@phdthesis{Wagner2003, author = {Wagner, Nicole}, title = {Charakterisierung der Kernmembranproteine Lamin-B-Rezeptor und Bocksbeutel von Drosophila melanogaster}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-7245}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2003}, abstract = {Funktionelle Charakterisierung neuer Proteine der inneren Kernmembran von Drosophila melanogaster: Drosophila Lamin B Rezeptor (dLBR), ein integrales Membranprotein der inneren Kernmembran; Bocksbeutel alpha und Bocksbeutel beta, LEM-Dom{\"a}nen Proteine sowie deren potentiellen Interaktionspartner Drosophila Barrier-to-Autointegration Factor (dBAF).}, subject = {Taufliege}, language = {de} } @phdthesis{Wagh2005, author = {Wagh, Dhananjay Anil}, title = {"Bruchpilot" -molecular and functional characterization of a novel active zone protein at the Drosophila synapse}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-14989}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2005}, abstract = {Chemical neurotransmission is a complex process of central importance for nervous system function. It is thought to be mediated by the orchestration of hundreds of proteins for its successful execution. Several synaptic proteins have been shown to be relevant for neurotransmission and many of them are highly conserved during evolution- suggesting a universal mechanism for neurotransmission. This process has checkpoints at various places like, neurotransmitter uptake into the vesicles, relocation of the vesicles to the vicinity of calcium channels in order to facilitate Ca2+ induced release thereby modulating the fusion probability, formation of a fusion pore to release the neurotransmitter and finally reuptake of the vesicles by endocytosis. Each of these checkpoints has now become a special area of study and maintains its own importance for the understanding of the overall process. Ca2+ induced release occurs at specialized membrane structures at the synapse known as the active zones. These are highly ordered electron dense grids and are composed of several proteins which assist the synaptic vesicles in relocating in the vicinity of Ca2+ channels thereby increasing their fusion probability and then bringing about the vesicular fusion itself. All the protein modules needed for these processes are thought to be held in tight arrays at the active zones, and the functions of a few have been characterized so far at the vertebrate active zones. Our group is primarily interested in characterizing the molecular architecture of the Drosophila synapse. Due to its powerful genetics and well-established behavioural assays Drosophila is an excellent system to investigate neuronal functioning. Monoclonal antibodies (MABs) from a hybridoma library against Drosophila brain are routinely used to detect novel proteins in the brain in a reverse genetic approach. Upon identification of the protein its encoding genetic locus is characterized and a detailed investigation of its function is initiated. This approach has been particularly useful to detect synaptic proteins, which may go undetected in a forward genetic approach due to lack of an observable phenotype. Proteins like CSP, Synapsin and Sap47 have been identified and characterized using this approach so far. MAB nc82 has been one of the shortlisted antibodies from the same library and is widely used as a general neuropil marker due to the relative transparency of immunohistochemical whole mount staining obtained with this antibody. A careful observation of double stainings at the larval neuromuscular junctions with MAB nc82 and other pre and post-synaptic markers strongly suggested an active zone localization of the nc82 antigen. Synaptic architecture is well characterized in Drosophila at the ultrastructural level. However, molecular details for many synaptic components and especially for the active zone are almost entirely unknown. A possible localization at the active zone for the nc82 antigen served as the motivation to initiate its biochemical characterization and the identification of the encoding gene. In