TY - JOUR A1 - Klotz, Barbara A1 - Mentrup, Birgit A1 - Regensburger, Martina A1 - Zeck, Sabine A1 - Schneidereit, Jutta A1 - Schupp, Nicole A1 - Linden, Christian A1 - Merz, Cornelia A1 - Ebert, Regina A1 - Jakob, Franz T1 - 1,25-Dihydroxyvitamin D3 Treatment Delays Cellular Aging in Human Mesenchymal Stem Cells while Maintaining Their Multipotent Capacity JF - PLoS ONE N2 - 1,25-dihydroxyvitamin D3 (1,25D3) was reported to induce premature organismal aging in fibroblast growth factor-23 (Fgf23) and klotho deficient mice, which is of main interest as 1,25D3 supplementation of its precursor cholecalciferol is used in basic osteoporosis treatment. We wanted to know if 1,25D3 is able to modulate aging processes on a cellular level in human mesenchymal stem cells (hMSC). Effects of 100 nM 1,25D3 on hMSC were analyzed by cell proliferation and apoptosis assay, beta-galactosidase staining, VDR and surface marker immunocytochemistry, RT-PCR of 1,25D3-responsive, quiescence-and replicative senescence-associated genes. 1,25D3 treatment significantly inhibited hMSC proliferation and apoptosis after 72 h and delayed the development of replicative senescence in long-term cultures according to beta-galactosidase staining and P16 expression. Cell morphology changed from a fibroblast like appearance to broad and rounded shapes. Long term treatment did not induce lineage commitment in terms of osteogenic pathways but maintained their clonogenic capacity, their surface marker characteristics (expression of CD73, CD90, CD105) and their multipotency to develop towards the chondrogenic, adipogenic and osteogenic pathways. In conclusion, 1,25D3 delays replicative senescence in primary hMSC while the pro-aging effects seen in mouse models might mainly be due to elevated systemic phosphate levels, which propagate organismal aging. KW - perspectives KW - bone marrow KW - mutant mice KW - oxidative stress KW - transcription factors KW - vitamin-D-receptor KW - differentiation KW - tissue KW - 2',7'-dichlorofluorescin KW - homeostasis Y1 - 2012 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-133392 VL - 7 IS - 1 ER - TY - JOUR A1 - Degenkolbe, Elisa A1 - König, Jana A1 - Zimmer, Julia A1 - Walther, Maria A1 - Reißner, Carsten A1 - Nickel, Joachim A1 - Plöger, Frank A1 - Raspopovic, Jelena A1 - Sharpe, James A1 - Dathe, Katharina A1 - Hecht, Jacqueline T. A1 - Mundlos, Stefan A1 - Doelken, Sandra C. A1 - Seemann, Petra T1 - A GDF5 Point Mutation Strikes Twice - Causing BDA1 and SYNS2 JF - PLOS Genetics N2 - Growth and Differentiation Factor 5 (GDF5) is a secreted growth factor that belongs to the Bone Morphogenetic Protein (BMP) family and plays a pivotal role during limb development. GDF5 is a susceptibility gene for osteoarthritis (OA) and mutations in GDF5 are associated with a wide variety of skeletal malformations ranging from complex syndromes such as acromesomelic chondrodysplasias to isolated forms of brachydactylies or multiple synostoses syndrome 2 (SYNS2). Here, we report on a family with an autosomal dominant inherited combination of SYNS2 and additional brachydactyly type A1 (BDA1) caused by a single point mutation in GDF5 (p.W414R). Functional studies, including chondrogenesis assays with primary mesenchymal cells, luciferase reporter gene assays and Surface Plasmon Resonance analysis, of the GDF5 W-414R variant in comparison to other GDF5 mutations associated with isolated BDA1 (p.R399C) or SYNS2 (p.E491K) revealed a dual pathomechanism characterized by a gain-and loss-of-function at the same time. On the one hand insensitivity to the main GDF5 antagonist NOGGIN (NOG) leads to a GDF5 gain of function and subsequent SYNS2 phenotype. Whereas on the other hand, a reduced signaling activity, specifically via the BMP receptor type IA (BMPR1A), is likely responsible for the BDA1 phenotype. These results demonstrate that one mutation in the overlapping interface of antagonist and receptor binding site in GDF5 can lead to a GDF5 variant with pathophysiological relevance for both, BDA1 and SYNS2 development. Consequently, our study assembles another part of the molecular puzzle of how loss and gain of function mutations in GDF5 affect bone development in hands and feet resulting in specific types of brachydactyly and SYNS2. These novel insights into the biology of GDF5 might also provide further clues on the pathophysiology of OA. KW - dominant-negative mutatio KW - morphogenetic protein receptors KW - brachtydacyly type A2 KW - BMP KW - gene encoding noggin KW - growth factor beta KW - signal tranduction KW - molecular mechanism KW - crystal-structure KW - differentiation Y1 - 2013 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-127556 SN - 1553-7404 VL - 9 IS - 10 ER - TY - JOUR A1 - Hofgaard, Peter O. A1 - Jodal, Henriette C. A1 - Bommert, Kurt A1 - Huard, Bertrand A1 - Caers, Jo A1 - Carlsen, Harald A1 - Schwarzer, Rolf A1 - Schünemann, Nicole A1 - Jundt, Franziska A1 - Lindeberg, Mona M. A1 - Bogen, Bjarne T1 - A Novel Mouse Model for Multiple Myeloma (MOPC315.BM) That Allows Noninvasive Spatiotemporal Detection of Osteolytic Disease JF - PLoS One N2 - Multiple myeloma (MM) is a lethal human cancer characterized by a clonal expansion of malignant plasma cells in bone marrow. Mouse models of human MM are technically challenging and do not always recapitulate human disease. Therefore, new mouse models for MM are needed. Mineral-oil induced plasmacytomas (MOPC) develop in the peritoneal cavity of oil-injected BALB/c mice. However, MOPC typically grow extramedullary and are considered poor models of human MM. Here we describe an in vivo-selected MOPC315 variant, called MOPC315.BM, which can be maintained in vitro. When injected i.v. into BALB/c mice, MOPC315.BM cells exhibit tropism for bone marrow. As few as 10\(^4\) MOPC315.BM cells injected i.v. induced paraplegia, a sign of spinal cord compression, in all mice within 3-4 weeks. MOPC315.BM cells were stably transfected with either firefly luciferase (MOPC315.BM.Luc) or DsRed (MOPC315.BM.DsRed) for studies using noninvasive imaging. MOPC315.BM.Luc cells were detected in the tibiofemoral region already 1 hour after i.v. injection. Bone foci developed progressively, and as of day 5, MM cells were detected in multiple sites in the axial skeleton. Additionally, the spleen (a hematopoietic organ in the mouse) was invariably affected. Luminescent signals correlated with serum myeloma protein concentration, allowing for easy tracking of tumor load with noninvasive imaging. Affected mice developed osteolytic lesions. The MOPC315.BM model employs a common strain of immunocompetent mice (BALB/c) and replicates many characteristics of human MM. The model should be suitable for studies of bone marrow tropism, development of osteolytic lesions, drug testing, and immunotherapy in MM. KW - resistance KW - CD4(+) T-cells KW - tumor specific antigen KW - plasma cells KW - B cell KW - C57BL/KALWRIJ mouse KW - bone disease KW - scid mice KW - idiotype KW - differentiation Y1 - 2012 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-131117 VL - 7 IS - 12 ER - TY - JOUR A1 - Barnekow, Angelika A1 - Gessler, Manfred T1 - Activation of the pp60\(^{c-src}\) kinase during differentiation of monomyelocytic cells in vitro N2 - Tbe proto-oncogene c-src, the cellular homolog of the Rous sarcoma virus (RSV) transforming gene v-src, is expressed in a tissue-specific and age-dependent manner. Its physiological function, although still unknown, appears to be more closely related to differentiation processes than to proliferation processes. To obtain more information about the physiological role of the c-src gene in cells, we have studied differentiation-dependent alterations using the human HL-60 leukaemia cell line as a model system. Induction of monocytic and granulocytic differentiation of HL-60 cells by 12-0-tetradecanoylphorbol-13-acetate (TPA) and dimethylsulfoxide (DMSO) is associated with an activation of the pp60c-src tyrosine kinase, but not with increased c-src gene expression. Control experiments exclude an interaction of TPA and DMSO themselves with the pp60c-src kinase. KW - Biochemie KW - c-src KW - differentiation KW - protein tyrosine kinase KW - protooncogene Y1 - 1986 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-59278 ER - TY - THES A1 - Zimmermann, Henriette T1 - Antigenic variation and stumpy development in \(Trypanosoma\) \(brucei\) T1 - Antigene Variation und Stumpy Entwicklung in \(Trypanosoma\) \(brucei\) N2 - The eukaryotic parasite Trypanosoma brucei has evolved sophisticated strategies to persist within its mammalian host. Trypanosomes evade the hosts' immune system by antigenic variation of their surface coat, consisting of variant surface glycoproteins (VSGs). Out of a repertoire of thousands of VSG genes, only one is expressed at any given time from