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Biochemical and molecular characterization of an original master sex determining gene in Salmonids
(2016)
Sexual development is a fundamental and versatile process that shapes animal morphology, physiology and behavior. The underlying developmental process is composed of the sex determination and the sex differentiation. Sex determination mechanisms are extremely labile among taxa. The initial triggers of the sex determination process are often genetics called sex determining genes. These genes are expressed in the bipotential gonad and tilt the balance to a developmental program allowing the differentiation of either a testis or an ovary. Fish represent a large and fascinating vertebrate group to study both sex determination and sex differentiation mechanisms. To date, among the known sex determining genes, three gene families namely sox, dmrt and TGF-β factors govern this developmental program. As exception to this rule, sdY “sexually dimorphic on the Y” does not belong to one of these families as it comes from the duplication / evolution of an ancestor gene related to immunity, i.e., the interferon related factor 9, irf9. sdY is the master sex determining gene in salmonids, a group of fishes that include species such as rainbow trout and Atlantic salmon. The present study was aimed to firstly characterize the features of SdY protein. Results indicate that SdY is predominantly localized in the cytoplasm tested in various fish and mammalian cell lines and confirmed by different methods. Predictive in silico analysis revealed that SdY is composed of a β-sandwich core surrounded by three α-helices as well specific characteristics conferring a putative protein-protein interaction site. Secondly, the study was aimed to understand how SdY could trigger testicular differentiation. SdY is a truncated divergent version of Irf9 that has a conserved protein-protein domain but lost the DNA interaction domain of its ancestor gene. It was then hypothesized that SdY could initiate testicular differentiation by protein-protein interactions. To evaluate this we first conducted a yeast-two-hybrid screen that revealed a high proportion of transcription factors including fox proteins. Using various biochemical and cellular methods we confirm an interaction between SdY and Foxl2, a major transcription factor involved in ovarian differentiation and identity maintenance. Interestingly, the interaction of SdY with Foxl2 leads to nuclear translocation of SdY from the cytoplasm. Furthermore, this SdY translocation mechanism was found to be specific to fish Foxl2 and to a lesser extend Foxl3 and not other Fox proteins or mammalian FoxL2. In addition, we found that this interaction allows the stabilization of SdY and prevents its degradation. Finally, to better decipher SdY action we used as a model a mutated version of SdY that was identified in XY females of Chinook salmon natural population. Results show that this mutation induces a local conformation defect obviously leading to a misfolded protein and a quick degradation. Moreover, the mutated version compromised the interaction with Foxl2 defining a minimal threshold to induce testicular differentiation. Altogether results from my thesis propose that SdY would trigger testicular differentiation in salmonids by preventing Foxl2 to promote ovarian differentiation. Further research should be now carried out on how this interaction of SdY and Foxl2 acts in-vivo.
GAS2L3 was identified recently as a target gene of the DREAM complex (Reichert et al., 2010; Wolter et al., 2012). It was shown that GAS2L3 is expressed in a cell cycle specific manner and that depletion of the protein leads to defects in cytokinesis and genomic instability (Wolter et al., 2012).
Major aim of this thesis was, to further characterize the biochemical properties and physiological function of GAS2L3.
By in vitro co-sedimentation and bundling assays, GAS2L3 was identified as a cytoskeleton associated protein which bundles, binds and crosslinks F-actin and MTs. GST pulldown assays and co-immunoprecipitation experiments revealed that GAS2L3 interacts in vitro and in vivo with the chromosomal passenger complex (CPC), a very important regulator of mitosis and cytokinesis, and that the interaction is mediated by the GAR domain of GAS2L3 and the C-terminal part of Borealin and the N-terminal part of Survivin. Kinase assays showed that GAS2L3 is not a substrate of the CPC but is strongly phosphorylated by CDK1 in vitro. Depletion of GAS2L3 by shRNA influenced protein stability and activity of the CPC. However pharmacological studies showed that the decreased CPC activity is not responsible for the observed cytokinesis defects upon GAS2L3 depletion. Immunofluorescence experiments revealed that GAS2L3 is localized to the constriction zone by the CPC in a GAR dependent manner and that the GAR domain is important for proper protein function.
New interacting proteins of GAS2L3 were identified by stable isotope labelling by amino acids in cell culture (SILAC) in combination with tandem affinity purification and subsequent mass spectrometrical analysis. Co-immunoprecipitation experiments further confirmed the obtained mass spectrometrical data.
