@phdthesis{Aydinli2021, author = {Aydinli, Muharrem}, title = {Software unterst{\"u}tzte Analyse von regulatorischen Elementen in Promotoren mittels AIModules}, doi = {10.25972/OPUS-24802}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-248025}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2021}, abstract = {Die Regulation der Genexpression steht am Anfang vieler zellbiologischer Prozesse wie beispielsweise dem Zellwachstum oder der Differenzierung. Gene werden an Promotoren transkribiert, wobei ein Promotor selbst aus vielen logischen Einheiten aufgebaut ist, den Transkriptionsfaktorbindestellen (TFBSs). Diese k{\"o}nnen sehr nah beieinander liegen, aber auch weit entfernt voneinander sein. Sie werden spezifisch von Transkriptionsfaktoren (TFs) gebunden, die die Transkritptionsrate z.B. verst{\"a}rken (Enhancer) oder schw{\"a}chen (Silencer) k{\"o}nnen. Zwei oder mehr dieser TFBSs mit bestimmtem Abstand werden als "Module" zusammengefasst, die {\"u}ber Spezies hinweg konserviert sein k{\"o}nnen. Typischerweise findet man Module in Zellen mit einem Zellkern. Spezies mit gemeinsamen Modulen k{\"o}nnen ein Hinweis auf die gemeinsame phylogenetische Abstammung darstellen, aber auch gemeinsame Funktionsmechanismen von TFs {\"u}ber Gene hinweg aufdecken. Heutzutage sind verschiedene Anwendungen verf{\"u}gbar, mit denen nach TFBSs in DNA gesucht werden kann. Zum Zeitpunkt des Verfassens dieser Arbeit sind aber nur zwei kommerzielle Produkte bekannt, die nicht nur TFBSs, sondern auch Module erkennen. Deshalb stellen wir hier die freie und quelloffene L{\"o}sung "AIModules" vor, die diese L{\"u}cke f{\"u}llt und einen Webservice zur Verf{\"u}gung stellt, der es erlaubt nach TFBSs sowie nach Modulen auf DNA- und auf RNA-Abschnitten zu suchen. F{\"u}r die Motivesuche werden entweder Matrizen aus der Jaspar Datenbank oder Matrizen vom Anwender verwendet. Dar{\"u}berhinaus zeigen wir, dass unser Tool f{\"u}r die TF Suche nur Sekunden ben{\"o}tigt, wohingegen conTraV3 mindestens eine Stunde f{\"u}r dieselbe Analyse braucht. Zus{\"a}tzlich kann der Anwender bei unserem Tool den Grad der Konserviertheit f{\"u}r TFs mit angeben und wir zeigen, dass wir mit unserer L{\"o}sung, die die Jaspar Datenbank heranzieht, mehr Module finden, als ein kommerziell verf{\"u}gbares Produkt. Weiterhin kann mit unserer L{\"o}sung auch auf RNA-Sequenzen nach regulatorischen Motiven gesucht werden, wenn der Anwender die daf{\"u}r n{\"o}tigen Matrizen liefert. Wir zeigen dies am Beispiel von Polyadenylierungsstellen. Zusammenfassend stellen wir ein Werkzeug vor, das erstens frei und quelloffen ist und zweitens entweder auf Servern ver{\"o}ffentlicht werden kann oder On-Site auf einem Notebook l{\"a}uft. Unser Tool erlaubt es Promotoren zu analysieren und nach konservierten Modulen sowie TFBSs in Genfamilien sowie nach regulatorischen Elementen in mRNA wie z.B. Polyadenylierungsstellen oder andere regulatorische Elemente wie beispielsweise Enhancern oder Silencern in genomischer DNA zu suchen.}, subject = {Genregulation}, language = {de} } @phdthesis{Carstensen2018, author = {Carstensen, Anne Carola}, title = {Identification of novel N-MYC interacting proteins reveals N-MYC interaction with TFIIIC}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-143658}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2018}, abstract = {N-MYC is a member of the human MYC proto-oncogene family, which comprises three transcription factors (C-, N- and L-MYC) that function in multiple biological processes. Deregulated expression of MYC proteins is linked to tumour initiation, maintenance and progression. For example, a large fraction of neuroblastoma displays high N-MYC levels due to an amplification of the N-MYC encoding gene. MYCN-amplified neuroblastoma depend on high N-MYC protein levels, which are maintained by Aurora-A kinase. Aurora-A interaction with N-MYC interferes with degradation of N-MYC via the E3 ubiquitin ligase SCFFBXW7. However, the underlying mechanism of Aurora-A-mediated stabilisation of N-MYC remains to be elucidated. To identify novel N-MYC interacting proteins, which could be involved in N-MYC stabilisation by Aurora-A, a proteomic analysis of purified N-MYC protein complexes was conducted. Since two alanine mutations in MBI of N-MYC, T58A and S62A (N-MYC mut), disable Aurora-A-mediated stabilisation of N-MYC, N-MYC protein complexes