@phdthesis{Werner2000, author = {Werner, Monika}, title = {Molekulare Charakterisierung der Reaktion von Lycopersicon esculentum auf den phanerogamen Parasiten Cuscuta reflexa}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-2462}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2000}, abstract = {In der inkompatiblen Interaktion von Lycopersicon esculentum und Cuscuta reflexa wird die Ausbildung von Haustorien, spezieller Organe, die der Nahrungsaufnahme durch den Parasiten dienen,bereits in einem sehr fr{\"u}hen Stadium der Infektion gehemmt. Um einen Einblick in die Regulationsmechanismen der Tomatenreaktion zu gewinnen, wurde eine Subtraktive Hybridisierung durchgef{\"u}hrt und es konnten 20 Gene identifiziert werden, deren Transkripte nach Cuscuta-Befall im Wirtsgewebe akkumulieren. Entsprechend ihrer m{\"o}glichen Proteinfunktion lassen sich die mRNAs verschiedenen Bereichen der Tomatenreaktion im Infektionsprozess zuordnen: (a) Abwehr-assoziierte Proteine, (b) Signaltransduktionsassoziierte Proteine, (c) Zellstreckungsassoziierte Proteine und (d) Proteine mit bislang vollst{\"a}ndig unbekannter Funktion. Einige der identifizierten mRNAs wurden durch Northern Analysen n{\"a}her charakterisiert. Da eine der mRNAs eine m{\"o}gliche Xyloglucanendotransglycosylase (XET) kodiert, wurde die XET-Aktivit{\"a}t im Tomatengewebe nach Infektion bestimmt. Außerdem wurde der Einfluß des Phytohormons Auxin auf die Akkumulation der Xyloglucanendotransglycosylase LeEXT1 sowie des Aquaporins LeAqp2 untersucht. Trotz auxinregulierter Transkription nach Cuscuta-Befall zeigte die auxininsensitive Tomatenmutante diageotropica im Vergleich zum Wildtyp keine ver{\"a}nderte Kompatibilit{\"a}t.}, subject = {Tomate}, language = {de} } @phdthesis{Wiemer2013, author = {Wiemer, Laura Elisa}, title = {In-vitro-Untersuchungen zur molekularen Wirkung von Mitotane beim Nebennierenrindenkarzinom}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-94526}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2013}, abstract = {Das Nebennierenrindenkarzinom ist eine hochmaligne Erkrankung und hat eine schlechte Prognose. Mitotane ist bis heute die einzige hierf{\"u}r zugelassene Therapie. Um die molekularen Mechanismen der Mitotanetherapie besser zu verstehen, wurde die Nebennierenkarzinom-Zelllinie NCI-H295 mit unterschiedlichen Konzentrationen von Mitotane inkubiert und die Wirkung auf mehreren Ebenen untersucht. Dabei kam der Untersuchung der Steroidogenese und apoptotischer Vorg{\"a}nge ein besonderer Fokus zu. In den Hormonanalysen via Immunoassay zeigte sich eine zeit- und konzentrationsabh{\"a}ngige Hemmung der adrenalen Steroidsekretion. So kam es unter 24-st{\"u}ndiger Inkubation mit 100µM Mitotane zu einer Reduktion der Cortisolsekretion um 89\%. Diese Hormonsuppression geht einher mit einer Herabregulation von steroidogenen Enzymen in den durchgef{\"u}hrten Microarray-basierten Genexpressionsanalysen. So konnte gezeigt werden, dass vor allem Steroidbiosynthese-Enzyme der Zona fasciculata und reticularis betroffen sind. Als weitere wichtige Gene im Zusammenhang mit der Beeinflussung des Steroidhaushalts unter Mitotanetherapie konnten SQLE, LDLR, SCD, SREBF1 und ABCG1 identifiziert werden. Gleichzeitig konnte durch Durchflusszytometrie und Zelltod-ELISA die proapoptotische Wirkung von Mitotane gezeigt werden (FACS: 100µM Mitotane, 24 Stunden; Zunahme der Apoptose um den Faktor 2,13). Dies best{\"a}tigte sich beispielsweise auch in der {\"U}berexpression des Apoptosegens BAX in der Real-Time-PCR. Weiterhin zeigte der RNA-Microarray eine starke Expressionszunahme bei Genen, die mit dem programmierten Zelltod zusammenh{\"a}ngen wie GDF15, DUSP4, TRIB3 und CHOP. Ausgehend von den klinischen Effekten und best{\"a}tigt durch die oben genannten in vitro Ergebnisse bewirkt Mitotane auch molekular folgende {\"A}nderungen in Nebennierenrindenzellen: Hemmung der Steroidogenese und Induktion von Apotose. Es stellt sich damit die Frage, ob diese Mechanismen parallel und separat voneinander ablaufen oder ob es einen gemeinsamen Nenner gibt. Interessanterweise ergab die Analyse der Genexpressionsdaten, dass viele der proapoptotischen Gene mit dem sogenannten ER-Stress