one of the 15 telomeric expression sites (ES). The VSG is stochastically exchanged either by a transcriptional switch of the active ES (in situ switch) or by a recombinational exchange of the VSG within the active ES. However, for infections to persist, the parasite burden has to be limited. The slender (sl) bloodstream form secretes the stumpy induction factor (SIF), which accumulates with rising parasitemia. SIF induces the irreversible developmental transition from the proliferative sl to the cell cycle-arrested but fly-infective stumpy (st) stage once a concentration threshold is reached. Thus, antigenic variation and st development ensure persistent infections and transmissibility. A previous study in monomorphic cells indicated that the attenuation of the active ES could be relevant for the development of trypanosomes. The present thesis investigated this hypothesis using the inducible overexpression of an ectopic VSG in pleomorphic trypanosomes, which possess full developmental competence. These studies revealed a surprising phenotypic plasticity: while the endogenous VSG was always down-regulated upon induction, the ESactivity determined whether the VSG overexpressors arrested in growth or kept proliferating. Full ES-attenuation induced the differentiation of bona fide st parasites independent of the cell density and thus represents the sole natural SIF-independent differentiation trigger to date. A milder decrease of the ES-activity did not induce phenotypic changes, but appeared to prime the parasites for SIF-induced differentiation. These results demonstrate that antigenic variation and development are linked and indicated that the ES and the VSG are independently regulated. Therefore, I investigated in the second part of my thesis how ES-attenuation and VSG-silencing can be mediated. Integration of reporters with a functional or defective VSG 3'UTR into different genomic loci showed that the maintenance of the active state of the ES depends on a conserved motif within the VSG 3'UTR. In situ switching was only triggered when the telomere-proximal motif was partially deleted, suggesting that it serves as a DNA-binding motif for a telomere-associated protein. The VSG levels seem to be additionally regulated in trans based on the VSG 3'UTR independent of the genomic context, which was reinforced by the regulation of a constitutively expressed reporter with VSG 3' UTR upon ectopic VSG overexpression. N2 - Der eukaryotische Parasit Trypanosoma brucei hat komplexe Strategien entwickelt, um in seinem Säugetierwirt zu überleben. Die Grundlage der Immunevasion ist die antigene Variation des Oberflächenmantels, der aus dem variablen Oberflächenglykoprotein (VSG) besteht. Von mehreren tausend VSG-Genen wird zu jedem Zeitpunkt nur ein einziges aus einer der 15 telomerischen Expressionsstellen (ES) exprimiert. Das VSG kann entweder durch einen transkriptionellen Wechsel der aktiven ES (in situ Wechsel) oder durch einen rekombinatorischen Wechsel des VSG-Gens innerhalb der aktiven ES stochastisch ausgetauscht werden. Damit jedoch eine langanhaltende Infektion des Wirts möglich wird, muss gleichzeitig der Parasitenbefall begrenzt werden. Mit ansteigender Parasitämie akkumuliert der 'stumpy induction factor' (SIF), welcher von der 'slender' (sl) Blutstromform sekretiert wird. Sobald ein Schwellenwert in der SIF-Konzentration erreicht ist, wird die irreversible Differenzierung der proliferativen sl in die zellzyklusarretierte 'stumpy'(st) Form eingeleitet, welche infektiös für den Fliegenvektor ist. Somit stellen antigene Variation und st- Differenzierung das Persistieren der Infektion und die Übertragung des Parasiten sicher. Eine frühere Arbeit mit monomorphen Zellen deutete darauf hin, dass die Attenuierung der aktiven ES eine Rolle für die Differenzierung der Trypanosomen spielen könnte. Diese Hypothese wurde in der vorliegenden Dissertation untersucht, indem in pleomorphen Zellen mit vollständiger Entwicklungskompetenz ein ektopisches VSG induzierbar überexprimiert wurde. Diese Studien offenbarten eine erstaunliche phänotypische Plastizität: während das endogene VSG nach Induktion runter reguliert wurde, arretierten die VSG-Überexpressoren in Abhängigkeit von der ES-Aktivität entweder im Wachstum oder teilten sich weiter. Die vollständige ES-Attenuierung löste die Differenzierung zu echten st Zellen unabhängig von der Zelldichte aus und ist somit der