from cells expressing either N-MYC wt or mut were analysed. Proteomic analysis revealed that N-MYC interacts with two deubiquitinating enzymes, USP7 and USP11, which catalyse the removal of ubiquitin chains from target proteins, preventing recognition by the proteasome and subsequent degradation. Although N-MYC interaction with USP7 and USP11 was confirmed in subsequent immunoprecipitation experiments, neither USP7, nor USP11 was shown to be involved in the regulation of N-MYC stability. Besides USP7/11, proteomic analyses identified numerous additional N-MYC interacting proteins that were not described to interact with MYC transcription factors previously. Interestingly, many of the identified N-MYC interaction partners displayed a preference for the interaction with N-MYC wt, suggesting a MBI-dependent interaction. Among these were several proteins, which are involved in three-dimensional organisation of chromatin domains and transcriptional elongation by POL II. Not only the interaction of N-MYC with proteins functioning in elongation, such as the DSIF component SPT5 and the PAF1C components CDC73 and CTR9, was validated in immunoprecipitation experiments, but also with the POL III transcription factor TFIIIC and topoisomerases TOP2A/B. ChIP-sequencing analysis of N-MYC and TFIIIC subunit 5 (TFIIIC5) revealed a large number of joint binding sites in POL II promoters and intergenic regions, which are characterised by the presence of a specific motif that is highly similar to the CTCF motif. Additionally, N-MYC was shown to interact with the ring-shaped cohesin complex that is known to bind to CTCF motifs and to assist the insulator protein CTCF. Importantly, individual ChIP experiments demonstrated that N-MYC, TFIIIC5 and cohesin subunit RAD21 occupy joint binding sites comprising a CTCF motif. Collectively, the results indicate that N-MYC functions in two biological processes that have not been linked to MYC biology previously. Furthermore, the identification of joint binding sites of N-MYC, TFIIIC and cohesin and the confirmation of their interaction with each other suggests a novel function of MYC transcription factors in three-dimensional organisation of chromatin.}, subject = {Biologie}, language = {en} } @phdthesis{Maurus2016, author = {Maurus, Katja}, title = {Melanoma Maintenance by the AP1 Transcription Factor FOSL1}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-142995}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2016}, abstract = {Identifying novel driver genes in cancer remains a crucial step towards development of new therapeutic approaches and the basic understanding of the disease. This work describes the impact of the AP1 transcription activator component FOSL1 on melanoma maintenance. FOSL1 is strongly upregulated during the progression of melanoma and the protein abundance is highest in metastases. I found that the regulation of FOSL1 is strongly dependent on ERK1/2- and PI3K- signaling, two pathways frequently activated in melanoma. Moreover, the involvement of p53 in FOSL1 regulation in melanoma was investigated. Elevated levels of the tumor suppressor led to decreased FOSL1 protein levels in a miR34a/miR34c- dependent manner. The benefit of elevated FOSL1 amounts in human melanoma cell lines was analyzed by overexpression of FOSL1 in cell lines with low endogenous FOSL1 levels. Enhanced levels of FOSL1 had several pro-tumorigenic effects in human melanoma cell lines. Besides increased proliferation and migration rates, FOSL1 overexpression induced the colony forming ability of the cells. Additionally, FOSL1 was necessary for anchorage independent growth in 3D cell cultures. Microarray analyses revealed novel downstream effectors of FOSL1. On the one hand, FOSL1 was able to induce the transcription of different neuron-related genes, such as NEFL, NRP1 and TUBB3. On the other hand, FOSL1 influenced the transcription of DCT, a melanocyte specific gene, in dependence of the differentiation of the melanoma cell line, indicating dedifferentiation. Furthermore, FOSL1 induced the transcription of HMGA1, a chromatin remodeling protein with reprogramming ability, which is characteristic for stem cells. Consequently, the influence of HMGA1 on melanoma maintenance was investigated. In addition to decreased proliferation and reduced anoikis resistance, HMGA1 knockdown reduced melanoma cell survival. Interestingly, the FOSL1 induced pro-tumorigenic effects were demonstrated to be dependent on the HMGA1 level. HMGA1 manipulation reversed FOSL1 induced proliferation and colony forming ability, as well as the anchorage independent growth effect. In conclusion, I could show that additional FOSL1 confers a clear growth benefit to melanoma cells. This benefit is attributed to the induction of stem cell determinants, but can be blocked by the inhibition of the ERK1/2 or PI3K signaling pathways.