zusammenh{\"a}ngen. Einerseits k{\"o}nnte Mitotane durch direkte Inhibition der Hormonsekretion wirken, andererseits k{\"o}nnte ER-Stress durch Mitotane-induzierte-Bildung toxischer Lipide, wie Cholesterol, ausgel{\"o}st werden. Um den genauen Wirkmechanismus endg{\"u}ltig zu kl{\"a}ren, werden weitere Experimente ben{\"o}tigt. Mitotane-induzierter ER-Stress liefert einen vollst{\"a}ndig neuen Blickwinkel auf die molekulare Wirkweise von Mitotane auf Nebennierenrindenkarzinomzellen. Gerade da die Mediatoren des ER-Stresses gut definiert und ER-Stress spezifisch sind, k{\"o}nnten sie sinnvolle Ziele in der Therapie darstellen. Die Beobachtung, dass Mitotane ER-Stress hervorruft, k{\"o}nnte in Zukunft somit zur Entwicklung wirksamerer und spezifischerer Therapien des Nebennierenrindenkarzinoms f{\"u}hren und so die infauste Prognose dieser malignen Krankheit verbessern.}, subject = {Nebenniere}, language = {de} } @phdthesis{Wu2006, author = {Wu, Rongxue}, title = {Integrins and SPARC : potential implications for cardiac remodeling}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-17531}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2006}, abstract = {Der enorme Umbau des Herzgewebes, wie man ihn nach Druck{\"u}berlastung des Ventrikels oder MyokardInfarkt beobachten kann, gilt als eine der kausalen Ursachen des Herzversagens. Die Ver{\"a}nderungen in der Architektur des Herzens beeinflussen die mechanischen Eigenschaften des Herzmuskels, begr{\"u}ndet sind sie jedoch in Anpassungsprozessen auf der zellul{\"a}ren Ebene vor allem in einer Modulation der Expression bestimmter Gene. Gemeinsam mit Integrinen, den Transmembran-Rezeptoren, welche die extrazellul{\"a}re Umgebung mit dem intrazellul{\"a}ren Zytoskelett verbinden, geh{\"o}ren Proteine der extrazellul{\"a}ren Matrix (ECM) und matrizellul{\"a}re Proteine zu den Schl{\"u}sselkomponenten, die den Umbauprozess im Herzen steuern. Aus diesen Gr{\"u}nden hatte diese Doktorarbeit zum Ziel, die Rolle der Integrine f{\"u}r die Regulation der Genexpression und die Leistungsf{\"a}higkeit des Herzmuskels w{\"a}hrend der durch Druck{\"u}berlastung oder myokardialen Infarkt (MI) hervorgerufenen Wundheilungsprozesse zu analysieren. Um die Beteiligung von Integrin Beta 1 zu untersuchen, wurde ein experimentelles Modell der Druck{\"u}berlastung im Mausherzen (aortic banding; Konstriktion der Aorta; AB) eingesetzt, wobei M{\"a}use mit einer konditionalen, Herz-spezifischen Deletion des Integrin Beta 1 Gens untersucht wurden. Ein besonderes Augenmerk wurde dabei auf die physiologischen Unterschiede und eine ver{\"a}nderte Genexpression im gestressten Herzen in An- oder Abwesenheit von Integrin Beta 1 gelegt. Interessanterweise wurden die M{\"a}use, welche eine Kombination aus Integrin knock-out Allel und dem Kardiomyozyten-spezifischen konditionalen knock-out Allel von Integrin Beta 1 aufwiesen im normalen Mendelschen Verh{\"a}ltnis geboren und wuchsen normal auf. Obwohl diese Tiere immer noch geringe Mengen von Integrin Beta 1 in ihrem Herzen aufwiesen (exprimiert von nicht-Myozyten), besaßen diese M{\"a}use eine ver{\"a}nderte Herzfunktion und waren sehr sensitiv gegen{\"u}ber AB. Im Gegensatz zu der kompensatorischen hypertrophischen Reaktion, die in Wildtyp M{\"a}usen zu beobachten war, zeigte sich in den Integrin Beta 1-defizienten Mausherzen kein Gewebeumbau. Auch die erh{\"o}hte Expression von verschiedenen ECM Proteinen, insbesondere die verst{\"a}rkte Expression des matrizellul{\"a}ren Proteins SPARC, unterblieb nach AB in den Integrin Beta 1-defizienten Tieren. Interessanterweise konnte auch eine transiente Erh{\"o}hung der SPARC mRNA w{\"a}hrend der Umbauprozesse im Herzen in Folge von myokardialem Infarkt (MI) mittels cDNA Makroarrays festgestellt werden. In der Tat fanden sich gr{\"o}ßere Mengen von SPARC bereits 2 Tage (~2,5-fach erh{\"o}ht), 7 Tage (~4-fach erh{\"o}ht) und 1 Monat (~2-fach erh{\"o}ht) nach MI, w{\"a}hrend ein spezifischer Inhibitor der Integrin alpha v Untereinheit diese Hochregulation von SPARC in vivo verhinderte. Immunfluoreszenz Untersuchungen von Herzgewebe verdeutlichten, dass sich die erh{\"o}hte Expression von SPARC auf das Infarktareal beschr{\"a}nkte, dass die Expression von