the present thesis it is shown by 2-D gel analysis and mass spectrometry that the nc82 antigen is a novel active zone protein encoded by a complex genetic locus on chromosome 2R. By RT-PCR exons from three open reading frames previously annotated as separate genes are demonstrated to give rise to a transcript of at least 5.5 kb. Northern blots produce a prominent signal of 11 kb and a weak signal of 2 kb. The protein encoded by the 5.5 kb transcript is highly conserved amongst insects and has at its N-terminus significant homology to the previously described vertebrate active zone protein ELKS/ERC/CAST. Bioinformatic analysis predicts coiled-coil domains spread all over the sequence and strongly suggest a function involved in organizing or maintaining the structure of the active zone. The large C-terminal region is highly conserved amongst the insects but has no clear homologues in veretebrates. For a functional analysis of this protein transgenic flies expressing RNAi constructs under the control of the Gal4 regulated enhancer UAS were kindly provided by the collaborating group of S.Sigrist (G\&\#1616;ttingen). A strong pan-neuronal knockdown of the nc82 antigen by transgenic RNAi expression leads to embryonic lethality. A relatively weaker RNAi expression results in behavioural deficits in adult flies including unstable flight and impaired walking behavior. Due to this peculiar phenotype as observed in the first knockdown studies the gene was named "bruchpilot" (brp) encoding the protein "Bruchpilot (BRP)" (German for crash pilot). A pan-neuronal as well as retina specific downregulation of this protein results in loss of ON and OFF transients in ERG recordings indicating dysfunctional synapses. Retina specific downregulation also shows severely impaired optomotor behaviour. Finally, at an ultrastructural level BRP downregulation seems to impair the formation of the characteristic T-shaped synaptic ribbons at the active zones without significantly altering the overall synaptic architecture (in collaboration with E.Asan). Vertebrate active zone protein Bassoon is known to be involved in attaching the synaptic ribbons to the active zones as an adapter between active zone proteins RIBEYE and ERC/CAST. A mutation in Bassoon results in a floating synaptic ribbon phenotype. No protein homologous to Bassoon has been observed in Drosophila. BRP downregulation also results in absence of attached synaptic ribbons at the active zones. This invites the speculation of an adapter like function for BRP in Drosophila. However, while Bassoon mutant mice are viable, BRP deficit in addition to the structural phenotype also results in severe behavioural and physiological anomalies and even stronger downregulation causes embryonic lethality. This therefore suggests an additional and even more important role for BRP in development and normal functioning of synapses in Drosophila and also in other insects. However, how BRP regulates synaptic transmission and which other proteins are involved in this BRP dependant pathway remains to be investigated. Such studies certainly will attract prominent attention in the future.}, subject = {Taufliege}, language = {en} } @phdthesis{Voeller2009, author = {V{\"o}ller, Thomas}, title = {Visualisierung und Manipulation neuronaler Aktivit{\"a}ten im Gehirn von Drosophila melanogaster}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-35589}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2009}, abstract = {In dieser Arbeit wurden zwei Techniken zur Analyse der Funktion diverser Neuronen in Drosophila melanogaster angewendet. Im ersten Teil wurde mittels in-vivo Calcium Imaging Technik unter Verwendung des Calciumsensors Cameleon neuronale Aktivit{\"a}t entlang des olfaktorischen Signalweges registriert. Hierbei wurde die neuronale Repr{\"a}sentation der Duftidentit{\"a}t und der Duftintensit{\"a}t untersucht. In Bezug auf diese Fragestellung wurde die Datenverarbeitung und Datenanalyse weiterentwickelt und standardisiert. Die Experimente f{\"u}hrten zu dem Ergebnis, dass duftspezifische Aktivit{\"a}tsmuster