Refine
Has Fulltext
- yes (18)
Is part of the Bibliography
- yes (18)
Year of publication
Document Type
- Doctoral Thesis (10)
- Journal article (8)
Keywords
- melanoma (18) (remove)
Institute
- Theodor-Boveri-Institut für Biowissenschaften (18) (remove)
Melanoma arises from the malignant transformation of melanocytes and is one of the most aggressive forms of human cancer. In fish of the genus Xiphophorus, melanoma development, although very rarely, happens spontaneously in nature and can be induced by interspecific crossing. The oncogenic receptor tyrosine kinase, Xmrk, is responsible for melanoma formation in these fishes. Since Xiphophorus are live-bearing fishes and therefore not compatible with embryonic manipulation and transgenesis, the Xmrk melanoma model was brought to the medaka (Oryzias latipes) system. Xmrk expression under the control of the pigment cell specific mitf promoter leads to melanoma formation with 100% penetrance in medaka. Xmrk is an orthologue of the human epidermal growth factor receptor (EGFR) and activates several downstream signaling pathways. Examples of these pathways are the direct phosphorylation of BRAF and Stat5, as well as the enhanced transcription of C-myc. BRAF is a serine-threonine kinase which is found mutated at high frequencies in malignant melanomas. Stat5 is a transcription factor known to be constitutively activated in fish melanoma. C-myc is a transcription factor that is thought to regulate the expression of approximately 15% of all human genes and is involved in cancer progression of a large number of different tumors. To gain new in vivo information on candidate factors known to be involved in melanoma progression, I identified and analysed BRAF, Stat5 and C-myc in the laboratory fish model system medaka. BRAF protein motifs are highly conserved among vertebrates and the results of this work indicate that its function in the MAPK signaling is maintained in medaka. Transgenic medaka lines carrying a constitutive active version of BRAF (V614E) showed more pigmented skin when compared to wild type. Also, some transiently expressing BRAF V614E fishes showed a disrupted eye phenotype. In addition, I was able to identify two Stat5 copies in medaka, named Stat5ab/a and Stat5ab/b. Sequence analysis revealed a higher similarity between both Stat5 sequences when compared to either human Stat5a or Stat5b. This suggests that the two Stat5 copies in medaka arose by an independent duplication processes. I cloned these two Stat5 present in medaka, produced constitutive active and dominant negative gene versions and successfully established transgenic lines carrying each version under the control of the MITF promoter. These lines will help to elucidate questions that are still remaining in Stat5 biology and its function in melanoma progression, like the role of Stat5 phosphorylation on tumor invasiveness. In a third project during my PhD work, I analysed medaka C-myc function and indentified two copies of this gene in medaka, named c-myc17 and c-myc20, according to the chromosome where they are located. I produced conditional transgenic medaka lines carrying the c-myc17 gene coupled to the hormone binding domain of the estrogen receptor to enable specific transgene activation at a given time point. Comparable to human C-myc, medaka C-myc17 is able to induce proliferation and apoptosis in vivo after induction. Besides that, C-myc17 long-term activation led to liver hyperplasia. In summary, the medaka models generated in this work will be important to bring new in vivo information on genes involved in cancer development. Also, the generated transgenic lines can be easily crossed to the melanoma developing Xmrk medaka lines, thereby opening up the possibility to investigate their function in melanoma progression. Besides that, the generated medaka fishes make it possible to follow the whole development of melanocytes, since the embryos are transparent and can be used for high throughput chemical screens.