SPARC nach einer anf{\"a}nglichen Erh{\"o}hung im Verlauf von 1 Monaten wieder auf das Anfangsniveau zur{\"u}ckging und dass die verst{\"a}rkte Expression von der Einwanderung von Fibroblasten in das isch{\"a}mische Herzgewebe begleitet war. In vitro stimulierten die Wachstumsfaktoren TGF-Beta 1 und PDGF-BB die Expression von SPARC durch Fibroblasten. Wie sich an Hand von ELISA und Western Blot Untersuchungen feststellen ließ, war die Inhibition von Integrin Beta v nicht in der Lage, die durch TGF-Beta 1 oder PDGF induzierte Sekretion von SPARC zu beeinflussen. Jedoch zeigte sich, dass Vitronektin, ein Ligand von Integrin alpha v, sowohl die Sekretion von TGF-Beta 1 als auch von PDGF-BB durch Kardiomyozyten induzierte und diese Reaktion wurde durch den Integrin alpha v Inhibitor komplett unterdr{\"u}ckt. In funktioneller Hinsicht wirkte SPARC auf die durch ECM Proteine induzierte Migration von Fibroblasten ein, so dass man davon ausgehen kann, dass die lokale Freisetzung von SPARC nach myokardialem Infarkt zur Wundheilung im Herzen beitr{\"a}gt. Zusammenfassend l{\"a}ßt die Kombination der in vivo und in vitro erhobenen experimentellen Daten den Schluss zu, dass mehrere Integrin Untereinheiten eine entscheidende Rolle w{\"a}hrend der Gewebeumbildung im Herzen spielen. Integrin-abh{\"a}ngige Genexpressionsereignisse wie beispielsweise die erh{\"o}hte Expression von SPARC nach MI sind entscheidend an der Koordination der Wundheilung beteiligt. Diese Prozesse scheinen auf einer komplexen Wechselwirkung und Kommunikation zwischen verschiedenen Zelltypen wie Kardiomyozyten und Fibroblasten zu beruhen, um lokal begrenzt eine Heilung und Vernarbung des verletzten Gewebes zu regulieren. Die Aufkl{\"a}rung des fein abgestimmten Wechselspiels zwischen Integrinen matrizellul{\"a}ren Proteinen wie SPARC und Wachstumsfaktoren wird sicherlich zu einem besseren und klinisch nutzbarem Verst{\"a}ndnis der molekularen Mechanismen des Gewebeumbaus im Herzen beitragen.}, subject = {Integrine}, language = {en} } @phdthesis{Wurster2014, author = {Wurster, Sebastian}, title = {Die Bedeutung von LIN9 f{\"u}r die Regulation der Genexpression, die genomische Stabilit{\"a}t und die Tumorsuppression}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-114967}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2014}, abstract = {Pocket proteins and E2F transcription factors regulate the expression of cell cycle associated genes and play a central role in the coordination of cell division, differentiation, and apoptosis. Disorders of these pathways contribute to the development of various human tumor entities. Despite intensive research in the field of cell cycle regulation many details are not yet understood. The LIN complex (LINC / DREAM) is a recently discovered human multiprotein complex, which dynamically interacts with pocket proteins and E2F transcription factors. An essential component of the LIN complex is the LIN9 protein. In order to obtain a better insight into the function of this protein in cell cycle regulation and tumorigenesis, a conditional Lin9 knockout mouse model was established in our laboratory. The primary objective of this study was the phenotypic characterization of embryonic fibroblasts (MEFs) from these mice. Shortly after inactivation of Lin9 cell proliferation was massively impaired. Multiple types of mitotic defects such as structural abnormalities of the spindle apparatus, aberrant nuclei, failed nuclear segregation and cytokinesis failure have been observed in Lin9-depleted cells leading to a dramatic increase in polyploid and aneuploid cells. Ultimately these serious aberrations result in premature cellular senescence. If the senescence of Lin9-deficient cells is overcome by the Large T antigen the cells can adhere to the loss of Lin9, but show severe genomic instability and grow anchorage-independently in soft-agar as a sign of oncogenic transformation. In the second part of the thesis the gene expression of Lin9-deficient cells was assessed by quantitative real time PCR analyses to determine, whether the mitotic abnormalities are caused by transcriptional defects. Here a significant reduction of mitotic gene expression was observed in Lin9-depleted