bisher einzige natürliche SIF-unabhängige Differenzierungsauslöser. Eine mildere Abnahme der ES-Aktivität verursachte keinen Phänotyp, scheint aber die Zellen auf die SIF-induzierte Differenzierung vorzubereiten. Diese Ergebnisse zeigen, dass antigene Variation und Differenzierung verbunden sind und deuteten an, dass die ES und das VSG unabhängig voneinander reguliert werden. Daher habe ich im zweiten Teil meiner Dissertation untersucht, wie ES-Attenuierung und VSG-Stilllegung vermittelt werden können. Die Integration eines Reporters mit funktioneller oder defekter VSG 3'UTR an verschiedenen Orten im Genom zeigte, dass die Aufrechterhaltung der ES-Aktivität von einem konservierten Motiv in der VSG 3'UTR abhängig ist. Ein in situ Wechsel wurde nur ausgelöst, wenn Teile des Telomer-proximalen Motiv deletiert wurden, was nahelegt, dass das Motiv auf DNA-Ebene von einem Telomerbindeprotein erkannt wird. Die VSG-Level scheinen unabhängig vom genomischen Kontext zusätzlich in trans basierend auf der VSG 3'UTR reguliert zu werden, was durch die Regulation eines konstitutiv exprimierten Reporters mit VSG 3'UTR nach VSG-Überexpression bekräftigt wurde. KW - Trypanosoma brucei KW - Genexpression KW - Entwicklung KW - Parasit KW - VSG KW - antigenic variation KW - monoallelic expression KW - stumpy development KW - differentiation Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-146902 ER - TY - JOUR A1 - Schilbach, Karin A1 - Alkhaled, Mohammed A1 - Welker, Christian A1 - Eckert, Franziska A1 - Blank, Gregor A1 - Ziegler, Hendrik A1 - Sterk, Marco A1 - Müller, Friederike A1 - Sonntag, Katja A1 - Wieder, Thomas A1 - Braumüller, Heidi A1 - Schmitt, Julia A1 - Eyrich, Matthias A1 - Schleicher, Sabine A1 - Seitz, Christian A1 - Erbacher, Annika A1 - Pichler, Bernd J. A1 - Müller, Hartmut A1 - Tighe, Robert A1 - Lim, Annick A1 - Gillies, Stephen D. A1 - Strittmatter, Wolfgang A1 - Röcken, Martin A1 - Handgretinger, Rupert T1 - Cancer-targeted IL-12 controls human rhabdomyosarcoma by senescence induction and myogenic differentiation JF - OncoImmunology N2 - Stimulating the immune system to attack cancer is a promising approach, even for the control of advanced cancers. Several cytokines that promote interferon-γ-dominated immune responses show antitumor activity, with interleukin 12 (IL-12) being of major importance. Here, we used an antibody-IL-12 fusion protein (NHS-IL12) that binds histones of necrotic cells to treat human sarcoma in humanized mice. Following sarcoma engraftment, NHS-IL12 therapy was combined with either engineered IL-7 (FcIL-7) or IL-2 (IL-2MAB602) for continuous cytokine bioavailability. NHS-IL12 strongly induced innate and adaptive antitumor immunity when combined with IL-7 or IL-2. NHS-IL12 therapy significantly improved survival of sarcoma-bearing mice and caused long-term remissions when combined with IL-2. NHS-IL12 induced pronounced cancer cell senescence, as documented by strong expression of senescence-associated p16\(^{INK4a}\) and nuclear translocation of p-HP1γ, and permanent arrest of cancer cell proliferation. In addition, this cancer immunotherapy initiated the induction of myogenic differentiation, further promoting the hypothesis that efficient antitumor immunity includes mechanisms different from cytotoxicity for efficient cancer control in vivo. KW - TH17 cells KW - cancer-targeted IL-12 KW - differentiation KW - humanized mice KW - immunocytokine KW - immunotherapy KW - M1/M2 macrophages KW - rhabdomyosarcoma KW - TH1-induced senescence KW - tumor-infiltrating lymphocytes Y1 - 2015 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-154579 VL - 4 IS - 7 ER - TY - JOUR A1 - Karl, Stefan A1 - Dandekar, Thomas T1 - Convergence behaviour and control in non-linear biological networks JF - Scientific Reports N2 - Control of genetic regulatory networks is challenging to define and quantify. Previous control centrality metrics, which aim to capture the ability of individual nodes to control the system, have been found to suffer from plausibility and applicability problems. Here we present a new approach to control centrality based on network convergence behaviour, implemented as an extension of our genetic regulatory network simulation framework Jimena (http://stefan-karl.de/jimena). We distinguish three types of network control, and show how these mathematical concepts correspond to experimentally verified node functions and signalling