To address the physiological function of GAS2L3 in vivo, a conditional and a non-conditional knockout mouse strain was established. The non-conditional mouse strain showed a highly increased mortality rate before weaning age probably due to heart failure. The physiological function of GAS2L3 in vivo as well as the exact reason for the observed heart phenotype is not known at the moment.
Zur Wahrung der Genomstabilität entwickelten sich verschiedene Reparaturmechanismen, deren Defekte zu diversen Erkrankungen führen. Der 1927 erstmals beschriebenen Fanconi Anämie (FA) (Fanconi 1927) liegt eine fehlerhafte Reparatur der DNA-Doppelstrang-Quervernetzung zugrunde. Als Ursache wurden Defekte innerhalb des FA/BRCA-Weges lokalisiert, welche zur Chromosomeninstabilität führen. Das Krankheitsbild der autosomal rezessiven oder X-chromosomalen Erkrankung wird meist von kongenitalen Fehlbildungen, progressivem Knochenmarkversagen sowie bereits im jugendlichen Alter erhöhten Tumor-raten und Anämien geprägt. Bisher wurden Defekte in 19 verschiedenen Genen als ursächlich für diese Erkrankung diskutiert. Anhand des betroffenen Gens können nur begrenzt Rückschlüsse auf die Ausprä-gung des Phänotyps geschlossen werden, vielmehr scheinen die Art der Mutation und deren Position im Gen mit der Schwere der Erkrankung zu korrelieren. Im Laufe der Zeit wurden immer mehr Patienten mit mild ausgeprägtem Erkrankungsbild beobachtet. Eine mögliche Erklärung hierfür liefern milde Mutationen, eine weitere das Vorhandensein von Mosaiken blutbildender Zellen. Zu letzterem führt die Reversion einer der beiden Mutationen. Diese Art der „natürlichen Gentherapie“ wurde bei 10-30% der FA-Patienten beobachtet. Um die Entwicklung von Reversionen besser zu verstehen, erfolgte im Rahmen dieser Arbeit die Untersuchung verschiedener Zelllinien von 5 Patienten im Alter von 11 (Pat. 5) bis 33 (Pat. 4) Jahren. Die FA-A-Patienten 1 und 2 wurden bereits von Gross et al. 2002 als Mosaikpatienten beschrieben. Für die weiteren Patienten führten unterschiedliche Aspekte, wie normale Blutwerte, MMC-tolerante lympho-blastoide Zelllinien und gDNA-Analysen des Blutes zum Mosaikverdacht. Nähere Analysen bestätigten für die FA-D2-Patienten (Pat. 4, 5) ebenfalls das Vorliegen einer Reversion in den Blutzellen. Allen Patienten gemein war die Reversion in Form einer Rückmutation (Pat. 1: c.971T>G, Pat. 2: c.856 C>T, Pat. 4: c.3467-2A>G, Pat. 5: c.3707G>A), welche meist in einem oder in der Nähe eines Mutationsmotives vorlag. Zur Einschätzung des Mosaikstatus in den Patientenblutzellen wurden, neben der meist mehrjährigen Be-obachtung der Blutwerte (Thrombo-, Mono-, Granulo-, Lymphozyten, Hämoglobin), gDNA-, Chromoso-menbruch- und Zellzyklusanalysen durchgeführt. Chromosomenbruchanalysen von Metaphasen der T-Lymphozyten der Patienten 4 und 5 zeigten nach MMC-Behandlung die mosaik-typische bimodale Vertei-lung der Chromosomenbruchraten. Die nur moderat erhöhten Bruchraten in Metaphasen des Patienten 1 sprachen für eine starke Reversion. Zur besseren Abschätzung des Mosaikstatus wurden Zellzyklusanaly-sen an Mischungsreihen aus FA- und nicht FA- Blut durchgeführt. Die Detektionsgrenze für FA-Mosaike lag bei einem Anteil von 30% Zellen mit spontanem/MMC-induziertem G2-Phasen-Arrest. In Anlehnung an Mischungskurven wurden für die vier Patienten Reversionen von 0% (Pat. 4) bis 90-95% (Pat. 2) ange-nommen. Die gDNA-Analyse MACS-sortierter T-/B-Lympho-, Mono- und Granulozyten sowie von Fib-roblasten und lymphoblastoiden Zelllinien ermöglichte einen detaillierten Einblick in die Mosaikstatus auf molekularer Ebene. Wir fanden bei allen Patienten einen unterschiedlich stark ausgeprägten Mosaikstatus ihrer Blutzellreihen. Tendenziell scheinen die Reversionsgrade mit der Zell-Lebensdauer korrelieren, hier-bei zeigen kurzlebige Zellen (Mono-, Granulo-, B-Lymphozyten) höhere Reversionsgrade als langlebige T-Lymphozyten. Das Auftreten von gleichen Reversionen in allen Zelllinien lässt eine Reversion in einer gemeinsamen Vorläuferzelle vermuten. Als Besonderheit fanden wir, unseren Erachtens erstmalig, eine komplette Reversion einer Knochenmark-Fibroblastenzelllinie (Pat. 1). Häufig in Kultur stattfindende Re-versionen in lymphoblastoiden Zelllinien beobachteten wir für alle vier Patienten. Die Mosaikentstehung im Patientenblut konnte mit allen Methoden bestätigt werden. Jede Methode wies Vor- und Nachteile auf. Zur Abschätzung der Mosaikstatus empfiehlt sich deshalb eine Kombination der Methoden.