cells. Additionally chromatin immunoprecipitation experiments were performed to clarify the underlying molecular mechanisms. Compared to control cells epigenetic alterations at the promoters of mitotic target genes with regard to activating histone modifications were found in Lin9-deficient MEFs. In the last section of this study, the effects of Lin9 heterozygosity were analyzed. Lin9 heterozygous MEFs showed normal proliferation, although expression of different mitotic genes was slightly reduced. It appeared, however, that the mitotic spindle checkpoint of Lin9 heterozygous MEFs is weakened and thus over several cell generations an increase in polyploid cells was observed. Soft-agar assays showed that Lin9 heterozygosity contributes to oncogenic transformation. Taken together, these results document a crucial role of LIN9 in the regulation of cell cycle-associated gene expression. LIN9 is an essential factor for cell proliferation on one hand, while at the same time it functions as a tumor suppressor.}, subject = {Zellzyklus}, language = {de} } @phdthesis{Ye2004, author = {Ye, Fang}, title = {The role of DNA supercoiling in the coordinated regulation of gene expression in Helicobacter pylori}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-9878}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2004}, abstract = {Summary Mechanisms of global gene regulation in bacteria are not well characterized yet. Changes in global or local supercoiling of chromosomal DNA are thought to play a role in global gene silencing and gene activation. In Helicobacter pylori, a bacterium with few dedicated transcriptional regulators, the structure of some promoters indicates a dependency on DNA topology. For example, the promoter of the major flagellar subunit gene flaA ({\´o}28-dependent) has a shorter spacing of 13 nucleotides (nt) in comparison to the consensus promoter (15 nt). Supercoiling changes might be a mechanism of gene-specific and global transcriptional regulation in this bacterium. The aim of this study was to elucidate, if changes in global supercoiling have an influence on global gene regulation in H. pylori, and on the temporal regulation of the flagellar biosynthesis pathway in this organism. In the present work, global DNA supercoiling in H. pylori was visualized for the first time, by determining the supercoiling state of plasmids under different growth conditions. Using this method, we showed that cellular supercoiling was clearly growth phase-dependent in H. pylori. Coinciding with increased supercoiling during the growth phases, transcription of the flaA gene was increased, while the transcription of a second {\´o}28-dependent gene with regular promoter spacing (HP0472) was reduced, supporting the hypothesis that growth phase-dependency of promoters might be mediated by changes of DNA topology. Supercoiling in H. pylori could be influenced in a reproducible fashion by inhibition of gyrase using novobiocin, which led to DNA relaxation and to a concomitant decrease of flaA transcript levels. Promoter spacer mutagenesis of the flaA promoter was performed. With flaA promoters of increased or reduced length, transcription of flaA was reduced, less susceptible to supercoiling changes, and, under specific conditions, inverted as compared to the wild type promoter. Transcriptional interdependence between the coupled topA-flaB genes and flaA was found by analysis of the flaA promoter mutants. Chromosomally linked gyrA-flgR, and topA-flaB genes were all dependent on supercoiling and coregulated with each other. Comprehensive transcript profiling (DNA microarrays) of wildtype H. pylori with and without novobiocin treatment identified a number of genes (10\% of total genes), including flagellin, virulence and housekeeping genes, which were strongly dependent on and appeared to be synchronized by supercoiling changes (transcriptional up- or downregulation). These findings indicate a tightly coupled temporal regulation of flagellar biogenesis and metabolism in H. pylori, dependent on global supercoiling. A specific group of genes was also regulated in H. pylori by overexpression of Topoisomerase I, as detected by genome-wide analysis (DNA microarray). The