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Die Zusammenlageurng spleißosomaler UsnRNPs erfolgt beim Menschen und anderen Vertebraten durch den makromolekularen SMN-Komplex. Dieser besteht aus insgesamt neun Proteinen, genannt SMN und Gemin2-8. In dieser Arbeit wurde die Evolution dieser molekularen Maschine untersucht. Dazu wurden die Genome mehrerer Modellorganismen bioinformatisch nach Orthologen von SMN und seinen Komplexpartnern durchsucht. Es zeigte sich, dass SMN und Gemin2 die Kernkomponenten des Komplexes darstellen. Von diesen ausgehend kamen weitere Komponenten im Laufe der Evolution hinzu und zwar blockweise, wie es ihrer physischen Assoziation im humanen Komplex entspricht. Um diese Befunde einer biochemischen Überprüfung zu unterziehen, wurde ein neues Affinitätsepitop, das TagIt-Epitop, entwickelt. Nach stabiler Transfektion von Drosophila Schneider2-Zellen konnte das Fusionsprotein effizient exprimiert und der Drosophila-SMN-Komplex nativ aufgereinigt werden. Die massenspektrometrische Untersuchung des Komplexes zeigte, dass SMN und Gemin2 seine einzigen stöchiometrischen Komponenten sind. Dies ist in eindrucksvoller Übereinstimmung mit den bioinformatischen Daten. Der aufgereinigte Komplex lagert in vitro Sm-Proteine mit der entsprechenden UsnRNA zum UsnRNP-core-Komplex zusammen. Diese Ergebnisse ließen sich nach rekombinanter Rekonstitution des SMN/Gemin2-Dimers rekapitulieren. Dabei zeigte sich, dass der SMN-Komplex die unkoordinierte Bindung der Sm-Proteine an „falsche“ RNAs verhindert. Folglich genügen SMN und Gemin2 zur Zusammenlagerung des Sm-core-Komplexes, während die übrigen Gemine weitere Funktionen im Kontext der UsnRNP-Biogenese spielen könnten. Aus evolutionsbiologischer Sichtweise ist der SMN-Komplex aus Drosophila ein eindrückliches Beispiel, wie die Vereinfachung eines biochemischen Prozesses zur Kompaktierung des Genoms beitragen kann.
The development of ethanol tolerance is due to changes in synaptic plasticity. Since the mechanisms mediating synaptic plasticity are probably defective in the mutant hangAE10, it was a goal of the present study to find out how HANG contributes to synaptic plasticity. In particular, it was important to clarify in which neuronal process HANG plays a role. Antibody stainings against HANG revealed that the protein is localized in all neuronal nuclei of larval and adult brains; the staining is absent in hangAE10, thus confirming that this P-element insertion stock is a protein null for HANG. Detailed analysis of the subnuclear distribution of HANG showed that HANG immunoreactivity is enriched at distinct spots in the nucleus in a speckled pattern; these speckles are found at the inside of the nuclear membrane and do not colocalize with chromatin nor with the nucleolus; thus, HANG is probably involved in the stabilization, processing or export of RNAs. As synaptic plasticity can be studied in single neurons at the larval neuromuscular junction, the morphology of the synaptic terminals of hangAE10 mutants was analyzed at muscle 6/7, segment A4. These studies revealed that hangAE10 mutants display a 40 % increase in bouton number and axonal branch length; in addition, some boutons have an abnormal hourglass-like shape, suggesting that they are arrested in a semi-separated state following the initiation of bouton division. The increase in bouton number of hang mutants is mainly due to an increase in numbers of type Ib boutons. The analysis of the distribution of several synaptic markers in hang mutants did not show abnormalities. The presynaptic expression of HANG in hang mutants rescues the increase in bouton number and axonal branch length, thus proving that the phenotypes seen in the P-element insertion hangAE10 are attributable to the lack of HANG rather than to effects of the P-element marker rosy or to a secondary hit on the same chromsome during mutagensis. This finding is further supported by the fact that postsynaptic expression of HANG does not rescue the abnormal NMJ morphology of hangAE10. Alterations in cAMP levels regulate the number of boutons; since hang mutants display an increase in bouton number, the questions was whether this morphological abnormality was due to defects in cAMP signalling. To test this hypothesis, hangAE10 NMJs were compared to those of the hypomorphic allele dnc1 that has a defective cAMP cascade. Some aspects of the NMJ phenotype (e.g. the increase in bouton number and the unaltered ratio of active zones per bouton area) are similar in hangAE10 and dnc1, other differ. Expression of a UAS-dnc transgene in hangAE10 mutants does not modify the phenotype. In summary, the results of this study indicate that nuclear protein HANG might be involved in isoform-specific splicing of genes required for synaptic plasticity at the NMJ.