Ein weiteres Projekt beschäftigte sich mit Interaktionen des FANCO (RAD51C) innerhalb der RAD51 Paraloge (RAD51B, -C, -D, XRCC2, XRCC3) und mit RAD51. Die Analysen erfolgten im Mammalian Two- und Three-Hybrid (M2H/M3H) System. Die Untersuchungen bestätigten die meisten der bisher detektierten Interaktionen, welche zur Ausbildung des RAD51C-XRCC3 Komplexes und des, aus den Subkomplexen RAD51B-RAD51C (BC) und RAD51D-XRCC2 (DX2) bestehenden, BCDX2-Komplex führen. Die M3H-Analysen weisen auf eine wichtige Rolle des RAD51B-Proteins bei der Ausprägung dieses Komplexes hin. Es scheint die Ausbildung der RAD51C-RAD51D-Interaktion erst zu ermöglichen und zusätzlich, anders als bisher beobachtet, auch mit XRCC2 zu interagieren. Diese Interaktion wiederum wird durch die Anwesenheit von RAD51D stark gefördert. Unsere M2H-/M3H-Beobachtungen weisen darauf hin, dass die Ausbildung der Subkomplexe für die Entstehung des BDCX2-Komplexes wichtig ist und dieser vermutlich als Ringstruktur vorliegt. Zusätzlich fanden wir Hinweise auf mögliche Wechselwir-kungen zwischen den BCDX2- und den XRCC3-Komplexproteinen. Aufgrund der Beteiligung der Protei-ne an der Doppelstrangläsionsreparatur wurde die Auswirkung von MMC-induzierten DNA-Schäden un-tersucht. Diese führten innerhalb der Subkomplexe zu gegensätzlichen Änderungen der Interaktionsinten-sität. Während die Substanz im DX2-Komplex zum Sinken der Interaktionsstärke führte, erhöhte sich diese im BC-Komplex. Die in der Literatur beschriebene und charakterisierte RAD51C-FANCN-Interation war im M2H-Test nicht darstellbar. Möglicherweise würde diese jedoch durch die Anwesenheit eines drit-ten Proteins gefördert werden. Zusätzlich wurde ein RAD51C-Protein, welches die Patientenmutation R258H enthielt, überprüft. Es zeigte nur in der M3H-Analyse, mit pMRAD51D und nativem RAD51B, nach Behandlung mit MMC eine reduzierte Interaktionsstärke im Vergleich zum Wildtyp. Dies unter-streicht einmal mehr die als hypomorph beschriebene Mutation des Proteins.
