungal organisms, including the most common human pathogens Candida spp., are commensal organisms that are widely present as part of the human flora. Fungal infections are, most frequently, local infections that do not compromise the life of patients. However, mycotic diseases can be life-threatening if they become systemic infections. Systemic fungal infections have risen over the last three decades in parallel to the increased immune-compromised population as a consequence of diseases (e.g. HIV/AIDS) or therapeutic interventions that affect the immune system (e.g. chemotherapy for cancer treatment and immunosuppressors used for patients with organ transplants). This has resulted in the demand of new antifungal drugs that can eradicate the new infections caused by these opportunistic fungal pathogens. However, most of the current compounds have poor pharmaceutical properties such as narrow spectrum of activity, susceptibility to be extruded by efflux pumps or lack of specificity, which make them not suitable for human clinical applications. The treatment of fungal and parasitic infections has been traditionally difficult because the infective organisms are eukaryotic cells that share most of the pathways and enzymes with human cells. To avoid side effects and to develop a targeted therapy, the research has traditionally been centered on the very few enzymes and pathways existing in the infectious organism but absent in humans. Until now, antifungal therapeutic options are limited and are almost dominated by azole class of sterol biosynthesis inhibitors affecting the synthesis of ergosterol, a major constituent of the fungal cell membrane. Because human cells do not have a cell wall, the development of effective and safe antifungal agents has also been directed to enzymes required for the synthesis of the cell wall. Alternatively, it is theoretically possible to target enzymes that are present in fungal organisms and in humans, when: 1) sufficient selectivity can be achieved, and 2) inhibition of the fungal enzyme is lethal to the fungus but does not produce major side effects to humans. In this line, it would be ideal to evaluate the development of selective inhibitors of enzymes which are already known to be drug targets, like protein kinases.
Mathematical modeling of Arabidopsis thaliana with focus on network decomposition and reduction
(2014)
Systems biology has become an important research field during the last decade. It focusses on the understanding of the systems which emit the measured data. An important part of this research field is the network analysis, investigating biological networks. An essential point of the inspection of these network models is their validation, i.e., the successful comparison of predicted properties to measured data. Here especially Petri nets have shown their usefulness as modeling technique, coming with sound analysis methods and an intuitive representation of biological network data.
A very important tool for network validation is the analysis of the Transition-invariants (TI), which represent possible steady-state pathways, and the investigation of the liveness property. The computational complexity of the determination of both, TI and liveness property, often hamper their investigation.
To investigate this issue, a metabolic network model is created. It describes the core metabolism of Arabidopsis thaliana, and it is solely based on data from the literature. The model is too complex to determine the TI and the liveness property.
Several strategies are followed to enable an analysis and validation of the network. A network decomposition is utilized in two different ways: manually, motivated by idea to preserve the integrity of biological pathways, and automatically, motivated by the idea to minimize the number of crossing edges. As a decomposition may not be preserving important properties like the coveredness, a network reduction approach is suggested, which is mathematically proven to conserve these important properties. To deal with the large amount of data coming from the TI analysis, new organizational structures are proposed. The liveness property is investigated by reducing the complexity of the calculation method and adapting it to biological networks.
The results obtained by these approaches suggest a valid network model. In conclusion, the proposed approaches and strategies can be used in combination to allow the validation and analysis of highly complex biological networks.
Cancer is a disease characterized by uncontrolled cell growth and the capacity to disseminate to distant organs. The properties of cancers are caused by genetic and epigenetic alterations when compared to their normal counterparts. Genetic mutations occur in oncogenes and tumor suppressor genes and are the initial drivers of cellular transformation (Lengauer et al., 1998; Vogelstein and Kinzler, 2004). In addition, epigenetic alterations, which influence the expression of oncogenes and tumor suppressor genes independently from sequence alterations, are also involved in the transformation process (Esteller and Herman, 2001; Sharma et al., 2010). Genetic alterations and epigenetic regulatory signals cooperate in tumor etiology. Glioblastoma multiforme (GBM) is a frequent and aggressive malignant brain tumor in humans. The median survival of GBM patients is about 15 months after diagnosis. Like in other cancers, genetic and epigenetic alterations can be detected in GBM. Genetic alterations in GBM affect cell growth, apoptosis, angiogenesis, and invasion; however, epigenetic alterations in GBM also affect the expression of oncogenes or tumor suppresser genes that increase tumor malignancy (Nagarajan and Costello, 2009).
Reprogramming is a cellular process in which somatic cells can be induced to assume the properties of less differentiated stem cells. This process can be mediated through epigenetic modifications of the genome of somatic cells by the action of four defined transcription factors (Oct4, Sox2, Klf4 and Myc) or by the action of the miR 302/367 cluster (Anokye-Danso et al., 2011; Takahashi and Yamanaka, 2006; Takahashi et al., 2007) and result in the generation of induced pluripotent stem cells (iPS cells). Reprogramming of somatic cells by the miR 302/367 cluster can generate nontumorigenic iPS cells through the inhibition of the epithelial to mesenchymal transition (EMT), cell cycle regulatory genes and epigenetic modifiers (Lin and Ying, 2013).
Characterization of mouse NOA1 : subcellular localizaion, G-Quadruplex binding and proteolysis
(2013)
Mitochondria contain their own protein synthesis machinery with mitoribosomes that are similar to prokaryotic ribosomes. The thirteen proteins encoded in the mitochondrial genome are members of the respiratory chain complexes that generate a proton gradient, which is the electromotoric force for ATP synthesis.
