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Die molekularen Mechanismen der Wirt-Parasit-Interaktion bei der durch den Zestoden Echinococcus multilocularis ausgelösten Erkrankung der alveolären Echinokokkose sind bislang ungeklärt. Zudem liegen keine Daten über Entwicklungs- und Differenzierungsmechanismen dieses Parasiten vor, die für die Entwicklung neuer Antiparasitika genutzt werden könnten. Ein bei der Evolution der Metazoen bereits frühzeitig entstandener Signaltransduktionsmechanismus zur Steuerung von Entwicklungsvorgängen ist das TGFβ/BMP-System, das aus strukturell verwandten Zytokinen der TGFβ (transforming growth factor β) bzw. BMP (bone morphogenetic protein)-Familie, oberflächenständigen Rezeptoren der TGFβ-Rezeptorfamilie (Typ I und Typ II) und intrazellulären Signaltransduktoren der Smad-Familie besteht. Außer an Entwicklungsvorgängen tierischer Organismen könnte diesem System eine wichtige Rolle bei der Wirt-Helminth-Kommunikation während Infektionsprozessen zukommen, wie in vorherigen Studien am Nematoden Brugia malayi und am Trematoden Schistosoma mansoni gezeigt werden konnte. Erste, wichtige Schritte zur Charakterisierung von TGFβ und BMP-Signalsystemen in Zestoden wurden in der vorliegenden Arbeit getan. Aufbauend auf einem vorherigen Bericht zu einem Transmembranrezeptor (EmRSK1) und einem Smad-Homologen (EmSmadA) aus Echinococcus multilocularis wurde die Liste der TGFβ/BMP Signaltransduktionsfaktoren in E. multilocularis in dieser Arbeit deutlich erweitert und erstmals umfangreiche funktionelle Studien durchgeführt. Die hier charakterisierten Faktoren umfassen zwei weitere Serin/Threonin-Kinasen der TGFβ/BMP-Rezeptorfamilie (EmRSK2, EmRSK3) sowie intrazelluläre Transduktoren der R-Smad-Subfamilie (EmSmadB, EmSmadC) und ein Homologes zur MAP-kinase-kinase-kinase TAK1 (TGFβ activated kinase 1), genannt EmTAK1. Zudem konnte erstmals für einen parasitären Helminthen ein Zytokin der BMP-Subfamilie, EmBMP, auf molekularer Ebene charakterisiert werden. Strukturelle und funktionelle Untersuchungen legen nahe, dass E. multilocularis sowohl ein TGFβ wie auch ein BMP-Signalsystem exprimiert. Ersteres wird sehr wahrscheinlich durch die Kinase EmRSK2 und den Smad-Faktor EmSmadC gebildet, letzteres durch EmRSK1 und EmSmadB. EmSmadA nimmt eine Sonderstellung ein, da es sowohl durch TGFβ- wie auch durch BMP-Rezeptoren aktiviert werden kann. Die genaue Rolle von EmRSK1 und EmTAK1 wäre durch weitere Untersuchungen zu klären. Signifikante funktionelle Homologien zwischen den TGFβ/BMP-Signalsystemen des Parasiten und Säugern konnten nachgewiesen werden, die sich u.a. darin äußern, dass die Echinococcus Smad-Proteine durch entsprechende Rezeptoren des Menschen aktiviert werden können. Darüber hinaus konnten jedoch auch einige deutliche Unterschiede zwischen den Systemen aus Parasit und Wirt nachgewiesen werden, die sich als Angriffspunkte zur Entwicklung von Chemotherapeutika eignen könnten. So fehlt den Smad-Faktoren EmSmadA und EmSmadC eine MH1-Domäne, die sonst unter allen R-Smads hoch konserviert ist. Zudem sind einige bislang noch nie beschriebene, strukturelle Besonderheiten der Echinococcus TGFβ/BMP-Rezeptoren zu verzeichnen. Auch die Regulation dieser Faktoren und die Kreuz-Interaktion mit weiteren intrazellulären Signalwegen (z.B. der MAP Kinase Kaskade) scheint in E. multilocularis anders zu verlaufen als bislang für Vertebraten, Insekten oder Nematoden beschrieben. Schließlich konnte, als sehr wichtiger Befund, auch nachgewiesen werden dass mindestens ein Rezeptor des Parasiten, EmRSK1, mit einem Zytokin des Wirts (BMP2) in vitro funktionell interagiert. Da BMP2 in Zellkultursystemen, die das Wachstum des Parasiten am befallenen Wirtsorgan nachstellen, einen deutlichen Effekt auf E. multilocularis ausübt, könnte die hier beschriebene EmRSK1/BMP2 – Interaktion von entscheidender Bedeutung für die Wirt-Parasit-Interaktion bei der alveolären Echinokokkose sein.