Das dritte Projekt, die angestrebte Strukturaufklärung des RAD51C-Proteins erwies sich als schwierig. Eine für eine Kristallisation ausreichende Proteinmenge konnte, weder im E. coli-System noch in Insektenzellen oder in Co-Expression mit seinem Interaktionspartner XRCC3, isoliert und aufgereinigt werden. Elektro-phoretische Mobility Shift Assays des CX3-Proteinkomplexes mit DNA-Strukturen (ssDNA, Open Fork, 3‘-/ 5‘-Überhang-Struktur), zeigten eine Bevorzugung des 3‘-Überhang-DNA-Substrates. Diese Art der Analyse könnte in weiterführenden Analysen zur Abschätzung der Auswirkung von Patientenmutationen herangezogen werden. bb
In this thesis the Drosophila mutant loechrig (loe), that shows progressive degeneration of the nervous system, is further described. Loe is missing a neuronal isoform of the protein kinase AMPK γ subunit (AMP-activated protein kinase- also known as SNF4Aγ) The heterotrimeric AMPK controls the energy level of the cell, which requires constant monitoring of the ATP/AMP levels. It is activated by low energy levels and metabolic insults like oxygen starvation and regulates multiple important signal pathways that control cell metabolism. Still, its role in neuronal survival is unclear. One of AMPK’s downstream targets is HMGR (hydroxymethylglutaryl-CoA- reductase), a key enzyme in cholesterol and isoprenoid synthesis. It has been shown that manipulating the levels of HMGR affects the severity of the neurodegenerative phenotype in loe. Whereas the regulatory role of AMPK on HMGR is conserved in Drosophila, insects cannot synthesize cholesterol de novo. However, the synthesis of isoprenoids is a pathway that is evolutionarily conserved between vertebrates and insects. Isoprenylation of target proteins like small G-proteins provides a hydrophobic anchor that allows the association of these proteins with membranes and following activation. This thesis shows that the loe mutation interferes with the prenylation of Rho1 and the regulation of the LIM kinase pathway, which plays an important role in actin turnover and axonal outgrowth. The results suggest that the mutation in LOE, causes hyperactivity of the isoprenoid synthesis pathway, which leads to increased farnesylation of RHO1 and therefore higher levels of phospho-cofilin. A mutation in Rho1 improves the neurodegenerative phenotype and life span. The increased inactive cofilin amount in loe leads to an up regulation of filamentous actin. Actin is involved in neuronal outgrowth and experiments analyzing loe neurons gave valuable insights into a possible role of AMPK and accordingly actin on neurite growth and stability. It was demonstrated that neurons derived from loe mutants exhibit reduces axonal transport suggesting that changes in the cytoskeletal network caused by the effect of loe on the Rho1 pathway lead to disruptions in axonal transport and subsequent neuronal death. It also shows that actin is not only involved in neuronal outgrowth, its also important in maintenance of neurons, suggesting that interference with actin dynamics leads to progressive degeneration of neurons. Together, these results further support the importance of AMPK in neuronal function and survival and provide a novel functional mechanisms how alterations in AMPK can cause neuronal degeneration
Melanoma arises from the malignant transformation of melanocytes and is one of the most aggressive forms of human cancer. In fish of the genus Xiphophorus, melanoma development, although very rarely, happens spontaneously in nature and can be induced by interspecific crossing. The oncogenic receptor tyrosine kinase, Xmrk, is responsible for melanoma formation in these fishes. Since Xiphophorus are live-bearing fishes and therefore not compatible with embryonic manipulation and transgenesis, the Xmrk melanoma model was brought to the medaka (Oryzias latipes) system. Xmrk expression under the control of the pigment cell specific mitf promoter leads to melanoma formation with 100% penetrance in medaka. Xmrk is an orthologue of the human epidermal growth factor receptor (EGFR) and activates several downstream signaling pathways. Examples of these pathways are the direct phosphorylation of BRAF and Stat5, as well as the enhanced transcription of C-myc. BRAF is a serine-threonine kinase which is found mutated at high frequencies in malignant melanomas. Stat5 is a transcription factor known to be constitutively activated in fish melanoma. C-myc is a transcription factor that is thought to regulate the expression of approximately 15% of all human genes and is involved in cancer progression of a large number of different tumors. To gain new in vivo information on candidate factors known to be involved in melanoma progression, I identified and analysed BRAF, Stat5 and C-myc in the laboratory fish model system medaka. BRAF protein motifs are highly conserved among vertebrates and the results of this work indicate that its function in the MAPK signaling is maintained in medaka. Transgenic medaka lines carrying a constitutive active version of BRAF (V614E) showed more pigmented skin when compared to wild type. Also, some transiently expressing BRAF V614E fishes showed a disrupted eye phenotype. In addition, I was able to identify two Stat5 copies in medaka, named Stat5ab/a and Stat5ab/b. Sequence analysis revealed a higher similarity between both Stat5 sequences when compared to either human Stat5a or Stat5b. This suggests that the two Stat5 copies in medaka arose by an independent duplication processes. I cloned these two Stat5 present in medaka, produced constitutive active and dominant negative gene versions and successfully established transgenic lines carrying each version under the control of the MITF promoter. These lines will help to elucidate questions that are still remaining in Stat5 biology and its function in melanoma progression, like the role of Stat5 phosphorylation on tumor invasiveness. In a third project during my PhD work, I analysed medaka C-myc function and indentified two copies of this gene in medaka, named c-myc17 and c-myc20, according to the chromosome where they are located. I produced conditional transgenic medaka lines carrying the c-myc17 gene coupled to the hormone binding domain of the estrogen receptor to enable specific transgene activation at a given time point. Comparable to human C-myc, medaka C-myc17 is able to induce proliferation and apoptosis in vivo after induction. Besides that, C-myc17 long-term activation led to liver hyperplasia. In summary, the medaka models generated in this work will be important to bring new in vivo information on genes involved in cancer development. Also, the generated transgenic lines can be easily crossed to the melanoma developing Xmrk medaka lines, thereby opening up the possibility to investigate their function in melanoma progression. Besides that, the generated medaka fishes make it possible to follow the whole development of melanocytes, since the embryos are transparent and can be used for high throughput chemical screens.