NOA1 (Nitric Oxide Associated Protein-1) is a nuclear encoded GTPase that positively influences mitochondrial respiration and ATP production. Although a role in mitoribosome assembly was assigned to NOA1 the underlying molecular mechanism is poorly understood. This work shows that the multi-domain protein NOA1 serves multiple purposes for the function of mitochondria. NOA1 is a dual localized protein that makes a detour through the nucleus before mitochondrial import. The nuclear shuttling is mediated by a nuclear localization signal and the now identified nuclear export signal. SELEX (Systemic Evolution of Ligands by Exponential Enrichment) analysis revealed a G-quadruplex binding motif that characterizes NOA1 as ribonucleoprotein (RNP). G-quadruplex binding was coupled to the GTPase activity and increased the GTP hydrolysis rate. The sequence of localization events and the identification of NOA1 being a RNP lead to the discussion of an alternative import pathway for RNPs into mitochondria. The short-lived NOA1 contains ClpX recognition motifs and is specifically degraded by the mitochondrial matrix protease ClpXP. NOA1 is the first reported substrate of ClpXP in higher eukaryotes and augments the contribution of the ClpXP protease for mitochondrial metabolism. To assess the direct action of NOA1 on the mitoribosome co-sedimentation assays were performed. They showed that the interaction of NOA1 and the mitoribosome is dependent on the GTPase function and the nascent peptide chain. In vitro, NOA1 facilitated the membrane insertion of newly translated and isotope labeled mitochondrial translation products into inverted mitochondrial inner membrane vesicles. In conclusion, NOA1 is a G-quadruplex-RNP that acts as mitochondrial membrane insertion factor for mtDNA-encoded proteins.
This thesis provides a comprehensive model of the molecular function of NOA1 and is the basis for future research. The identification of NOA1 as ClpXP substrate is a major contribution to the field of mitochondrial research.
In this study I analysed past and recent Daphnia populations from Lake Constance and Greifensee. Herefore, I first established a set of microsatellite markers applicable to European Hyalodaphnia species (chapter 1). Primers were also identified for species specific fragment lengths. 32 markers were then available to characterize the resting egg banks of Daphnia galeata and D. hyalina. Chapter 2 presents the reconstruction of the taxonomic composition in these two ecologically different lakes. This part of my work shows that the eutrophication that occurred in both lakes in the mid of the last century has strongly influenced the Daphnia populations. In both lakes Daphnia galeata established and hybridized with the indigenous D. hyalina. Interspecific hybridization resulted in introgression on the mitochondrial and nuclear level. In chapter 3 resting eggs from the sediments of the 1960s, 1970s, 1980s, 1990s and 2000s were characterized with microsatellite markers. The aim was to specify the extent of interspecific hybridization and nuclear introgression assuming that the genetic exchange between both species has an impact on their adaptation to their habitat. In life history experiments D. galeata and D. galeata x hyalina clones hatched from different time periods showed significant differential responses to food quality. Therefore, the question had to be answered how the Daphnia resting egg bank and the planktonic population are connected. In chapter 4 hatching experiments were conducted to bridge this gap of scientific knowledge in the life cycle of cyclic parthenogenetic waterfleas. Only D. galeata individuals were able to establish a clonal lineage after maturity. All observed recombinant individuals did not reproduce at all or firstly went through another sexual phase of reproduction i.e. produced resting eggs. In order to compare the findings of chapter 4 with the taxon composition of the recent planktonic population of Daphnia in Lake Constance, samples were taken over one season (between May 2005 and September 2006). During the season, the taxonomic composition of Daphnia changes severely with D. galeata being most abundant during the warm season and D. hyalina in the cold season. Moreover, some individuals were detected, that did not follow this pattern. With mitochondrial analysis those individuals were identified as mitochondrial introgressants and processed to life history experiments. Significant differences in the somatic growth rate under different temperatures (5°C, 12.5°C and 20°C) were related to the origin of the mitochondrial genome rather than the nuclear taxonomic assignment of the individual.
The findings of this study show that all organisms exposed to rapid ecological changes and their microevolutionary reaction to those.
The human endothelin receptors, ETA and ETB, are two members of the G-protein coupled receptors family (GPCRs) and they are key players in cardiovascular regulation. The characterization of their functionality in vitro has been limited by the possibility to obtain high quality samples using conventional expression systems. The Cell-Free expression system is an alternative technique for the production of membrane protein as well as GPCRs and can overcome some of the limitations that are commonly encountered using an in vivo approach. Cell-Free expression protocols for the two receptors ETA and ETB have been optimized by implementing post- and co-translational association to lipid bilayers. The efficiency of the reconstitution or association to liposomes and nanodiscs has systematically been studied and the ligand binding properties of the two receptors have been analyzed using a set of different complementary techniques. In several different conditions a high affinity binding of the peptide ligand ET-1 to both endothelin receptors could be obtained and the highest activity values were detected in sample prepared using a co-translational approach in presence of nanodiscs. Furthermore, the characteristic differential binding pattern of selected agonists and antagonists to the two receptors was confirmed. In samples obtained from several Cell-Free expression conditions, two intrinsic properties of the functionally folded ETB receptor, such as the proteolytic processing based on conformational recognition as well as the formation of SDS-resistant complexes with the peptide ligand ET-1, were detected. ETA and ETB are able to induce in vivo the activation of hetrotrimeric G proteins upon stimulation with an agonist, leading to the dissociation of the heterotrimeric complex and the exchange of GDP to GTP in the Galpha subunit. The Cell-Free expression system was chosen for the production of two G alpha subunit, Galpha s and Galpha q. Soluble expression of the two proteins was achieved and the production of active Galpha s was confirmed using fluorescent as well as radioactive assays. In conclusion, the obtained results document a new process for the production of ligand binding competent endothelin receptors, as well as Galpha proteins, using a Cell-Free expression system. The combination of this expression system and the nanodiscs technology appears to be a promising tool for the further characterization of membrane proteins as well as GPCRs.
Alzheimer’s disease (AD) is a common, age associated neurodegenerative disease that manifests as progressive dementia and is characterized by accumulation of the amyloid beta (Aβ) peptide which is a processing product of a transmembrane protein termed Alzheimer Amyloid Precursor Protein (APP). The Aβ peptide is generated by a sequential proteolytic processing of APP by two distinct proteases that are termed β- and γ-secretase. The β-secretase, also called BACE-1 or memapsin 2, belongs to the family of aspartyl proteases. BACE-1 evidently cleaves APP in an acidic endosomal compartment after endocytosis of APP, thereby facilitating Aβ peptide generation.