Ras genes are among the most commonly mutated genes in human cancer; yet our understanding of their oncogenic activity at the molecular mechanistic level is incomplete. To identify downstream events that mediate ras-induced cellular transformation in vivo, we analyzed global microRNA expression in three different models of Ras-induction and tumor formation in zebrafish. Six microRNAs were found increased in Ras-induced melanoma, glioma and in an inducible model of ubiquitous Ras expression. The upregulation of the microRNAs depended on the activation of the ERK and AKT pathways and to a lesser extent, on mTOR signaling. Two Ras-induced microRNAs (miR-146a and 193a) target Jmjd6, inducing downregulation of its mRNA and protein levels at the onset of Ras expression during melanoma development. However, at later stages of melanoma progression, jmjd6 levels were found elevated. The dynamic of Jmjd6 levels during progression of melanoma in the zebrafish model suggests that upregulation of the microRNAs targeting Jmjd6 may be part of an anti-cancer response. Indeed, triple transgenic fish engineered to express a microRNA-resistant Jmjd6 from the onset of melanoma have increased tumor burden, higher infiltration of leukocytes and shorter melanoma-free survival. Increased JMJD6 expression is found in several human cancers, including melanoma, suggesting that the up-regulation of Jmjd6 is a critical event in tumor progression.
The following link has been created to allow review of record GSE37015: http://www.ncbi.nlm.nih.gov/geo/query/acc.cgi?token=jjcrbiuicyyqgpc&acc=GSE37015.
Die Kenntnis der Transkriptionsregulationsmechanismen stellt eine wichtige biochemische Grundlage für das Verständnis der molekularen Ereignisse, die der Krebsentstehung zugrunde liegen, dar. Eine Schlüsselrolle in der transkriptionellen Kontrolle der Genexpression spielen hierbei die Transkriptionsfaktoren. Diese sind nukleäre Proteine, die mit spezifischen DNA-Elementen interagieren und so die Transkription eines in cis-Position lokalisierten Zielgens regulieren. Da der “microphthalmia associated” Transkriptionsfaktor Mitf-M spezifisch in Melanozyten und Melanomzellen exprimiert wird, scheint er eine wichtige Rolle in der melanomspezifischen transkriptionellen Aktivierung zu spielen und war deshalb im Rahmen dieser Arbeit näher untersucht worden. Das Xiphophorus Melanomsystem, ein genetisch gut charakterisiertes Modell, wurde herangezogen, um unter zu Hilfenahme des Tyrosinasegens des mit Xiphophorus nahe verwandten Medaka (Oryzias latipes) die Transkriptionsregulation im Melanom näher zu untersuchen. Zuerst wurde gezeigt, dass der Medaka Tyrosinasepromotor spezifisch in einer Melanomzellinie von Xiphophorus (PSM Zellen) aktiviert wird. Eine 3,2 kb lange Sequenz, die 5´ zum Transkriptionsstart liegt, reicht dabei aus, eine extrem hohe, melanomspezifische Promotoraktivität zu erreichen. Dabei sind die Regionen, die sogenannte E-Boxen (CANNTG) enthalten, von besonderer Wichtigkeit für die Promotoraktivität in der Melanomzellinie, während sie in embryonalen Xiphophoruszellen (A2, als Kontrollzellen eingesetzt) keinen Einfluß auf die Expression haben. An diese E-Box-Sequenzen binden sogenannte b-HLH-Leuzinzipper Transkriptionsfaktoren. Es konnte auf indirektem Wege bewiesen werden, dass es das Protein Mitf sein muß, das an die E-Boxen im Tyrosinasegenpromotor bindet und somit die transkriptionelle Aktivierung ausübt. In EMSA Studien wurde gezeigt, dass die E-Boxen ein Kernprotein aus PSM-Zellen binden, und das dieses spezifisch an diese 6 bp lange Sequenz bindet, da Mutationen der zentralen Oligonukleotid-Sequenz die Bindung zerstörten. Ein weiterer indirekter Beweis für die Bindung von Mitf an diese E-Boxen konnte durch Co-Transfektionsexperimente erbracht werden. Auch in Säugerfibroblastenzellen konnte ektopisch eingebrachtes Mitf-M die Medaka Tyrosinasegenpromotorkonstrukte durch Bindung