All animals learn in order to cope with challenges imposed on them by their environment. This is true also for both larval and adult fruit flies as exemplified in pavlovian conditioning. The focus of this Thesis is on various aspects of the fruit flies learning ability. My main project deals with two types of learning which we call punishment-learning and pain-relief learning. Punishment learning happens when fruit flies are exposed to an odour which is followed by electric shock. After such training, flies have learned that that odour signals pain and consequently will avoid it in the future. If the sequence of the two stimuli is reversed such that odour follows shock, flies learn the odour as a signal for relief and will later on approach it. I first report a series of experiments investigating qualitative and parametric features of relief-learning; I find that (i) relief learning does result from true associative conditioning, (ii) it requires a relatively high number of training trials, (iii) context-shock training is ineffective for subsequent shock-odour learning. A further question is whether punishment-learning and pain-relief learning share genetic determinants. In terms of genetics, I test a synapsin mutant strain, which lacks all Synapsin protein, in punishment and relief-learning. Punishment learning is significantly reduced, and relief-learning is abolished. Pan-neuronal RNAi-mediated knock-down of Synapsin results in mutant-like phenotypes, confirming the attribution of the phenotype to lack of Synapsin. Also, a rescue of Synapsin in the mushroom body of syn97 mutants restores both punishment- and relief-learning fully, suggesting the sufficiency of Synapsin in the mushroom body for both these kinds of learning. I also elucidate the relationship between perception and physiology in adult fruit flies. I use odour-shock conditioning experiments to identify degrees of similarity between odours; I find that those similarity measures are consistent across generalization and discrimination tasks of diverse difficulty. Then, as collaborator of T. Völler and A. Fiala, I investigate how such behavioural similarity/dissimilarity is reflected at the physiological level. I combine the behaviour data with calcium imaging data obtained by measuring the activity patterns of those odours in either the sensory neurons or the projection neurons at the antennal lobe. Our interpretation of the results is that the odours perceptual similarity is organized by antennal lobe interneurons. In another project I investigate the effect of gustatory stimuli on reflexive behaviour as well as their role as reinforcer in larval learning. Drosophila larvae greatly alter their behaviour in presence of sodium chloride. Increasing salt concentration modulates choice behaviour from weakly appetitive to strongly aversive. A similar concentration-behaviour function is also found for feeding: larval feeding is slightly enhanced in presence of low salt concentrations, and strongly decreased in the presence of high salt concentrations. Regarding learning, relatively weak salt concentrations function as appetitive reinforcer, whereas high salt concentrations function as aversive reinforcer. Interestingly, the behaviour-concentration curves are shifted towards higher concentrations from reflexive behaviour (choice behaviour, feeding) as compared to associative learning. This dissociation may reflect a different sensitivity in the respective sensory-motor circuitry.