Sorting of transmembrane proteins is generally controlled by sorting signals in the cytoplasmic domains of the cargo proteins. The short cytoplasmic tail of BACE-1 with 23 amino acids contains a sorting signal of the acidic cluster, di-leucine (ACDL) type. The two Leu residues in this determinant are important for the clathrin mediated endocytosis of BACE-1, whereas the acidic residues together with the Leu are required for the endosomal sorting and recycling of BACE-1 back to the plasma membrane. The ACDL motif binds to the members of the GGA (Golgi-localized γ ear-containg ARF- binding proteins) family (GGA1-GGA3) that are involved in the sorting of BACE-1.
One of the major aims of this study was to address the role of flotillins in the intracellular sorting of BACE-1. This study shows that flotillin-1 directly binds to the di-leucine motif in the cytoplasmic tail of BACE-1, whereas flotillin-2 only shows an association mediated by flotillin-1. Flotillin-1 competes with GGA2 for the binding to BACE-1 tail, and thus influences the endosomal sorting of BACE-1. Importantly, depletion of flotillins results in an altered localization of the wildtype BACE-1, whereas the plasma membrane resident Leu to Ala (LLAA) mutant is not affected. Flotillin knockdown results in an accumulation of BACE-1, implicating reduced degradation and enhanced stability of this protease. Thus, flotillins appear to be important for the cellular targeting of BACE-1 and also influence the amyloidogenic processing of APP, as demonstrated by an increase in the amyloidogenic C-99 processing fragments.
When flotillin depleted cells were subjected to apoptotic stresses including Aβ25-35 synthetic peptide (inducer of the extrinsic apoptosis pathway) or several chemotherapeutic agents (staurosporine, brefeldin A, doxorubicin, carboplatin and paclitaxel: intrinsic apoptosis pathway) and cytotoxicity was determined, various apoptotic markers were activated in flotillin depleted cells. Caspase-3 and GGA3 are well accepted apoptosis markers and an enhanced caspase-3 cleavage was detected upon STS induced apoptosis in SH-SY5Y, HeLa, and HaCaT cell lines and increased GGA3 cleavage was observed in MCF7 cell line.
One of the major reasons for the apoptotic sensitivity in the absence of flotillins was a PI3K/Akt signaling defect. Neuroblastoma cells depleted of flotillins showed diminished levels of total Akt, phospho-Akt and phospho-ERK upon STS induced apoptosis. Since PI3K/Akt was the primary survival pathway affected upon STS induced apoptosis, ectopic expression of Akt in neuroblastoma cell line reduced caspase-3 cleavage and retarded apoptosis.
The direct downstream target of Akt is FOXO3a, whose localization was investigated in flotillin depleted cells. A major proportion of FOXO3a was localized in the nucleus of flotillin knockdown cells, implicating that FOXOs are active in these cells and subsequently trigger the transcription of death genes. Strikingly, an essential anti-apoptotic molecule and a major cancer target, Mcl-1, was inherently downregulated in flotillin knockdown cells. Mcl-1 is a chief member of the Bcl-2 family as it plays a pivotal role in cell survival and it is a critical protein in cancer therapeutics as suppression of Mcl-1 protein can curtail the survival and growth of tumorous cells.
Neuroblastoma cells were rescued from undergoing permanent damage due to STS induced apoptosis by overexpression of anti-apoptotic Bcl-2. Phorbol esters are well known PKC activators, and pre-treatment of neuroblastoma cells with phorbol esters along with staurosporine reduced caspase-3 cleavage.
These results demonstrate that absence of flotillins can sensitize cellular systems to apoptosis induction. The two main characteristics of cancer cells include resistance to apoptosis and unresponsiveness to chemotherapeutic agents. It is a well established fact that impaired apoptosis is central to tumour development. This study implicates that the downregulation of flotillin function can trigger cellular susceptibility and enhances apoptosis in response to conventional chemotherapeutic agents. Therefore, flotillins can serve as vital regulators in providing a more rational approach in molecular-targeted therapies for receding cancer growth and survival.
Wie andere Vögel auch, verfügen Hühner über zwei verschiedene Magnetfeldrezeptoren. In der vorliegenden Arbeit werden diese beiden Rezeptoren, vor allem unter dem Aspekt Verhaltensontogenie eingehender untersucht. Meine Ergebnisse werden durch histologische Untersuchungen gestützt. Ich untersuchte zwei Hühnerrassen, einen braunen und einen weißen Legehuhn Stamm. Mit der Standardmethode konnte ich die Befunde der Literatur bestätigen. Zur Untersuchung des Magnetkompasses im Auge, habe ich Hühner darauf trainiert einen roten Tischtennisball, auf den sie geprägt wurden, in einer bestimmten magnetischen Richtung zu suchen. Im unbelohnten“ Test ist das Magnetfeld um 90 Grad gedreht, so dass der magnetische Norden nun im geographischen Osten liegt. Die braunen Hühner benutzen den Magnetkompass zum Lösen der gestellten Aufgabe, die weißen Hühner wählen zufällig eine Richtung. Eine Veränderung der Trainingsmethode, ein Training im gedrehten Magnetfeld und eine „Bestrafung“, haben das Ergebnis verändert. Die weißen Hühner sind nun in der Lage, die magnetisch richtige Richtung zu finden, die braunen Hühner reagieren verängstigt und wählen nur zufällig eine Richtung. Beide Hühnerrassen können also - unter verschiedenen Voraussetzungen - einen magnetischen Kompass für die Orientierung benutzen.
