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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.
Staphylococcus aureus is a prevalent commensal bacterium which represents one of the leading causes in health care-associated bacterial infections worldwide and can cause a variety of different diseases ranging from simple abscesses to severe and life threatening infections including pneumonia, osteomyelitis and sepsis.
In recent times multi-resistant strains have emerged, causing severe problems in nosocomial as well as community-acquired (CA) infection settings, especially in the United States (USA). Therefore S. aureus has been termed as a superbug by the WHO, underlining the severe health risk originating from it. Today, infections in the USA are dominated by S. aureus genotypes which are classified as USA300 and USA400, respectively. Strains of genotype USA300 are responsible for about 70% of the CA infections.
The molecular mechanisms which render S. aureus such an effective pathogen are still not understood in its entirety. For decades S. aureus was thought to be a strictly extracellular pathogen relying on pore-forming toxins like α-hemolysin to damage human cells and tissue. Only recently it has been shown that S. aureus can enter non-professional phagocytes, using adhesins like the fibronectin-binding proteins which mediate an endocytotic uptake into the host cells. The bacteria are consequently localized to endosomes, where the degradation of enclosed bacterial cells through phagosome maturation would eventually occur.
S. aureus can avoid degradation, and translocate to the cellular cytoplasm, where it can replicate. The ability to cause this so-called phagosomal escape has mainly been attributed to a family of amphiphilic peptides called phenol soluble modulins (PSMs), but as studies have shown, they are not sufficient.
In this work I used a transposon mutant library in combination with automated fluorescence microscopy to screen for genes involved in the phagosomal escape process and intracellular survival of S. aureus. I thereby identified a number of genes, including a non-ribosomal peptide synthetase (NRPS). The NRPS, encoded by the genes ausA and ausB, produces two types of small peptides, phevalin and tyrvalin. Mutations in the ausAB genes lead to a drastic decrease in phagosomal escape rates in epithelial cells, which were readily restored by genetic complementation in trans as well as by supplementation of synthetic phevalin. In leukocytes, phevalin interferes with calcium fluxes and activation of neutrophils and promotes cytotoxicity of intracellular bacteria in both, macrophages and neutrophils. Further ausAB is involved in survival and virulence of the bacterium during mouse lung pneumoniae.
The here presented data demonstrates the contribution of the bacterial cyclic dipeptide phevalin to S. aureus virulence and suggests, that phevalin directly acts on a host cell target to promote cytotoxicity of intracellular bacteria.
3. Zusammenfassung Ein noch immer unvollständig verstandenes Problem sind die exakten Mechanismen der Arbeitsteilung und Koordination innerhalb von Bienenvölkern Apis mellifera. Auf der einen Seite muss die sensorische und neuronale Ausstattung jedes Individuums das Potential zur Kommunikation und Aufgabenbewältigung enthalten, zum anderen müssen jedem Bienenvolk Mechanismen zur Steuerung zur Verfügung stehen, die auch so weit in die Zukunft reichenden Notwendigkeiten wie Wintervorbereitungen zuverlässig durchführen. Die vorliegende Arbeit beleuchtet daraus ausgewählte Aspekte. Zum einen werden Aspekte der kognitiven Fähigkeiten der Einzelbienen untersucht, die im Hinblick auf ihre Rolle als sammelnde Arbeiterinnen eine wichtige Rolle spielen. Das Erkennen und Verarbeiten von Mustern spielt eine wichtige Rolle beim Auffinden von potentiellen Nahrungsquellen. Hier konnte mittels des DMTS – Paradigma ein hoher Abstraktionsgrad der Musterverarbeitung sowie eine Speicherung auch komplexer Muster gezeigt werden. Zum anderen wird die Bruttemperatur als ein Einfluss auf die Puppenentwicklung und dessen mögliche Folgen auf kognitive Fähigkeiten und Lebenshistorie untersucht. Variation der Bruttemperatur wurde in verschiedenen Zusammenhängen als starker Einfluss auf unterschiedliche Aspekte der Entwicklung gezeigt. In der vorliegenden Arbeit kann diese Bruttemperatur als möglicher Faktor der nachfolgend unterschiedlichen Ausprägung von Verhaltensmustern gezeigt werden. Dabei wird ebenso auf die Unterschiede im Verhaltensmuster von täglichen Stocktätigkeiten wie auf die resultierenden Unterschiede in der Lebensgeschichte und –spanne eingegangen, die aus unterschiedlichen Brutaufzuchtstemperaturen resultieren können. Als Aufzuchtstemperaturen werden dabei 32°C, 35°C sowie 36°C verwendet, um eine Vari ation zwischen der an anderer Stelle berichteten mittleren, der niedrigsten und der höchsten Temperatur für morphologisch vollständig entwickelte Bienen zu erreichen und die daraus resultierenden Arbeiterinnen zu untersuchen. Sowohl die Ergebnisse der Verhaltensuntersuchungen von Stockbienen wie auch der Vergleich von Lebensaktivität und –spanne zeigen dabei signifikante Unterschiede zwischen den bei unterschiedlichen Temperaturen aufgezogenen Arbeiterinnen in deren analysiertem Verhalten.