auf der Ebene des Antennallobus sehr gut unterscheidbar sind. Manche Aktivit{\"a}tsmuster der pr{\"a}sentierten D{\"u}fte zeigten interessanterweise einen hohen {\"A}hnlichkeitsgrad, wohingegen andere un{\"a}hnlich waren. In h{\"o}heren Gehirnzentren wie den Orten der terminalen Aborisationen der Projektionsneurone oder den Pilzk{\"o}rper Kenyonzellen liegt eine starke Variabilit{\"a}t der duftevozierten Aktivit{\"a}tsmuster vor, was generelle Interpretationen unm{\"o}glich macht und h{\"o}chstens Vergleiche innerhalb eines Individuums zul{\"a}sst. Des Weiteren konnte gezeigt werden, dass die Calciumsignale in den Rezeptorneuronen sowie pr{\"a}- und postsynaptisch in den Projektionsneuronen bei Erh{\"o}hung der Konzentration der verschiedenen pr{\"a}sentierten D{\"u}fte {\"u}ber einen Bereich von mindestens drei Gr{\"o}ßenordnungen ansteigen. In den Kenyonzellen des Pilzk{\"o}rper-Calyx und der Pilzk{\"o}rper-Loben ist diese Konzentrationsabh{\"a}ngigkeit weniger deutlich ausgepr{\"a}gt und im Falle der Loben nur f{\"u}r bestimmte D{\"u}fte detektierbar. Eine Best{\"a}tigung des postulierten „sparsed code" der Duftpr{\"a}sentation in den Pilzk{\"o}rpern konnte in dieser Arbeit nicht erbracht werden, was m{\"o}glicherweise daran liegt, dass eine Einzelzellaufl{\"o}sung mit der verwendeten Technik nicht erreicht werden kann. Im zweiten Teil dieser Arbeit sollte durch die Nutzung des lichtabh{\"a}ngigen Kationenkanals Channelrhodopsin-2 der Frage nachgegangen werden, ob bestimmte modulatorische Neurone die verst{\"a}rkenden Eigenschaften eines bestrafenden oder belohnenden Stimulus vermitteln. Die lichtinduzierte Aktivierung von Channelrhodopsin-2 exprimierenden dopaminergen Neuronen als Ersatz f{\"u}r einen aversiven Reiz f{\"u}hrte bei einer olfaktorischen Konditionierung bei Larven zur Bildung eines aversiven assoziativen Ged{\"a}chtnisses. Im Gegensatz dazu induzierte die Aktivierung von Channelrhodopsin-2 in oktopaminergen/tyraminergen Neuronen als Ersatz f{\"u}r einen appetitiven Reiz ein appetitives assoziatives Ged{\"a}chtnis. Diese Ergebnisse zeigen, dass dopaminerge Neurone bei Larven aversives Duftlernen, oktopaminerge/tyraminerge Neurone dagegen appetitives Duftlernen induzieren.}, subject = {Taufliege}, language = {de} } @phdthesis{Tyagi2012, author = {Tyagi, Anu}, title = {Role of SWI/SNF in regulating pre-mRNA processing in Drosophila melanogaster}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-72253}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2012}, abstract = {ATP dependent chromatin remodeling complexes are multifactorial complexes that utilize the energy of ATP to rearrange the chromatin structure. The changes in chromatin structure lead to either increased or decreased DNA accessibility. SWI/SNF is one of such complex. The SWI/SNF complex is involved in both transcription activation and transcription repression. The ATPase subunit of SWI/SNF is called SWI2/SNF2 in yeast and Brahma, Brm, in Drosophila melanogaster. In mammals there are two paralogs of the ATPase subunit, Brm and Brg1. Recent studies have shown that the human Brm is involved in the regulation of alternative splicing. The aim of this study was to investigate the role of Brm in pre-mRNA processing. The model systems used were Chironomus tentans, well suited for in situ studies and D. melanogaster, known for its full genome information. Immunofluorescent staining of the polytene chromosome indicated that Brm protein of C. tentans, ctBrm, is associated with several gene loci including the Balbiani ring (BR) puffs. Mapping the distribution of ctBrm along the BR genes by both immuno-electron microscopy and chromatin immunoprecipitation showed that ctBrm is widely distributed along the BR genes. The results also show that a fraction of ctBrm is associated with the nascent BR pre-mRNP. Biochemical fractionation experiments confirmed the association of Brm with the RNP fractions, not only in C. tentans but also in D. melanogaster and in HeLa cells. Microarray hybridization experiments performed on S2 cells depleted of either dBrm or other SWI/SNF subunits show that Brm affects alternative splicing and 3´ end formation. These results indicated that BRM affects pre-mRNA processing as a component of SWI/SNF complexes. 