}, subject = {Melanom}, language = {en} } @phdthesis{Pusch2015, author = {Pusch, Tobias}, title = {The transcription factor NFATc1 mediates cytotoxic T cell function in vitro and in vivo}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-123690}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2015}, abstract = {While numerous experiments on NFAT were already performed with CD4+ T cells showing defective cytokine release and a reduced T helper cell development, no detailed studies existed for CD8+ T cells. From this point, we wanted to examine the impact of NFATc1 and c2 on the physiological functions of CD8+ T cells in vitro and in vivo. Therefore, we used a murine infection model with the bacteria Listeria monocytogenes and mice in which NFATc1 was specifically depleted in the T cell compartment. Our first in vitro studies showed a typical NFATc1 and c2 nuclear translocation and changes on mRNA levels upon T cell activation similarly in CD4+ as well as in CD8+ T cells extracted from wild type mice. NFAT nuclear translocation is important for target gene activation and generation of effector functions. Stimulated T cell populations lacking NFATc1 and/or NFATc2 showed a markedly decreased expression of Th1/Tc1 cytokines, as e.g. IL 2 and IFNγ being important for the clearance of intracellular pathogens. From our in vitro model for the generation of allogenically reactive cytotoxic CD8+ T cells, we revealed a decreased killing and lytic granule-release capacity in Nfatc1 inactivated CD8+ T cells whereas NFATc2-/- cytotoxic T cells did not show an altered cytotoxic response compared to wild type cells. Interestingly, we found lytic granules accumulated and mitochondria not getting translocated to the immunological synapse upon re-stimulation in NFATc1-deficient CD8+ T cells. Together with results showing the CsA insensitivity of the CTL killing/degranulation capacities, we assume that some major cellular processes are affected by NFATc1 which are not directly linked to the TCR-induced signal transduction cascade. We also showed the importance of NFATc1 in T cells during intracellular infections with the bacteria Listeria monocytogenes in an in vivo mouse model. After five days, only few bacteria were detected in wt mice whereas high amounts of Listeria particles were extracted from livers of Nfatc1fl/fl x Cd4 cre mice. Although the reactivity towards the pathogen was similar in both groups, a decreased cytokine expression in NFATc1-/- CD8+ T cells was observed together with an altered memory cell generation. Our results show the importance of NFATc1 in CD8+ T cells and give some clue for a possible connection to other basal cellular functions, as e.g. the formation of an immunological synapse.}, subject = {Transkriptionsfaktor}, language = {en} } @phdthesis{Weber2014, author = {Weber, David}, title = {Hey target gene regulation in embryonic stem cells and cardiomyocytes}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-101663}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2014}, abstract = {The Notch signaling pathway is crucial for mammalian heart development. It controls cell-fate decisions, coordinates patterning processes and regulates proliferation and differentiation. Critical Notch effectors are Hey bHLH transcription factors (TF) that are expressed in atrial (Hey1) and ventricular (Hey2) cardiomyocytes (CM) and in the developing endocardium (Hey1/2/L). The importance of Hey proteins for cardiac development is demonstrated by knockout (KO) mice, which suffer from lethal cardiac defects, such as ventricular septum defects (VSD), valve defects and cardiomyopathy. Despite this clear functional relevance, little is known about Hey downstream targets in the heart and the molecular mechanism by which they are regulated. Here, I use a cell culture system with inducible Hey1, Hey2 or HeyL expression to study Hey target