Interaktionen zwischen Insekten und Pflanzen können auf chemischen oder mechanischen Faktoren beruhen. Mechanische Faktoren spielen eine besonders wichtige Rolle bei den Fallen karnivorer Pflanzen. Ziel dieser Arbeit war es, die Rolle mechanischer Faktoren in der Interaktion zwischen der Kannenpflanze Nepenthes bicalcarata und der Ameise Camponotus schmitzi aufzuklären, bei der Ameisen Gegenanpassungen zu spezialisierten pflanzlichen Fangstrukturen entwickelt haben. Im Rahmen meiner Arbeit habe ich mich mit den Fragen beschäftigt, 1) welche Kannenstrukturen und welche Mechanismen für den Fang von Arthropoden wichtig sind und 2) welche speziellen Anpassungen C. schmitzi-Ameisen für das Leben auf ihrer karnivoren Wirtspflanze besitzen. Bisher wurde angenommen, dass Nepenthes-Kannen Tiere mit Hilfe von rutschigen Wachskristallschichten fangen. Ich konnte zeigen, dass ein weiterer, bisher unbekannter Fangmechanismus existiert, welcher auf speziellen Oberflächeneigenschaften des Kannenrandes (Peristom) und "Insekten-Aquaplaning" basiert. Das Peristom besitzt eine regelmäßige Mikrostruktur, welche dafür sorgt, dass die Oberfläche vollständig mit Wasser benetzbar ist, so dass sie bei feuchter Witterung von homogenen Flüssigkeitsfilmen überzogen ist. Auf dem trockenen Peristom können Ameisen ohne Schwierigkeiten laufen und Nektar von den am inneren Peristomrand gelegenen Nektarien ernten. Wird die Oberfläche aber beispielsweise durch Regen nass, rutschen die meisten Tiere ab und stürzen in die Kanne. Messungen der Reibungskräfte von Weberameisen (Oecophylla smaragdina) auf dem Peristom von N. bicalcarata zeigten, dass Flüssigkeitsfilme auf der Oberfläche die Anhaftung der Haftorgane (Arolien) verhindern, und dass die Mikrostruktur des Peristoms auch den Einsatz der Krallen unterbindet. Versuche an Nepenthes alata zeigten darüber hinaus, dass dieser Fangmechanismus des Peristoms auch für Nepenthes-Arten mit wachsbereifter Kanneninnenwand essentiell, und die Wachsschicht eher für die Retention gefangener Tiere wichtig ist. Zur Analyse der ökologischen Auswirkungen des "Aquaplaning"-Fangmechanismus habe ich die Peristomfeuchte von Nepenthes rafflesiana var. typica-Kannen zeitgleich mit meteorologischen Daten im Feld kontinuierlich aufgezeichnet und mit Experimenten zur Beurteilung der Fangeffizienz der Kannen kombiniert. Die Ergebnisse dieser Versuche zeigen, dass die Kannen abhängig vom Befeuchtungsgrad des Peristoms zeitweise sehr effiziente Fallen