pathways in immunity and cell differentiation: Total control centrality quantifies the impact of node mutations and identifies potential pharmacological targets such as genes involved in oncogenesis (e.g. zinc finger protein GLI2 or bone morphogenetic proteins in chondrocytes). Dynamic control centrality describes relaying functions as observed in signalling cascades (e.g. src kinase or Jak/Stat pathways). Value control centrality measures the direct influence of the value of the node on the network (e.g. Indian hedgehog as an essential regulator of proliferation in chondrocytes). Surveying random scale-free networks and biological networks, we find that control of the network resides in few high degree driver nodes and networks can be controlled best if they are sparsely connected. KW - complex networks KW - control profiles KW - differentiation KW - pathways KW - tumors KW - models KW - centrality KW - chondrosarcoma KW - transcriptional regulation KW - regulatory networks Y1 - 2015 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-148510 VL - 5 IS - 09746 ER - TY - THES A1 - Thoma, Eva Christina T1 - Directed differentiation of pluripotent stem cells induced by single genes T1 - Gerichtete Differenzierung pluripotenter Stammzellen induziert durch einzelne Gene N2 - 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. N2 - Pluripotenz bezeichnet die Fähigkeit einer Stammzelle, jede Zelle des Körpers zu bilden. Zu den pluripotenten Stammzellen gehören embryonale Stammzellen (ESZ), aber auch so genannte induzierte pluripotente Stammzellen (IPS Zellen), die durch Rückprogrammierung ausdifferenzierter Körperzellen in einen pluripotenten Status gewonnen werden. Außerdem wurde gezeigt, dass adulte Spermatogonien (SG) in Maus und Mensch pluripotent sind. Pluripotente Stammzellen sind von großer Wichtigkeit für Forschung und regenerative Medizin. Für letztere bieten diese Zellen aufgrund ihrer Fähigkeit, jede Körperzellen zu bilden, eine vielversprechende Möglichkeit, zerstörte Gewebe oder Organe zu ersetzen. In der Forschung stellen sie ein nützliches System dar, um Entwicklungs- und Differenzierungsprozesse zu untersuchen, die in der physiologischen Situation z.B. der Embryonalentwicklung – schwer zugänglich sind. Eine wichtige Grundlage für diese Anwendungen sind jedoch Methoden, die die effiziente und gerichtete Differenzierung von Stammzellen in einen bestimmten Zelltyp erlauben. In dieser Arbeit wird zunächst das Differenzierungspotential von SG der Fischspezies Medaka (Oryzias latipes) untersucht, um festzustellen, ob Pluripotenz von SG, die bisher nur in Maus und Mensch gezeigt wurde, auch in anderen Wirbeltieren außerhalb der Säuger erhalten ist. Meine Ergebnisse zeigen, dass Medaka-SG fähig sind verschiedene somatische Zelltypen zu bilden. Das zweite Ziel dieser Studie ist die Entwicklung einer Differenzierungsmethode, die nur auf der Expression einzelner so genannter Masterregulatoren (MR) beruht – Gene, die als essentiell für die Entwicklung bestimmter Zelltypen bekannt sind. Meine Ergebnisse zeigen, dass der Pigmentzell-spezifische Transkriptionsfaktor Mitf-M, von dem gezeigt wurde, dass er die Differenzierung von Medaka-ESZ in Pigmentzellen induzieren kann, die Bildung desselben Zelltyps in Medaka-SG induziert. Dieser Ansatz ermöglichte auch die Bildung anderer somatischer Zelltypen. So führte Überexpression der MR cbfa1 und mash1 in Medaka SG zur Differenzierung in Osteoblasten bzw. Neuronen. Interessanterweise wurde bei diesen Differenzierungsprozessen die Aktivierung von Genen beobachtet, die während der Embryonalentwicklung vor dem Differenzierung-auslösenden MR aktiviert werden. Weiterhin zeigen meine Ergebnisse, dass der Ansatz einer gerichteten Differenzierung, ausgelöst durch einzelne MR, auch auf Säuger-Stammzellen übertragen werden kann. So wurde durch Überexpression des neuronalen Genes ngn2 in murinen ESZ die effiziente und schnelle Bildung von Nervenzellen induziert, wobei auch hier die Aktivierung von Genen beobachtet wurde, deren Expression in der Embryogenese der von ngn2 vorangeht. Die Herstellung einer transgenen Zelllinie, in der die Überexpression von ngn2 aktiviert werden kann, erlaubte die Entstehung einer fast reinen Kultur funktionaler Neuronen. Der durch ngn2 ausgelöste Differenzierungsprozess war unabhängig von zusätzlichen Faktoren und lief sogar unter Bedingungen ab, die normalerweise den pluripotenten Zustand