PART I Animals need to constantly evaluate their external environment in order to survive. In some cases the internal state of the animal changes to cope with it’s surrounding. In our study we wanted to investigate the role of amines in modulating internal states of Drosophila. We have designed a behavioral paradigm where the flies are fixed in space but can walk on a small styrofoam ball suspended by a gentle stream of air. The walking activity of flies was used as behavioral readout. PART I Animals need to constantly evaluate their external environment in order to survive. In some cases the internal state of the animal changes to cope with it’s surrounding. In our study we wanted to investigate the role of amines in modulating internal states of Drosophila. We have designed a behavioral paradigm where the flies are fixed in space but can walk on a small styrofoam ball suspended by a gentle stream of air. The walking activity of flies was used as behavioral readout. An operant training paradigm was established by coupling one of the walking directions to incidence of heat punishment. We observed that animals quickly realized the contingency of punishment with walking direction and avoided walking in the punished direction in the presence of punishment, but did not continue walking in the unpunished direction in the absence of the punishment. This would indicate that the flies do not form a memory for the punished direction or rapidly erase it under new conditions. On having established the paradigm with heat punishment we have attempted to activate selected subsets of neuronal populations of Drosophila while they were walking on the ball. The selective activation of neurons was achieved by expressing the light-activated ion channel channelrhodopsin-2 (ChR2) using the Gal4-UAS system and coupling the unidirectional walking of the animals on the ball with the incidence of blue light required to activate the channels and depolarize the neurons. The feasibility of this approach was tested by light-activating sugar sensitive gustatory receptor neurons expressing ChR2, we found that when the light was actuated the flies preferred to turn in one direction the optically “rewarded” direction. Next we similarly activated different subsets of aminergic neurons. We observed that in our setup animals avoided to turn in the direction which was coupled to activation of dopaminergic neurons indicating that release of dopamine is disliked by the animals. This is in accordance with associative learning experiments where dopamine is believed to underlie the formation of an association between a neutral conditioned stimulus with the aversive unconditioned stimulus. However, when we activated tyraminergic/octopaminergic neurons we did not observe any directional preference. The activation of dopaminergic and tyraminergic/octopaminergic neurons led to arousal of the animals indicating that we were indeed successful in activating those neurons. Also, the activation of serotonergic neurons did not have any effect on directional preference of the animals. With this newly established paradigm it will be interesting to find out if in insects like in mammals a reward mediating system exists and to test subsets of aminergic or peptidergic neurons that could possibly be involved in a reward signaling system which has not been detected in our study. Also, it would be interesting to localize neuropile regions that would be involved in mediating choice behavior in our paradigm. PART II In collaboration with S. Kneitz (IZKF Wuerzburg) and T. Nuwal we performed genome-wide expression analysis of two pre-synaptic mutants - Synapsin (Syn97) and Synapse associated protein of 47 kDa (Sap47156). The rationale behind these experiments was to identify genes that were up- or down-regulated due to these mutations. The microarray experiments provided us with several candidate genes some of which we have verified by qPCR. From our qPCR analysis we can conclude that out of the verified genes only Cirl transcripts seem to be reproducibly down regulated in Synapsin mutants. The Cirl gene codes for a calcium independent receptor for latrotoxin. Further qPCR experiments need to be performed to verify other candidate genes. The molecular interactions between CIRL and SYN or their genes should now be investigated in detail.
