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Single-molecule localization microscopy (SMLM) greatly advances structural studies of diverse biological tissues. For example, presynaptic active zone (AZ) nanotopology is resolved in increasing detail. Immunofluorescence imaging of AZ proteins usually relies on epitope preservation using aldehyde-based immunocompetent fixation. Cryofixation techniques, such as high-pressure freezing (HPF) and freeze substitution (FS), are widely used for ultrastructural studies of presynaptic architecture in electron microscopy (EM). HPF/FS demonstrated nearer-to-native preservation of AZ ultrastructure, e.g., by facilitating single filamentous structures. Here, we present a protocol combining the advantages of HPF/FS and direct stochastic optical reconstruction microscopy (dSTORM) to quantify nanotopology of the AZ scaffold protein Bruchpilot (Brp) at neuromuscular junctions (NMJs) of Drosophila melanogaster. Using this standardized model, we tested for preservation of Brp clusters in different FS protocols compared to classical aldehyde fixation. In HPF/FS samples, presynaptic boutons were structurally well preserved with ~22% smaller Brp clusters that allowed quantification of subcluster topology. In summary, we established a standardized near-to-native preparation and immunohistochemistry protocol for SMLM analyses of AZ protein clusters in a defined model synapse. Our protocol could be adapted to study protein arrangements at single-molecule resolution in other intact tissue preparations.
For a large fraction of the proteins expressed in the human brain only the primary
structure is known from the genome project. Proteins conserved in evolution can
be studied in genetic models such as Drosophila. In this doctoral thesis monoclonal
antibodies (mAbs) from the Wuerzburg Hybridoma library are produced and
characterized with the aim to identify the target antigen. The mAb ab52 was found
to be an IgM which recognized a cytosolic protein of Mr ~110 kDa on Western
blots. The antigen was resolved by two-dimensional gel electrophoresis (2DE) as a
single distinct spot. Mass spectrometric analysis of this spot revealed EPS-15
(epidermal growth factor receptor pathway substrate clone 15) to be a strong
candidate. Another mAb from the library, aa2, was already found to recognize
EPS-15, and comparison of the signal of both mAbs on Western blots of 1D and
2D electrophoretic separations revealed similar patterns, hence indicating that both
antigens could represent the same protein. Finally absence of the wild-type signal
in homozygous Eps15 mutants in a Western blot with ab52 confirmed the ab52
antigen to be EPS-15. Thus both the mAbs aa2 and ab52 recognize the Drosophila
homologue of EPS-15. The mAb aa2, being an IgG, is more suitable for
applications like immunoprecipitation (IP). It has already been submitted to the
Developmental Studies Hybridoma Bank (DSHB) to be easily available for the
entire research community.
The mAb na21 was also found to be an IgM. It recognizes a membrane associated
antigen of Mr ~10 kDa on Western blots. Due to the membrane associated nature
of the protein, it was not possible to resolve it by 2DE and due to the IgM nature of
the mAb it was not possible to enrich the antigen by IP. Preliminary attempts to
biochemically purify the endogenously expressed protein from the tissue, gave
99
promising results but could not be completed due to lack of time. Thus
biochemical purification of the protein seems possible in order to facilitate its
identification by mass spectrometry. Several other mAbs were studied for their
staining pattern on cryosections and whole mounts of Drosophila brains. However,
many of these mAbs stained very few structures in the brain, which indicated that
only a very limited amount of protein would be available as starting material.
Because these antibodies did not produce signals on Western blots, which made it
impossible to enrich the antigens by electrophoretic methods, we did not attempt
their purification. However, the specific localization of these proteins makes them
highly interesting and calls for their further characterization, as they may play a
highly specialized role in the development and/or function of the neural circuits
they are present in. The purification and identification of such low expression
proteins would need novel methods of enrichment of the stained structures.
The fruit fly Drosophila melanogaster is an established model organism in chronobiology, because genetic manipulation and breeding in the laboratory are easy. The circadian clock neuroanatomy in D. melanogaster is one of the best-known clock networks in insects and basic circadian behavior has been characterized in detail in this insect. Another model in chronobiology is the honey bee Apis mellifera, of which diurnal foraging behavior has been described already in the early twentieth century. A. mellifera hallmarks the research on the interplay between the clock and sociality and complex behaviors like sun compass navigation and time-place-learning. Nevertheless, there are aspects of clock structure and function, like for example the role of the clock in photoperiodism and diapause, which can be only insufficiently investigated in these two models. Unlike high-latitude flies such as Chymomyza costata or D. ezoana, cosmopolitan D. melanogaster flies do not display a photoperiodic diapause. Similarly, A. mellifera bees do not go into “real” diapause, but most solitary bee species exhibit an obligatory diapause. Furthermore, sociality evolved in different Hymenoptera independently, wherefore it might be misleading to study the social clock only in one social insect. Consequently, additional research on non-model insects is required to understand the circadian clock in Diptera and Hymenoptera. In this review, we introduce the two chronobiology model insects D. melanogaster and A. mellifera, compare them with other insects and show their advantages and limitations as general models for insect circadian clocks.
Development of the central nervous system in Drosophila melanogaster relies on neural stem cells called neuroblasts. Neuroblasts divide asymmetrically to give rise to a new neuroblast as well as a small daughter cell which eventually generates neurons or glia cells. Between each division, neuroblasts have to re-grow to be able to divide again. In previous studies, it was shown that neuroblast proliferation, cell size and the number of progeny cells is negatively affected in larvae carrying a P-element induced disruption of the gene mushroom body miniature (mbm). This mbm null mutation called mbmSH1819 is homozygously lethal during pupation. It was furthermore shown that the nucleolar protein Mbm plays a role in the processing of ribosomal RNA (rRNA) as well as the translocation of ribosomal protein S6 (RpS6) in neuroblasts and that it is a transcriptional target of Myc. Therefore, it was suggested that Mbm might regulate neuroblast proliferation through a role in ribosome biogenesis.
In the present study, it was attempted to further elucidate these proposed roles of Mbm and to identify the protein domains that are important for those functions. Mbm contains an arginine/glycine rich region in which a di-RG as well as a di-RGG motif could be found. Together, these two motifs were defined as Mbm’s RGG-box. RGG-boxes can be found in many proteins of different families and they can either promote or inhibit protein-RNA as well as protein-protein interactions. Therefore, Mbm’s RGG-box is a likely candidate for a domain involved in rRNA binding and RpS6 translocation. It could be shown by deletion of the RGG-box, that MbmdRGG is unable to fully rescue survivability and neuroblast cell size defects of the null mutation mbmSH1819. Furthermore, Mbm does indeed rely on its RGG-box for the binding of rRNA in vitro and in mbmdRGG as well as mbmSH1819 mutants RpS6 is partially delocalized. Mbm itself also seems to depend on the RGG-box for correct localization since MbmdRGG is partially delocalized to the nucleus. Interestingly, protein synthesis rates are increased in mbmdRGG mutants, possibly induced by an increase in TOR expression. Therefore, Mbm might possess a promoting function in TOR signaling in certain conditions, which is regulated by its RGG-box. Moreover, RGG-boxes often rely on methylation by protein arginine methyltransferases (in Drosophila: Darts – Drosophila arginine methyltransferases) to fulfill their functions. Mbm might be symmetrically dimethylated within its RGG-box, but the results are very equivocal. In any case, Dart1 and Dart5 do not seem to be capable of Mbm methylation.
Additionally, Mbm contains two C2HC type zinc-finger motifs, which could be involved in rRNA binding. In an earlier study, it was shown that the mutation of the zinc-fingers, mbmZnF, does not lead to changes in neuroblast cell size, but that MbmZnF is delocalized to the cytoplasm. In the present study, mbmZnF mutants were included in most experiments. The results, however, are puzzling since mbmZnF mutant larvae exhibit an even lower viability than the mbm null mutants and MbmZnF shows stronger binding to rRNA than wild-type Mbm. This suggests an unspecific interaction of MbmZnF with either another protein, DNA or RNA, possibly leading to a dominant negative effect by disturbing other interaction partners. Therefore, it is difficult to draw conclusions about the zinc-fingers’ functions.