DNA-bending protein HU is thought to be responsible for influencing the negative supercoiling of DNA, through its ability to wrap DNA. HU is encoded by the hup single gene in H. pylori, and constitutively expressed during the whole growth curve. An H. pylori hup mutant was constructed. H. pylori cells lacking HU protein were viable, but exhibited a severe growth defect. Our data indicate that the lack of HU dramatically changes global DNA supercoiling, indicating an important function of HU in chromosome structuring in H. pylori. Transcriptome analyses were performed and demonstrated that a total of 66 genes were differentially transcribed upon hup deletion, which include virulence genes and many other cell functions. The data indicate that HU might act as further important global regulator in H. pylori. Increased gene expression of heat shock proteins and a decreased transcription of the urease gene cluster may indicate a co-ordinated response of H. pylori to changes of environmental conditions in its specific ecological niche, mediated by HU. After the whole genomic sequences of H. pylori strains 26695 and J99 were published, two ORFs (HP0116 and HP0440) were presumptively annotated as topoisomerase I orthologs. HP0116 is the functional H. pylori topoisomerase I (TopA). HP0440 (topA2) was found in only few (5 of 43) strains. Western blot analysis indicated that TopA2 is antigenically different from TopA. TopA2 is transcribed in H. pylori, but the protein must be functionally different from TopA, since it is lacking one functionally essential zinc finger motif, and was not able to functionally complement a TopA-deficient E. coli. Like topA, topA2 was also transcribed in a growth phase-dependent manner. We did not find a function of TopA2 in DNA structuring or topology, but, in the present study, we were able for the first time to establish a unique function for TopA2 in global gene regulation, by comprehensive transcriptome analysis (DNA microarray). Transcriptome analysis showed that a total of 46 genes were differentially regulated upon topA2 deletion, which included flagellar genes and urease genes. These results suggest that TopA2 might act as a novel important regulator of both flagellar biosynthesis and urease in H. pylori.}, subject = {Helicobacter pylori}, language = {en} } @phdthesis{Zhang2014, author = {Zhang, Yi}, title = {Regulation of Agrobacterial Oncogene Expression in Host Plants}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-102578}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2014}, abstract = {Virulent Agrobacterium tumefaciens strains transfer and integrate a DNA region of the tumor-inducing (Ti) plasmid, the T-DNA, into the plant genome and thereby cause crown gall disease. The most essential genes required for crown gall development are the T-DNA-encoded oncogenes, IaaH (indole-3-acetamide hydrolase), IaaM (tryptophan monooxygenase) for auxin, and Ipt (isopentenyl transferase) for cytokinin biosynthesis. When these oncogenes are expressed in the host cell, the levels of auxin and cytokinin increase and cause cell proliferation. The aim of this study was to unravel the molecular mechanisms, which regulate expression of the agrobacterial oncogenes in plant cells. Transcripts of the three oncogenes were expressed in Arabidopsis thaliana crown galls induced by A. tumefaciens strain C58 and the intergenic regions (IGRs) between their coding sequences (CDS) were proven to have promoter activity in plant cells. These promoters possess eukaryotic sequence structures and contain cis-regulatory elements for the binding of plant transcription factors. The high-throughput protoplast transactivation (PTA) system was used and identified the Arabidopsis thaliana transcription factors WRKY18, WRKY40, WRKY60 and ARF5 to activate the Ipt oncogene promoter. No transcription factor promoted the activity of the IaaH and IaaM promoters, despite the fact that the sequences contained binding elements for type B ARR transcription factors. Likewise, the treatment of Arabidopsis mesophyll protoplasts with cytokinin (trans-zeatin) and auxin (1-NAA) exerted no positive effect on IaaH and IaaM promoter activity. In contrast, the Ipt promoter