an E-Boxen aktivieren und das Luciferasegen zur Expression bringen. Das heißt also, dass Mitf-M ausreicht um sogar in nicht-Melanomzellen den Tyrosinasegenpromotor zu transaktivieren. Aufgrund dieser verschiedenen Experimente konnte gefolgert werden, dass diese Mitf-Bindungsstellen essentiell für eine hohe melanom- oder pigmentzellspezifische Promotoraktivität sind. Die Bindungsstelle A, die nahe der Basalpromotorregion im Medaka Tyrosinasegen liegt (-126/-131), scheint hierbei besonders wichtig für die Promotoraktivität und vor allem auch für die Vermittlung der Zelltypspezifität zu sein. Promotorkonstrukte mit den drei E-Boxen A (-126/-131), B (-2651/-2656) und C (-2866/-2871) zeigten eine gegenüber dem Konstrukt nur mit der A-Bindungsstelle höhere Aktivität. Es scheint sich ein additiver Effekt der Mitf-Bindungsstellen auszuwirken. Es konnte allerdings auch gezeigt werden, dass die E-Boxen nicht alleine verantwortlich für die Melanom- bzw. Pigmentzellspezifität sind. Neben den Mitf-Bindungsstellen gibt es noch weitere Elemente im Tyrosinasegenpromotor, die an der Bestimmmung der Spezifität beteiligt sind, und die zwar durch Deletionsreihen im Promotor eingegrenzt, dennoch noch nicht eindeutig bestimmt werden konnten. Die Wichtigkeit des Transkriptionsfaktors Mitf bzw. seiner Funktionen spiegelt sich auch in seiner starken Konservierung im Laufe der Evolution wider. Vergleichende Studien zeigten dass der Transkriptionsfaktor mit seinen verschiedenen Isoformen in Säugern wie in Vertebraten gut konserviert wurde. Nähere Analysen konnten das Vorhandensein zweier separater Gene für Mitf-M und Mitf-B bei Teleostiern nachweisen, während bei Säugetieren und Vögeln nur ein einziges Gen für die unterschiedlichen Mitf Proteine kodiert. Für das Verständnis der molekularen Prozesse bei der Melanombildung von Xiphophorus war es wichtig die Rolle von Mitf in der Signaltransduktion zu analysieren. Es war möglich einen direkten Zusammenhang zwischen der in PSM Zellen exprimierten Rezeptortyrosinkinase Xmrk, dem Genprodukt des Tumor-induzierenden Onkogens von Xiphophorus, und dem Transkriptionsfaktor Mitf nachzuweisen und seine Regulation über Signaltransduktionswege näher zu klären. Die Regulation von Mitf über den MAPkinase-Weg, konnte durch Inhibitorexperimente nachgewiesen werden. Aufgrund der zahlreichen Aktivitäten von Mitf innerhalb der Melanozyten, und seiner Aktivierungsfunktion für verschiedene Zielgene, ist dieser Transkriptionsfaktor von großer Bedeutung für sowohl Differentierung/Pigmentierung wie auch Proliferation/Überleben der Tumorzellen.
Approximately half of all melanoma patients harbour activating mutations in the serine/threonine kinase BRAF. This is the basis for one of the main treatment strategies for this tumor type, the targeted therapy with BRAF and MEK inhibitors. While the initial responsiveness to these drugs is high, resistance develops after several months, frequently at sites of the previously responding tumor. This indicates that tumor response is incomplete and that a certain tumor fraction survives even in drug-sensitive patients, e.g., in a therapy-induced senescence-like state. Here, we show in several melanoma cell lines that BRAF inhibition induces a secretome with stimulating effect on fibroblasts and naive melanoma cells. Several senescence-associated factors were found to be transcribed and secreted in response to BRAF or MEK inhibition, among them members of the fibroblast growth factor family. We identified the growth factor FGF1 as mediator of resilience towards BRAF inhibition, which limits the pro-apoptotic effects of the drug and activates fibroblasts to secrete HGF. FGF1 regulation was mediated by the PI3K pathway and by FRA1, a direct target gene of the MAPK pathway. When FGFR inhibitors were applied in parallel to BRAF inhibitors, resilience was broken, thus providing a rationale for combined therapeutical application.