1}, subject = {Taufliege}, language = {en} } @phdthesis{Tschaepe2002, author = {Tsch{\"a}pe, Jakob-Andreas}, title = {Molekulare und funktionelle Analyse der Drosophila-Mutante l{\"o}chrig}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-2963}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2002}, abstract = {Neurodegenerative Erkrankungen des Menschen sind eines der Hauptfelder molekularer neurobiologischer Grundlagenforschung. Um generell molekulare, komplizierte Vorg{\"a}nge in vivo untersuchen zu k{\"o}nnen, nutzt man seit geraumer Zeit Modellorganismen wie Caenorhabditis elegans oder Drosophila melanogaster. In der vorliegenden Arbeit wird die Drosophila-Neurodegenerationsmutante loe (l{\"o}chrig) beschrieben, die als Modell f{\"u}r die Rolle des Cholesterinhaushalts im Bezug auf Neurodegeneration herangezogen werden kann. Die Fliegen dieser Mutante zeigen stark progressive, altersabh{\"a}ngige Degeneration von Neuronen, dabei unterlaufen diese Nervenzellen einen nekrotischenZelltod. Verantwortlich f{\"u}r diese Mutation ist die Insertion eines P-Elementes in einem Intron des Drosophila-g-5'-AMP-aktivierten Proteinkinase- (AMPK)-Gens. Die verschiedenen Spleißprodukte des loe Gens kodieren f{\"u}r die regulatorische g-Untereinheit des AMPK-Komplexes, der , aktiviert durch 5'AMP, energieintensive Prozesse negativ reguliert. Die Spleißform loeI ist durch die P-Element-Insertion betroffen, Anteile des P-Elementes werden in das loeI-Transkript hineingespleißt. Eine neuronale Expression von loeI im loe-Hintergrund f{\"u}hrt zur Revertierung des loe-Ph{\"a}notypes. Mit der Expression anderer Spleißformen kann dieser Effekt nicht erzielt werden. Das LOE I-Protein birgt in seinem N-Terminus eine Reihe m{\"o}glicher Interaktionstellen mit anderen Proteinen, die den AMPK-Komplex in einen Kontext mit den Proteinen der APP (Amyloid Precursor Proteins) ?Familie stellen oder z. B. Interaktionen mit dem Cytoskelett herstellen k{\"o}nnen. Eine molekulare Interaktion mit NiPSNAP, einem Protein, dass vermutlich eine Rolle im Vesikelverkehr spielt, konnte nachgewiesen werden. Ein direktes humanes Homolog von LOE I ist nicht bekannt, wohlgleich es im Menschen drei AMPK-g-Untereinheiten gibt, von denen zwei {\"a}hnliche Funktionen {\"u}bernehmen k{\"o}nnten wie LOE I. Die loe-Mutante interagiert genetisch mit der Mutante clb ? columbus, die einen Defekt im Gen der HMG-CoA-Reduktase tr{\"a}gt. Dieses Emzym ist das Schl{\"u}sselenzym der Cholesterinbiosynthese. Die Art der Interaktion belegt eine negative Regulierung der HMG-CoA-Reduktase durch die AMPK. So schw{\"a}cht die clb-Mutation den neurodegenerativen loe-Ph{\"a}notyp ab, eine {\"U}berexpression von clb verst{\"a}rkt diesen. Eine Verminderung der Neurodegeneration kann auch mit Medikamenten erreicht werden: Statine, potente Hemmer der HMG-COA-Reduktase, reprimieren deutlich den loe-Ph{\"a}notyp. In loe ist der Cholesterinester-Spiegel auf 40\% abgesenkt. Eine weitere genetische Interaktion von loe konnte nachgewiesen werden: Die Mutante f{\"u}r das Drosophila-Homolog von APP (Appl) verst{\"a}rkt den neurodegenerativen Ph{\"a}notyp in loe stark, wogegen die Appl-Mutante selbst keine neurodegenerativen Defekte aufweist. Dar{\"u}berhinaus zeigt die Doppelmutante Defekte, die keine der Einzelmutanten aufweist: Sterilit{\"a}t oder eine extrem kurze Lebensdauer von nur 3-4 Tagen. Diese Interaktion ließ sich auf molekularer Ebene charakterisieren. Die proteolytische Prozessierung von APPL durch Sekretasen ist in loe alteriert. In der vorliegenden Arbeit konnte gezeigt werden, dass durch die loe-Mutation die b-Sekretase aus Vertebraten (BACE) und eine bisher noch nicht beschriebene endogene Sekretase aus Drosophila negativ beeiflusst werden. Ein AMPK-Komplex mit LOE I als g-Untereinheit scheint {\"u}ber den Cholesterinester-Spiegel die Aktivit{\"a}t einer speziellen Untergruppe der Sekretasen zu