mit Fangraten von 80% sein können, während sie zu anderen Zeiten vollkommen ineffizient sind. Die Variation der Peristomfeuchte wird durch Regen, Kondensation und von den Peristomnektarien sezerniertem Nektar verursacht. Es ist zu vermuten, dass die nur zeitweise und unvorhersehbare Aktivierung der Nepenthes-Kannenfallen durch Nässe der Evolution von Vermeidungsstrategien bei Beutetieren entgegenwirkt. Im Rahmen der Untersuchungen, welche mechanischen Anpassungen C. schmitzi-Ameisen für das Leben auf N. bicalcarata besitzen habe ich mich auf die Fragen konzentriert, wie es den Ameisen gelingt den Peristom-Fangmechanismus zu umgehen und welche Anpassungen sie besitzen um in der Kannenflüssigkeit tauchend und schwimmend nach Nahrung zu suchen. Im Gegensatz zu generalistischen Arten stürzen C. schmitzi-Ameisen auf dem nassen Peristom nicht ab. Durch selektive Manipulation der tarsalen Haftstrukturen konnte ich demonstrieren, dass die Arolien für die Peristomlauffähigkeit der C. schmitzi-Ameisen eine wesentliche Rolle spielen. Für das Furagieren in der Kannenflüssigkeit verfügen C. schmitzi-Ameisen über ein sich wiederholendes, stereotypes Verhaltensmuster, welches aus einer Unterwasserlauf- und einer Oberflächenschwimmphase besteht. Meine Untersuchungen dieses Verhaltensmusters zeigten, dass die Ameisen am Ende der Unterwasserlaufphase mit Hilfe ihres stets vorhandenen Auftriebs zur Flüssigkeitsoberfläche aufsteigen. Dabei taucht ein Teil ihres Hinterleibs aus der Kannenflüssigkeit auf, was den Ameisen die Sauerstoffaufnahme aus der Luft ermöglicht. Nach dem Auftauchen schwimmen C. schmitzi-Ameisen mittels schneller Beinbewegungen an der Oberfläche der Kannenflüssigkeit. Dabei ähnelt die Bewegungskoordination ihrer Beine dem bei Ameisen für die Fortbewegung an Land typischen Dreifußgang. Ein Vergleich der Kinematik von schwimmenden und laufenden C. schmitzi-Ameisen hat gezeigt, dass schwimmende Ameisen ihre Beine in der Schlagphase mit einer höheren Winkelgeschwindigkeit als in der Rückholphase bewegen, während dies bei den laufenden Tieren genau umgekehrt ist. Ferner strecken schwimmende Ameisen ihre Beine während der Schlagphase weiter aus als in der Rückholphase, wohingegen laufende Ameisen in beiden Bewegungsphasen vergleichbare Beinradien aufweisen. Dies lässt den Schluss zu, dass die Schwimmkinematik der C. schmitzi-Ameisen eine abgewandelte Form ihrer Laufkinematik darstellt, welche für die Erzeugung von Vortrieb im Wasser optimiert wurde.