Tumor development usually follows predictable paths where tumor cells acquire common characteristics and features known as the hallmarks of cancer. Recently, additional characteristics have been added to these hallmarks since solid tumors are composed of a very heterogeneous population of transformed, formerly normal tissue cells and stromal cells, e.g. immune cells and fibroblasts. Compelling evidence suggests that stromal cells and tumor cells maintain a symbiotic relationship to build up the tumor microenvironment and to fuel tumor growth. In cancer therapies, common features of tumors such as unrestricted cell growth, suppression of immunological responses, and the ability to form new blood vessels (angiogenesis) have emerged as the main targets of interest. The lipid mediator prostaglandin E2 (PGE2) is known to promote all these features and thus, is connected to cancer progression in general. Its synthesis is triggered in response to stress factors or during inflammation. Inducible PGE2 production relies on the enzymes cyclooxygenase 2 (COX-2) and microsomal prostanglandin E synthase 1 (mPGES-1), which are simultaneously expressed in response to a variety of different stimuli and are functionally coupled. Inhibition of COX-2 with non-steroidal antiinflammatory drugs (NSAIDs) for cancer treatment is, however, limited by cardiovascular risks, since selective COX-2 inhibition disrupts the prostacyclin/thromboxane balance. Therefore targeting mPGES-1 downstream of COX-2 for PGE2 inhibition was evaluated in this work in different steps of carcinogenesis. Knockdown of mPGES-1 in DU145 prostate cancer cells revealed that the mPGES-1 status did not affect growth of monolayer tumor cells, but significantly impaired 3D growth of multi-cellular tumor spheroids (MCTS). Spheroid formation induced COX-2 in DU145 and other prostate cancer spheroids. High levels of PGE2 were detected in supernatants of DU145 MCTS as opposed to monolayer DU145 cells. Pharmacological inhibition of COX-2 and mPGES-1 confirmed the pivotal role of PGE2 for DU145 MCTS growth. Besides promoting spheroid growth, MCTS-derived PGE2 also inhibited cytotoxic T lymphocyte (CTL) activation. When investigating the mechanisms of COX-2 induction during spheroid formation, the typical tumor microenvironmental factors such as glucose deprivation, hypoxia or tumor cell apoptosis failed to enhance COX-2. Interestingly, when interfering with apoptosis in DU145 spheroids, the pan-caspase inhibitor Z-VAD-FMK triggered a Summary 12 shift towards necrosis, thus enhancing COX-2 expression. Coculturing viable DU145 monolayer cells with isolated heat-shocked-treated necrotic DU145 cells, but not with necrotic cell supernatants, induced COX-2 and PGE2, confirming the impact of necrosis for MCTS growth and CTL inhibition. As mentioned, in vivo tumors are very heterogenous mixtures of tumor cells and stromal cells e.g. immune cells. Hence, the interaction of the immune system with tumors was investigated in further experiments. When coculturing MCF-7 breast cancer spheroids with human peripheral blood mononuclear cells (PBMCs), only low levels of PGE2 were detected, since MCF-7 cells did not upregulate COX-2 during spheroid formation and did not induce PGE2 production by PBMCs. Under inflammatory conditions, by adding the toll-like receptor 4 (TLR4) agonist lipopolysaccharide (LPS) to cocultures, PGE2 production was triggered, spheroid sizes were reduced, and numbers of high levels of granzyme B expressing (GrBhi) CTLs were increased, while CD80 expression by tumor-associated phagocytes was also elevated. Inhibition of CD80 but not CD86 diminished numbers of GrBhi CTLs and attenuated spheroid lysis. To determine the role of ctivation-induced PGE2 production, use of the COX-2 inhibitor celecoxib and the experimental mPGES-1 inhibitor C3 further increased CD80 expression. Addition of PGE2, the prostaglandin E2 (EP2) receptor agonist butaprost, and the phosphodiesterase 4 (PDE4) inhibitor rolipram reduced LPS/C3-triggered CD80 expression, confirming the impact of COX- 2/mPGES-1-derived PGE2 on shaping phagocyte phenotypes in an EP2/cAMP-dependent manner. In a spontaneous breast cancer model (MMTV-PyMT), mPGES-1-deficiency significantly delayed tumor growth in mice, confirming an overall protumorigenic role of mPGES-1 in breast cancer development in vivo. However in tumors of mPGES-1-/- mice, tumor-infiltrating phagocytes expressed low levels of CD80 similar to their wildtype counterparts. These data suggest that the immunosuppressive microenvironment does not allow for immunostimulatory effects by mPGES-1 inhibition without an activating stimulus. Evidences in this study recommend the application of mPGES-1 inhibitors for treating cancer diseases, since mPGES-1 promotes tumor growth in multiple steps of carcinogenesis, ranging from well-characterized effects of tumor cell growth to immune suppression of CTL activity and phagocyte polarization. Regarding the latter, blunting PGE2 during immune activation may limit the tumor-favoring features of inflammation and improve the efficiency of TLR4 based immune therapies.
Die Funktion der äußeren Haarsinneszellen geht weit über die normale Rezeptoreigenschaft der Kategorie Mechanorezeptor hinaus. Äußere Haarzellen mit ihrer reichhaltigen efferenten Innervierung sind nicht nur für die sensorische Aufnahme mechanischer Bewegung zuständig, sondern ermöglichen aufgrund ihrer motorischen Funktionen die mechanische Verstärkung der Wanderwelle in der Cochlea. Äußere Haarzellen sind eine maßgebliche Komponente des ´cochleären Verstärkers` und ihr Ausfall führt zur Schwerhörigkeit. Beiprodukte des cochleä-ren Verstärkers sind otoakustische Emissionen, deren Messung Aufschluss über aktive mechanische Prozesse im Innenohr gibt.