beeinflussen. Die Missfunktion dieser Sekretasen ist ein kritischer Punkt in der Pathogenese der Alzheimer-Krankheit. Die loe-Mutation wirft neues Licht auf die bekannten Verbindungen zwischen Cholesterin-Stoffwechsel, Vesikelverkehr und Prozessierung von APP(L). Mit den großen M{\"o}glichkeiten, die die Drosophila-Genetik bietet, stellt diese neue Mutante ein weiteres Werkzeug zur Charakterisierung von Therapie-Ans{\"a}tzen f{\"u}r die Alzheimer-Kankheit dar. Die vorliegende Arbeit belegt um ein weiteres Mal, dass Drosophila ein potentes Modellsystem zur Untersuchung humaner, neurodegenerativer Erkrankungen wie Chorea Huntington, Parkinson oder der Alzheimer Krankheit ist.}, subject = {Taufliege}, language = {de} } @phdthesis{Triphan2009, author = {Triphan, Tilman}, title = {The Central Control of Gap Climbing Behaviour in Drosophila melanogaster}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-43666}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2009}, abstract = {In this work, a behavioural analysis of different mutants of the fruit fly Drosophila melanogaster has been carried out. Primarily, the gap climbing behaviour (Pick \& Strauss, 2005) has been assayed as it lends itself for the investigation of decision making processes and the neuronal basis of adaptive behaviour. Furthermore it shows how basic motor actions can be combined into a complex motor behaviour. Thanks to the neurogenetic methods, Drosophila melanogaster has become an ideal study object for neurobiological questions. Two different modules of climbing control have been examined in detail. For the decision making, the mutant climbing sisyphus was analysed. While wild-type flies adapt the initiation of climbing behaviour to the width of the gap and the probability for a successful transition. climbing sisyphus flies initiate climbing behaviour even at clearly insurmountable gap widths. The climbing success itself is not improved in comparison to the wild-type siblings. The mutant climbing sisyphus is a rare example of a hyperactive mutant besides many mutants that show a reduced activity. Basic capabilities in vision have been tested in an optomotor and a distance-estimation paradigm. Since they are not affected, a defect in decision making is most probably the cause of this behavioural aberration. A second module of climbing control is keeping up orientation towards the opposite side of the gap during the execution of climbing behaviour. Mutants with a structural defect in the protocerebral bridge show abnormal climbing behaviour. During the climbing attempt, the longitudinal body axis does not necessarily point into the direction of the opposite side. Instead, many climbing events are initiated at the side edge of the walking block into the void and have no chance to ever succeed. The analysed mutants are not blind. In one of the mutants, tay bridge1 (tay1) a partial rescue attempt used to map the function in the brain succeeded such that the state of the bridge was restored. That way, a visual targeting mechanism has been activated, allowing the flies to target the opposite side. When the visibility of the opposing side was reduced, the rescued flies went back to a tay1 level of directional scatter. The results are in accord with the idea that the bridge is a central constituent of the visual targeting mechanism. The tay1 mutant was also analysed in other behavioural paradigms. A reduction in walking speed and walking activity in this mutant could be rescued by the expression of UAS-tay under the control of the 007Y-GAL4 driver line, which concomitantly restores the structure of the protocerebral bridge. The separation of bridge functions from functions of other parts of the brain of tay1 was accomplished by rescuing the reduced optomotor compensation in tay1 by the mb247-GAL4>UAS-tay driver. While still having a tay1-like protocerebral bridge, mb247-GAL4 rescue flies are able to compensate at wild-type levels. An intact compensation is not depended on the tay expression in the mushroom bodies, as mushroom body ablated flies with a tay1 background and expression of UAS-tay under the control of mb247-GAL4 show wild-type behaviour as well. The most likely substrate for the function are currently unidentified neurons in the fan-shaped body, that can be stained with 007Y-GAL4 and mb247-GAL4 as well.