gene regulation in HEK293 cells, in murine embryonic stem cells (ESC) and in ESC derived CM. In HEK293 cells, I could show that genome wide binding sites largely overlap between all three Hey proteins, but HeyL has many additional binding sites that are not bound by Hey1 or Hey2. Shared binding sites are located close to transcription start sites (TSS) where Hey proteins preferentially bind to canonical E boxes, although more loosely defined modes of binding exist. Additional sites only bound by HeyL are more scattered across the genome. The ability of HeyL to bind these sites depends on the C-terminal part of the protein. Although there are genes which are differently regulated by HeyL, it is unclear whether this regulation results from binding of additional sites by HeyL. Additionally, Hey target gene regulation was studied in ESC and differentiated CM, which are more relevant for the observed cardiac phenotypes. ESC derived CM contract in culture and are positive for typical cardiac markers by qRT PCR and staining. According to these markers differentiation is unaffected by prolonged Hey1 or Hey2 overexpression. Regulated genes are largely redundant between Hey1 and Hey2. These are mainly other TF involved in e.g. developmental processes, apoptosis, cell migration and cell cycle. Many target genes are cell type specifically regulated causing a shift in Hey repression of genes involved in cell migration in ESC to repression of genes involved in cell cycle in CM. The number of Hey binding sites is reduced in CM and HEK293 cells compared to ESC, most likely due to more regions of dense chromatin in differentiated cells. Binding sites are enriched at the proximal promoters of down-regulated genes, compared to up-or non-regulated genes. This indicates that up-regulation primarily results from indirect effects, while down-regulation is the direct results of Hey binding to target promoters. The extent of repression generally correlates with the amount of Hey binding and subsequent recruitment of histone deacetylases (Hdac) to target promoters resulting in histone H3 deacetylation. However, in CM the repressive effect of Hey binding on a subset of genes can be annulled, likely due to binding of cardiac specific activators like Srf, Nkx2-5 and Gata4. These factors seem not to interfere with Hey binding in CM, but they recruit histone acetylases such as p300 that may counteract Hey mediated histone H3 deacetylation. Such a scenario explains differential regulation of Hey target genes between ESC and CM resulting in gene and cell-type specific regulation.}, subject = {Transkriptionsfaktor}, language = {en} } @phdthesis{Dietz2013, author = {Dietz, Lena}, title = {Die Rolle von NFATc1 und NFATc2 bei der Immunpathogenese von Experimenteller Autoimmuner Enzephalomyelitis (EAE), dem Tiermodell der Multiplen Sklerose}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-94569}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2013}, abstract = {Multiple Sklerose (MS) ist eine Autoimmunkrankheit, welche durch Infiltration autoreaktiver Immunzellen in das Zentrale Nervensystem (ZNS) gekennzeichnet ist. Hierbei gelten insbesondere Th1- und Th17-Zellen als wichtige Mediatoren der ZNS-Entz{\"u}ndungsreaktion. Beide T-Helfer-Zellarten k{\"o}nnen durch regulatorische T-Zellen (Tregs) in ihrer Funktion supprimiert werden. NFAT(Nuclear Factors of Activated T cells)-Transkriptionsfaktoren werden nach TCR-Antigen-Stimulation induziert und regeln - als pleiotrope Transkriptionsfaktoren - viele funktionelle Prozesse in T-Zellen. Um die Rolle dieser Faktoren bei der Immunpathogenese von MS zu analysieren, wurden unterschiedliche NFAT-defiziente Mausst{\"a}mme auf den Krankheitsverlauf des Tiermodells Experimentelle Autoimmune Enzephalomyelitis (EAE) hin untersucht. Es konnte gezeigt werden, dass sowohl der einzelne Verlust von NFATc1 und NFATc2 in CD4+ T-Zellen als auch das Fehlen einer spezifischen C-terminalen Proteinmodifikation von NFATc1, die SUMOylierung, sich abmildernd auswirkten. Der verminderte klinische Ausgang der EAE beruhte allerdings je nach knock-out auf unterschiedlichen Mechanismen. Im Fall des T-Zell-spezifischen Verlustes von NFATc1 (Nfatc1fl/fl x Cd4cre+ M{\"a}use), erwies sich die EAE aufgrund einer stark eingeschr{\"a}nkten Aktivierung und Effektorzellentwicklung von CD4+ T-Zellen als vermindert. Dies konnte durch eine