@phdthesis{Puehringer2010, author = {P{\"u}hringer, Dirk}, title = {Die Transaktivierung des Neurotrophin-Rezeptors TrkB durch EGF w{\"a}hrend der Kortexentwicklung der Maus}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-50049}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2010}, abstract = {Die Rolle der Hirnrinde als Zentrum komplexer Funktionen wie Lernen und Ge-d{\"a}chtnis wird nicht zuletzt durch deren komplexe, in Schichten organisierte Architek-tur erm{\"o}glicht. Von entscheidender Bedeutung ist die pr{\"a}zise Positionierung von Nervenzellen, die im Laufe der Embryonalentwicklung in der Ventrikularzone (VZ) geboren werden und anschließend in radialer Richtung zu ihrem Bestimmungsort wandern. Die Funktion des Neurotrophin-Rezeptors TrkB an der Entwicklung des zerebralen Kortex war Gegenstand dieser Arbeit. Am Tag 12,5 der Embryonalentwicklung konnte die Expression von TrkB so-wohl in den Zellen der VZ als auch in neu geborenen Neuronen der Pr{\"a}platte nach-gewiesen werden. Die Phosphorylierung des Rezeptors erfolgte dabei unabh{\"a}ngig von den beiden Liganden BDNF und NT-3. Ebenso f{\"u}hrten BDNF oder NT-3 zu keiner zellul{\"a}ren Antwort in isolierten kortikalen Vorl{\"a}uferzellen, wohingegen die Stimulation mit EGF eine Phosphorylierung von TrkB an der PLC\&\#947;- und der Shc-Bindungsstelle hervorrief. Durch pharmakologische Inhibition und die {\"U}berexpression dominant negativer Src-Mutanten konnte die Beteiligung des EGF-Rezeptors und zweier neuronal exprimierter Src-Kinasen, cSrc und Fyn, an dieser Transaktivierung von TrkB durch EGF gezeigt werden. Durch die Zugabe von EGF kam es im Zuge der Aktivierung von TrkB auch zur Umverteilung des Rezeptors von intrazellul{\"a}ren Kompartimenten zur Zellmem-bran. Die Retention des Rezeptors im Zytoplasma wurde {\"u}ber post-translationelle Modifikation reguliert. Die Verhinderung von N-Glykosylierung durch Tunicamycin-Behandlung kortikaler Vorl{\"a}uferzellen f{\"u}hrte zur Exposition von TrkB an der Zellober-fl{\"a}che und konnte so Responsivit{\"a}t gegen{\"u}ber BDNF herstellen. Die physiologische Bedeutung einer Transaktivierung von TrkB durch EGF wurde durch das Fehlen der TrkB-Aktivierung in EGFR KO-M{\"a}usen am Embryonal-tag 12,5 gezeigt. Dies hatte eine fehlerhafte Positionierung kortikaler Nervenzellen zum Zeitpunkt E15,5 zur Folge. Anhand eines Migrationsassays konnte schließlich gezeigt werden, dass die EGF-induzierte Wanderung kortikaler Vorl{\"a}uferzellen in vitro mit einer asymmetrischen Translokation von TrkB einhergeht. {\"U}ber die Transaktivierung von TrkB in fr{\"u}hen Phasen der Kortexentwicklung spielt EGF eine wichtige Rolle bei der Induktion neuronaler Differenzierung und ist an der Regulation der Wanderung postmitotischer Neurone in der Hirnrinde beteiligt.}, subject = {Großhirnrinde}, language = {de} } @phdthesis{Laisney2010, author = {Laisney, Juliette Agn{\`e}s Genevi{\`e}ve Claire}, title = {Characterisation and regulation of the Egfr/Egfr ligand system in fish models for melanoma}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-51369}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2010}, abstract = {Fish of the genus Xiphophorus belong to the oldest animal models in cancer research. The oncogene responsible for the generation of spontaneous aggressive melanoma encodes for a mutated epidermal growth factor receptor (Egfr) and is called xmrk for Xiphophorus melanoma receptor kinase. Xmrk constitutive activation mechanisms and subsequent signaling pathways have already been investigated and charaterized but it is still unknown if Egfr ligands may also play a role in Xmrk-driven melanoma formation. To investigate the potential role of Egfr ligands in Xmrk-driven melanoma, I firstly analyzed the evolution of teleost and tetrapod Egfr/Egfr ligand systems. I especially focused on the analysis on the medaka fish, a closely related species to Xiphophorus, for which the whole genome has been sequenced. I could identify all seven Egfr ligands in medaka and could show that the two teleost-specific Egfr copies of medaka display dissimilar expression patterns in adult tissues together with differential expression of Egfr ligand subsets, arguing for subfunctionalization of receptor functions in this fish. Our phylogenetic and synteny analyses supported the hypothesis that only one gene in the chordate ancestor gave rise to the diversity of Egfr ligands found in vertebrate genomes today. I also could show that the Egfr extracellular subdomains implicated in ligand binding are not evolutionary conserved between tetrapods and teleosts, making the use of heterologous ligands in experiments with fish cells debatable. Despite its well understood and straight-forward process, Xmrk-driven melanomagenesis in Xiphophorus is problematic to further investigate in vivo. Our laboratory recently established a new melanoma animal model by generating transgenic mitf::xmrk medaka fishes, a Xiphophorus closely related species offering many more advantages. These fishes express xmrk under the control of the pigment-cell specific Mitf promoter. During my PhD thesis, I participated in the molecular analysis of the stably transgenic medaka and could show that the Xmrk-induced signaling pathways are similar when comparing Xiphophorus with transgenic mitf::xmrk medaka. These data together with additional RNA expression, protein, and histology analyses showed that Xmrk expression under the control of a pigment cell-specific promoter is sufficient to induce melanoma in the transgenic medaka, which develop very stereotyped tumors, including uveal and extracutaneous melanoma, with early onset during larval stages. To further investigate the potential role of Egfr ligands in Xmrk-driven melanoma, I made use of two model systems. One of them was the above mentioned mitf::xmrk medaka, the other was an in-vitro cell culture system, where the EGF-inducible Xmrk chimera HERmrk is stably expressed in murine melanocytes. Here I could show that HERmrk activation strongly induced expression of amphiregulin (Areg) and heparin-binding EGF-like growth factor (Hbegf) in melanocytes. This regulation was dependent on the MAPK and SRC signaling pathways. Moreover, upregulation of Adam10 and Adam17, the two major sheddases of Egfr ligands, was observed. I also could demonstrate the functionality of the growth factors by invitro analyses. Using the mitf::xmrk medaka model I could also show the upregulation of a subset of ligand genes, namely egf, areg, betacellulin (btc) and epigen (epgn) as well as upregulation of medaka egfrb in tumors from fish with metastatic melanoma. All these results converge to support an Xmrk-induced autocrine Egfr ligand loop. Interestingly, my in-vitro experiments with conditioned supernatant from medaka Egf- and Hbegf-producing cells revealed that not only Xiphophorus Egfrb, but also the pre-activated Xmrk could be further stimulated by the ligands. Altogether, I could show with in-vitro and in-vivo experiments that Xmrk is capable of inducing a functional autocrine Egfr ligand loop. These data confirm the importance of autocrine loops in receptor tyrosine kinase (RTK)-dependent cancer development and show the possibility for a constitutively active RTK to strengthen its oncogenic signaling by ligand binding.}, subject = {Schwertk{\"a}rpfling}, language = {en} }