}, subject = {Taufliege}, language = {en} } @phdthesis{Thum2006, author = {Thum, Andreas Stephan}, title = {Sugar reward learning in Drosophila : neuronal circuits in Drosophila associative olfactory learning}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-17930}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2006}, abstract = {Genetic intervention in the fly Drosophila melanogaster has provided strong evidence that the mushroom bodies of the insect brain act as the seat of memory traces for aversive and appetitive olfactory learning (reviewed in Heisenberg, 2003). In flies, electroshock is mainly used as negative reinforcer. Unfortunately this fact complicates a comparative consideration with other inscets as most studies use sugar as positive reinforcer. For example, several lines of evidence from honeybee and moth have suggested another site, the antennal lobe, to house neuronal plasticity underlying appetitive olfactory memory (reviewed in Menzel, 2001; Daly et al., 2004). Because of this I focused my work mainly on appetitive olfactory learning. In the first part of my thesis, I used a novel genetic tool, the TARGET system (McGuire et al., 2003), which allows the temporally controlled expression of a given effector gene in a defined set of cells. Comparing effector genes which either block neurotransmission or ablate cells showed important differences, revealing that selection of the appropriate effector gene is critical for evaluating the function of neural circuits. In the second part, a new engram of olfactory memory in the Drosophila projection neurons is described by restoring Rutabaga adenlylate cyclase (rut-AC) activity specifically in these cells. Expression of wild-type rutabaga in the projection neurons fully rescued the defect in sugar reward memory, but not in aversive electric shock memory. No difference was found in the stability of the appetitive memories rescued either in projection neurons or Kenyon cells. In the third part of the thesis I tried to understand how the reinforcing signals for sugar reward are internally represented. In the bee Hammer (1993) described a single octopaminergic neuron - called VUMmx1 - that mediates the sugar stimulus in associative olfactory reward learning. Analysis of single VUM neurons in the fly (Selcho, 2006) identified a neuron with a similar morphology as the VUMmx1 neuron. As there is a mutant in Drosophila lacking the last enzymatic step in octopamine synthesis (Monastirioti et al., 1996), Tyramine beta Hydroxylase, I was able to show that local Tyramine beta Hydroxylase expression successfully rescued sugar reward learning. This allows to conclude that about 250 cells including the VUM cluster are sufficient for mediating the sugar reinforcement signal in the fly. The description of a VUMmx1 similar neuron and the involvement of the VUM cluster in mediating the octopaminergic sugar stimulus are the first steps in establishing a neuronal map for US processing in Drosophila. Based on this work several experiments are contrivable to reach this ultimate goal in the fly. Taken together, the described similiarities between Drosophila and honeybee regarding the memory organisation in MBs and PNs and the proposed internal representation of the sugar reward suggest an evolutionarily conserved mechanism for appetitive olfactory learning in insects.