Die äußeren Haarsinneszellen bilden Synapsen mit dem olivo-cochleären efferenten System, welches im Zentrum der vorliegenden Untersuchung steht. Es vermittelt den Einfluss des Zentralnervensystems auf das Corti-Organ des Innenohrs. Über die akustische Reizung des olivo-cochleären Reflexbogens ist man in der Lage, das efferente System zu aktivieren und gleichzeitig die Antworteigenschaften der Cochlea zu verändern. Efferente Modulationen des cochleären Verstärkers können sich z. B. in einer Veränderung des Emissionspegels bemerk-bar machen. Die Fledermausspezies Carollia perspicillata ist aufgrund ihres Echoortungs-systems mit einem sehr sensitiven und hochauflösenden Hörvermögen ausgestattet und eignet sich hervorragend als Modelltier in der Hörforschung, insbesondere auch deshalb, da oto-akustische Emissionen sehr gut messbar sind.
Das efferente System von C. perspicillata wurde in dieser Untersuchung durch akustische Stimulation der kontralateralen Cochlea angeregt. Die Stimuli, die nicht nur in ihrem Pegel sondern auch in ihrer Bandbreite und in der Mittelfrequenz in Relation zu den ipsilateralen Stimulusfrequenzen variierten, beeinflussten dabei die Generierung der otoakustischen Emis-sionen (DPOAE, engl: distortion product otoacoustic emissions) im ipsilateralen Ohr: akustische Stimulation der kontralateralen Cochlea bewirkte zuverlässig eine Änderung der DPOAE- Amplitude im kontralateralen Ohr. Vor allem eine Suppression des cochleären Verstärkers in Form von DPOAE-Pegelverminderungen wurde beobachtet. Die supprimieren-den Effekte erreichten trotz leiser bis moderater kontralateraler Rauschpegel (bis maximal 54 dB SPL) Werte von bis zu 14, 17.1 und 13.9 dB SPL (bei f2 = 20, 40 und 60 kHz und effek-tivstem kontralateralen Rauschstimulus) und waren damit deutlich größer als in vorangegang-enen Studien an anderen Spezies. Die DPOAE-Pegelverminderungen waren positiv mit dem x Pegel der kontralateralen akustischen Stimulation, ebenso wie seiner Bandbreite und der Mittelfrequenzen in Relation zu den ipsilateralen Stimulusfrequenzen korreliert. Es gab keinen absoluten Frequenzbereich, in dem die efferenten Effekte am größten gewesen wären. Vielmehr traten maximale Effekte immer durch etwas oberhalb der ipsilateralen Stimulusfre-quenzen gelegene kontralaterale Rauschstimuli auf. Die Effekte waren auch abhängig von der Bandbreite des kontralateralen Rauschstimulus und maximal bei einer relativen Bandbreite von 1.5 Oktaven. Die Verschiebung des efferenten Effekts hin zu hohen Frequenzen und die Bandbreitenabhängigkeit sind vereinbar mit den anatomischen Eigenschaften der Projektio-nen der medialen olivo-cochleären Efferenzen in der Säugetiercochlea. Kontralaterale akusti-sche Reizung bewirkte auch eine Verschiebung der Wachstumsfunktionen der 2f1-f2 -DPOAE in einen unsensitiven Bereich und außerdem eine Verformung der Wachstumsfunktion. Bei-des könnte durch Beeinträchtigung des cochleären Verstärkers verursacht sein. Eine Beteili-gung des Mittelohrmuskels an den Effekten kann nahezu ausgeschlossen werden und die beobachteten Effekte sind höchstwahrscheinlich dem olivo-cochleären System zuzuschreiben.
Funktionell ist denkbar, dass bei C. perspicillata das mediale olivo-cochleäre System im Kontext einer Frequenzverschärfung bei der cochleären Verstärkung der Basilarmembranbe-wegung aktiv wird. Aus diesem Grund wurden ipsilateral sogenannte DPOAE-Suppressions- Abstimmkurven gemessen, welche die mechanische Abstimmschärfe im Innenohr beschrei-ben. Während und nach kontralateraler Reizung kam es zu Veränderungen der Abstimmkur-ven. Signifikante Effekte konnten allerdings nicht festgestellt werden, da die Veränderungen der Suppressions-Abstimmkurven variabel und schlecht kategorisierbar war.
Die vorliegenden Ergebnisse unterstützen weit verbreitete Hypothesen zur Funktion der medialen olivo-cochleären Effernzen in Bezug auf mechanische Suppression, Verbesserung des cochleären Signal-Rauschverhältnisses und einer generellen frequenzspezifischen Wirkung.
Protein quality control systems (PQC), i.e. UPS and aggresome-autophagy pathway, have been suggested to be a promising target in cancer therapy. Simultaneous pharmacological inhibition of both pathways have shown increase efficacy in various tumors, such as ovarian and colon carcinoma. Here, we investigate the effect of concomitant inhibition of 26S proteasome by FDA-approved inhibitor Bortezomib, and HDAC6, as key mediator of the aggresome-autophagy system, by the highly specific inhibitor ST80 in rhabdomyosarcoma (RMS) cell lines. We demonstrated that simultaneous inhibition of 26S proteasome and selective aggresome-autophagy pathway significantly increases apoptosis in all tested RMS cell lines. Interestingly, we observed that a subpopulation of RMS cells was able to survive the co-treatment and, upon drug removal, to recover similarly to untreated cells. In this study, we identified co-chaperone BAG3 as the key mediator of this recovery: BAG3 is transcriptionally up-regulated specifically in the ST80/Bortezomib surviving cells and mediates clearance of cytotoxic protein aggregates by selective autophagy. Impairment of the autophagic pathway during the recovery phase, both by conditional knock-down of ATG7 or by inhibition of lysosomal degradation by BafylomicinA1, triggers accumulation of insoluble protein aggregates, loss of cell recovery and cell death similarly to stable short harpin RNA (shRNA) BAG3 knock-down. Our results are the first demonstration that BAG3 mediated selective autophagy is engaged to cope with proteotoxicity induced by simultaneous inhibition of constitutive PQC systems in cancer cell lines during cell recovery. Moreover, our data give new insights in the regulation of constitutive and on demand PQC mechanisms pointing to BAG3 as a promising target in RMS therapy.