reduzierte Produktion an pathogenen Effektorzytokinen, wie IFNγ, IL-17A, GM-CSF sowie IL-22 und weniger an IL-17A+ IFNγ+ Doppelproduzenten im ZNS gezeigt werden. Der Verlust von NFATc2 resultierte in einer starken Th2-Antwort im ZNS von Nfatc2-/- EAE-M{\"a}usen einhergehend mit protektiven IL-4- und IL-10-Produzenten. Interessanterweise konnten auch mehr nicht-pathogene Th17-Zellen nachgewiesen werden. Nfatc1/CΔSUMO CD4+ T-Zellen sezernierten sowohl nach in vitro als auch nach in vivo Stimulation erh{\"o}hte Mengen von IL-2. In vitro Kulturen von Th1- und Th17-Zellen wiesen neben dieser erh{\"o}hten IL-2-Sekretion eine verminderte Produktion von IFNγ und IL-17A auf. In {\"U}bereinstimmung mit diesen in vitro Befunden zeigte sich auch in der EAE ein reduziertes Krankheitsbild mit weniger Th1- und Th17-Zellen, daf{\"u}r aber eine IL-2-gef{\"o}rderte Erh{\"o}hung der Treg-Population. Anhand der Erkenntnis, dass NFAT-Faktoren die (Auto)-Immunreaktion entscheidend beeinflussen, k{\"o}nnte die Inhibition einzelner NFAT-Faktoren ein neues Ziel f{\"u}r eine MS-Therapie darstellen.}, subject = {Immunologie}, language = {de} } @phdthesis{Busch2013, author = {Busch, Rhoda}, title = {Redundancy and indispensability of NFATc1-isoforms in the adaptive and innate immune system}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-91096}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2013}, abstract = {Peritonitis is a common disease in man, frequently caused by fungi, such as Candida albicans; however, in seldom cases opportunistic infections with Saccharomyces cerevisiae are described. Resident peritoneal macrophages (prMΦ) are the major group of phagocytic cells in the peritoneum. They express a broad range of surface pattern recognition receptors (PRR) to recognize invaders. Yeast infections are primarily detected by the Dectin-1 receptor, which triggers activation of NFAT and NF-κB pathways. The transcription of the Nfatc1 gene is directed by the two alternative promoters, inducible P1 and relatively constitutive P2 promoter. While the role of P1-directed NFATc1α-isoforms to promote survival and proliferation of activated lymphocytes is well-established, the relevance of constitutively generated NFATc1β-isoforms, mainly expressed in resting lymphocytes, myeloid and non-lymphoid cells, remains unclear. Moreover, former work at our department indicated different roles for NFATc1α- and NFATc1β-proteins in lymphocytes. Our data revealed the functional role of NFATc1 in peritoneal resident macrophages. We demonstrated that the expression of NFATc1β is required for a proper immune response of prMΦ during fungal infection-induced acute peritonitis. We identified Ccl2, a major chemokine produced in response to fungal infections by prMΦ, as a novel NFATc1 target gene which is cooperatively regulated through the NFAT- and canonical NF-κB pathways. Consequently, we showed that NFATc1β deficiency in prMΦ results in a decreased infiltration of inflammatory monocytes, leading to a delayed clearance of peritoneal fungal infection. We could further show that the expression of NFATc1β-isoforms is irrelevant for homeostasis of myeloid and adaptive immune system cells and that NFATc1α- (but not β-) isoforms are required for a normal development of peritoneal B1a cells. In contrast to the situation in myeloid cells, NFATc1β deficiency is compensated by increased expression of NFATc1α-isoforms in lymphoid cells. As a consequence, NFATc1ß is dispensable for activation of the adaptive immune system. Taken together our results illustrate the redundancy and indispensability of NFATc1-isoforms in the adaptive and innate immune system, indicating a complex regulatory system for Nfatc1 gene expression in different compartments of the immune system and likely beyond that.