}, subject = {Taufliege}, language = {en} } @phdthesis{Schwaerzel2003, author = {Schw{\"a}rzel, Martin}, title = {Localizing engrams of olfactory memories in Drosophila}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-5065}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2003}, abstract = {Zars and co-workers were able to localize an engram of aversive olfactory memory to the mushroom bodies of Drosophila (Zars et al., 2000). In this thesis, I followed up on this finding in two ways. Inspired by Zars et al. (2000), I first focused on the whether it would also be possible to localize memory extinction.While memory extinction is well established behaviorally, little is known about the underlying circuitry and molecular mechanisms. In extension to the findings by Zars et al (2000), I show that aversive olfactory memories remain localized to a subset of mushroom body Kenyon cells for up to 3 hours. Extinction localizes to the same set of Kenyon cells. This common localization suggests a model in which unreinforced presentations of a previously learned odorant intracellularly antagonizes the signaling cascades underlying memory formation. The second part also targets memory localization, but addresses appetitive memory. I show that memories for the same olfactory cue can be established through either sugar or electric shock reinforcement. Importantly, these memories localize to the same set of neurons within the mushroom body. Thus, the question becomes apparent how the same signal can be associated with different events. It is shown that two different monoamines are specificaly necessary for formation of either of these memories, dopamine in case of electric shock and octopamine in case of sugar memory, respectively. Taking the representation of the olfactory cue within the mushroom bodies into account, the data suggest that the two memory traces are located in the same Kenyon cells, but in separate subcellular domains, one modulated by dopamine, the other by octopamine. Taken together, this study takes two further steps in the search for the engram. (1) The result that in Drosophila olfactory learning several memories are organized within the same set of Kenyon cells is in contrast to the pessimism expressed by Lashley that is might not be possible to localize an engram. (2) Beyond localization, a possibible mechanism how several engrams about the same stimulus can be localized within the same neurons might be suggested by the models of subcellular organisation, as postulated in case of appetitive and aversive memory on the one hand and acquisition and extinction of aversive memory on the other hand.}, subject = {Taufliege}, language = {en} } @phdthesis{Schwenkert2005, author = {Schwenkert, Isabell}, title = {Phenotypic characterization of hangover at the neuromuscular junction}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-14977}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2005}, abstract = {Ethanoltoleranz beruht vermutlich auf Ver{\"a}nderung in synaptischer Plastizit{\"a}t; da die Mechanismen, die zu dieser Anpassung der Synapsen f{\"u}hren, in hang-Mutanten offensichtlich defekt sind, war es Ziel dieser Arbeit zu erkl{\"a}ren, wie HANG zu synaptischer Plastizit{\"a}t beitr{\"a}gt. In diesem Zusammenhang war es besonders wichtig herauszufinden, in welchem neuronalen Prozeß HANG eine Rolle spielt. Antik{\"o}rperfarbungen gegen HANG zeigten, da das Protein in allen neuronalen Zellkernen larvaler und adulter Gehirne vorhanden ist. Gehirne der hangAE10 Mutante zeigen keine F{\"a}rbung, was best{\"a}tigt, da diese Tiere Nullmutanten f{\"u}r HANG sind. Eine genauere Analyse der Verteilung von HANG im Zellkern ergab, daß HANG in einem punktartigen Muster an bestimmten Stellen im Kern angereichert ist; diese HANG-Aggregate sind an der Innenseite der Kernmembran lokalisiert und colokalisieren nicht mit dem Chromatin. Auf der Basis dieser Ergebnissen wurde postuliert, daß HANG vermutlich an der Stabilisierung, Prozessierung oder dem Export von mRNAs beteiligt ist. Da synaptische Plastizit{\"a}t gut an den einzelnen Neuronen der neuromuskul{\"a}ren Synapse von Drosophila-Larven studiert werden kann, wurde die Morphologie der Motorneurone dritter Larven am Muskelpaar 6/7 des Segments A4 untersucht. Diese Untersuchungen zeigten, da Boutonanzahl und Axonl{\"a}nge in hangAE10-Larven um 40 \% erh{\"o}ht sind. Außerdem zeigen einige Boutons der hang-Mutanten eine abnormale, sanduhrf{\"o}rmige Form, was darauf hinweist, daß sie nach Initiation der Bouton-Teilung m{\"o}glicherweise