Im Mittelpunkt dieser Arbeit stand die Untersuchung der Reaktivität von Chlorsilanen gegenüber Elektronenpaardonoren. Als Basis hierfür diente die Alkylamin-katalysierte (NMe3, NMe2Et, NEt3) quantitative Disproportionierung von Si2Cl6 bzw. Si3Cl8 zum Neopentasilan 3 und SiCl4 (T ≤ RT, Schema 40). Obwohl diese Reaktion bereits seit über 60 Jahren bekannt ist, sind für ihren Mechanismus nur Vermutungen aufgestellt worden. In Kooperation mit der Gruppe um M. Holthausen ist es hier gelungen, das SiCl2-Amin-Addukt 57 als entscheidende Zwischenstufe zu identifizieren (1H29Si-HMBC-NMR-Experiment sowie DFT-Rechnungen). Si(SiCl3)4, die thermodynamische Senke des Systems, entsteht durch anschließende Insertion des Dichlorsilylens in Si−Cl-Bindungen – bevorzugt am höchst substituierten Si-Zentrum (es bilden sich keine linearen bzw. weniger verzweigten Oligosilane). Zudem lässt sich das koordinierte Amin vom SiCl2-Addukt wieder abspalten, was die Si(SiCl3)4-Synthese überhaupt erst ermöglicht. Dieses Verhalten unterscheidet sich grundlegend vom jenen literaturbekannter stabilisierter Chlorsilylene: hier bindet der Donor so stark an das Si-Atom, dass er den ambiphilen Charakter des Silylens zugunsten der Lewis-basischen Funktion einschränkt. Daher kann man mit diesen Addukten auch keine Oligosilane aufbauen, die mittlerweile auch das Interesse der chemischen Industrie erweckt haben...
Die X-chromosomal gebundene chronische Granulomatose (X-CGD) ist eine seltene Erbkrankheit, bei der die NADPH-Oxidase der Phagozyten nicht funktionell ist. Der Grund hierfür liegt meist in Mutationen in der GP91phox Untereinheit der Phagozyten-Oxidase. Hierdurch treten lebensbedrohliche Bakterien- und Pilzinfektionen bei Patienten auf, was neben einer geringen Lebensqualität zu einer erheblich verkürzten Lebenserwartung führt. Eine Stammzelltransplantation eines gesunden Spenders ist bislang der einzige heilende Therapieansatz. Für X-CGD-Patienten, die keinen passen-den Spender zur Verfügung haben, stellt die genetische Modifikation autologer hämato-poetischer Stammzellen eine alternative Form der Therapie dar. Im Jahr 2004 wurden daher in einer präklinischen Phase I/II Studie in Frankfurt zwei X-CGD-Patienten gentherapeutisch behandelt. Hierbei wurden CD34+ Stammzellen ex vivo mit einem γ-retroviralen Vektor transduziert, der eine LTR-getriebene Expressionskassette für GP91phox trägt. Nach einer nicht-myeloablativen Konditionierung wurden die genetisch modifizierten Zellen der Patienten retransplantiert. Beide behandelten Patienten zeigten schon kurz nach Therapiebeginn eine deutliche Verminderung der Infektionsanfälligkeit und somit eine stark verbesserte Lebensqualität. Auf zellulärer Ebene konnte ein gutes Engraftment der modifizierten hämatopoetischen Stammzellen im Knochenmark beobachtet werden. In funktionellen Tests konnte die Bildung superoxidproduzierender Phagozyten für die Immunabwehr gezeigt werden. Das molekulare Monitoring beider Patienten hat jedoch über die Zeit eine Verringerung der Enzymaktivität in den Phagozyten (Superoxidproduktion) gezeigt, obwohl der Anteil genetisch modifizierter Zellen nicht geringer wurde. Im Rahmen der vorliegenden Arbeit konnte durch quantitative RT-PCR-Analysen proviraler mRNA-Transkripte, eine Korrelation zwischen dem Verlust der Enzymaktivität und reduzierter Transgen-expression gezeigt werden. Durch DNA-Analysen peripherer Blutproben beider Patienten konnte eine verstärkte Methylierung an der Promotor-CpG-Insel, welche die Transgen-expression reguliert, als Ursache identifiziert werden. Weiterführende klonale Untersuchungen genmodifizierter Kolonien aus dem Knochenmark der Patienten offenbarten einen direkten Zusammenhang zwischen der Abwesenheit von Transkription bzw. Superoxidbildung und der Methylierung dieser CpG-Insel im proviralen Promotor-bereich. Somit konnte zum ersten Mal ein epigenetisches Silencing bei Patienten nach einer Behandlung mit Gentherapie nachgewiesen werden. In weiteren Versuchen konnte die vollständig ausgebildete, spezifische Methylierung des SFFV-Promotors in transduzierten Knochenmarkzellen eines Patienten durch in vitro Behandlung mit einem Methyltransferase-Inhibitor (Aza-D) in Kombination mit einem Histondeacetylase-Inhibitor (TSA) bis zu 30% reduziert werden. Dieser Teilerfolg zeigt, dass eine klinisch relevante Reaktivierung der Transgenexpression, durch Umkehrung des Silencings am SFFV-Promotor, prinzipiell möglich ist. Das Phänomen der Abschaltung der Genexpression des γ-retroviralen Vektors in der Frankfurter Gentherapiestudie, hat ein Testsytem zur Evaluierung zukünftiger Gentherapie-Vektoren erfordert. Durch Monitoring proviraler Parameter (Kopien, Transgenexpression, Proteinexpression und Promotor-CpG-Methylierung), in der murinen embryonalen Stammzelllinie P19 konnte in dieser Arbeit ein prädiktiver Silencing-Assay erfolgreich etabliert werden. Mit Hilfe dieses Systems wurden vielversprechende Silencing-resistente Vektoren mit dem UCOE (Ubiquitous Chromatin Opening Element) identifiziert. Hierdurch wurden