In summary, this study provides further evidence that Mbm is involved in neuroblast proliferation as well as the regulation of ribosome biogenesis and that Mbm relies on its RGG-box to fulfill its functions.
We are living in a system that underlies permanent environmental changes due to the rotation of our planet. These changes are rhythmic with the most prominent one having a period of about 24 hours, but also shorter and longer rhythms characterize our environment. To cope with the ever-changing environmental conditions, it is thought to be beneficial if an organism can track and anticipate these changes. The so called endogenous clocks enable this and might provide a fitness advantage. To investigate and unravel the mechanism of endogenous clocks Chronobiologists have used different model organisms. In this thesis Drosophila melanogaster was used as model organism with its about 150 clock neurons representing the main endogenous clock of the fly in the central brain.
The molecular mechanisms and the interlocked feedback loops with the main circadian key players like period, timeless, clock or cycle are under investigation since the 1970s and are characterized quite well so far. But the impact of a functional endogenous clock in combination with diverse factors and the resulting fitness advantages were analysed in only a few studies and remains for the most part unknown. Therefore the aim of this thesis was to unravel the impact of Drosophila melanogaster`s endogenous clock on the fitness of the fly. To achieve this goal different factors – like day length, humidity and food composition – were analyzed in wild type CS and three different period mutants, namely perL, perS and per01, that carry a point mutation altering or abolishing the free-running period of the fruit fly as well as a second arrhythmic strain, clkAR.
In competition assay experiments wild type and clock mutant flies competed for up to 63 generations under a normal 24 hour rhythm with 12 hours light/day and 12 hours darkness/night (LD12:12) or T-cycles with 19 or 29 hours, according to the mutants free-running period, or constant light (LL) in case of the arrhythmic mutant as well as under natural-like outdoor conditions in two consecutive years. Overall the wild type CS strain was outcompeting the clock mutant strains independent of the environmental conditions. As the perL fly strain elongated their free-running period, the competition experiments were repeated with naturally cantonized new fly strains. With these experiments it could be shown that the genetic background of the fly strains – which are kept for decades in the lab, with backcrosses every few years – is very important and influences the fitness of flies. But also the day length impacts the fitness of the flies, enabling them to persist in higher percentage in a population under competition. Further factors that might influence the survival in a competing population were investigated, like e.g. mating preferences and locomotor activity of homo- and heterozygous females or sperm number of males transferred per mating. But these factors can still not explain the results in total and play no or only minor roles and show the complexity of the whole system with still unknown characteristics.
Furthermore populations of flies were recorded to see if the flies exhibit a common locomotor activity pattern or not and indeed a population activity pattern could be recorded for the first time and social contact as a Zeitgeber could be verified for Drosophila melanogaster.
In addition humidity and its impact on the flies´ fitness as well as a potential Zeitgeber was examined in this thesis. The flies experienced different relative humidities for eclosion and wing expansion and humidity cycle phase shifting experiments were performed to address these two different questions of fitness impact and potential Zeitgeber. The fruit fly usually ecloses in the morning hours when the relative humidity is quite high and the general assumption was that they do so to prevent desiccation. The results of this thesis were quite clear and demonstrate that the relative humidity has no great effect on the fitness of the flies according to successful eclosion or wing expansion and that temperature might be the more important factor. In the humidity cycle phase shifting experiments it could be revealed that relative humidity cannot act as a Zeitgeber for Drosophila melanogaster, but it influences and therefore masks the activity of flies by allowing or surpressing activity at specific relative humidity values.
As final experiments the lifespan of wild type and clock mutant flies was investigated under different day length and with different food qualities to unravel the impact of these factors on the fitness and therefore survival of the flies on the long run. As expected the flies with nutrient-poor minimum medium died earlier than on the nutrient-rich maximum medium, but a small effect of day length could also be seen with flies living slightly longer when they experience environmental day length conditions resembling their free-running period. The experiments also showed a fitness advantage of the wild type fly strain against the clock mutant strains for long term, but not short term (about the first 2-3 weeks).
As a conclusion it can be said that genetic variation is important to be able to adapt to changing environmental conditions and to optimize fitness and therefore survival. Having a functional endogenous clock with a free-running period of about 24 hours provides fitness advantages for the fruit fly, at least under competition. The whole system is very complex and many factors – known and unknown ones – play a role in this system by interacting on different levels, e.g. physiology, metabolism and/or behavior.
Endogenous clocks regulate physiological as well as behavioral rhythms within all organisms. They are well investigated in D. melanogaster on a molecular as well as anatomical level. The neuronal clock network within the brain represents the center for rhythmic activity control. One neuronal clock subgroup, the pigment dispersing factor (PDF) neurons, stands out for its importance in regulating rhythmic behavior. These neurons express the neuropeptide PDF (pigment dispersing factor). A small neuropil at the medulla’s edge, the accessory medulla (AME), is of special interest, as it has been determined as the main center for clock control. It is not only highly innervated by the PDF neurons but also by terminals of all other clock neuron subgroups. Furthermore, terminals of the photoreceptors provide light information to the AME. Many different types of neurons converge within the AME and afterward spread to their next target. Thereby the AME is supplied with information from a variety of brain regions. Among these neurons are the aminergic ones whose receptors’ are expressed in the PDF neurons. The present study sheds light onto putative synaptic partners and anatomical arrangements within the neuronal clock network, especially within the AME, as such knowledge is a prerequisite to understand circadian behavior. The aminergic neurons’ conspicuous vicinity to the PDF neurons suggests synaptic communication among them. Thus, based on former anatomical studies regarding this issue detailed light microscopic studies have been performed. Double immunolabellings, analyses of the spatial relation of pre- and postsynaptic sites of the individual neuron populations with respect to each other and the identification of putative synaptic partners using GRASP reenforce the hypothesis of synaptic interactions within the AME between dopaminergic/ serotonergic neurons and the PDF neurons. To shed light on the synaptic partners I performed first steps in array tomography, as it allows terrific informative analyses of fluorescent signals on an ultrastructural level. Therefore, I tested different ways of sample preparation in order to achieve and optimize fluorescent signals on 100 nm thin tissue sections and I made overlays with electron microscopic images. Furthermore, I made assumptions about synaptic modulations within the neuronal clock network via glial cells. I detected their cell bodies in close vicinity to the AME and PDFcontaining clock neurons. It has already been shown that glial cells modulate the release of PDF from s-LNvs’ terminals within the dorsal brain. On an anatomical level this modulation appears to exist also within the AME, as synaptic contacts that involve PDF-positive dendritic terminals are embedded into glial fibers. Intriguingly, these postsynaptic PDF fibers are often VIIAbstract part of dyadic or even multiple-contact sites in opposite to prolonged presynaptic active zonesimplicating complex neuronal interactions within the AME. To unravel possible mechanisms of such synaptic arrangements, I tried to localize the ABC transporter White. Its presence within glial cells would indicate a recycling mechanism of transmitted amines which allows their fast re-provision. Taken together, synapses accompanied by glial cells appear to be a common arrangement within the AME to regulate circadian behavior. The complexity of mechanisms that contribute in modulation of circadian information is reflected by the complex diversity of synaptic arrangements that involves obviously several types of neuron populations
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.
Almost all life forms on earth have adapted to the most impactful and most predictable recurring change in environmental condition, the cycle of day and night, caused by the axial rotation of the planet. As a result many animals have evolved intricate endogenous clocks, which adapt and synchronize the organisms’ physiology, metabolism and behaviour to the daily change in environmental conditions. The scientific field researching these endogenous clocks is called chronobiology and has steadily grown in size, scope and relevance since the works of the earliest pioneers in the 1960s.