unterstützen. Außerdem führte Überexpression von ngn2 auch in IPS Zellen zur Bildung von Zellen mit neuronalem Phenotyp. Weiterhin konnte auch durch Transduktion des Ngn2-Proteins in murine ESZ neuronale Differenzierung ausgelöst werden, und zwar die Bildung neuronaler Vorläuferzellen. Zuletzt wird bewiesen, dass gerichtete Differenzierung von murinen ESZ durch einzelne MR Gene neben neuronalen Zelltypen auch die Bildung anderer somatischer Zellen erlaubt: Überexpression der Gene myoD oder cebpa induzierte die Differenzierung in Muskelzellen bzw. Macrophagen-ähnliche Zellen. Unter Verwendung transgener Zelllinien, die die Aktivierung jeweils eines MRs erlauben, war es möglich, gemischte Kulturen zu erhalten, in denen zwei verschiedene Differenzierungsprozesse parallel abliefen. Diese Studie zeigt, dass die Überexpression einzelner Gene ausreichend ist, um gerichtete Differenzierungsprozesse in einen bestimmten Zelltyp auszulösen. Die erfolgreiche Durchführung dieses Ansatzes wird nicht nur mit verschiedenen Genen und somit verschiedenen resultierenden Zelltypen nachgewiesen, sondern auch in verschiedenen Stammzelltypen aus Fisch und Maus. Dies erlaubt die Schlussfolgerung, dass bestimmte Gene in vitro das Schicksal von Stammzellen festlegen können und dass diese Fähigkeit eine konservierte Eigenschaft in Wirbeltieren zu sein scheint. Somit präsentiert diese Arbeit neuen Erkenntnisse über die Rolle von MR bei der Festlegung von Zellidentitäten und in Differenzierungsprozessen. Weiterhin wird eine neue Methode zur Induktion gerichteter Differenzierung in Stammzellen aufgezeigt, die mehrere Vorteile in Bezug auf Effizienz, Geschwindigkeit und Reproduzierbarkeit hat. Auslösung von Differenzierung durch MR Gene bietet somit einen neuen vielversprechenden Ansatz mit potentieller Anwendung sowohl in Stammzellforschung, als auch in regenerativer Medizin. KW - Stammzelle KW - Zelldifferenzierung KW - Transkriptionsfaktor KW - Pluripotenz KW - Pluripotent stem cells KW - differentiation KW - transcription factors Y1 - 2011 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-54706 ER - TY - JOUR A1 - Weider, Matthias A1 - Wegener, Amélie A1 - Schmitt, Christian A1 - Küspert, Melanie A1 - Hillgärtner, Simone A1 - Bösl, Michael R. A1 - Hermans-Borgmeyer, Irm A1 - Nait-Oumesmar, Brahim A1 - Wegner, Michael T1 - Elevated in vivo levels of a single transcription factor directly convert satellite glia into oligodendrocyte-like cells JF - PLoS Genetics N2 - Oligodendrocytes are the myelinating glia of the central nervous system and ensure rapid saltatory conduction. Shortage or loss of these cells leads to severe malfunctions as observed in human leukodystrophies and multiple sclerosis, and their replenishment by reprogramming or cell conversion strategies is an important research aim. Using a transgenic approach we increased levels of the transcription factor Sox10 throughout the mouse embryo and thereby prompted Fabp7-positive glial cells in dorsal root ganglia of the peripheral nervous system to convert into cells with oligodendrocyte characteristics including myelin gene expression. These rarely studied and poorly characterized satellite glia did not go through a classic oligodendrocyte precursor cell stage. Instead, Sox10 directly induced key elements of the regulatory network of differentiating oligodendrocytes, including Olig2, Olig1, Nkx2.2 and Myrf. An upstream enhancer mediated the direct induction of the Olig2 gene. Unlike Sox10, Olig2 was not capable of generating oligodendrocyte-like cells in dorsal root ganglia. Our findings provide proof-of-concept that Sox10 can convert conducive cells into oligodendrocyte-like cells in vivo and delineates options for future therapeutic strategies. KW - peripheral nervous system KW - Hirschsprung disease KW - spinal-cord KW - boundary cap KW - differentiation KW - stem cells KW - factor Sox10 KW - mouse model KW - expression KW - Olig2 Y1 - 2015 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-144123 VL - 11 IS - 2 ER - TY - THES A1 - Schmidt, Traudel T1 - Establishment of Hey-triple-KO-ES cells and characterisation of Bre, a Hey binding partner T1 - Etablierung von Hey-triple-KO ES-Zellen und Charakterisierung von Bre, einem Hey Bindepartner N2 - Hey1, Hey2 and HeyL are downstream effectors of the Notch signalling pathway. Hey genes play decisive roles during embryonic development for example in cardiovascular