}, subject = {Immunsystem}, language = {en} } @phdthesis{Mihlan2012, author = {Mihlan, Sabrina [geb. Jasper]}, title = {Identifikation von Zonula Occludens 2 (ZO-2) als neuen LASP-1 Interaktionspartner und Aufkl{\"a}rung der LASP-1/ZO-2 Kern-Zytosol Translokation}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-73442}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2012}, abstract = {LASP-1 (LIM und SH3 Dom{\"a}nen Protein) ist ein in Zellen ubiquit{\"a}r vorkommendes Protein, welches in verschiedenen Tumorgeweben eine pathophysiologische {\"U}berexpression aufweist. Das Protein besitzt eine LIM Dom{\"a}ne, zwei Aktinbindungsregionen sowie eine SH3 Dom{\"a}ne und bindet einerseits an dynamischen Aktinstrukturen wie den fokalen Kontakten, Lamellopodien und Membranforts{\"a}tzen, kann andererseits aber auch in den Zellkern translokalisieren. F{\"u}r Aktinstrukturen wirkt LASP-1 als Ger{\"u}stprotein und ist wichtig f{\"u}r die Migration und Proliferation der Zellen. Die Funktion von LASP-1 im Zellkern ist noch nicht bekannt, da aber in Tumorzellen eine erh{\"o}hte nukleare Akkumulation von LASP-1 beobachtet werden konnte, deren Intensit{\"a}t mit der Tumorgr{\"o}ße sowie dem Langzeit{\"u}berleben der Patientinnen korreliert, ist LASP-1, zus{\"a}tzlich zu seiner Funktion als Strukturprotein, vermutlich auch ein Transkriptionsfaktor oder ein transkriptioneller Kofaktor. Eine Herunterregulation von LASP-1 in verschiedenen Tumorentit{\"a}ten f{\"u}hrt zur Inhibition der Proliferation und Migration. In dieser Arbeit konnte der bisher unbekannte Zellkernimport und -export von LASP-1 aufgekl{\"a}rt werden. Maßgeblich daran beteiligt ist ein durch Pulldown Experimente neu identifizierter LASP-1 Bindungspartner: das Zonula Occludens 2 Protein (ZO-2). Mittels Immunpr{\"a}zipitationen und Immunfluoreszenzen wurde diese Interaktion best{\"a}tigt. Nach Phosphorylierung von LASP-1 an Ser-146 durch Aktivierung der cAMP-abh{\"a}ngigen Proteinkinase (PKA) kommt es zu einer partiellen Abl{\"o}sung des LASP-1/ZO-2 Komplexes aus den fokalen Kontakten hin zu einer vermehrten Kernlokalisation beider Proteine. Dies l{\"a}sst sich durch Kern/Zytosol Trennungen belegen. Dabei ist die Bindung von LASP-1 an ZO-2 essentiell f{\"u}r die Translokation in den Zellkern, da bei einem ZO-2 Knockdown auch nach PKA Aktivierung LASP-1 zytosolisch lokalisiert bleibt. Wie Mutationsanalysen zeigen, findet die Interaktion zwischen der C-terminalen SH3 Dom{\"a}ne im LASP-1 und der Prolin-reichen SH3-Bindungssequenz im Bereich der Aminos{\"a}uren 1103-1121 am C-Terminus im ZO-2 statt. Die Translokation des Komplexes in den Kern erfolgt dabei {\"u}ber das Kernlokalisationssignal im ZO-2, da die LASP-1 Sequenz selbst keine nukleare Importsequenz aufweist. Im Zellkern konnte die direkte Interaktion von LASP-1 und ZO-2 mittels Duolink® Proximity Ligation Assay sichtbar gemacht werden. Der Export der Proteine erfolgt {\"u}ber das Protein CRM1. Eine Inhibition der Kernexportmaschinerie mit Leptomycin B erh{\"o}ht die Konzentration beider Proteine im Zellkern. Das nukleare Exportsignal (NES) im LASP-1 konnte durch Punktmutationen N-terminal der Leucin-reichen Aminos{\"a}uresequenz 70-77 zugeordnet werden (NLRLKQQS). Im letzten Schritt dieses Zyklus erfolgt die Relokalisation von LASP-1 zur{\"u}ck an die Zellmembranstrukturen. Der neu gefundene Signalweg dient wahrscheinlich zur Weiterleitung von externen Stimuli in den Kern und zur Genregulation - mit LASP-1 als Transkriptionsfaktor oder transkriptionellen Kofaktor.}, subject = {Tumorzelle}, language = {de} } @phdthesis{Thoma2011, author = {Thoma, Eva Christina}, title = {Directed differentiation of pluripotent stem cells induced by single genes}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-54706}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2011}, abstract = {Pluripotency describes the ability of stem cells to form every cell type of the body.. Pluripotent stem cells are e.g. embryonic stem cells (ESCs), but also the so called induced pluripotent stem cells (IPS cells), that are generated by reprogramming differentiated somatic cells into a pluripotent state. Furthermore, it has been shown that spermatogonia (SG) derived from adult testes of mouse or human are pluripotent. Because of their ability to differentiate into every somatic cell type, pluripotent stem cells have a unique status in research and regenerative medicine. For the latter, they offer a valuable opportunity to replace destroyed tissues or organs. For basic research, stem cells represent a useful system to study differentiation or developmental processes that are difficult to access in the physiological situation e.g. during embryogenesis. Both applications, however, require methods that allow efficient and directed differentiation of stem cells into defined specialized cell types. This study first aims to investigate the differentiation potential of SG derived from the teleost fish medaka (Oryzias latipes). My results