Untersuchungen zur Apoptoseregulation durch die Melanom induzierende Rezeptortyrosinkinase Xmrk
(2003)
Überexpression der konstitutiv aktiven Rezeptortyrosinkinase Xmrk im Zahnkarpfen Xiphophorus führt zur Ausbildung maligner Melanome. Expressionsstudien in transgenen Medaka-Fischen haben gezeigt, daß Xmrk allerdings nur in bestimmten Geweben wie Hirn, Epithelien, Auge und Pigmentzellen zur Tumorbildung führt. Zellen, die durch Xmrk transformiert werden können, scheinen somit über entsprechende Komponenten der durch Xmrk induzierten intrazellulären Signaltransduktion verfügen zu müssen. Bisher wurde eine Reihe von Signalproteinen identifiziert, die von Xmrk rekrutiert und aktiviert werden. Dazu gehören die PLC-g, die Adapterproteine Shc und Grb2, die PI3K, die Fyn-Kinase aus der Familie der Src-Kinasen und der Transkriptionsfaktor STAT5. Um die Signaltransduktion von Xmrk in induzierbarer Form untersuchen zu können, wurde eine mit EGF stimulierbare Rezeptorchimäre HER-mrk, deren extrazellulärer Anteil vom humanen EGF-R und deren intrazellulärer Anteil von Xmrk stammt, in der IL-3 abhängigen murinen pro-B-Zellinie Ba/F3 exprimiert. EGF-Stimulation dieser als BaF Hm bezeichneten Zellen führt zu IL-3 unabhängigem Wachstum und zu Langzeitüberleben. Stimulation des aus der gleichen Genfamilie stammenden EGF-Rezeptors hingegen, wird er in Ba/F3 Zellen exprimiert, kann kein Langzeitüberleben vermitteln. Erste Untersuchungen zeigten, daß das durch HER-mrk vermittelte Langzeitüberleben in Ba/F3 Zellen nicht auf einer höheren Rezeptorexpression verglichen mit den EGF-R exprimierenden Zellen beruht. Allerdings korreliert die Rezeptordichte mit der DNA-Syntheseleistung der Ba/F3 Zellen. Durch verschiedene carboxyterminal verkürzte HER-mrk Rezeptormutanten wurde eine unterschiedliche Anzahl von Substratbindungsstellen von Xmrk deletiert. Expression dieser HER-mrk Rezeptormutanten in Ba/F3 Zellen zeigte, daß für die Auslösung der Replikation der DNA keine C-terminale Substratbindungsstelle notwendig ist, während für eine Vollendung der Zellteilung mit Zellvermehrung und für Langzeitüberleben zwei membrannahe Substratbindungsstellen ausreichend sind. Der Vergleich der durch die verschiedenen Rezeptoren induzierten Signalwege bzw. der Substratinteraktionen von HER-mrk, seinen Mutanten und dem EGF-R gab Hinweise auf für die Antiapoptose entscheidende Signalwege. Untersuchungen zur Aktivierung von STAT1, 3 und 5 zeigten, daß HER-mrk zu einer Aktivierung aller drei STAT-Proteine führt, während der EGF-R in Ba/F3 Zellen nur STAT1 und 3, nicht aber STAT5 aktivieren kann. Die HER-mrk Rezeptormutanten zeigten, daß für die Aktivierung von STAT5 durch HER-mrk keine carboxyterminale Substratbindungsstelle notwendig ist, diese aber möglicherweise durch Stabilisierung der Rezeptorbindung seine Aktivierung verstärken. Für die Aktivierung von STAT1 und 3 hingegen sind carboxyterminale Substratbindungsstellen entscheidend. Das für ein antiapoptotisches Protein kodierende STAT5-Zielgen bcl-X wurde als HER-mrk Zielgen identifiziert. Auch die schwächere STAT5 Aktivierung durch die trunkierte HER-mrk Rezeptormutante Hm delta1006 hatte eine bcl-X Transkription zur Folge, während der EGF-R bcl-X nicht induzierte. Untersuchungen weiterer antiapoptotischer Signalwege zeigten, daß die mrk-Kinase sowie ihre Rezeptormutante Hm delta1006 im Gegensatz zum EGF-R auch zu einer Induktion von bcl-2 führen. Da diese Mutante kein Langzeitüberleben vermittelt, ist somit die Induktion der Genexpression antiapoptotischer Proteine wie Bcl-XL und Bcl-2 nicht ausreichend für Antiapoptose. Es bedarf somit der Kombination mehrerer antiapoptotischer Signalwege, um Langzeitüberleben zu sichern. Expression der Rezeptorchimäre HER-mrk in murinen Melanozyten führt bei Stimulation der mrk-Kinase zur Transformation der Zellen. Im Rahmen dieser Arbeit konnte eine starke Induktion von bcl-X nach HER-mrk Stimulation in den Melanozyten nachgewiesen werden. Bei der