in einem halb-separierten Zustand geblieben sind. Die Zunahme an Boutons in den Mutanten ist im wesentlichen auf eine Zunahme der Anzahl der Typ Ib-Boutons zur{\"u}ckzuf{\"u}hren. Die Analyse der Verteilung verschiedener synaptischer Marker in hangover-Mutanten ergab keine Hinweise auf Abnormalit{\"a}ten im Zytoskelett oder in der Ausbildung der pr{\"a}-und postsynaptischen Strukturen. Des weiteren ist die Anzahl der aktiven Zonen relativ zur Boutonoberfl{\"a}che nicht ver{\"a}ndert; da hang-Mutanten aber mehr synaptische Boutons pro synaptischem Terminal besitzen, kann man insgesamt von einer Zunahme der Anzahl der aktiven Zonen ausgehen. Die pr{\"a}synaptische Expression von HANG in den Mutanten rettet die erh{\"o}hte Boutonanzahl und die verl{\"a}ngerten Axone, was ebenfalls beweist, daß die beobachteten synaptischen Defekte auf das Fehlen von HANG und nicht auf Sekund{\"a}rmutationen zur{\"u}ckzuf{\"u}hren sind. Eine postsynaptische Expression der hangover cDNA in den Mutanten dagegen rettet den Ph{\"a}notyp nicht. Die Anzahl der synaptischen Boutons wird unter anderem durch cAMP-Levels bestimmt, welche somit synaptische Plastizit{\"a}t regeln. Da hang-Mutanten eine erh{\"o}hte Boutonanzahl aufweisen, f{\"u}hrte dies zu der Spekulation, daß der Ph{\"a}notyp dieser Mutanten m{\"o}glicherweise auf ver{\"a}nderte cAMPlevels zur{\"u}ckzuf{\"u}hren ist. Um dies zu {\"u}berpr{\"u}fen, wurde die Morphologie der neuromuskul{\"a}ren Synapsen von hangAE10-Larven mit denen von dnc1 verglichen, welche Defekte in der cAMP-Kaskade aufweisen. Einige Aspekte des Ph{\"a}notyps (z. B. die Zunahme der Boutonanzahl und das Verhaltnis von aktiven Zonen pro Boutonfl{\"a}che) sind sehr ¨ahnlich; jedoch unterscheiden sich die beiden Mutanten in anderen morphologischen Aspekten. Die Expression eines UAS-dnc-Transgens in hangover-Mutanten modifizierte den hang-Ph{\"a}notyp ebenfalls nicht. Auf der Basis der Ergebnisse dieser Arbeit wurde ein Modell f{\"u}r die Funktion von HANG erstellt, nach dem dieses Protein vermutlich am Isoform-spezifischen Spleißen bestimmter Transkripte beteiligt ist, deren Produkte f{\"u}r die synaptische Plastizit{\"a}t an der neuromuskul{\"a}ren Synapse ben{\"o}tigt werden.}, subject = {Taufliege}, language = {en} } @phdthesis{Schubert2019, author = {Schubert, Frank Klaus}, title = {The circadian clock network of \(Drosophila\) \(melanogaster\)}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-157136}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2019}, abstract = {All living organisms need timekeeping mechanisms to track and anticipate cyclic changes in their environment. The ability to prepare for and respond to daily and seasonal changes is endowed by circadian clocks. The systemic features and molecular mechanisms that drive circadian rhythmicity are highly conserved across kingdoms. Therefore, Drosophila melanogaster with its relatively small brain (ca. 135.000 neurons) and the outstanding genetic tools that are available, is a perfect model to investigate the properties and relevance of the circadian system in a complex, but yet comprehensible organism. The last 50 years of chronobiological research in the fruit fly resulted in a deep understanding of the molecular machinery that drives circadian rhythmicity, and various histological studies revealed the neural substrate of the circadian system. However, a detailed neuroanatomical and physiological description on the single-cell level has still to be acquired. Thus, I employed a multicolor labeling approach to characterize the clock network of Drosophila melanogaster with single-cell resolution and additionally investigated the putative in- and output sites of selected neurons. To further study the functional hierarchy within the clock network and to monitor the "ticking clock" over the course of several circadian cycles, I established a method, which allows us to follow the accumulation and degradation of the core clock genes in living brain explants by the means of bioluminescence imaging of single-cells.}, subject = {Taufliege}, language = {en} }