The number one model organism for the research of circadian clocks is the fruit fly, Drosophila melanogaster, whose clock serves as the entry point to understanding the basic inner workings of such an intricately constructed endogenous timekeeping system. In this thesis it was attempted to combine the research on the circadian clock with the techniques of optogenetics, a fairly new scientific field, launched by the discovery of Channelrhodopsin 2 just over 15 years ago. Channelrhodopsin 2 is a light-gated ion channel found in the green alga Chlamydomonas reinhardtii. In optogenetics, researches use these light-gated ion channels like Channelrhodopsin 2 by heterologously expressing them in cells and tissues of other organisms, which can then be stimulated by the application of light. This is most useful when studying neurons, as these channels provide an almost non-invasive tool to depolarize the neuronal plasma membranes at will. The goal of this thesis was to develop an optogenetic tool, which would be able to influence and phase shift the circadian clock of Drosophila melanogaster upon illumination. A phase shift is the adaptive response of the circadian clock to an outside stimulus that signals a change in the environmental light cycle. An optogenetic tool, able to influence and phase shift the circadian clock predictably and reliably, would open up many new ways and methods of researching the neuronal network of the clock and which neurons communicate to what extent, ultimately synchronizing the network.
The first optogenetic tool to be tested in the circadian clock of Drosophila melanogaster was ChR2-XXL, a channelrhodopsin variant with dramatically increased expression levels and photocurrents combined with a prolonged open state. The specific expression of ChR2-XXL and of later constructs was facilitated by deploying the three different clock-specific GAL4-driver lines, clk856-gal4, pdf-gal4 and mai179-gal4. Although ChR2-XXL was shown to be highly effective at depolarizing neurons, these stimulations proved to be unable to significantly phase shift the circadian clock of Drosophila. The second series of experiments was conducted with the conceptually novel optogenetic tools Olf-bPAC and SthK-bPAC, which respectively combine a cyclic nucleotide-gated ion channel (Olf and SthK) with the light-activated adenylyl-cyclase bPAC. These tools proved to be quite useful when expressed in the motor neurons of instar-3 larvae of Drosophila, paralyzing the larvae upon illumination, as well as affecting body length. This way, these new tools could be precisely characterized, spawning a successfully published research paper, centered around their electrophysiological characterization and their applicability in model organisms like Drosophila. In the circadian clock however, these tools caused substantial damage, producing severe arrhythmicity and anomalies in neuronal development. Using a temperature-sensitive GAL80-line to delay the expression until after the flies had eclosed, yielded no positive results either. The last series of experiments saw the use of another new series of optogenetic tools, modelled after the Olf-bPAC, with bPAC swapped out for CyclOp, a membrane-bound guanylyl-cyclase, coupled with less potent versions of the Olf. This final attempt however also ended up being unsuccessful. While these tools could efficiently depolarize neuronal membranes upon illumination, they were ultimately unable to stimulate the circadian clock in way that would cause it to phase shift.
Taken together, these mostly negative results indicate that an optogenetic manipulation of the circadian clock of Drosophila melanogaster is an extremely challenging subject. As light already constitutes the most impactful environmental factor on the circadian clock, the combination of chronobiology with optogenetics demands the parameters of the conducted experiments to be tuned with an extremely high degree of precision, if one hopes to receive positive results from these types of experiments at all.
Since Channelrhodopsins has been described first and introduced successfully in freely moving animals (Nagel et al., 2003 and 2005), tremendous impact has been made in this interesting field of neuroscience. Subsequently, many different optogenetic tools have been described and used to address long-lasting scientific issues. Furthermore, beside the ‘classical’ Channelrhodopsin-2 (ChR2), basically a cation-selective ion channel, also altered ChR2 descendants, anion selective channels and light-sensitive metabotropic proteins have expanded the optogenetic toolbox. However, in spite of this variety of different tools most researches still pick Channelrhodopsin-2 for their optogenetic approaches due to its well-known kinetics. In this thesis, an improved Channelrhodopsin, Channelrhodopsin2-XXM (ChR2XXM), is described, which might become an useful tool to provide ambitious neuroscientific approaches by dint of its characteristics. Here, ChR2XXM was chosen to investigate the functional consequences of Drosophila larvae lacking latrophilin in their chordotonal organs. Finally, the functionality of GtACR, was checked at the Drosophila NMJ. For a in-depth characterisation, electrophysiology along with behavioural setups was employed. In detail, ChR2XXM was found to have a better cellular expression pattern, high spatiotemporal precision, substantial increased light sensitivity and improved affinity to its chromophore retinal, as compared to ChR2. Employing ChR2XXM, effects of latrophilin (dCIRL) on signal transmission in the chordotonal organ could be clarified with a minimum of side effects, e.g. possible heat response of the chordotonal organ, due to high light sensitivity. Moreover, optogenetic activation of the chordotonal organ, in vivo, led to behavioural changes. Additionally, GtACR1 was found to be effective to inhibit motoneuronal excitation but is accompanied by unexpected side effects. These results demonstrate that further improvement and research of optogenetic tools is highly valuable and required to enable researchers to choose the best fitting optogenetic tool to address their scientific questions.
Cryptochromes (CRYs) are a class of flavoproteins that sense blue light. In animals, CRYs are expressed in the eyes and in the clock neurons that control sleep/wake cycles and are implied in the generation and/or entrainment of circadian rhythmicity. Moreover, CRYs are sensing magnetic fields in insects as well as in humans. Here, we show that in the fruit fly Drosophila melanogaster CRY plays a light-independent role as “assembling” protein in the rhabdomeres of the compound eyes. CRY interacts with actin and appears to increase light sensitivity of the eyes by keeping the “signalplex” of the phototransduction cascade close to the membrane. By this way, CRY also enhances light-responses of the circadian clock.
Synaptische Plastizität wird als Grundlage für Lern- und Gedächtnisprozesse in unserem Gehirn angesehen. Aktive Zonen (AZ) und ihre spezifischen Proteine modulieren diesen Prozess und bahnen essentielle Vorgänge der synaptischen Transmission. In dieser Arbeit wurden drei zentrale Proteine Aktiver Zonen - Bruchpilot, RIM (Rab3 interacting molecule) und Fife - untersucht und ihre Rolle bei konditionierten Lernprozessen in Drosophila melanogaster Larven geprüft. Hierzu wurde das etablierte Paradigma des larvalen appetitiven olfaktorischen Lernens genutzt, bei dem eine Gruppe von Larven lernt, einen Duft mit einem gustatorischen Verstärker zu koppeln. Durch die vielfältigen genetischen Manipulationsmöglichkeiten des Modellorganismus war es möglich, die Funktion der Proteine bei assoziativen Lernvorgängen selektiv zu betrachten.
Bruchpilot wird für den funktionellen Aufbau Aktiver Zonen in Drosophila benötigt und ist wichtig für die Akkumulation von Calcium-Kanälen in der Nähe von AZ. Durch gentechnische Veränderungen dieses Proteins ließ sich jedoch keine Beeinträchtigung im olfaktorischen Lernverhalten von Drosophila Larven beobachten. RIM fungiert durch seine Interaktionsdomänen als Bindeglied zwischen verschiedensten Effektoren und hat Einfluss auf synaptische Plastizität. Es wurde gezeigt, dass eine Punktmutation in der C2A-Domäne von RIM beim Menschen gleichzeitig zur Retinadegeneration und zu einem gesteigert verbalen IQ (Intelligenzquotient) führt. Eine durch die hohe Homologie vergleichbare Mutation im Drosophila-Genom resultierte nicht in einem veränderten Phänotyp im olfaktorischen Lernen. Fife ist ein Protein, das für eine funktionsfähige Architektur von AZ und damit u.a. für den reibungslosen Vesikelverkehr zuständig ist. Es zeigte sich, dass dieses Protein auch synaptische Plastizität und Lernvorgänge beeinflusst.