Clonality analysis in B-Cell Chronic Lymphocytic Leukemia (B-CLL) associated with Richter's syndrome
(2006)
B-cell chronic lymphocytic leukemia (B-CLL) comprises 90% of chronic lymphoid leukemias in Western countries and patients with B-CLL have a heterogeneous clinical course. Approximately 3-5% of B-CLL patients encounter transformation to an aggressive lymphoma, mainly diffuse large B-cell lymphoma (DLBCL) or Hodgkin’s lymphoma (HL) which has been defined as Richter’s syndrome and is associated with a poor clinical outcome. The mutational status of the immunoglobulin heavy chain variable region (IgVH) gene not only implies the developmental stage at which the neoplastic transformation occurs in a given B-cell lymphoma, but also constitutes an important prognostic factor in B-CLL, since B-CLL patients with unmutated IgVH genes usually have a poor clinical outcome. Sparse molecular analyses performed in Richter’s syndrome so far suggest that it can occur in B-CLL patients carrying mutated or unmutated IgVH genes, and tumor cells in DLBCL or HL can be clonally identical to the B-CLL clone or arise as an independent, secondary lymphoma. To determine the clonal relationship between DLBCL or Hodgkin/Reed-Sternberg (HRS) cells and pre-existing B-CLL cells in a larger series, to identify the IgVH gene usage and the mutational status and to explore possible prognostic factors in B-CLL undergoing Richter’s transformation, we utilized a PCR-based GeneScan approach with subsequent sequencing of the IgVH genes. In cases with HRS/HRS-like cells laser capture microdissection (LCM) was employed to isolate these cells. In addition, a thorough morphological and immunohistochemical analysis was performed. In total, specimens from 48 patients were investigated including 40 cases of Richter’s syndrome and additional 8 cases of B-CLL cases with the presence of CD30-positive HRS-like cells. Among 40 cases of Richter’s syndrome, 34 B-CLL cases showed transformation to DLBCL and 6 cases transformed from B-CLL to HL. Sequencing was performed in 23 paired B-CLL and DLBCL cases. In 18 cases, B-CLL and DLBCL were clonally identical, whereas DLBCL developed as a clonally independent neoplasm in 5 patients. Among the clonally related pairs, 11 out of 15 cases carried unmutated IgVH genes in both the B-CLL and DLBCL component, whereas 5 of 6 B-CLL cases that showed transformation to HL carried mutated IgVH genes. HRS cells in two samples and HRS-like cells in one sample were clonally distinct from the B-CLL clone and infected by EBV, whereas one sample of HRS-like cells was related to the clone from the surrounding B-CLL cells and did not express latent membrane protein-1 (LMP1). The VH genes VH3-23, VH3-74, VH1-2 and VH3-9 were overused in B-CLL cases that transformed to DLBCL, whereas VH4-34 and VH3-48 were used in over half of the B-CLL cases with transformation to HL. Immunohistochemical staining of ZAP70 was significantly associated with unmutated IgVH genes in B-CLL cases undergoing Richter’s transformation. Clinical follow-up data could be obtained from 24 patients. The median survival times of B-CLL patients with transformation to DLBCL or HL were 7 and 21 months, respectively. No significantly different survival times were found between clonally related or unrelated cases, or between IgVH-mutated or -unmutated cases. We conclude that in Richter’s transformation, DLBCL can evolve by clonal transformation of the pre-existing B-CLL clone or occur as an independent, clonally unrelated neoplasm. In the majority of cases (78% in our series), B-CLL and DLBCL are clonally identical. In a subset of patients, however, DLBCL develops as an independent secondary neoplasm that is not clonally related to the B-CLL. Clonal transformation into DLBCL predominantly occurs in B-CLL patients with unmutated IgVH genes, whereas most B-CLL patients that show transformation to HL or CD30-positive HRS-like cells carry mutated IgVH genes. The tendency that IgVH-unmutated B-CLL transforms to DLBCL and IgVH-mutated B-CLL transforms to HL implies different transformation pathways in the two subtypes of Richter’s syndrome. In addition, important pathogenetic differences are likely to exist between DLBCL cases derived from a pre-existing B-CLL as compared to de novo DLBCL cases, since de novo DLBCL is usually characterized by mutated IgVH genes. The biased usage of IgVH genes in the two subtypes of Richter’s syndrome suggests a possible role for antigen involvement in tumorigenesis also in B-CLL cases that undergo Richter’s transformation. Finally, EBV-association in the HL variant of Richter’s syndrome occurs more frequently in clonally unrelated secondary malignancies.