Eine der größten Herausforderungen in der Neurobiologie ist es, die neuronalen Prozesse zu verstehen, die Lernen und Gedächtnis zugrundeliegen. Welche biochemischen Pfade liegen z.B. der Koinzidenzdetektion von Reizen (klassische Konditionierung) oder einer Handlung und ihren Konsequenzen (operante Konditionierung) zugrunde? In welchen neuronalen Unterstrukturen werden diese Informationen gespeichert? Wie ähnlich sind die Stoffwechselwege, die diese beiden Arten des assoziativen Lernens vermitteln und auf welchem Niveau divergieren sie? Drosophila melanogaster ist wegen der Verfügbarkeit von Lern-Paradigmen und neurogenetischen Werkzeugen ein geeigneter Modell-Organismus, zum diese Fragen zu adressieren. Er ermöglicht eine umfangreiche Studie der Funktion des Gens S6KII, das in der Taufliege in klassischer und operanter Konditionierung unterschiedlich involviert ist (Bertolucci, 2002; Putz et al., 2004). Rettungsexperimenten zeigen, dass die olfaktorische Konditionierung in der Tully Maschine (ein klassisches, Pawlow’sches Konditionierungsparadigma) von dem Vorhandensein eines intakten S6KII Gens abhängt. Die Rettung war sowohl mit einer vollständigen, als auch einer partiellen Deletion erfolgreich und dies zeigt, dass der Verlust der phosphorylierenden Untereinheit der Kinase die Hauptursache des Funktionsdefektes war. Das GAL4/UAS System wurde benutzt, um die S6KII Expression zeitlich und räumlich zu steuern. Es wurde gezeigt, dass die Expression der Kinase während des adulten Stadiums für die Rettung hinreichend war. Dieser Befund schließt eine Entwicklungsstörung als Ursache für den mutanten Phänotyp aus. Außerdem zeigte die gezielte räumliche Rettung von S6KII die Notwendigkeit der Pilzkörper und schloss Strukturen wie das mediane Bündel, die Antennalloben und den Zentralkomplex aus. Dieses Muster ist dem vorher mit der rutabaga Mutation identifizierten sehr ähnlich (Zars et al., 2000). Experimente mit der Doppelmutante rut, ign58-1 deuten an, dass rutabaga und S6KII im gleichen Signalweg aktiv sind. Vorhergehende Studien hatten bereits gezeigt, dass die unterschiedlichen Ergebnisse bei operanter und klassischer Konditionierung auf verschiedenen Rollen für S6KII in den zwei Arten des Lernens hindeuten (Bertolucci, 2002; Putz, 2002). Diese Schlussfolgerung wurde durch den mutanten Phänotyp der transgenen Linien in der Positionskonditionierung und ihr wildtypisches Verhalten in der klassischen Konditionierung zusätzlich bekräftigt. Eine neue Art von Lern-Experiment, genannt „Idle Experiment“, wurde entworfen. Es basiert auf der Konditionierung der Laufaktivität, stellt eine operante Aufgabenstellung dar und überwindet einige der Limitationen des „Standard“ Heat-Box Experimentes. Die neue Art des Idle Experimentes erlaubt es, „gelernte Hilflosigkeit“ in Fliegen zu erforschen, dabei zeigte sich eine erstaunliche Ähnlichkeit zu den Vorgängen in komplizierteren Organismen wie Ratten, Mäusen oder Menschen. Gelernte Hilflosigkeit in der Taufliege wurde nur in den Weibchen beobachtet und wird von Antidepressiva beeinflusst.