Die Ergebnisse der vorliegenden Arbeit sind ein Beitrag, um die Zusammenhänge der synaptischen Plastizität und die Funktion Aktiver Zonen Proteine besser begreifen zu können. Hervorzuheben dabei ist, dass die Bruchpilot- und RIM-Mutanten-Larven keinen veränderten Phänotyp, bzw. bei Fife nur teilweise einen eingeschränkten Phänotyp im olfaktorischen larvalen Lernen im Vergleich zu den Wildtyp-Kontrollen zeigten. Gleichwohl man früher schon signifikante strukturelle Veränderungen an Aktiven Zonen dieser Mutanten an der neuromuskulären Endplatte und auch Effekte auf das Verhalten in adulten Drosophila gefunden hat. Es wird entscheidend sein, den Zusammenhang zwischen Struktur und Funktion Aktiver Zonen Proteine weiter zu konkretisieren.
The modulation of an animal’s behavior through external sensory stimuli, previous experience and its internal state is crucial to survive in a constantly changing environment. In most insects, octopamine (OA) and its precursor tyramine (TA) modulate a variety of physiological processes and behaviors by shifting the organism from a relaxed or dormant condition to a responsive, excited and alerted state. Even though OA/TA neurons of the central brain are described on single cell level in Drosophila melanogaster, the periphery was largely omitted from anatomical studies. Given that OA/TA is involved in behaviors like feeding, flying and locomotion, which highly depend on a variety of peripheral organs, it is necessary to study the peripheral connections of these neurons to get a complete picture of the OA/TA circuitry. We here describe the anatomy of this aminergic system in relation to peripheral tissues of the entire fly. OA/TA neurons arborize onto skeletal muscles all over the body and innervate reproductive organs, the heart, the corpora allata, and sensory organs in the antennae, legs, wings and halteres underlining their relevance in modulating complex behaviors.
Drosophila melanogaster is a long-standing model organism in the circadian clock research. A major advantage is the relative small number of about 150 neurons, which built the circadian clock in Drosophila. In our recent work, we focused on the neuroanatomical properties of the lateral neurons of the clock network. By applying the multicolor-labeling technique Flybow we were able to identify the anatomical similarity of the previously described E2 subunit of the evening oscillator of the clock, which is built by the 5th small ventrolateral neuron (5th s-LNv) and one ITP positive dorsolateral neuron (LNd). These two clock neurons share the same spatial and functional properties. We found both neurons innervating the same brain areas with similar pre- and postsynaptic sites in the brain. Here the anatomical findings support their shared function as a main evening oscillator in the clock network like also found in previous studies. A second quite surprising finding addresses the large lateral ventral PDF-neurons (l-LNvs). We could show that the four hardly distinguishable l-LNvs consist of two subgroups with different innervation patterns. While three of the neurons reflect the well-known branching pattern reproduced by PDF immunohistochemistry, one neuron per brain hemisphere has a distinguished innervation profile and is restricted only to the proximal part of the medulla-surface. We named this neuron “extra” l-LNv (l-LNvx). We suggest the anatomical findings reflect different functional properties of the two l-LNv subgroups.
Latrophilin, alternatively named calcium-independent receptor of α-latrotoxin (CIRL), resembles a prototype of the adhesion class G-protein coupled receptors (GPCRs). Initially identified as a high-affinity receptor for α-latrotoxin, a component of the black widow spider, latrophilins are now associated with various distinct functions, such as synaptic exocytosis, tissue polarity and fertility (Tobaben et al., 2002; Langenhan et al., 2009; Promel et al., 2012). Despite these exploratory efforts the precise subcellular localisation as well as the endogenous ligand of CIRL still remains elusive. In this work genetic experiments, imaging approaches and behavioural studies have been used to unravel the localisation and physiological function of the latrophilin homolog dCirl in Drosophila melanogaster. Containing only one latrophilin homolog together with its genetic accessibility and well-established transgenic approaches, Drosophila seemed an ideally suited model organism. The present study showed that dCirl is widely expressed in the larval central nervous system including moto- and sensory neurons. Further, this work revealed that removal of the latrophilin homolog does not greatly affect synaptic transmission but it seems that aspects of the postsynaptic structural layout are controlled by dCIRL in the fruit fly. Additionally, dCirl expression at the transcriptional level was confirmed in larval and adult chordotonal organs, specialised mechanosensors implicated in proprioception (Eberl, 1999). Expression of dCIRL at the protein level could not yet been confirmed in moto- and sensory neurons likely due to low endogenous expression. However, behavioural studies using dCirl knockout mutant larvae indicated a putative mechanosensory function of dCIRL regarding touch sensitivity and locomotion behaviour.
The second part of this thesis presents a strategy to examine interactions between several presynaptic proteins in living cells. The attempt described in this work is based on the discovery that GFP when split into two non-fluorescent fragments can form a fluorescent complex. The association of the fragments can be facilitated by fusing them to two proteins that interact with each other. Therefore, the split GFP method enables direct visualization of synaptic protein interactions in living cells. In initial experiments I could show that full length reporter protein fusions with n-Synaptobrevin (n-Syb), Synaptotagmin (Syt) and Syntaxin (Syx) allow expression in Drosophila and confirmed that fusion to either end of each synaptic protein did not impair expression or influence the viability of transgenic flies. Further, transgenes containing protein fusions of Syx, Syt, and n-Syb with split GFP fragments were established in previous studies (Gehring, 2010). The present work characterises the interaction of these protein fusions during different stages of synaptic vesicle turnover at active zones such as synaptic vesicle docking at the presynaptic membrane and vesicle fusion. These results suggest that the spGFP assay seems only partly suitable for resolving fast and transient protein-protein interactions at larval Drosophila active zones in vivo.
Sleep is a highly conserved and essential behaviour in many species, including the fruit fly Drosophila melanogaster. In the wild, sensory signalling encoding environmental information must be integrated with sleep drive to ensure that sleep is not initiated during detrimental conditions. However, the molecular and circuit mechanisms by which sleep timing is modulated by the environment are unclear. Here we introduce a novel behavioural paradigm to study this issue. We show that in male fruit flies, onset of the daytime siesta is delayed by ambient temperatures above 29°C. We term this effect Prolonged Morning Wakefulness (PMW). We show that signalling through the TrpA1 thermo-sensor is required for PMW, and that TrpA1 specifically impacts siesta onset, but not night sleep onset, in response to elevated temperatures. We identify two critical TrpA1-expressing circuits and show that both contact DN1p clock neurons, the output of which is also required for PMW. Finally, we identify the circadian blue-light photoreceptor CRYPTOCHROME as a molecular regulator of PMW, and propose a model in which the Drosophila nervous system integrates information encoding temperature, light, and time to dynamically control when sleep is initiated. Our results provide a platform to investigate how environmental inputs co-ordinately regulate sleep plasticity.
Hangover links nuclear RNA signaling to cAMP regulation via the phosphodiesterase 4d ortholog dunce
(2017)
The hangover gene defines a cellular stress pathway that is required for rapid ethanol tolerance in Drosophila melanogaster. To understand how cellular stress changes neuronal function, we analyzed Hangover function on a cellular and neuronal level. We provide evidence that Hangover acts as a nuclear RNA binding protein and we identified the phosphodiesterase 4d ortholog dunce as a target RNA. We generated a transcript-specific dunce mutant that is impaired not only in ethanol tolerance but also in the cellular stress response. At the neuronal level, Dunce and Hangover are required in the same neuron pair to regulate experience-dependent motor output. Within these neurons, two cyclic AMP (cAMP)-dependent mechanisms balance the degree of tolerance. The balance is achieved by feedback regulation of Hangover and dunce transcript levels. This study provides insight into how nuclear Hangover/RNA signaling is linked to the cytoplasmic regulation of cAMP levels and results in neuronal adaptation and behavioral changes.
Eclosion in flies and other insects is a circadian-gated behaviour under control of a central and a peripheral clock. It is not influenced by the motivational state of an animal, and thus presents an ideal paradigm to study the relation and signalling pathways between central and peripheral clocks, and downstream peptidergic regulatory systems. Little is known, however, about eclosion rhythmicity under natural conditions, and research into this direction is hampered by the physically closed design of current eclosion monitoring systems.