wichtige Grundlagen geschaffen, um zukünftige virale Vektorsysteme in Bezug auf ihre Langzeitexpression testen zu können. Zusätzlich zu der Inaktivierung der transduzierten Expressionskassette konnte in beiden Patienten ein klonales Auswachsen von Subklonen beobachtet werden, das letztendlich zu einem myelodisplastischen Syndrom bei beiden Patienten führte. Der virale Enhancer war im Gegensatz zum viralen Promotor niemals methyliert, wodurch seine transaktivierenden Eigenschaften unbeeinflusst blieben. Diese enhancervermittelte Aktivierung proliferationsfördernder Gene (Mds1-Evi1-Genlokus) konnte durch RT-PCR-Analysen zunächst in Mischpopulationen aus peripherem Blut der Patienten nach-gewiesen werden. Weiterführende klonale Analysen in Knochenmarkzellen zeigten den direkten Zusammenhang zwischen der transkriptionellen Aktivierung des Mds1-Evi1-Genlokus und den proviralen Insertionen. Somit konnte die Ursache für die therapie-assoziierte, klonale Dominanz in beiden X-CGD-Patienten aufgeklärt werden. In der Frankfurter Gentherapiestudie wurde erstmals ein klinischer Erfolg für X-CGD-Patienten erzielt. Durch intensives molekulares Monitoring konnte im Rahmen dieser Arbeit aufgedeckt werden, dass der eingesetzte γ-retrovirale Vektor über das Phänomen der Insertionsmutagenese hinaus, auch in Bezug auf die epigenetische Abschaltung der Transkription (Silencing), für zukünftige Studien modifiziert werden muss. Sicherheits-verbesserte Vektoren mit einer Resistenz gegenüber Silencing in murinen embryonalen Stammzellen konnten in dieser Arbeit charakterisiert werden. Mit diesen Genfähren könnte der angestrebte Langzeittherapieerfolg in Zukunft möglich werden.
Autophagie ist ein evolutionär stark konservierter Degradationsmechanismus für geschädigte Proteine bis hin zu ganzen Organellen eukaryotischer Zellen. Dabei umhüllt eine Doppelmembran, bisher unbekannten Ursprungs, das zu degradierende Material und bildet das Autophagosom. Dies fusioniert später mit Lysosomen, wodurch dessen Inhalt proteolytisch zersetzt und die Bestandteile der Zelle wieder zur Verfügung gestellt werden kann.
In dieser Abeit wurde der Fokus auf den mitochondrialen Abbau über Autophagie (Mitophagie) und dessen Funktion als ein mitochondrialer Qualitätsmechanismus gesetzt. Als Zellmodell wurden primäre humane Endothelzellen der Nabelschnurvene (HUVEC) verwendet. Diese zeichenen sich durch einen Übergang von einer mitotischen, jungen in eine lange postmitotische, seneszente Phase während der Kultiverungszeit aus. Dabei durchlaufen sie einer zelluläre und mitochondriale Morphologieänderung. , wodurch sich die Möglichkeit bot , die Autophagie unter verschiedenen Parametern zu betrachten.
So wird generell eine Abnahme des autophagosomalen / lysosomalen Weges mit dem Alter beschrieben und die Abhängigkeit der Mitophagie von der mitochondrialen Länge.
Mitophagie ist unter normalen Kultivierungsbedingungen ein mikroskopisch selten zu beobachtender Vorgang. Daher wurde ein mitochondriales Schädigungsystem etabliert, welches die photosensibiliesierende Wirkung des Farbstoffs MitoTracker Red Cmx Ros (MTR) nutzt, um Mitochondrien gezielt oxidativ zu schädigen und die Mitophagie zu aktivieren.
Mitotische HUVEC zeigten 2 h – 8 h nach oxidativer Schädigung eine mitochondriale Fragmentierung größtenteils begleitet von einem Verlust des Membranpotentials. Über einen Zeitraum von 72h-120h kam es zur Regeneration des mitochondrialen Netzwerks durch Neusynthese mitochondrialer Biomoleküle. Entgegen der rescue Hypothese konnten oxidativ geschädigte Mitochondrien nicht durch eine Fusion mit funktional intakten Mitochondrien gerettet werden und wurden über den autophagosomalen / lysosomalen Weg abgebaut, gekennzeichnet durch die Ubiquitin-Ligase Parkin vermittelte Markierung und finaler Kolokalisation mit den autophagosomalen und lysosomalen Markerproteinen LC3B und LAMP-2A. Auf mRNA- und Proteinebene zeigte sich in diesem Zeitraum eine erhöhte Expression autophagie-relevanter Gene (ATGs) ATG5, ATG12 und LC3B.
Der Vergleich von mitotischen mit postmitotischen HUVEC nach oxidativer Schädigung wies zwei grundlegende Unterschiede auf.
Zum einem behielten, in Gegensatz zu jungen Zellen, die Mitochondrien alter HUVEC ihre Morphologie und ihr Membranpotential bei. Diese erhöhte Widerstandfähigkeit gegenüber oxidativem Stress konnte auf die erhöhte Expression der mitochondrial lokalisierten Serin / Threonin Kinase PINK1 zurückgeführt werden, ein Schlüsselgen in Parkinson.
Die PINK1-Transkription stand invers zu der Expression der mitochondrialen Teilungsfaktoren Fis1- und Drp1, welche in postmitotischen HUVEC stark vermindert war.
Andererseits wiesen alte Zellen eine verminderte Degradationsfähigkeit geschädigter Mitochondrien auf. Dieser Umstand war durch eine verminderte lysosomale Azidität bedingt. Eine externe ATP-Zugabe förderte die Azidität der Lysosomen alter Zellen und die Fusion mit Autophagosomen, wodurch Mitochondrien und ihre geringere ATP-Produktion im Alter als ein Faktor der Autophagie ermittelt weden konnte.