Flagellar motility and chemotaxis are essential virulence traits required for the ability of Helicobacter pylori to colonize the gastric mucosa. The flagellar regulatory network and the complex chemotaxis system of H. pylori are fundamentally different from other bacteria, despite many similarities. In H. pylori expression of the flagella is controlled by a complex regulatory cascade involving the two-component system FlgR-HP244, the sigma factors 54 and 28 and the anti-sigma 28 factor FlgM. Thus far, the input signal for histidine kinase HP244, which activates the transcriptional regulator FlgR, which triggers sigma factor 54-dependent transcription of the flagellar class 2 genes, is not known. Based on a yeast two-hybrid screen a highly significant protein-protein interaction between the H. pylori protein HP137 and both the histidine kinase HP244 and the flagellar hook protein HP908 (FlgE´) has been reported recently (Rain et al., 2001). So far, no function could be assigned to HP137. Interestingly, the interaction between HP137 and histidine kinase HP244 was observed in the characteristic block N sequence motif of the C-terminal ATP-binding kinase domain. In this work a potential role of HP137 in a feedback regulatory mechanism controlling the activity of histidine kinase HP244 in the flagellar regulation of H. pylori was investigated. Although the substitution of the gene encoding HP137 by a kanamycin cassette resulted in non-motile bacteria, the failure to restore motility by the reintroduction of hp137 in cis into the mutant strain, and the observation that HP137 has no significant effect on the activity of histidine kinase HP244 in vitro indicated that HP137 is not directly involved in flagellar regulation. Therefore, it was demonstrated that HP137 does not participate in the regulation of flagellar gene expression, neither in H. pylori nor in the closely related bacterium C. jejuni. Chemotactic signal transduction in H. pylori differs from the enterobacterial paradigm in several respects. In addition to a CheY response regulator protein (CheY1) H. pylori contains a CheY-like receiver domain (CheY2) which is C-terminally fused to the histidine kinase CheA. Furthermore, the genome of H. pylori encodes three CheV proteins consisting of an N-terminal CheW-like domain and a C-terminal receiver domain, while there are no orthologues of the chemotaxis genes cheB, cheR, and cheZ. To obtain insight into the mechanism controlling the chemotactic response of H. pylori the phosphotransfer reactions between the purified two-component signalling modules were investigated in vitro. Using in vitro phosphorylation assays it was shown that both H. pylori histidine kinases CheAY2 and CheA´ lacking the CheY-like domain (CheY2) act as ATP-dependent autokinases. Similar to other CheA proteins CheA´ shows a kinetic of phosphorylation represented by an exponential time course, while the kinetics of phosphorylation of CheAY2 is characterized by a short exponential time course followed by the hydrolysis of CheAY2~P. Therefore, it was demonstrated that the presence of the CheY2-like receiver domain influences the stability of the phosphorylated P1 domain of the CheA part of the bifunctional protein. Furthermore, it was proven that both CheY1 and CheY2 are phosphorylated by CheAY2 and CheA´~P and that the three CheV proteins mediate the dephosphorylation of CheA´~P, although with a clearly reduced efficiency as compared to CheY1 and CheY2. Moreover, CheA´ is capable of donating its phospho group to the CheY1 protein from C. jejuni and to CheY protein from E. coli. Retrophosphorylation experiments indicated that CheY1~P is able to transfer the phosphate group back to the HK CheAY2 and the receiver domain present in the bifunctional CheAY2 protein acts as a phosphate sink fine tuning the activity of the freely diffusible CheY1 protein, which is thought to interact with the flagellar motor. Hence, in this work evidence of a complex phosphorelay in the chemotaxis system was obtained which has similarities to other systems with multiple CheY proteins. The role of the CheV proteins remain unclear at the moment, but they might be engaged in a further fine regulation of the phosphate flow in this complex chemotaxis system and the independent function of the two domains CheA´ and CheY2 is not sufficient for normal chemotactic signalling in vivo.