OMB and ORG-1
(2002)
Members of the T-box gene family encode transcription factors that play key roles during embryonic development and organogenesis of invertebrates and vertebrates. The defining feature of T-box proteins is an about 200 aa large, conserved DNA binding motif, the T domain. Their importance for proper development is highlighted by the dramatic phenotypes of T-box mutant animals. My thesis was mainly focused on two Drosophila T-box genes, optomotor-blind (omb) and optomotor-blind related 1 (org-1), and included (i) a genetic analysis of org-1 and (ii) the identification of molecular determinants within OMB and ORG-1 that confer functional specificity. (i) Genetic analysis of org-1 initially based on a behavioral Drosophila mutant, C31. C31 is a X-linked, recessive mutant and was mapped to 7E-F, the cytological region of org-1. This pleiotropic mutant is manifested in walking defects, structural aberrations in the central brain, and "held-out" wings. Molecular analysis revealed that C31 contains an insertion of a 5' truncated I retrotransposon within the 3' untranslated transcript of org-1, suggesting that C31 might represent the first org-1 mutant. Based on this hypothesis, we screened 44.500 F1 female offspring of EMS mutagenized males and C31 females for the "held-out" phenotype, but failed to isolate any C31 or org-1 mutant, although this mutagenesis was functional per se. Since we could not exclude the possibility that our failure is due to an idiosyncracy of C31, we intended not to rely on C31 in further genetic experiments and followed a reverse genetic strategy . All P element lines cytologically mapping to 7E-7F were characterized for their precise insertion sites. 13 of the 19 analyzed lines had P element insertions within a hot-spot 37 kb downstream of org-1. No P element insertions within org-1 could be identified, but several P element insertions were determined on either side of org-1. The org-1 nearest insertions were used for local-hop experiments, in which we associated 6 new genes with P insertions, but failed to target org-1. The closest P elements are still 10 kb away from org-1. Subsequently, we employed org-1 flanking P elements to induce precise deletions in 7E-F spanning org-1. Two org-1 flanking P elements were brought together on a recombinant chromosome. Remobilization of P elements in cis configuration frequently results in deletions with the P element insertion sites as deficiency endpoints. In a first attempt, we expected to identify deficiencies by screening for C31 alleles. 8 new C31 alleles could be isolated. The new C31 chromosomes, however, did not carry the desired deletion. Molecular analysis indicated that C31 is not caused by aberrations in org-1, but by mutations in a distal locus. We repeated the P element remobilization and screened for the absence of P element markers. 4 lethal chromosomes could be isolated with a deletion of the org-1 locus. (ii) The consequences of ectopic org-1 were analyzed using UAS-org-1 transgenic flies and a number of different Gal4 driver lines. Misexpression of org-1 during imaginal development interfered with the normal development of many organs and resulted in flies with a plethora of phenotypes. These include a homeotic transformation of distal antenna (flagellum) into distal leg structures, a strong size reduction of the legs along their proximo-distal axis, and stunted wings. Like ectopic org-1, ectopic omb leads to dramatic changes of normal developmental pathways in Drosophila as well. dpp-Gal4/ UAS-omb flies are late pupal lethal and show an ectopic pair of wings and largely reduced eyes. GMR-Gal4 driven ectopic omb expression in the developing eye causes a degeneration of the photoreceptor cells, while GMR-Gal4/ UAS-org-1 flies have intact eyes. Hence, ectopic org-1 and omb induce profound phenotypes that are qualitatively different for these homologous genes. To begin to address the question where within OMB and ORG-1 the specificity determinants reside, we conceptionally subdivided both proteins into three domains and tested the relevance ofthese domains for functional specificity in vivo. The single domains were cloned and used as modules to assemble all possible omb-org-1 chimeric trans- genes. A method was developed to determine the relative expression strength of different UAS-transgenes, allowing to compare the various transgenic constructs for qualitative differences only, excluding different transgene quantities. Analysis of chimeric omb-org-1 transgenes with the GMR-Gal4 driver revealed that all three OMB domains contribute to functional specificity.