We describe a novel open eclosion monitoring system (WEclMon) that allows the puparia to come into direct contact with light, temperature and humidity. We demonstrate that the system can be used both in the laboratory and outdoors, and shows a performance similar to commercial closed funnel-type monitors. Data analysis is semi-automated based on a macro toolset for the open imaging software Fiji. Due to its open design, the WEclMon is also well suited for optogenetic experiments. A small screen to identify putative neuroendocrine signals mediating time from the central clock to initiate eclosion showed that optogenetic activation of ETH-, EH and myosuppressin neurons can induce precocious eclosion. Genetic ablation of myosuppressin-expressing neurons did, however, not affect eclosion rhythmicity.
In order to select the appropriate behavior, it is important to choose the right behavior at the right time out of many options. It still remains unclear nowadays how exactly this is managed. To address this question, I expose flies (Drosophila melanogaster) to uncontrollable stress to study their behavior under restrictive circumstances by using the so-called shock box. Exposing animals to uncontrollable stress may have an impact on subsequent behavior and can last for some time. The animal learns that whatever it does, it cannot change the situation and therefore can develop something called learned helplessness. The term was first conceptualized by two American psychologists Maier and Seligman (1967), who discovered this phenomenon while doing experiments with dogs. They found out that dogs which are exposed to inescapable stress, later fail in a learning task (‘shuttle box’).
In this work the walking patterns of three different types of experimental flies, walking in a small dark chamber, were evaluated. Using the triadic design (Seligman and Maier, 1967), flies were either exposed to electric shock randomly (yoked), could turn it off by being active (master) or did not receive punishment at all (control). Master flies were shocked whenever they sat for more than 0.9 seconds. At the same time yoked flies received a shock as well independent of what they were doing, to ensure the same amount of shocks received and to create random punishment pattern for the yoked group. With this so-called no-idleness paradigm flies were conditioned either 10 minutes, which resulted in a short (3 minutes) after-effect, or 20 minutes that turned out to be more stable (10 minutes).
In a second part, the behavior during the 20 minute conditioning and a 10 minutes post-test was described in detail. Female flies of the yoked group developed lower activity levels, longer pauses and walked more slowly than master and control flies during conditioning. In the time after the shocks while still in the box, the yoked flies also reduced the frequency and duration of walking bouts as well as their walking speed. Additionally, they took more time to resume walking after the onset of an electric shock than master flies (escape latency) and turned out to make less pauses lasting between 1-1.5 seconds which supports the finding concerning the escape latency.
Male flies, tested under the same conditions, showed a slightly weaker after-effect regarding the difference between master and yoked during conditioning and post-test when compared to female flies.
When comparing the 20 minutes conditioning with subsequent 10 minutes test in the heat and the shock box in parallel, one finds the same effect: Flies which do not have control over the shocks, lower their activity, make less but longer pauses and walk more slowly than their respective master flies. Despite the similar effect of heat and shock on the flies, some differences between the devices occurred, which can partly be explained by different humidity conditions as well as by different surfaces within the chambers.
When the control over the shocks is given back to the yoked flies, it takes them about seven minutes to realize it. One could also show that dopamine levels in the brain were reduced in comparison to flies which did not receive shocks. Yoked flies also were impaired in a place learning task (place learning) and their reaction to light (exit from the box towards the light) directly after conditioning.
After characterizing the walking behavior in the chambers, the study deals with the question whether the effects observed in the chambers transfer to different environments.
In free walk they only differed from flies which did not receive electric shocks and no effect of uncontrollability was transferred to courtship behavior. Handling as the cause could be excluded. Since handling could be exclude to be the cause of losing the effect, I assumed that the behavior shown in the boxes are context depend.
Not only were the after-effects of inescapable shock subject of the current research also the impact of the rearing situation on the response to electric shock was investigated in the present study. Flies which grew up in a single-reared situation turned out to be less affected by inescapable stress in both sexes.
In the next part, the first steps to unravel the neuronal underpinning were taken. A mutant – fumin – which is defective in the dopamine re-uptake transporter showed less reaction to inescapable foot shocks, while a mutant for the gene which encodes an adenylate cyclase (rutabaga2080) resulted in a good score during conditioning, but showed no stable after-effect. Downregulating the expression of the adenylate cyclase gene (rutabaga) in different parts of the mushroom bodies showed, that rutabaga is necessary in the α’β’-lobes for expressing the differences between master and yoked flies in the no-idleness paradigm. The study further confirmed previous findings, that rutabaga is needed in operant but not in classical conditioning.
As a result, the study could show that not the stimulus itself causes the state of uncontrollability but the fact that the fly learned that it was not in control of the stimulus. This state turned out to be context and time dependent.
Feeding and sleep are fundamental behaviours with significant interconnections and cross-modulations. The circadian system and peptidergic signals are important components of this modulation, but still little is known about the mechanisms and networks by which they interact to regulate feeding and sleep. We show that specific thermogenetic activation of peptidergic Allatostatin A (AstA)-expressing PLP neurons and enteroendocrine cells reduces feeding and promotes sleep in the fruit fly Drosophila. The effects of AstA cell activation are mediated by AstA peptides with receptors homolog to galanin receptors subserving similar and apparently conserved functions in vertebrates. We further identify the PLP neurons as a downstream target of the neuropeptide pigment-dispersing factor (PDF), an output factor of the circadian clock. PLP neurons are contacted by PDF-expressing clock neurons, and express a functional PDF receptor demonstrated by cAMP imaging. Silencing of AstA signalling and continuous input to AstA cells by tethered PDF changes the sleep/activity ratio in opposite directions but does not affect rhythmicity. Taken together, our results suggest that pleiotropic AstA signalling by a distinct neuronal and enteroendocrine AstA cell subset adapts the fly to a digestive energy-saving state which can be modulated by PDF.
A visual stimulus at a particular location of the visual field may elicit a behavior while at the same time equally salient stimuli in other parts do not. This property of visual systems is known as selective visual attention (SVA). The animal is said to have a focus of attention (FoA) which it has shifted to a particular location. Visual attention normally involves an attention span at the location to which the FoA has been shifted. Here the attention span is measured in Drosophila. The fly is tethered and hence has its eyes fixed in space. It can shift its FoA internally. This shift is revealed using two simultaneous test stimuli with characteristic responses at their particular locations. In tethered flight a wild type fly keeps its FoA at a certain location for up to 4s. Flies with a mutation in the radish gene, that has been suggested to be involved in attention-like mechanisms, display a reduced attention span of only 1s.
Attraction to ethanol is common in both flies and humans, but the neuromodulatory mechanisms underlying this innate attraction are not well understood. Here, we dissect the function of the key regulator of serotonin signaling—the serotonin transporter–in innate olfactory attraction to ethanol in Drosophila melanogaster. We generated a mutated version of the serotonin transporter that prolongs serotonin signaling in the synaptic cleft and is targeted via the Gal4 system to different sets of serotonergic neurons. We identified four serotonergic neurons that inhibit the olfactory attraction to ethanol and two additional neurons that counteract this inhibition by strengthening olfactory information. Our results reveal that compensation can occur on the circuit level and that serotonin has a bidirectional function in modulating the innate attraction to ethanol. Given the evolutionarily conserved nature of the serotonin transporter and serotonin, the bidirectional serotonergic mechanisms delineate a basic principle for how random behavior is switched into targeted approach behavior.
Visual Attention in Flies-Dopamine in the Mushroom Bodies Mediates the After-Effect of Cueing
(2016)
Visual environments may simultaneously comprise stimuli of different significance. Often such stimuli require incompatible responses. Selective visual attention allows an animal to respond exclusively to the stimuli at a certain location in the visual field. In the process of establishing its focus of attention the animal can be influenced by external cues. Here we characterize the behavioral properties and neural mechanism of cueing in the fly Drosophila melanogaster. A cue can be attractive, repulsive or ineffective depending upon (e.g.) its visual properties and location in the visual field. Dopamine signaling in the brain is required to maintain the effect of cueing once the cue has disappeared. Raising or lowering dopamine at the synapse abolishes this after-effect. Specifically, dopamine is necessary and sufficient in the αβ-lobes of the mushroom bodies. Evidence is provided for an involvement of the αβ\(_{posterior}\) Kenyon cells.