Untersuchung humaner Melanomzellinien, die in der Expression verschiedener Rezeptortyrosinkinasen oft ein sehr unterschiedliches Muster zeigen, konnte eine konstitutive Aktivität von STAT5 in allen untersuchten Zellinien nachgewiesen werden, während STAT1 und 3 nur eine schwache und inhomogene Basalaktivität aufwiesen. Es zeigt sich folglich ein ähnliches Bild wie im Xiphophorus-Melanom, in dem ausschließlich STAT5 konstitutiv aktiv ist. Die untersuchten humanen Melanomzellinien zeigten durchweg eine Expression von Bcl-XL. Andere Signalwege wie z.B. die Aktivierung der MAPK hingegen zeigten ein heterogenes Muster bei den verschiedenen Zellinien. Erste Experimente in A375 Zellen deuten darauf hin, daß die Expression von dominant negativem STAT5 zur Reduktion der bcl-X Transkription und zur Apoptose der Zellen führt (Wellbrock, unveröffentlicht). Der STAT5/Bcl-XL Signalweg scheint folglich ganz entscheidend für die Antiapoptose von Melanomen zu sein.
The mechanisms that enable cells to regulate their gene expression and thus their metabolism, proliferation or cellular behaviour are not only important to understand the basic biology of a living cell, but are also of crucial interest in cancerogenesis. Highly interwoven and tightly regulated pathways are the basis of a robust but also flexible regulatory network. Interference with these pathways can be either causative for tumorigenesis or can modify its outcome. The receptor tyrosine kinase (RTK) and RAS dependent pathways leading to AKT or ERK1/2 activation are of particular interest in melanoma. These signaling modules are commonly activated by different mutations that can be found in various pathway components like NRAS, BRAF or PTEN. The first part of this work deals with the diverse and versatile functions of the ERK1/2 pathway feedbackregulator MKP2 in different cellular, melanoma relevant settings. In addition, a functional role of the AP1-complex member FOSL1, an ERK1/2 transcriptional target being implicated in the regulation of proliferation, is demonstrated. Secondly, aspects of direct pharmacological inhibition of the ERK1/2 pathway with regard to the induction of apoptosis have been analysed. Due to the high frequency of melanoma related mutations occurring in the RAS/RAF/MEK/ERK pathway (e.g. NRASQ61K, BRAFV600E), inhibition of this signaling cascade is deemed to be a promising therapeutic strategy for the treatment of malignant melanoma. However, although in clinical trials mono-therapeutic treatment with MEK- or RAF inhibitors was successful in the short run, it failed to show satisfactory long-lasting effects. Hence, combination therapies using a MAPK pathway inhibitor and an additional therapy are currently under investigation. I was able to demonstrate that inhibition of MEK using the highly specific inhibitor PD184352 can have a protective effect on melanoma cells with regard to their susceptibility towards the apoptosis inducing agent cisplatin. Single application of cisplatin led to strong DNA damage and the induction of caspase-dependent apoptosis. Additional administration of the MEK inhibitor, however, strongly reduced the apoptosis inducing effect of cisplatin in several melanoma cell lines, These cells displayed an increased activation of the serine/threonine kinase AKT after MEK inhibition. This AKT activation concomitantly led to the phosphorylation of FOXO transcription factors, attenuating the cisplatin induced expression of the BH3-only protein PUMA. PUMA in turn was important to mediate the apoptosis machinery after cisplatin treatment. My results also indicate a participation of RTKs, in particular EGFR, in mediating MEK inhibitor induced activation of AKT. These results demonstrate that inhibition of the RAS/RAF/MEK/ERK signaling pathway in melanoma cell lines does not necessilary have favourable effects in a cytotoxic co-treatment situation. Instead, it can even enhance melanoma survival under pro-apoptotic conditions.