Die Autophagierate steht in Verbindung mit der Lebensspanne von Zellen bis hin zu ganzen Organismen. Durch die Überexpression autophagie-relevanter GFP-Fusions-Proteine ATG5, ATG12 und LC3B, welche nach oxidativer Schädigung in ihrer Expression verstärkt wurden, förderten die Mitophagie und wurden stabil in junge HUVEC exprimiert. Diese Überexpressionen bewirkten eine verbesserte mitochondriale Qualität, veranschaulicht durch ein erhöhtes Membranpotential und die ATP-Bereitstellung, einer besseren mtDNA Integrität und sie verlängerten die Lebensspanne signifikant, wobei die Produktion von reaktiven Sauerstoffspezien (ROS), entgegen der von Harman aufgestellten Alterungstheorie, keine Verminderung zeigte. Dennoch wiesen sie einen erhöhten Gehalt oxidativ modifizierter Proteine auf, welche letztendlich auf die erhöhten Autophagosomenanzahl zurückgeführt werden konnte, in denen höchstwahrscheinlich das oxidativ geschädigte Material gelagert wird.
In dieser Arbeit kann gezeigt werden, dass Mitochondrien nach oxidativer Schädigung eine Teilung vollziehen und geschädigte Mitochondrien selektiv über Autophagie abgebaut werden. Dabei fungiert Mitophagie als ein mitochondrialer Qualitätmechanismus und steht unmittelbar mit der Lebensspanne in Verbindung.
Glioblastoma is the most common and most aggressive type of brain tumor in adults. In contrast to epithelial cancers, glioblastomas do not metastasize. While the major treatment challenge in epithelial cancers is not the primary tumor but metastasis, glioblastoma patients die of the primary tumor.
However, there is a common theme which underlies the malignant properties of progressed epithelial cancers and glioblastoma: invasion from the primary tumor into the surrounding tissue. In the case of epithelial cancers this is the first and necessary step to metastasis, whereas invasion leads inevitably to tumor recurrence after resection in the case of glioblastoma, causing it to be incurable.
A cellular program which has been described in detail to promote the invasive phenotype in epithelial tumors, is the epithelial-mesenchymal-transition (EMT). Differentiated neural cells are not epithelial, thus, strictly speaking, EMT does not occur in glioblastoma. However, the traits acquired in the process of EMT, especially invasiveness and stemness, are highly relevant to glioblastoma. One of the key transcription factors known to induce EMT in epithelial cancers is ZEB1, which has been described only marginally in the central nervous system so far. Here, I investigate the expression and function of ZEB1 in glioblastoma and during human fetal neural development.
ZEB1 mRNA was significantly upregulated in all histological types of glioma, including glioblastoma, when compared to normal brain. There was no correlation between ZEB1 mRNA levels and tumor grade. Immunohistochemical staining of glioma samples demonstrated that ZEB1 was highly expressed in the great majority of tumor cells. In the developing human brain, intense staining for ZEB1 could be observed in the ventricular and subventricular zone, where stem- and progenitor cells reside. ZEB1 positive cells included cells stained with stem- and progenitor markers like PAX6, GFAP and Nestin. In contrast, ZEB1 was never found in early neuronal cells as identified by TUBB3 staining.
To gain insight into ZEB1 function I generated a human fetal neural stem cell line and a glioblastoma cell line with ZEB1 knockdown, which were compared with their respective control cell lines. First, I found that ZEB1 does not regulate the micro RNA 200 family in either cell line, which has been described as an essential ZEB1 target in epithelial cancers. Second, regulated target genes were identified with a genome wide microarray. The third approach was to directly identify genomic binding sites of ZEB1 by chromatin immunoprecipitation sequencing (ChIP-seq). All three approaches showed that the ZEB1 transcriptional program is surprisingly similar in the neural stem cell line and the glioblastoma cell line. In contrast, it bears only little resemblance to the program described in epithelial cancers.
The most interesting, previously unrecognized ZEB1 target gene identified in this study is integrin b1. It was regulated after ZEB1 knockdown detected by microarray analysis, and has a ZEB1 binding site in its promoter region detected by ChIP-seq. Finally, I addressed the question whether ZEB1 influences tumor growth and invasiveness in a glioblastoma model. After intracranial xenotransplantation in mice, ZEB1 knockdown glioblastoma cells formed significantly smaller and less invasive tumors than control glioblastoma cells.
This study demonstrates that ZEB1 is widely expressed in glioma and relevant for glioblastoma growth and invasion. In contrast to what is known about ZEB1 function in epithelial cancers, ZEB1 is not associated with glioma progression, but instead seems to be an early and necessary event in tumorigenesis. Also with regard to ZEB1 target genes, ZEB1 functions differently in glioblastoma than in epithelial cancers. The two most important ZEB1 targets in epithelial cancers are E-cadherin and the miR-200 family members. Both are not relevant to ZEB1 function in glioblastoma. Interestingly, while the ZEB1 transcriptional program is different from the one described in epithelial cancers, it is highly similar in glioblastoma cells and fetal neural stem cells. This suggests that an embryonic pathway restricted to stem- and progenitor cells during development is reactivated in glioblastoma.
Previously known ZEB1 target genes were tissue specific and therefore seemed unlikely to mediate ZEB1 function in the central nervous system. However, the newly identified ZEB1 target gene integrin b1 is well known to play pivotal roles in both glioblastoma tumorigenesis and invasion as well as in neural stem cells. Additionally, integrin b1 is widely expressed and seems a likely ZEB1 target in other organs than the brain.
Taken together, I demonstrate that ZEB1 is a new regulator of glioblastoma growth and invasion. The transcriptional program of ZEB1 differs from the one in epithelial cancers but is strikingly similar to the one in neural stem cells. The newly identified ZEB1 target gene integrin b1 is likely to mediate crucial ZEB1 functios. Thus, this study identifies ZEB1 as a yet unrecognized player in glioblastoma and neural development. Furthermore, it sets the stage for more research which will help to deepen our understanding of ZEB1 function in the central nervous system and beyond.