demonstrate that medaka SG are able to form different somatic cell types, namely adipocytes, melanocytes, osteoblasts, and neurons. This indicates that medake SG have retained a broad differentiation potential suggesting that pluripotency is not restricted to mouse and human SG but might be conserved among vertebrates. Next, I wanted to establish a differentiation method that is solely based on ectopic expression of genes known to be essential for the formation of certain somatic cell types - so called master regulators (MRs). My findings show that ectopic expression of the melanocyte-specific transcription factor mitf-m that has previously been shown to induce differentiation of medaka ESCs into pigment cells resulted in the formation of the same cell type in medaka SG. This approach could be used to generate other somatic cell types. Thus, ectopic expression of the MRs cbfa1 and mash1 in MF-SG was sufficient to induce differentiation into osteoblasts and neurons, respectively. Interestingly, these differentiation processes included the activation of genes that are expressed earlier during embryogenesis than the differentiation-inducing MR. Furthermore, my findings show that the approach of MR-induced differentiation can be transferred to mammalian stem cell systems. Ectopic expression of the neural transcription factor ngn2 was sufficient to induce efficient and rapid differentiation of neurons in mouse ESCs. This differentiation process also included the induction of genes that in vivo are activated at earlier stages that ngn2. By generating a transgenic cell line allowing induction of ectopic ngn2 expression, it was possible to obtain a relatively pure culture of functional neurons. Ngn2-induced differentiation did not require any additional signals and occurred even under pluripotency promoting conditions. Moreover, ectopic expression of ngn2 did also induce the formation of cells with neuronal morphology in IPS cells indicating that MR-induced differentiation is operative in different stem cell types. Furthermore, protein transduction of Ngn2 into mouse ESCs also resulted in a neuronal differentiation process up to the appearance of neural precursor cells. Last, my results show that MR-induced differentiation can also be used to generate other cell types than neurons from mouse ESCs. Myoblasts and macrophage-like cells were generated by ectopic expression of the MRs myoD and cebpa, respectively. Using transgenic cell lines enabling induction of MR expression it was possible to obtain mixed cultures with two different differentiation processes occurring in parallel. Altogether this study shows that ectopic expression of single genes is sufficient to induce directed differentiation of stem cells into defined cell types. The feasibility of this approach was demonstrated for different MRs and consequently different somatic cell types. Furthermore, MR induced differentiation was operative in different stem cell types from fish and mouse. Thus, one can conclude that certain genes are able to define cell fates in in vitro stem cell systems and that this cell fate defining potential appears to be a conserved feature in vertebrates. These findings therefore provide new insights in the role of MRs in cell commitment and differentiation processes. Furthermore, this study presents a new method to induce directed differentiation of stem cells that offers several advantages regarding efficiency, rapidness, and reproducibility. MR-induced differentiation therefore represents a promising tool for both stem cell research and regenerative medicine.}, subject = {Stammzelle}, language = {en} } @phdthesis{Heisig2011, author = {Heisig, Julia}, title = {Identifizierung neuer Zielgene der Hey bHLH Transkriptionsfaktoren}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-65053}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2011}, abstract = {Der Notch Signalweg spielt w{\"a}hrend der Embryonalentwicklung eine zentrale Rolle in der Spezifizierung des Zellschicksales, der Proliferation und der Kommunikation benachbarter Zellen. Die Hey bHLH Transkriptionsfaktoren sind Zielgene des Notch-Signalweges und besitzen wichtige Funktionen in der kardiovaskul{\"a}ren Entwicklung. Hey2 Knockout (KO) M{\"a}use und Hey1/HeyL Doppelknockout-M{\"a}use (DKO) sind gekennzeichnet durch eine fehlerhafte Ausbildung der Herzscheidewand und der Herzklappen