This work was aimed at experimentally studying whether climatic variables act as environmental cues for workers’ building behaviour in leaf-cutting ants of the genus Acromyrmex, and to what extent building responses account for the maintenance of nest climate in a proper range for the inhabiting colony. Specifically, this work presents independent analysis in different Acromyrmex species with disparate ecology and nesting habits, aimed at understanding to what extent: i) temperature and humidity act as cues for workers’ building behaviour, ii) inter- and intraspecific differences in the nesting habits observed in South American Acromyrmex are based on distinct building behaviours and on the variation in regional climate across continent, iii) differences in nest architecture account for the maintenance of nest climate in a proper range for colony members and, iv) climatic variables trigger building responses aimed at controlling short-term changes in nest climate. It is first experimentally shown that soil temperature acts as a cue for workers’ digging behaviour. Acromyrmex lundi workers were observed to respond to both soil temperature as well as its changes, and to decide accordingly where to start or whether to stop digging. The soil temperature range preferred by workers to dig, between 20°C and maximally 30.6°C, matches the range at which colony growth is expected to be maximized. Temperature-sensitive digging might therefore lead to the establishment of the fungus chambers in soil layers with a proper range of temperatures for colony growth. Based on that, it was hypothesized that nest depth in Acromyrmex largely depends on the depth at which this temperature range is located across the soil profile, i.e., the higher the temperature in the superficial soil layers, the deeper the nest location, since soil temperature decreases with increasing depth. A bibliographic survey on nesting habits of 21 South American Acromyrmex species confirmed that the warmer the soil temperature at 50 cm depth throughout the South American continent, the higher the number of species presenting subterranean nests, compared with those inhabiting superficial nests. Temperature-sensitive digging in Acromyrmex would therefore explain the geographical distribution of nesting habits observed for this genus in the South American continent, i.e., subterranean in the northern tropical regions, and superficial in the southern temperate ones. In addition, results showed that Acromyrmex colonies from temperate regions indeed achieve thermoregulatory benefits through the determination of nest depth based on thermoregulatory needs. In sympatrically-occurring colonies of the grass-cutting ant A. heyeri, temperature inside superficial thatched nests was higher, and more suitable for colony growth, than that inside subterranean nests. This temperature surplus was even higher in spring, at the time of production of sexual brood, than in winter or summer. It was demonstrated that such temperature surplus was brought about by the low thermal diffusivity of the nest thatch, which prevents diurnal nest overheating by the incoming solar radiation, and avoids losses of the accumulated daily heat into the cold air during night, thus leading to high average nest temperatures. Although highly advantageous for colonies in terms of nest temperature, the determination of nest depth based on thermoregulatory needs may differentially affect nest ventilation and humidity depending on how nest exposition influences the exchange of nest air with the outside air. For instance, colonies with a superficial nesting habit might benefit from improved nest ventilation, but be at risk of desiccation due to their exposition and the consequent humidity losses into the dry outside air. Results demonstrated that in two Acromyrmex species, short-term regulatory building responses triggered and spatially organized by climatic variables occur, and may counteract undesired changes in internal nest humidity. Workers of the thatching grass-cutting ant A. heyeri, for instance, closed a number of nest-thatch openings as a response to desiccation of the outside air, even at a nest temperature that otherwise triggered the response of opening them so as to reduce nest temperature. In the leaf-cutting ant A. ambiguus, the direction of the airflow inside nest tunnels was shown to act as a cue for spatially guiding the building behaviour of plugging nest entrances. However, workers only responded if the humidity content of the circulating air was low, trading therefore nest ventilation for humidity maintenance.
For determination of structures and structural dynamics of proteins organic fluorophores are a standard instrument. Intra- and intermolecular contact of biomolecular structures are determined in time-resolved and stationary fluorescence microscopy experiments by quenching of organic fluorophores due to Photoinduced Electron Transfer (PET) and dimerization interactions. Using PET we show in this work that end-to-end contact dynamics of serine-glycine peptides are slowed down by glycosylation. This slow down is due to a change in reaction enthalpy for end-to-end contact and is partly compensated by entropic effects. In a second step we test how dimerization of MR121 fluorophore pairs reports on end-to-end contact dynamics. We show that in aqueous solutions containing strong denaturants MR121 dimerization reports advantageously on contact dynamics for glycine-serine oligopeptides compared to the previously used MR121/tryptophane PET reporters. Then we analyze dimer interactions and quenching properties of different commercially available fluorophores being standards in Förster Resonance Energy Transfer (FRET) measurements. Distances in biomolecules are determinable using FRET, but for very flexible biomolecules the analysis of masurement data can be distorted if contact of the two FRET fluorophores is likely. We quantify how strong the quenching of fluorophore pairs with two different or two identical fluorophores is. Dimer spectra and association constants are quantified to estimate if fluophores are applicable in various applications, e.g. in FRET measurements with unstructured peptides and proteins.