Das Hereditäre Angioödem (HAE) ist eine seltene autosomal dominante Erkrankung, die durch einen angeborenen quantitativen oder funktionellen Defekt des C1-Inhibitors (C1-INH) verursacht wird. Das C1-INH-Protein, ein Serin Protease Inhibitor (Serpin) ist der einzige Inhibitor der C1s und C1r Komponenten des klassischen Wegs der Komplementaktivierung. Weiterhin reguliert er die Aktivierung der Faktoren XI und XII im intrinsischen Teil der Blutgerinnung und die Generierung von Kallikrein im Kontaktsystem. Durch die fehlende Kontrolle dieser Systeme kommt es zur vermehrten Bildung vasoaktiver Substanzen, die für die charakteristischen Symptome wie rezividierende, nicht juckende Schwellungen der Haut und Schleimhäute sowie krampfartige Schmerzen im Abdomen verantwortlich sind. HAE-Attacken werden durch psychologischen und/oder physiologischen Stress ausgelöst und manifestieren sich häufig isoliert im Kehlkopfbereich, wobei die Gefahr des Erstickens durch ein Larynx- oder Glottisödem droht. Die vorliegende Arbeit beschreibt die C1-INH-Genanalyse von 208 Familien mit 359 Mitgliedern, die aufgrund der Differentialdiagnose HAE zwischen 1999 und 2005 von spezialisierten klinischen Zentren eingesandt wurden. Bei 32 Patienten wurden durch Southern-Blot und dHPLC Untersuchungen große Deletionen des C1-INH-Gens nachgewiesen. Weiterhin wurden durch Komplett-Sequenzierung der 8 Exons und angrenzenden Intronbereiche des Gens identifiziert. Bei 96 Familien mit 172 Mitgliedern wurden 80 verschiedene Punktmutationen nachgewiesen, die bei Abschluss der vorliegenden Arbeit nicht in der Literatur beschrieben waren. Die HAE-Datenbank kann als Folge auf insgesamt 279 bekannte Mutationen im C1-INH-Gen erweitert werden. Da viele Patienten Missense-Mutationen unbekannter Kausalität aufwiesen, wurden 29 anhand ihrer Lokalisation oder Homologie ausgewählte Mutationen durch zielgerichtete Mutagenese in einen Expressionvektor eingefügt und anschließend in HEK-293 Zellen exprimiert. Die Funktion der rekombinanten Proteine wurde mittels eines C1-INH-Aktivitäts-Assays überprüft. Während bei den meisten rekombinant exprimierten mutanten Proteinen die Kausalität für das HAE durch sehr geringe C1-INH-Restaktivitäten bestätigt werden konnten, zeigten einige mutante Proteine kaum beeinträchtige Aktivitäten. Die zugrunde liegenden Punktmutationen dürften deshalb sehr seltene Polymorphismen sein. Um weiteren Aufschluss über die Auswirkungen der verschiedenen Mutationen zu erhalten, wurden diese in ein 3D-Modell des C1-INH eingebaut und mit einem wildtypischen C1-INH-Modell verglichen. Das verfügbare Modell, das nicht auf Strukturdaten, sondern auf der Homolgie zu anderen Serpinen beruht und nur die Serpindomäne erfasst, erwies sich jedoch bei einigen inaktivierenden Mutationen als unzureichend bzw. unvollständig. Die C1-INH-Gendiagnostik konnte in den meisten Fällen eine Mutation bei den betroffenen Familien nachweisen und auch Mutationsträger vor der Erstmanifestation lebensbedrohender Symptome identifizieren. Die rekombinante Expression und Aktivitätsmessung mutanter C1-INH-Proteine ist ein nützliches Hilfsmittel um die Kausalität von Missense-Mutationen aufzuklären und liefert wertvolle Einblicke in die Funktion individueller Aminosäuren im C1-INH-Protein.