und durch eine unzureichende Differenzierung w{\"a}hrend der Blutgef{\"a}ßentwicklung. Ziel dieser Arbeit war es, neue Zielgene der Hey Proteine zu finden, um ihre Funktion in der Organentwicklung und die Auspr{\"a}gung der Hey KO Maus-Ph{\"a}notypen besser verstehen zu k{\"o}nnen. Dazu wurde als Methode eine Kombination aus Microarray-Analyse und Chromatinimmunpr{\"a}zipitation (ChIP) gew{\"a}hlt, um gleichzeitig einen {\"U}berblick {\"u}ber die regulierten Zielgene und der direkt gebundenen Promotoren zu gewinnen. Als Zellkulturmodell wurden HEK293-Zellen genutzt, die doxyzyklin-induzierbar Flag-markiertes Hey1, bzw. Hey2 Protein {\"u}berexprimieren. Eine Microarray-Analyse nach {\"U}berexpression von Hey1, bzw. Hey2 ergab insgesamt ca. 100 bis zu 5-fach herunterregulierte Zielgene und nur f{\"u}r Hey2 15 Gene, die st{\"a}rker als 2-fach hochreguliert waren. Eine ChIP mit αFlag-Antik{\"o}rper zeigte eine direkte DNA-Bindung von Hey1, bzw. Hey2, im proximalen Promotorbereich von 4 herunterregulierten Zielgenen (HEY1, BMP2, KLF10 und FOXC1). Ist jedoch die DNA-bindende basische Dom{\"a}ne des Hey1-Proteins deletiert, bzw. durch Aminos{\"a}ureaustausche (3 Arginine zu 3 Lysine) vermutlich nicht mehr DNA-bindend, kann eine Herunterregulation der Zielgene nach {\"U}berexpression der Hey1-Mutanten nicht mehr festgestellt werden. Ebenso kann eine Bindung der Hey1-Mutanten an die ausgew{\"a}hlten Promotoren von HEY1, BMP2, KLF10 oder FOXC1 mit ChIP nicht mehr nachgewiesen werden. Dies deutet darauf hin, dass die basische Dom{\"a}ne essentiell f{\"u}r die DNA-Bindung und f{\"u}r die Funktion der Hey Proteine ist. Mit ChIP-PET und anschließender Hochdurchsatz-Sequenzierung wurde ein genomweiter Screen der Hey1- und der Hey2-Bindungsstellen in HEK293-Zellen durchgef{\"u}hrt. F{\"u}r Hey1 wurden 1453 Zielgene, f{\"u}r Hey2 4288 Zielgene bestimmt, wobei 1147 Gene gemeinsame Zielgene von Hey1 und Hey2 waren. Obwohl die Bindungsstellen in 5'- und 3'-Richtung von kodierenden Sequenzen und auch in Exons und Introns lokalisiert waren, waren 55 \%, bzw. 49 \% aller Bindungsstellen f{\"u}r Hey1, bzw. Hey2 im proximalen Promotorbereich von -0,5 kb und im ersten Exon lokalisiert. Eine in silico Analyse des Bindemotivs deutete auf eine repetitive GC-haltige Sequenz hin, die vermutlich in CpG Inseln lokalisiert ist. Diese Ergebnisse weisen auf eine direkte Regulation der Transkriptionsmaschinerie durch die Hey Proteine hin. Ein Vergleich der Zielgene aus den Microarray-Analysen mit den ChIP-PET Daten zeigte einen hohen Anteil an herunterregulierten Genen mit Bindestellen, die direkt von Hey gebunden waren. W{\"a}hrend 60 \% der herunterregulierten Hey2 Zielgene in der ChIP-PET Analyse eine direkte DNA-Bindung zeigen, weisen nur 20 \% der hochregulierten Gene Bindestellen f{\"u}r Hey2 auf. Dies spricht f{\"u}r eine {\"u}berwiegende Repressorfunktion der Hey Proteine. Um zu {\"u}berpr{\"u}fen, inwieweit die Hey Proteine zelltypspezifisch verschiedene Zielgene regulieren, wurden embryonale Stammzellen (ES-Zellen) generiert, die ebenfalls doxyzyklin-induzierbar Hey1, bzw. Hey2 {\"u}berexprimieren. Diese ES-Zellen konnten effektiv zu Kardiomyozyten differenziert werden, so dass auch in diesen Zellen eine Hey {\"U}berexpression induziert und somit eine Genexpressionsanalyse durchgef{\"u}hrt werden konnte. Microarray Analysen der ES-Zellen und Kardiomyozyten ergaben mehr hoch- als herunterregulierte Gene im Vergleich zu HEK293-Zellen. Die {\"U}berlappung an gemeinsam regulierten Zielgenen in HEK293, ES-Zellen und Kardiomyozyten war sehr gering. Nur zwei Hey2-Zielgene wurden gleichzeitig in HEK293 und ES-Zellen st{\"a}rker als 2-fach reguliert (Hes1, Zic2). Diese geringe {\"U}berlappung deutet auf ein enges zelltypspezifische Regulationspotential hin. Eine Genontologie-Analyse aller Zielgene zeigte Interaktionen der Hey Proteine mit verschiedenen Signalwegen (z.B. TGFβ-, Id- oder Wnt-Signalweg), die alle unersetzlich in fr{\"u}hen Entwicklungsprozessen sind. Diese Ergebnisse deuten darauf hin, dass die Hey Proteine zelltypspezifisch die Expression von Genen aus verschiedenen Signalwegen beeinflussen und modulieren k{\"o}nnen. Weiterhin er{\"o}ffnen diese Daten neue M{\"o}glichkeiten f{\"u}r zuk{\"u}nftige Forschung, um die Rolle der Hey Proteine in der fr{\"u}hen Organentwicklung genauer ergr{\"u}nden.}, subject = {Gen notch}, language = {de} }