strongly responded to a treatment with auxin and only modestly to cytokinin. The three Arabidopsis WRKYs play a role in crown gall development as the wrky mutants developed smaller crown galls than wild-type plants. The WRKY40 and WRKY60 genes responded very quickly to pathogen infection, two and four hours post infection, respectively. Transcription of the WRKY18 gene was induced upon buffer infiltration, which implicates a response to wounding. The three WRKY proteins interacted with ARF5 and with each other in the plant nucleus, but only WRKY40 together with ARF5 increased activation of the Ipt promoter. Moreover, ARF5 activated the Ipt promoter in an auxin-dependent manner. The severe developmental phenotype of the arf5 mutant prevented studies on crown gall development, nevertheless, the reduced crown gall growth on the transport inhibitor response 1 (TIR1) tir1 mutant, lacking the auxin sensor, suggested that auxin signaling is required for optimal crown gall development. In conclusion, A. tumefaciens recruits the pathogen defense related WRKY40 pathway to activate Ipt expression in T-DNA-transformed plant cells. IaaH and IaaM gene expression seems not to be controlled by transcriptional activators, but the increasing auxin levels are signaled via ARF5. The auxin-depended activation of ARF5 boosts expression of the Ipt gene in combination with WRKY40 to increase cytokinin levels and induce crown gall development.}, subject = {Agrobacterium tumefaciens}, language = {en} } @phdthesis{Zheng2012, author = {Zheng, Peilin}, title = {Ptpn22 silencing in the NOD model of type 1 diabetes indicates the human susceptibility allele of PTPN22 is a gain-of-function variant}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-73869}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2012}, abstract = {PTPN22 encodes the lymphoid tyrosine phosphatase Lyp that can dephosphorylate Lck, ZAP-70 and Fyn to attenuate TCR signaling. A single-nucleotide polymorphism (C1858T) causes a substitution from arginine (R) to tryptophan (W) at 620 residue (R620W). Lyp-620W has been confirmed as a susceptible allele in multiple autoimmune diseases, including type 1 diabetes (T1D). Several independent studies proposed that the disease-associated allele is a gain-of-function variant. However, a recent report found that in human cells and a knockin mouse containing the R620W homolog that Ptpn22 protein degradation is accelerated, indicating Lyp-620W is a loss-of-function variant. Whether Lyp R620W is a gain- or loss-of-function variant remains controversial. To resolve this issue, we generated two lines (P2 and P4) of nonobese diabetic (NOD) mice in which Ptpn22 can be inducibly silenced by RNAi. We found long term silencing of Ptpn22 increased spleen cellularity and regulatory T (Treg) cell numbers, replicating the effect of gene deletion reported in the knockout (KO) B6 mice. Notably, Ptpn22 silencing also increased the reactivity and apoptotic behavior of B lymphocytes, which is consistent with the reduced reactivity and apoptosis of human B cells carrying the alleged gain-of-function PTPN22 allele. Furthermore, loss of Ptpn22 protected P2 KD mice from spontaneous and Cyclophosphamide (CY) induced diabetes. Our data support the notion that Lyp-620W is a gain-of-function variant. Moreover, Lyp may be a valuable target for the treatment of autoimmune diseases.}, subject = {Diabetes mellitus}, language = {en} } @phdthesis{Zimmermann2020, author = {Zimmermann, Henriette}, title = {Antigenic variation and stumpy development in \(Trypanosoma\) \(brucei\)}, doi = {10.25972/OPUS-14690}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-146902}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2020}, abstract = {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.}, subject = {Trypanosoma brucei}, language = {en} } @phdthesis{Zirn2006, author = {Zirn, Birgit}, title = {Expressions- und Mutationsanalysen in kindlichen Wilms Tumoren}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-20338}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2006}, abstract = {kumulative Dissertation, vgl. Abstracts der angeh{\"a}ngten Publikationen}, subject = {Nephroblastom}, language = {de} }