BMPs influence a variety of cellular processes. They have been shown to regulate proliferation, differentiation, migration and apoptosis and thus play central roles during developmental processes and tissue homeostasis. Ligand mediated signal transduction is transmitted via BMP type I and BMP type II receptors, both members of the serine/threonine kinase superfamily. The BMP receptor mediated signal transduction is not explored in detail. Therefore our aim was to address different aspects of BMP mediated signal transduction with main focus on BRII and its regulation. Due to the existence of two alternative splice variants, a long and a short form, the function of the two variants and the impact of the C-terminal extension are of general interest. Moreover, mutations in the BMPR2 gene were identified to be responsible for PPH, a autosomal dominant lung disease. In this thesis, BRII phosphorylation and signalling mediated by different receptor oligomers were investigated and multiple BRII associated proteins were identified. We could show that the oligomerization pattern of BMP receptors exhibits a higher degree of flexibility compared to other receptors of that superfamily. In the present work the BMP2 mediated signal transduction should be examined, depending on the receptor oligomerization pattern. Using kinase-deficient mutants, it could be demonstrated, that signalling via preformed BMP receptor complexes is mediated by the well characterized Smad1/5/8 pathway, whereas signalling initiated by BMP2 induced recruitment of the receptors activates the p38 pathway and leads to Alkaline Phosphatase production. To further study signalling events triggered directly from the BRII a proteomics-based screen for BRII associated proteins was performed. 53 associated proteins were found, the majority being signal transducing molecules, but in addition metabolic proteins, transcriptional regulators and others were identified. These proteins enable to gain a deeper insight in BMP mediated signalling. One of the interactors, the receptor tyrosine kinase c-kit, was characterized in more detail. It could be demonstrated, that BRII and c-kit form a complex in vitro and in vivo, and the interaction is enhanced upon BMP2 stimulation. 2D phosphopeptid mapping showed that BRII is phosphorylated at S757 upon activation of c-kit by SCF. Moreover, c-kit and its ligand SCF are modulating BMP2 pathways, by enhancing Smad1/5 phosphorylation, Smad-transcriptional activity, Alkaline Phosphatase production and expression of Cbfa1. All these pathways hint towards modulation of the osteoblast development via c-kit. Thus, we were able to develop a novel paradigm for the BMP2 meditated signalling. One of the initial triggers for BRII is the auto-phosphorylation of BRII. Here we analyze ligand-independent as well as ligand-dependent phosphorylation of BRII. Some phosphorylation sites in BRII were identified. The general phosphorylation occurs mostly on serines. S815, S818 and Y825 are identified targets of phosphorylation whose function is still unclear. However phosphorylation of S336 is demonstrated to be essential for BRII activation. The elucidation of BMP receptor phosphorylation and oligomerization as well as the impact of a number of BRII associated proteins (such as c-kit), demonstrated in this thesis that BMP signalling has to be regulated precisely on multiple levels. This can be useful for the development of selective signalling inhibitors for basic research and therapeutic approaches of PPH and other diseases.