Neoplasms of the skin represent the most frequent tumors worldwide; fortunately, most of them are benign or semi-malignant and well treatable. However, the two most aggressive and deadly forms of malignant skin-neoplasms are melanoma and Merkel cell carcinoma (MCC), being responsible for more than 90% of skin-cancer related deaths. The last decade has yielded enormous progress in melanoma therapy with the advent of targeted therapies, like BRAF or MEK inhibitors, and immune-stimulating therapies, using checkpoint antibodies targeting CTLA- 4, PD-1 or PD-L1. Very recent studies suggest that also MCC patients benefit from a treatment with checkpoint antibodies. Nevertheless, in an advanced metastatic stage, a cure for both of these aggressive malignancies is still hard to achieve: while only a subset of patients experience durable benefit from the immune-based therapies, the widely applicable targeted therapies struggle with development of resistances that inevitably occur in most patients, and finally lead to their death. The four articles included in this thesis addressed current questions concerning therapy and carcinogenesis of melanoma and MCC. Moreover, they are discussed in the light of the up-to-date research regarding targeted and immune-based therapies. In article I we demonstrated that besides apoptosis, MAPK pathway inhibition in BRAF-mutated melanoma cells also induces senescence, a permanent cell cycle arrest. These cells may provide a source for relapse, as even permanently arrested cancer cells can contribute to a pro-tumorigenic milieu. To identify molecular factors determining the differential response, we established M14 melanoma cell line derived single cell clones that either undergo cell death or arrest when treated with BRAF/MEK inhibitors. Using these single cell clones, we demonstrated in article IV that downregulation of the pro-apoptotic BH3-only protein BIK via epigenetic silencing is involved in apoptosis deficiency, which can be overcome by HDAC inhibitors. These observations provide a possible explanation for the lack of a complete and durable response to MAPK inhibitor treatment in melanoma patients, and suggest the application of HDAC inhibitors as a complimentary therapy to MAPK pathway inhibition. Concerning MCC, we scrutinized the interactions between the Merkel cell polyomavirus’ (MCV) T antigens (TA) and the tumor suppressors p53 and Rb in article II and III, respectively. In article III, we demonstrated that the cell cycle master regulator Rb is the crucial target of MCV large T (LT), while it - in contrast to other polyomavirus LTs - exhibits much lower affinity to the related proteins p107 and p130. Knockdown of MCV LT led to proliferation arrest in MCC cells, which can be rescued by knockdown of Rb, but not by knockdown of p107 and p130. Contrary to Rb, restriction of p53 in MCC seems to be independent of the MCV TAs, as we demonstrated in article II. In conclusion, the presented thesis has revealed new molecular details, regarding the response of melanoma cells towards an important treatment modality and the mechanisms of viral carcinogenesis in MCC.
Recent development of proteomic approaches and generation of large-scale proteomic datasets calls for new methods for biological interpretation of the obtained results. Systems biological approaches such as integrated network analysis and functional module search have become an essential part of proteomic investigation. Proteomics is especially applied in anucleate cells such as platelets. The underlying molecular mechanisms of platelet activation and their pharmacological modulation are of immense importance for clinical research. Advances in platelet proteomics have provided a large amount of proteomic data, which has not yet been comprehensively investigated in a systems biological perspective. To this end, I assembled platelet specific data from proteomic and transcriptomic studies by detailed manual curation and worked on the generation of a comprehensive human platelet repository for systems biological analysis of platelets in the functional context of integrated networks (PlateletWeb) (http:/PlateletWeb.bioapps.biozentrum.uni-wuerzburg.de). I also added platelet-specific experimentally validated phosphorylation data and generated kinase predictions for 80% of the newly identified platelet phosphosites. The combination of drug, disease and pathway information with phosphorylation and interaction data makes this database the first integrative platelet platform available for platelet research. PlateletWeb contains more than 5000 platelet proteins, which can also be analyzed and visualized in a network context, allowing identification of all major signaling modules involved in platelet activation and inhibition. Using the wealth of integrated data I performed a series of platelet-specific analyses regarding the platelet proteome, pathways, drug targets and novel platelet phosphorylation events involved in crucial signaling events. I analyzed the statistical enrichment of known pathways for platelet proteins and identified endocytosis as a highly represented pathway in platelets. Further results revealed that highly connected platelet proteins are more often targeted by drugs. Using integrated network analysis offered by PlateletWeb, I analyzed the crucial activation signaling pathway of adenosine diphosphate (ADP), visualizing how the signal flow from receptors to effectors is maintained. My work on integrin inside-out signaling was also based on the integrated network