In this thesis two genes involved in causing neurodegenerative phenotypes in Drosophila are described. olk (omb-like), a futsch allele, is a micotubule associated protein (MAP) which is homologous to MAP1B and sws (swiss cheese) a serine esterase of yet unknown function within the nervous system. The lack of either one of these genes causes progressive neurodegeneration in two different ways. The sws mutant is characterized by general degeneration of the adult nervous system, glial hyperwrapping and neuronal apoptosis. Deletion of NTE (neuropathy target esterase), the SWS homolog in vertebrates, has been shown to cause a similar pattern of progressive neural degeneration in mice. NTE reacts with organophosphates causing axonal degeneration in humans. Inhibition of vertebrate NTE is insufficient to induce paralyzing axonal degeneration, a reaction called "aging reaction" is necessary for the disease to set in. It is hypothesized that a second "non-esterase" function of NTE is responsible for this phenomenon. The biological function of SWS within the nervous system is still unknown. To characterize the function of this protein several transgenic fly lines expressing different mutated forms of SWS were established. The controlled expression of altered SWS protein with the GAL4/UAS system allowed the analysis of isolated parts of the protein that were altered in the respective constructs. The characterization of a possible non-esterase function was of particular interest in these experiments. One previously described aberrant SWS construct lacking the first 80 amino acids (SWSΔ1-80) showed a deleterious, dominant effect when overexpressed and was used as a model for organophosphate (OP) intoxication. This construct retains part of its detrimental effect even without catalytically active serine esterase function. This strongly suggests that there is another characteristic to SWS that is not defined solely by its serine esterase activity. Experiments analyzing the lipid contents of sws mutant, wildtype (wt) and SWS overexpressing flies gave valuable insights into a possible biological function of SWS. Phosphatidylcholine, a major component of cell membranes, accumulates in sws mutants whereas it is depleted in SWS overexpressing flies. This suggests that SWS is involved in phosphatidylcholine regulation. The produced α-SWS antibody made it possible to study the intracellular localization of SWS. Images of double stainings with ER (endoplasmic reticulum) markers show that SWS is in great part localized to the ER. This is consistent with findings of SWS/ NTE localization in yeast and mouse cells. The olk mutant also shows progressive neurodegeneration but it is more localized to the olfactory system and mushroom bodies. Regarding specific cell types it seemed that specifically the projection neurons (PNs) are affected. A behavioral phenotype consisting of poor olfactory memory compared to wt is also observed even before histologically visible neurodegeneration sets in. Considering that the projection neurons connect the antennal lobes to the mushroom bodies, widely regarded as the "learning center", this impairment was expected. Three mutants where identified (olk1-3) by complementation analysis with the previously known futschN94 allele and sequencing of the coding sequence of olk1 revealed a nonsense mutation early in the protein. Consistent with the predicted function of Futsch as a microtubule associated protein (MAP), abnormalities are most likely due to a defective microtubule network and defects in axonal transport. In histological sections a modified cytoskeletal network is observed and western blots confirm a difference in the amount of tubulin present in the olk1 mutant versus the wt. The elaboration of neuronal axons and dendrites is dependent on a functional cytoskeleton. Observation of transport processes in primary neural cultures derived from olk1 mutant flies also showed a reduction of mitochondrial transport. Interaction with the fragile X mental retardation gene (dfmr1) was observed with the olk mutant. A dfmr1/ olk1 double mutant shows an ameliorated phenotype compared to the olk1 single mutant. tau, another MAP gene, was also shown to be able to partially rescue the olk1 mutant.
Emery-Dreifuss muscular dystrophy (EDMD) is a rare genetic disorder characterised by early contractures of the elbows, Achilles tendons and spine, slowly progressive muscle wasting and cardiomyopathy associated with cardiac conduction defect. The autosomal dominant form is caused by mutations in the LMNA gene which gives rise to lamin A and lamin C proteins by alternative splicing. These A-type lamins, together with B-type lamins, form the nuclear lamina, a network of intermediate filament proteins underlining the nuclear envelope. In order to ascertain the role lamin A and C separately contribute to the molecular phenotype, we analysed ten LMNA mutations and one single nucleotide polymorphism (SNP) in transfection studies in COS7 fibroblasts and, partially, in C2C12 myoblasts. The EGFP or DsRed2 tagged lamins were exogenously expressed either individually or both A-types together and examined by light and electron microscopy. The protein mobility of lamin A mutants was determined by FRAP analysis. Additionally, a co-immunoprecipitation binding assay of in vitro synthesised A-type lamins and emerin was performed.Eight of the LMNA mutations (R50S, R133P, E358K, E358K+C<T1698, E361K, R527P, L530P, R541S and G602S) and the SNP C<T1698, when expressed in lamin A, exhibited a range of nuclear mis-localisation patterns from a wild type phenotype to the formation of nuclear aggregates. Two mutations (T150P and delQ355) led to the severe mis-localisation of the exogenous protein and additionally affected nuclear envelope reassembly and mid-body protein composition after mitosis. Exogenously expressed DsRed2 tagged wild type and mutant lamin C was only inserted into the nuclear lamina if co-expressed with the equivalent EGFP tagged lamin A construct, except for the T150P mutation which prevented either lamin from reaching the nuclear lamina. The T150P, R527P and L530P mutations reduced the ability of lamin A, but not lamin C from binding to emerin. These data indicate that mutations in the rod domain of lamin A mainly impair its function as a structural protein, whereas mutations of the globular tail domain appear to disrupt protein-protein interactions important for gene regulation and signal transduction processes. In addition, our results suggest specific functional roles for the emerin-lamin A and emerin-lamin C containing protein complexes; this is the first report to propose that the A-type lamin mutations may be differentially dysfunctional for the same LMNA mutation.