Inhibition of RAF/MEK/ERK signaling is beneficial for many patients with BRAFV600E–mutated melanoma. However, primary and secondary resistances restrict long-lasting therapy success. Combination therapies are therefore urgently needed. Here, we evaluate the cellular effect of combining a MEK inhibitor with a genotoxic apoptosis inducer. Strikingly, we observed that an activated MAPK pathway promotes in several melanoma cell lines the pro-apoptotic response to genotoxic stress, and MEK inhibition reduces intrinsic apoptosis. This goes along with MEK inhibitor induced increased RAS and P-AKT levels. The protective effect of the MEK inhibitor depends on PI3K signaling, which prevents the induction of pro-apoptotic PUMA that mediates apoptosis after DNA damage. We could show that the MEK inhibitor dependent feedback loop is enabled by several factors, including EGF receptor and members of the SPRED family. The simultaneous knockdown of SPRED1 and SPRED2 mimicked the effects of MEK inhibitor such as PUMA repression and protection from apoptosis. Our data demonstrate that MEK inhibition of BRAFV600E-positive melanoma cells can protect from genotoxic stress, thereby achieving the opposite of the intended anti-tumorigenic effect of the combination of MEK inhibitor with inducers of intrinsic apoptosis.
Malignant melanoma incidence is rising worldwide. Its treatment in an advanced state is difficult, and the prognosis of this severe disease is still very poor. One major source of these difficulties is the high rate of metastasis and increased genomic instability leading to a high mutation rate and the development of resistance against therapeutic approaches. Here we investigate as one source of genomic instability the contribution of activation of transposable elements (TEs) within the tumor. We used the well-established medaka melanoma model and RNA-sequencing to investigate the differential expression of TEs in wildtype and transgenic fish carrying melanoma. We constructed a medaka-specific TE sequence library and identified TE sequences that were specifically upregulated in tumors. Validation by qRT- PCR confirmed a specific upregulation of a LINE and an LTR element in malignant melanomas of transgenic fish.
Background
A growing number of studies report an abnormal expression of Piwi-interacting RNAs (piRNAs) and the piRNA processing enzyme Piwi in many cancers. Whether this finding is an epiphenomenon of the chaotic molecular biology of the fast dividing, neoplastically transformed cells or is functionally relevant to tumorigenesisis is difficult to discern at present. To better understand the role of piRNAs in cancer development small laboratory fish models can make a valuable contribution. However, little is known about piRNAs in somatic and neoplastic tissues of fish.
Results
To identify piRNA clusters that might be involved in melanoma pathogenesis, we use several transgenic lines of medaka, and platyfish/swordtail hybrids, which develop various types of melanoma. In these tumors Piwi, is expressed at different levels, depending on tumor type. To quantify piRNA levels, whole piRNA populations of testes and melanomas of different histotypes were sequenced. Because no reference piRNA cluster set for medaka or Xiphophorus was yet available we developed a software pipeline to detect piRNA clusters in our samples and clusters were selected that were enriched in one or more samples. We found several loci to be overexpressed or down-regulated in different melanoma subtypes as compared to hyperpigmented skin. Furthermore, cluster analysis revealed a clear distinction between testes, low-grade and high-grade malignant melanoma in medaka.
Conclusions
Our data imply that dysregulation of piRNA expression may be associated with development of melanoma. Our results also reinforce the importance of fish as a suitable model system to study the role of piRNAs in tumorigenesis.
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.