It has been known for a long time that Drosophila can learn to discriminate not only between different odorants but also between different concentrations of the same odor. Olfactory associative learning has been described as a pairing between odorant and electric shock and since then, most of the experiments conducted in this respect have largely neglected the dual properties of odors: quality and intensity. For odorant-coupled short-term memory, a biochemical model has been proposed that mainly relies on the known cAMP signaling pathway. Mushroom bodies (MB) have been shown to be necessary and sufficient for this type of memory, and the MB-model of odor learning and short-term memory was established. Yet, theoretically, based on the MB-model, flies should not be able to learn concentrations if trained to the lower of the two concentrations in the test. In this thesis, I investigate the role of concentration-dependent learning, establishment of a concentration-dependent memory and their correlation to the standard two-odor learning as described by the MB-model. In order to highlight the difference between learning of quality and learning of intensity of the same odor I have tried to characterize the nature of the stimulus that is actually learned by the flies, leading to the conclusion that during the training flies learn all possible cues that are presented at the time. The type of the following test seems to govern the usage of the information available. This revealed a distinction between what flies learned and what is actually measured. Furthermore, I have shown that learning of concentration is associative and that it is symmetrical between high and low concentrations. I have also shown how the subjective quality perception of an odor changes with changing intensity, suggesting that one odor can have more than one scent. There is no proof that flies perceive a range of concentrations of one odorant as one (odor) quality. Flies display a certain level of concentration invariance that is limited and related to the particular concentration. Learning of concentration is relevant only to a limited range of concentrations within the boundaries of concentration invariance. Moreover, under certain conditions, two chemically distinct odorants could smell sufficiently similarly such, that they can be generalized between each other like if they would be of the same quality. Therefore, the abilities of the fly to identify the difference in quality or in intensity of the stimuli need to be distinguished. The way how the stimulus is analyzed and processed speaks in favor of a concept postulating the existence of two separated memories. To follow this concept, I have proposed a new form of memory called odor intensity memory (OIM), characterized it and compared it to other olfactory memories. OIM is independent of some members of the known cAMP signaling pathway and very likely forms the rutabaga-independent component of the standard two-odor memory. The rutabaga-dependent odor memory requires qualitatively different olfactory stimuli. OIM is revealed within the limits of concentration invariance where the memory test gives only sub-optimal performance for the concentration differences but discrimination of odor quality is not possible at all. Based on the available experimental tools, OIM seems to require the mushroom bodies the same as odor-quality memory but its properties are different. Flies can memorize the quality of several odorants at a given time but a newly formed memory of one odor interferes with the OIM stored before. In addition, the OIM lasts only 1 to 3 hours - much shorter than the odor-quality memory.
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.
Neurodegenerative Erkrankungen des Menschen sind eines der Hauptfelder molekularer neurobiologischer Grundlagenforschung. Um generell molekulare, komplizierte Vorgänge in vivo untersuchen zu können, nutzt man seit geraumer Zeit Modellorganismen wie Caenorhabditis elegans oder Drosophila melanogaster. In der vorliegenden Arbeit wird die Drosophila-Neurodegenerationsmutante loe (löchrig) beschrieben, die als Modell für die Rolle des Cholesterinhaushalts im Bezug auf Neurodegeneration herangezogen werden kann. Die Fliegen dieser Mutante zeigen stark progressive, altersabhängige Degeneration von Neuronen, dabei unterlaufen diese Nervenzellen einen nekrotischenZelltod. Verantwortlich für 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 für 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 führt zur Revertierung des loe-Phänotypes. Mit der Expression anderer Spleißformen kann dieser Effekt nicht erzielt werden. Das LOE I-Protein birgt in seinem N-Terminus eine Reihe möglicher 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 können. 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 ähnliche Funktionen übernehmen könnten wie LOE I. Die loe-Mutante interagiert genetisch mit der Mutante clb ? columbus, die einen Defekt im Gen der HMG-CoA-Reduktase trägt. Dieses Emzym ist das Schlüsselenzym der Cholesterinbiosynthese. Die Art der Interaktion belegt eine negative Regulierung der HMG-CoA-Reduktase durch die AMPK. So schwächt die clb-Mutation den neurodegenerativen loe-Phänotyp ab, eine Überexpression von clb verstärkt diesen. Eine Verminderung der Neurodegeneration kann auch mit Medikamenten erreicht werden: Statine, potente Hemmer der HMG-COA-Reduktase, reprimieren deutlich den loe-Phänotyp. In loe ist der Cholesterinester-Spiegel auf 40% abgesenkt. Eine weitere genetische Interaktion von loe konnte nachgewiesen werden: Die Mutante für das Drosophila-Homolog von APP (Appl) verstärkt den neurodegenerativen Phänotyp in loe stark, wogegen die Appl-Mutante selbst keine neurodegenerativen Defekte aufweist. Darüberhinaus zeigt die Doppelmutante Defekte, die keine der Einzelmutanten aufweist: Sterilität 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 über den Cholesterinester-Spiegel die Aktivität 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 Möglichkeiten, die die Drosophila-Genetik bietet, stellt diese neue Mutante ein weiteres Werkzeug zur Charakterisierung von Therapie-Ansätzen für 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.
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.