approach and examined new platelet-specific phosphorylation sites and their regulation using kinase predictions. I generated hypothesis on integrin signaling, by investigating the regulation of Ser269 phosphorylation site on the docking protein 1 (DOK1). This phosphorylation site may influence the inhibiting effect of DOK1 on integrin a2bb3. Extending the integrated network approach to further cell lines, I used the assembled human interactome information for the analysis of functional modules in cellular networks. The investigation was performed with a previously developed module detection algorithm, which finds maximum-scoring subgraphs in transcriptomic datasets by using assigned values to the network nodes. We extended the algorithm to qualitative proteomic datasets and enhanced the module search by adding functional information to the network edges to concentrate the solution onto modules with high functional similarity. I performed a series of analyses to validate its performance in small-sized (virus-infected gastric cells) and medium-sized networks (human lymphocytes). In both cases the algorithm extracted characteristic modules of sample proteins with high functional similarity. The functional module search is especially useful in site-specific phosphoproteomic datasets, where kinase regulation of the detected sites is often sparse or lacking. Therefore, I used the module detection algorithm in quantitative phosphoproteomic datasets. In a platelet phosphorylation dataset, I presented a pipeline for network analysis of detected phosphorylation sites. In a second approach, the functional module detecting algorithm was used on a phosphoproteome network of human embryonic stem cells, in which nodes represented the maximally changing phosphorylation sites in the experiment. Additional kinases from the human phosphoproteome in PlateletWeb were included to the network to investigate the regulation of the signal flow. Results indicated important phosphorylation sites and their upstream kinases and explained changes observed in embryonic stem cells during differentiation. This work presents novel approaches for integrated network analysis in cells and introduces for the first time a systematic biological investigation of the human platelet proteome based on the platelet-specific knowledge base PlateletWeb. The extended methods for optimized functional module detection offer an invaluable tool for exploring proteomic datasets and covering gaps in complex large-scale data analysis. By combining exact module detection approaches with functional information data between interacting proteins, characteristic functional modules with high functional resemblance can be extracted from complex datasets, thereby focusing on important changes in the observed networks.
Gene and genome duplications are major mechanisms of eukaryotic genome evolution. Three rounds of genome duplication have occurred in the vertebrate lineage, two rounds (1R, 2R) during early vertebrate evolution and a third round, the fish-specific genome duplication (FSGD), in ray-finned fishes at the base of the teleost lineage. Whole genome duplications (WGDs) are considered to facilitate speciation processes and to provide the genetic raw material for major evolutionary transitions and increases in morphological complexity. In the present study, I have used comparative genomic approaches combining molecular phylogenetic reconstructions, synteny analyses as well as gene function studies (expression analyses and knockdown experiments) to investigate the evolutionary consequences and significance of the three vertebrate WGDs. First, the evolutionary history of the endothelin signaling system consisting of endothelin ligands and receptors was reconstructed. The endothelin system is a key component for the development of a major vertebrate innovation, the neural crest. This analysis shows that the endothelin system emerged in an ancestor of the vertebrate lineage and that its members in extant vertebrate genomes are derived from the vertebrate WGDs. Each round of WGD was followed by co-evolution of the expanding endothelin ligand and receptor repertoires. This supports the importance of genome duplications for the origin and diversification of the neural crest, but also underlines a major role for the co-option of new genes into the neural crest regulatory network. Next, I have studied the impact of the FSGD on the evolution of teleost pigment cell development and differentiation. The investigation of 128 genes showed that pigmentation genes have been preferentially retained in duplicate after the FSGD so that extant teleost genomes contain around 30% more putative pigmentation genes than tetrapods. Large parts of pigment cell regulatory pathways are present in duplicate being potentially involved in teleost pigmentary innovations. There are also important differences in the retention of duplicated pigmentation genes among divergent teleost lineages. Functional studies of pigment synthesis enzymes in zebrafish and medaka, particularly of the tyrosinase family, revealed lineage-specific functional evolution of duplicated pigmentation genes in teleosts, but also pointed to anciently conserved gene functions in vertebrates. These results suggest that the FSGD has facilitated the evolution of the teleost pigmentary system, which is the most complex and diverse among vertebrates. In conclusion, the present study supports a major role of WGDs for phenotypic evolution and biodiversity in vertebrates, particularly in fish.