development. However, the precise transcriptional programmes and genes, which are affected by each single Hey gene, are still poorly understood. One drawback for the analysis of Hey1, Hey2 or HeyL single gene function is that these genes are co-expressed in many tissues and share a high degree of functional redundancy. Thus, it was necessary to establish a system, which is either devoid of Hey expression, or just comprises one single Hey gene family member. For this, Hey1(fl/fl)/Hey2(-/-)/HeyL(-/-)- as well as Hey-triple- knock out (KO)-ES cells (embryonic stem cells) were generated in this work, because ES cells and their differentiation as EBs (embryoid bodies) represent a valuable tool for the in vitro analysis of embryonic developmental processes. After the establishment of Hey1(fl/fl)/Hey2(-/-)/HeyL(-/-)- and Hey-triple- KO-ES cells, it could be seen by ALP staining and pluripotency marker expression that loss of Hey expression did not affect ES cell pluripotency features. Thus, these ES cells represent bona fide ES cells and could be further used for the differentiation as EBs. Here, differences in gene expression between Hey1(fl/fl)/Hey2(-/-)/HeyL(-/-)- and Hey-triple- KO-ES cells (after the loss of Hey1) could be observed in realtime-RT-PCR analysis for the endodermal marker AFP as well as for neural and myogenic markers in d10 EBs. However, the establishment of inducible Hey1, Hey2 or HeyL ES cell lines will be essential to confirm these findings and to search for novel Hey target genes. To get further insight into the mode of Hey action, the analysis of Hey interaction partners is necessary. One such binding partner, the Bre protein, has previously been found in a yeast-two-hybrid screen. Bre has been described to be a member of two distinct complexes (i.e. the nuclear BRCA1-A complex with a function in DNA damage response and the cytoplasmic BRISC complex), to directly interact with the TNF-receptor and Fas and to interfere with apoptotic signalling. The Hey-Bre interaction could be further corroborated in this work; yet, it was not possible to narrow down the interaction site of Bre with Hey1. It rather seems that non-overlapping parts of the Bre protein may bind to Hey. This interaction may be direct– pointing to more than one interaction site inside the Bre protein – or via a common binding partner such as the endogenous Bre protein itself. Besides the interaction studies, functional assays were performed for a more detailed characterisation of Hey1 and Bre interaction. Here, it could be shown that Hey1 over-expression did not have any influence on Bre sub-cellular localisation. Interestingly, it could be demonstrated that Bre positively interfered with Hey1 repressive function in luciferase assays at three of four promoters analysed. Moreover, interaction with Bre seems to lead to a stabilisation of Hey1. As Bre has been described to modulate the E3-ligase activity intrinsic to the BRCC complex it was analysed whether Bre over-expression results in an ubiquitination of Hey1. Yet, this could not be observed in the present work. Furthermore, an interaction of Bre with ubiquitinated proteins could not be demonstrated in an ubiquitin binding assay. To obtain a better insight into Bre function, Bre LacZ gene trap-ES cells and animals were generated. However, realtime-RT-analyses revealed that these cells and mice did not show a loss of Bre expression on mRNA level indicating that insertion mutagenesis did not occur as expected. However, embryos derived from these mice could nevertheless be used for the detection of tissues with Bre expression by β-galactosidase staining. Bre deficiency on mRNA levels was only achieved after the deletion of the floxed exon 3 resulting in the generation of Bre del-mice. Bre del-mice were fertile and without any obvious phenotype and they were used for the generation of Bre del- and wt-MEFs (murine embryonic fibroblasts). Characterisation of these cells showed that proliferation was not affected after loss of Bre (neither under normal nor under stress conditions). However, loss of Bre notably resulted in a reduction in the BRCA1 DNA damage response, in a slightly increased sensitivity towards apoptosis induction by FasL treatment and in an increase in the K63-poly-ubiquitin content in Bre del-cytoplasmic fractions, probably linked to a change in the BRISC de-ubiquitinase activity. Even though these results have the