A painful event establishes two opponent memories: cues that are associated with pain onset are remembered negatively, whereas cues that coincide with the relief at pain offset acquire positive valence. Such punishment-versus relief-memories are conserved across species, including humans, and the balance between them is critical for adaptive behaviour with respect to pain and trauma. In the fruit fly, Drosophila melanogaster as a study case, we found that both punishment-and relief-memories display natural variation across wild-derived inbred strains, but they do not covary, suggesting a considerable level of dissociation in their genetic effectors. This provokes the question whether there may be heritable inter-individual differences in the balance between these opponent memories in man, with potential psycho-clinical implications.
Cryptochrome (CRY) is the primary photoreceptor of Drosophila’s circadian clock. It resets the circadian clock by promoting light-induced degradation of the clock protein Timeless (TIM) in the proteasome. Under constant light, the clock stops because TIM is absent, and the flies become arrhythmic. In addition to TIM degradation, light also induces CRY degradation. This depends on the interaction of CRY with several proteins such as the E3 ubiquitin ligases Jetlag (JET) and Ramshackle (BRWD3). However, CRY can seemingly also be stabilized by interaction with the kinase Shaggy (SGG), the GSK-3 beta fly orthologue. Consequently, flies with SGG overexpression in certain dorsal clock neurons are reported to remain rhythmic under constant light. We were interested in the interaction between CRY, Ramshackle and SGG and started to perform protein interaction studies in S2 cells. To our surprise, we were not able to replicate the results, that SGG overexpression does stabilize CRY, neither in S2 cells nor in the relevant clock neurons. SGG rather does the contrary. Furthermore, flies with SGG overexpression in the dorsal clock neurons became arrhythmic as did wild-type flies. Nevertheless, we could reproduce the published interaction of SGG with TIM, since flies with SGG overexpression in the lateral clock neurons shortened their free-running period. We conclude that SGG does not directly interact with CRY but rather with TIM. Furthermore we could demonstrate, that an unspecific antibody explains the observed stabilization effects on CRY.
The correct regulation of cell growth and proliferation is essential during normal animal development. Myc proteins function as transcription factors, being involved in the con-trol of many growth- and proliferation-associated genes and deregulation of Myc is one of the main driving factors of human malignancies.
The first part of this thesis focuses on the identification of directly regulated Myc target genes in Drosophila melanogaster, by combining ChIPseq and RNAseq approaches. The analysis results in a core set of Myc target genes of less than 300 genes which are mainly involved in ribosome biogenesis. Among these genes we identify a novel class of Myc targets, the non-coding small nucleolar RNAs (snoRNAs). In vivo studies show that loss of snoRNAs not only impairs growth during normal development, but that overexpression of several snoRNAs can also enhance tumor development in a neu-ronal tumor model. Together the data show that Myc acts as a master regulator of ribo-some biogenesis and that Myc’s transforming effects in tumor development are at least partially mediated by the snoRNAs.
In the second part of the thesis, the interaction of Myc and the Zf-protein Chinmo is described. Co-immunoprecipitations of the two proteins performed under endogenous and exogenous conditions show that they interact physically and that neither the two Zf-domains nor the BTB/POZ-domain of Chinmo are important for this interaction. Fur-thermore ChIP experiments and Myc dependent luciferase assays show that Chinmo and Myc share common target genes, and that Chinmo is presumably also involved in their regulation. While the exact way of how Myc and Chinmo genetically interact with each other still has to be investigated, we show that their interaction is important in a tumor model. Overexpression of the tumor-suppressors Ras and Chinmo leads to tu-mor formation in Drosophila larvae, which is drastically impaired upon loss of Myc.
Circadianes und Stress-System sind zwei physiologische Systeme, die dem Organismus helfen sich an Veränderungen ihrer Umwelt anzupassen. Während letzteres spontane und schnelle Antworten auf akute, unvorhersehbare Umweltreize liefert, sagt das circadiane System täglich wiederkehrende Ereignisse vorher and bereitet den Organismus so vorzeitig auf diese nahende Umweltveränderung vor. Dennoch, trotz dieser unterschiedlichen Reaktionsmechanismen agieren beide Systeme nicht komplett autonom. Studien der vergangen Jahre belegen vielmehr eine Interaktion beider Systeme. So postulieren sie zum einem Unterschiede in der Stressantwort in Abhängigkeit von der Tageszeit zu der der Reiz auftritt und weisen zugleich auf eine Zunahme von gestörten biologischen Tagesrhythmen, wie zum Beispiel Schlafstörungen, in Folge von unkontrollierten oder exzessiven Stress hin. Ebenso liefern kürzlich durchgeführte Studien an Vertebraten und Pilzen Hinweise, dass mit p38, eine Stress-aktivierte Kinase, an der Signalweiterleitung zur inneren Uhr beteiligt ist (Hayashi et al., 2003), sogar durch dieses endogene Zeitmesssystem reguliert wird (Vitalini et al., 2007; Lamb et al., 2011) und deuten damit erstmals eine mögliche Verbindung zwischen Stress-induzierten und regulären rhythmischen Anpassungen des Organismus an Umweltveränderungen an. Molekulare und zelluläre Mechanismen dieser Verknüpfung sind bisher noch nicht bekannt.
Während die Rolle von p38 MAPK bei der Stress- und Immunantwort in Drosophila melanogaster gut charakterisiert ist, wurden Expression und Funktion von p38 in der inneren Uhr hingegen bislang nicht untersucht. Die hier vorliegende Arbeit hatte daher zum Ziel mittels immunhistochemischer, verhaltensphysiologischer und molekularer Methoden eine mögliche Rolle der Stress-aktivierten Kinase im circadianen System der Fliege aufzudecken. Antikörperfärbungen sowie Studien mit Reporterlinien zeigen deutliche Färbesignale in den s-LNv, l-LNv und DN1a und erbringen erstmals einen Nachweis für p38 Expression in den Uhrneuronen der Fliege. Ebenso scheint die Aktivität von p38 MAPK in den DN1a uhrgesteuert zu sein. So liegt p38 vermehrt in seiner aktiven Form in der Dunkelphase vor und zeigt, neben seiner circadian regulierten Aktivierung, zusätzlich auch eine Inaktivierung durch Licht. 15-Minuten-Lichtpulse in der subjektiven Nacht führen zu einer signifikanten Reduktion von aktivierter, phosphorylierter p38 MAPK in den DN1a von Canton S Wildtypfliegen im Vergleich zu Fliegen ohne Lichtpuls-Behandlung. Aufzeichnungen der Lokomotoraktivität offenbaren zusätzlich die Notwendigkeit von p38 MAPK für wildtypisches Timing der Abendaktivität sowie zum Erhalt von 24-Stunden-Verhaltensrhythmen unter konstanten Dauerdunkel-Bedindungen. So zeigen Fliegen mit reduzierten p38 Level in Uhrneuronen einen verzögerten Beginn der Abendaktivität und stark verlängerte Freilaufperioden. In Übereinstimmung mit Effekten auf das Laufverhalten scheint darüber hinaus die Expression einer dominant-negativen Form von p38b in Drosophila’s wichtigsten Uhrneuronen eine verspätete nukleäre Translokation von Period zur Folge zu haben. Westernblots legen zusätzlich einen Einfluss von p38 auf den Phosphorylierungsgrad von Period nahe und liefern damit einen mögliche Erklärung für den verspäteten Kerneintritt des Uhrproteins. Abschließende Stützung der Westernblotergebnisse bringen in vitro Kinasenassays und deuten auf p38 als eine potentielle „Uhrkinase“ hin, welche auch in vivo Period an Serin 661 sowie weiteren potentiellen Phosphorylierungsstellen phosphorylieren könnte.