Untersuchungen der Transkriptionsebene individueller präimplantatorischer Embryonalstadien können wertvolle Informationen über den physiologischen Status der betrachteten Embryonen, die z.B. zur Verbesserung der Systeme zur In vitro-Produktion von Embryonen genutzt werden können, liefern. Bisher fehlte es jedoch an einer geeigneten Technologie, um eine große Anzahl von Transkripten in einzelnen Embryonen zu erfassen. Zielsetzung der vorliegenden Arbeit war es, ein Verfahren zur globalen Amplifikation embryonaler mRNA-Präparationen zu entwickeln, das die Analyse der Transkriptionsebene einzelner präimplantatorischer Embryonalstadien über die cDNA-Array-Technologie ermöglicht. Dazu wurde die Strategie gewählt, zwei bereits etablierte Amplifikationsverfahren, Polymerasekettenreaktion und In vitro-Transkription, zu kombinieren, um so synergistische Effekte beider Verfahren zu nutzen. Die Evaluierung des entwickelten Verfahrens zeigte eine hohe Reproduzierbarkeit der erhaltenen Genexpressionsdaten und belegte, dass die relativen Mengenverhältnisse einzelner mRNA-Spezies zueinander während der globalen mRNA-Amplifikation nur unwesentlich verändert wurden. Die entwickelte Methodik ist somit geeignet, komplexe Genexpressionsprofile einzelner Blastozysten zu erstellen und Unterschiede in der Expressionsstärke einzelner Transkripte zu detektieren. Es konnte weiterhin gezeigt werden, dass es möglich ist, über heterologe Hybridisierung Genexpressionsprofile boviner Blastozysten mit cDNA-Arrays, die murine Probensequenzen enthalten, reproduzierbar darzustellen. Neben der Detektion individueller Unterschiede in den Genexpressionsprofilen diverser muriner Embryonalstadien und boviner Blastozysten lag ein Schwerpunkt dieser Arbeit in der Untersuchung der Auswirkungen verschiedener in vitro-Produktionssysteme auf die embryonale Genexpression. Die erhaltenen cDNA-Array Expressionsdaten muriner Oozyten, Zweizeller und Blastozysten befanden sich dabei in Übereinstimmung mit Daten früherer Publikationen anderer Arbeitsgruppen. Genexpressionsprofile in vitro fertilisierter boviner Blastozysten ließen eine Beurteilung der Auswirkungen unterschiedlicher Proteinsupplemente des Kulturmediums auf die embryonale Genexpression zu. Im Rahmen dieser Arbeit wurden zum ersten Mal Genexpressionsprofile einzelner präimplantatorischer Säugerembryonen über cDNA-Array-Analyse erstellt. Die entwickelte Technologie ermöglicht es -bei Verwendung entsprechender cDNA-Array-Systeme-, eine theoretisch unbegrenzte Zahl von Transkripten in individuellen Säugerembryonen semiquantitativ zu erfassen. Dies ist ein wichtiger Schritt hin zu einem besseren Verständnis komplexer Regulationsabläufe während der frühen Embryonalentwicklung und einer besseren Beurteilung der Lebensfähigkeit und Entwicklungskompetenz in vitro produzierter Embryonen, was für die Verbesserung von In vitro-Produktionssystemen für Embryonen sowohl bei Tieren als auch beim Menschen unerlässlich ist.