same tendencies as observed in former studies, the effects in the present work are less striking. Further studies as well as intercrossing of Bre del- to Hey KO-animals will be necessary to further understand the functional relevance of Hey and Bre interaction. N2 - Hey1, Hey2 und HeyL sind Zielgene des Notch Signalwegs und spielen eine entscheidende Rolle während der Embryonalentwicklung, z. B. bei der Bildung des kardiovaskulären Systems. Die genauen Effekte eines jeden einzelnen Hey Gens auf Transkriptionsprogramme und einzelne Gene sind allerdings noch relativ unbekannt. Einer der Gründe hierfür liegt vermutlich in der Koexpression von Hey-Proteinen in vielen Geweben bzw. in der daraus resultierenden funktionellen Redundanz. Daher sollte in dieser Arbeit ein System entwickelt werden, in dem entweder keines oder jeweils nur eines der Hey-Gene intakt ist. Hierzu wurden Hey1fl/fl/Hey2-/-/HeyL-/- und Hey-triple-knock out (KO) ES-Zellen (embryonale Stammzellen) etabliert. ES-Zellen stellen ein hervorragendes Modellsystem für die Embryonalentwicklung dar, weil ihre in vitro Differenzierung als sog. „embryoid bodies“ (EBs) embryonale Entwicklungsprozesse widerspiegelt. Der Verlust der Hey-Genexpression hatte keinen Einfluss auf den Stammzellcharakter der etablierten Zellen, da sowohl die generierten Hey-triple-KO- als auch die Hey1fl/fl/Hey2-/-/HeyL-/--ES-Zellen eine positive ALP-Färbung sowie eine hohe Expression von Pluripotenzmarkern zeigten. Daher konnten die Zellen im Folgenden als EBs differenziert und auf Genexpressionsunterschiede während der Differenzierung untersucht werden. Zwischen Hey1fl/fl/Hey2-/-/HeyL-/-- (mit intakter Hey1-Expression) und Hey-triple- KO- ES Zellen konnten an EB Tag 10 mittels realtime-RT-PCR Unterschiede in der Genexpression für den endodermalen Marker AFP, sowie für neurale und myogene Marker festgestellt werden. Um diese Ergebnisse zu bestätigen, aber auch, um neue Hey Zielgene ausfindig machen zu können, ist jedoch die Etablierung induzierbarer ES-Zellen (für Hey1, Hey2 bzw. HeyL) notwendig. Um einen tieferen Einblick in die Funktionsweise der Hey-Gene gewinnen zu können ist die Untersuchung von Hey Interaktionspartnern wichtig. Das Bre-Protein ist ein solcher Bindepartner und wurde zuvor in einem Yeast-two-hybrid Assay gefunden. Bre ist in zwei verschiedenen Komplexen beschrieben worden: dem nukleären BRCA1-A-Komplex, der eine Rolle bei der Detektion von DNA-Schäden spielt und dem cytoplasmatischen BRISC-Komplex. Es ist außerdem bekannt, dass Bre direkt mit dem TNF-Rezeptor und mit Fas interagiert und die apoptotische Antwort in der Zelle beeinflusst. Die Interaktion zwischen Bre und Hey1 konnte in dieser Arbeit zunächst bestätigt werden; in weiteren Ko-immunpräzipitations-Experimenten war es aber nicht möglich, den Bereich des Bre-Proteins zu bestimmen, der die Interaktion mit Hey1 vermittelt, da verschiedene nicht überlappende Bereiche des Bre-Proteins eine Interaktion mit Hey1 zeigten. Ob es sich hierbei um direkte Interaktionen handelte und Bre somit mehrere Bindestellen für Hey1 aufweist oder ob die Interaktion indirekt über einen gemeinsamen Bindepartner wie z.B. das endogene Bre-Protein selbst vermittelt wird, ist noch nicht geklärt. Für eine weitere Charakterisierung der Interaktion zwischen den beiden Proteinen wurden funktionelle Versuche durchgeführt. Hierbei konnte gezeigt werden, dass die Überexpression von Hey1 keinen Einfluss auf die subzelluläre Lokalisation des Bre Proteins hat. Mit Hilfe von Luziferase Assays konnte aber interessanterweise nachgewiesen werden, dass Bre bei drei von vier untersuchten Promotern positiv auf die Repression durch Hey1 einwirkte. Außerdem scheint die Überexpression von Bre möglicherweise eine Stabilisierung des Hey1-Proteins zu bewirken. Da Bre eine Verstärkung der E3-Ligasefunktion des BRCC-Komplexes zugeschrieben wird, wurde außerdem untersucht, ob die Überexpression von Bre zu einer Ubiquitinylierung von Hey1 führt. Dies konnte allerdings nicht festgestellt werden. Desweiteren konnte in einem Ubiquitin-Bindeassay keine Interaktion von Bre mit anderen ubiquitinylierten Proteinen gezeigt werden. ... KW - Embryonale Stammzelle KW - Zeitdifferenzierung KW - Gen notch KW - Knockout KW - Hey KW - Bre KW - Hey KW - embryonic stem cells KW - differentiation KW - interaction KW - Bre-knockout KW - Interaktion Y1 - 2012 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-85459 ER -