Zusammengenommen deuten die Ergebnisse der hier vorliegenden Arbeit eindeutig auf eine bedeutende Rolle von p38, neben dessen Funkion im Stress-System, auch im circadianen System der Fliege hin und offenbaren damit die Möglichkeit, dass p38 als Schnittstelle zwischen beider Systeme fungiert.
Swords are exaggerated male ornaments of swordtail fishes that have been of great interest to evolutionary biologists ever since Darwin described them in the Descent of Man (1871). They are a novel sexually selected trait derived from modified ventral caudal fin rays and are only found in the genus Xiphophorus. Another phylogenetically more widespread and older male trait is the gonopodium, an intromittent organ found in all poeciliid fishes, that is derived from a modified anal fin. Despite many evolutionary and behavioral studies on both traits, little is known so far about the molecular mechanisms underlying their development. By investigating transcriptomic changes (utilizing a RNA-Seq approach) in response to testosterone treatment in the swordtail fish, Xiphophorus hellerii, we aimed to better understand the architecture of the gene regulatory networks underpinning the development of these two evolutionary novelties. Large numbers of genes with tissue-specific expression patterns were identified. Among the sword genes those involved in embryonic organ development, sexual character development and coloration were highly expressed, while in the gonopodium rather more morphogenesis-related genes were found. Interestingly, many genes and genetic pathways are shared between both developing novel traits derived from median fins: the sword and the gonopodium. Our analyses show that a larger set of gene networks was co-opted during the development and evolution of the older gonopodium than in the younger, and morphologically less complex trait, the sword. We provide a catalog of candidate genes for future efforts to dissect the development of those sexually selected exaggerated male traits in swordtails.
Cell growth and cell division are two interconnected yet distinct processes. Initiation of proliferation of central brain progenitor cells (neuroblasts) after the late embryonic quiescence stage requires cell growth, and maintenance of proper cell size is an important prerequisite for continuous larval neuroblast proliferation. Beside extrinsic nutrition signals, cell growth requires constant supply with functional ribosomes to maintain protein synthesis.
Mutations in the mushroom body miniature (mbm) gene were previously identified in a screen for structural brain mutants. This study focused on the function of the Mbm protein as a new nucleolar protein, which is the site of ribosome biogenesis. The comparison of the relative expression levels of Mbm and other nucleolar proteins in different cell types showed a pronounced expression of Mbm in neuroblasts, particularly in the fibrillar component of the nucleolus, suggesting that in addition to nucleolar components generally required for ribosome biogenesis, more neuroblast specific nucleolar factors exist. Mutations in mbm cause neuroblast proliferation defects but do not interfere with cell polarity, spindle orientation or asymmetry of cell division of neuroblasts. Instead a reduction in cell size was observed, which correlates with an impairment of ribosome biogenesis. In particular, loss of Mbm leads to the retention of the small ribosomal subunit in the nucleolus resulting in decreased protein synthesis. Interestingly, the defect in ribosome biogenesis was only observed in neuroblasts. Moreover, Mbm is apparently not required for cell size and proliferation control in wing imaginal disc and S2 cells supporting the idea of a neuroblast-specific function of Mbm.
Furthermore, the transcriptional regulation of the mbm gene and the functional relevance of posttranslational modifications were analyzed. Mbm is a transcriptional target of dMyc. A common feature of dMyc target genes is the presence of a conserved E-box sequence in their promoter regions. Two E-box motifs are found in the vicinity of the transcriptional start site of mbm. Gene reporter assays verified that only one of them mediates dMyc-dependent transcription. Complementary studies in flies showed that removal of dMyc function in neuroblasts resulted in reduced Mbm expression levels.
At the posttranslational level, Mbm becomes phosphorylated by protein kinase CK2. Six serine and threonine residues located in two acidic amino acid rich clusters in the C-terminal half of the Mbm protein were identified as CK2 phosphorylation sites.
Mutational analysis of these sites verified their importance for Mbm function in vivo and indicated that Mbm localization is controlled by CK2-mediated phosphorylation.
Although the molecular function of Mbm in ribosome biogenesis remains to be determined, the results of this study emphasize the specific role of Mbm in neuroblast ribosome biogenesis to control cell growth and proliferation.
In der vorliegenden Arbeit wurde der Einfluss von Dopamin, Serotonin und GABA auf das Schlafverhalten von Drosophila melanogaster genauer untersucht. Mit Hilfe von Mutanten in Wiederaufnahmetransportern für Dopamin und Serotonin konnte gezeigt werden, dass Dopamin und Serotonin entgegengesetzte Wirkungen auf die Schlafmenge der Fliegen haben. Dopamin hat eine schlafhemmende, Serotonin eine schlaffördernde Wirkung. Die Nutzung eines neuronal dopamindefizienten Fliegenstammes erweitert diese Erkenntnisse. Die Nutzung von RNAi zur Hinunterregulierung der Rezeptoren für Dopamin brachte keine weiteren Erkenntnisse, da sie zu keinem messbaren Effekt führen. Jedoch ergab eine parallel dazu durchgeführte Hinunterregulierung des GABABR2 Rezeptors, dass dieser maßgeblich für die Aufrechterhaltung des Schlafes in der zweiten Hälfte der Nacht verantwortlich ist. Es konnte gezeigt werden, dass für diese Aufgabe vor allem ihre Expression in den l-LNv Neuronen relevant ist. Dabei ist für die GABABR2 Rezeptoren kein Effekt, für Dopamin und Serotonin nur in geringen Ausmaß ein Effekt auf die Innere Uhr in Form von gering veränderter Periode zu beobachten.
Durch eine Kombination der Transportermutanten für Dopamin und Serotonin mit dem intakten, als auch mutierten WHITE Transporter zeigte sich eine interessante Interaktion dieser drei Transporter bei der Regulation der Gesamtschlafmenge, wobei die white Mutation zu einer Reduzierung der Gesamtschlafmenge führt. UPLC Messungen der Stämme ergaben, dass der Effekt von white vermutlich auf dessen Einfluss auf den beta-Alanyldopamingehalt der Fliegen basiert. beta-Alanyldopamin wird bei dem Transport von Dopamin über die Gliazellen durch das Enzym EBONY gebildet, dessen Mutation in der Kombination mit intaktem WHITE und mutiertem Dopamintransporter zu einer drastischen Reduktion des Schlafes während der Nacht führt. Im Rahmen der Untersuchung konnte zudem gezeigt werden, dass entgegen des bisherigen Wissens aus Zellkulturstudien in Drosophila melanogaster kein beta-Alanylserotonin gebildet wird. Möglicherweise wird nur Dopamin, nicht jedoch Serotonin über die Gliazellen recycelt. Dies ist ein interessanter Unterschied, der sowohl eine zeitliche, als auch lokale Feinregulation der Gegenspieler Dopamin und Serotonin ermöglicht.
Die Untersuchung der Dimerpartner BROWN und SCARLET zeigte, dass lediglich BROWN zu einer Reduktion des Schlafes führt. Ein Effekt, der auch in einer Fliegenlinie mit spontaner white Mutation beobachtet werden konnte. Die genaue Funktion dieses Heterodimertransporters und seine neuronale Lokalisation wurden im Rahmen dieser Arbeit noch nicht geklärt. Dennoch liegt eine Funktion als Dopamin- oder beta-Alanyldopamintransporter in Gliazellen auf Grund der ermittelten Ergebnisse nahe.
Zusätzlich konnte zum ersten Mal in Drosophila melanogaster eine Funktion der Amintransporter bei der Anpassung der Inneren Uhr an extreme kurze bzw. lange Photoperioden gezeigt werden.
Eine anatomische Lokalisierung des WHITE Transporters im Gehirn von Drosophila melanogaster, die weitere Charakterisierung der Rolle des WHITE/BROWN Dimers und die Zuordnung bestimmter dopaminerger und serotonerger Neurone bei der Modulation der Aktivitätsmaxima stellen spannende Fragen für zukünftige Arbeiten dar.