According to a changing environment it is crucial for animals to make experience and learn about it. Sensing, integrating and learning to associate different kinds of modalities enables animals to expect future events and to adjust behavior in the way, expected as the most profitable. Complex processes as memory formation and storage make it necessary to investigate learning and memory on different levels. In this context Drosophila melanogaster represents a powerful model organism. As the adult brain of the fly is still quite complex, I chose the third instar larva as model - the more simple the system, the easier to isolate single, fundamental principles of learning. In this thesis I addressed several kinds of questions on different mechanism of olfactory associative and synaptic plasiticity in Drosophila larvae. I focused on short-term memory throughout my thesis. First, investigating larval learning on behavioral level, I developed a one-odor paradigm for olfactory associative conditioning. This enables to estimate the learnability of single odors, reduces the complexity of the task and simplify analyses of "learning mutants". It further allows to balance learnability of odors for generalization-type experiments to describe the olfactory "coding space". Furthermore I could show that innate attractiveness and learnability can be dissociated and found finally that paired presentation of a given odor with reward increase performance, whereas unpaired presentations of these two stimuli decrease performance, indicating that larva are able to learn about the presence as well as about the absence of a reward. Second, on behavioral level, together with Thomas Niewalda and colleagues we focussed on salt processing in the context of choice, feeding and learning. Salt is required in several physiological processes, but can neither be synthesized nor stored. Various salt concentrations shift the valence from attraction to repulsion in reflexive behaviour. Interestingly, the reinforcing effect of salt in learning is shifted by more than one order of magnitude toward higher concentrations. Thus, the input pathways for gustatory behavior appear to be more sensitive than the ones supporting gustatory reinforcement, which is may be due to the dissociation of the reflexive and the reinforcing signalling pathways of salt. Third, in cooperation with Michael Schleyer we performed a series of behavioral gustatory, olfactory preference tests and larval learning experiments. Based on the available neuroanatomical and behavioral data we propose a model regarding chemosensory processing, odor-tastant memory trace formation and the 'decision' like process. It incorporates putative sites of interaction between olfactory and gustatory pathways during the establishment as well as behavioral expression of odor-tastant memory. We claim that innate olfactory behavior is responsive in nature and suggest that associative conditioned behavior is not a simple substitution like process, but driven more likely by the expectation of its outcome. Fourth, together with Birgit Michels and colleagues we investigated the cellular site and molecular mode of Synapsin, an evolutionarily conserved, presynaptic vesicular phosphoprotein and its action in larval learning. We confirmed a previously described learning impairment upon loss of Synapsin. We localized this Synapsin dependent memory trace in the mushroom bodies, a third-order "cortical" brain region, and could further show on molecular level, that Synapsin is as a downstream element of the AC-cAMP-PKA signalling cascade. This study provides a comprehensive chain of explanation from the molecular level to an associative behavioral change. Fifth, in the main part of my thesis I focused on molecular level on another synaptic protein, the Synapse associated protein of 47kDa (Sap47) and its role in larval behavior. As a member of a phylogenetically conserved gene family of hitherto unknown function. It is localized throughout the whole neuropil of larval brains and associated with presynaptic vesicles. Upon loss of Sap47 larvae exhibit normal sensory detection of the to-be-associated stimuli as well as normal motor performance and basic synaptic transmission. Interestingly, short-term plasticity is distorted and odorant–tastant associative learning ability is reduced. This defect in associative function could be rescued by restoring Sap47 expression. Therefore, this report is the first to suggest a function for Sap47 and specifically argues that Sap47 is required for synaptic as well as for behavioral plasticity in Drosophila larva. This prompts the question whether its homologs are required for synaptic and behavioral plasticity also in other species. Further in the last part of my thesis I contributed to the study of Ayse Yarali. Her central topic was the role of the White protein in punishment and relief learning in adult flies. Whereas stimuli that precede shock during training are subsequently avoided as predictors for punishment, stimuli that follow shock during training are later on approached, as they predict relief. Concerning the loss of White we report that pain-relief learning as well as punishment learning is changed. My contribution was a comparison between wild type and the white1118 mutant larvae in odor-reward learning. It turned out that a loss of White has no effect on larval odorant-tastant learning. This study, regarding painrelief learning provides the very first hints concerning the genetic determinants of this form of learning.