This study explores novelty choice, a behavioral paradigm for the investigation of visual pattern recognition and learning of the fly Drosophila melanogaster in the flight simulator. Pattern recognition in novelty choice differs significantly from pattern recognition studied by heat conditioning, although both paradigms use the same test. Out of the four pattern parameters that the flies can learn in heat conditioning, novelty choice can be shown for height (horizontal bars differing in height), size and vertical compactness but not for oblique bars oriented at +/- 45°. Upright and inverted Ts [differing in their centers of gravity (CsOG) by 13°] that have been extensively used for heat conditioning experiments, do not elicit novelty choice. In contrast, horizontal bars differing in their CsOG by 13° do elicit novelty choice; so do the Ts after increasing their CsOG difference from 13° to 23°. This indicates that in the Ts the heights of the CsOG are not the only pattern parameters that matter for the novelty choice behavior. The novelty choice and heat conditioning paradigms are further differentiated using the gene rutabaga (rut) coding for a type 1 adenylyl cyclase. This protein had been shown to be involved in memory formation in the heat conditioning paradigm. Novelty choice is not affected by mutations in the rut gene. This is in line with the finding that dopamine, which in olfactory learning is known to regulate Rutabaga via the dopamine receptor Dumb in the mushroom bodies, is dispensable for novelty choice. It is concluded that in novelty choice the Rut cAMP pathway is not involved. Novelty choice requires short term working memory, as has been described in spatial orientation during locomotion. The protein S6KII that has been shown to be involved in visual orientation memory in walking flies is found here to be also required for novelty choice. As in heat conditioning the central complex plays a major role in novelty choice. The S6KII mutant phenotype for height can be rescued in some subsets of the ring neurons of the ellipsoid body. In addition the finding that the ellipsoid body mutants ebo678 and eboKS263 also show a mutant phenotype for height confirm the importance of ellipsoid body for height novelty choice. Interestingly some neurons in the F1 layer of the fan-shaped body are necessary for height novelty choice. Furthermore, different novelty choice phenotypes for different pattern parameters are found with and without mushroom bodies. Mushroom bodies are required in novelty choice for size but they are dispensable for height and vertical compactness. This special circuit requirement for the size parameter in novelty choice is found using various means of interference with mushroom body function during development or adulthood.
This study explores novelty choice, a behavioral paradigm for the investigation of visual pattern recognition and learning of the fly Drosophila melanogaster in the flight simulator. Pattern recognition in novelty choice differs significantly from pattern recognition studied by heat conditioning, although both paradigms use the same test. Out of the four pattern parameters that the flies can learn in heat conditioning, novelty choice can be shown for height (horizontal bars differing in height), size and vertical compactness but not for oblique bars oriented at +/- 45°. Upright and inverted Ts [differing in their centers of gravity (CsOG) by 13°] that have been extensively used for heat conditioning experiments, do not elicit novelty choice. In contrast, horizontal bars differing in their CsOG by 13° do elicit novelty choice; so do the Ts after increasing their CsOG difference from 13° to 23°. This indicates that in the Ts the heights of the CsOG are not the only pattern parameters that matter for the novelty choice behavior. The novelty choice and heat conditioning paradigms are further differentiated using the gene rutabaga (rut) coding for a type 1 adenylyl cyclase. This protein had been shown to be involved in memory formation in the heat conditioning paradigm. Novelty choice is not affected by mutations in the rut gene. This is in line with the finding that dopamine, which in olfactory learning is known to regulate Rutabaga via the dopamine receptor Dumb in the mushroom bodies, is dispensable for novelty choice. It is concluded that in novelty choice the Rut cAMP pathway is not involved. Novelty choice requires short term working memory, as has been described in spatial orientation during locomotion. The protein S6KII that has been shown to be involved in visual orientation memory in walking flies is found here to be also required for novelty choice. As in heat conditioning the central complex plays a major role in novelty choice. The S6KII mutant phenotype for height can be rescued in some subsets of the ring neurons of the ellipsoid body. In addition the finding that the ellipsoid body mutants ebo678 and eboKS263 also show a mutant phenotype for height confirm the importance of ellipsoid body for height novelty choice. Interestingly some neurons in the F1 layer of the fan-shaped body are necessary for height novelty choice. Furthermore, different novelty choice phenotypes for different pattern parameters are found with and without mushroom bodies. Mushroom bodies are required in novelty choice for size but they are dispensable for height and vertical compactness. This special circuit requirement for the size parameter in novelty choice is found using various means of interference with mushroom body function during development or adulthood.
Learning and memory is considered to require synaptic plasticity at presynaptic specializations of neurons. Kenyon cells are the intrinsic neurons of the primary olfactory learning center in the brain of arthropods – the mushroom body neuropils. An olfactory mushroom body memory trace is supposed to be located at the presynapses of Kenyon cells. In the calyx, a sub-compartment of the mushroom bodies, Kenyon cell dendrites receive olfactory input provided via projection neurons. Their output synapses, however, were thought to reside exclusively along their axonal projections outside the calyx, in the mushroom body lobes. By means of high-resolution imaging and with novel transgenic tools, we showed that the calyx of the fruit fly Drosophila melanogaster also comprised Kenyon cell presynapses. At these presynapses, synaptic vesicles were present, which were capable of neurotransmitter release upon stimulation. In addition, the newly identified Kenyon cell presynapses shared similarities with most other presynapses: their active zones, the sites of vesicle fusion, contained the proteins Bruchpilot and Syd-1. These proteins are part of the cytomatrix at the active zone, a scaffold controlling synaptic vesicle endo- and exocytosis. Kenyon cell presynapses were present in γ- and α/β-type KCs but not in α/β-type Kenyon cells.
The newly identified Kenyon cell derived presynapses in the calyx are candidate sites for an olfactory associative memory trace. We hypothesize that, as in mammals, recurrent neuronal activity might operate for memory retrieval in the fly olfactory system.
Moreover, we present evidence for structural synaptic plasticity in the mushroom body calyx. This is the first demonstration of synaptic plasticity in the central nervous system of Drosophila melanogaster. The volume of the mushroom body calyx can change according to changes in the environment. Also size and numbers of microglomeruli - sub-structures of the calyx, at which projection neurons contact Kenyon cells – can change. We investigated the synapses within the microglomeruli in detail by using new transgenic tools for visualizing presynaptic active zones and postsynaptic densities. Here, we could show, by disruption of the projection neuron - Kenyon cell circuit, that synapses of microglomeruli were subject to activity-dependent synaptic plasticity. Projection neurons that could not generate action potentials compensated their functional limitation by increasing the number of active zones per microglomerulus. Moreover, they built more and enlarged microglomeruli. Our data provide clear evidence for an activity-induced, structural synaptic plasticity as well as for the activity-induced reorganization of the olfactory circuitry in the mushroom body calyx.
p21-aktivierte Kinasen regulieren zahlreiche zelluläre Prozesse, die während der Entwicklung, aber auch beispielsweise bei der Krebsentstehung, von zentraler Bedeutung sind. Mbt, das einzige Typ II PAK-Protein von Drosophila melanogaster, spielt eine Rolle bei der Gehirnentwicklung. Eine Nullmutation von mbt, mbtP1, bildet kleinere Gehirne mit stark verkleinerten Pilzkörpern aus. In dieser Arbeit wurde die Funktion von Mbt in Neuroblasten untersucht. Mbt wurde als Teil des apikalen Proteinkomplexes in Neuroblasten des Zentralhirns nachgewiesen. Die apikale Lokalisation von Mbt ist Zellzyklus-abhängig und wird über Bindung an Cdc42 reguliert. Sie ist essentiell für die Funktion von Mbt in Neuroblasten. Trotz apikaler Mbt-Lokalisation in Neuroblasten zeigte die mbt Nullmutante keine Defekte des basalen Mechanismus der asymmetrischen Zellteilung. Mud zeigte geringfügige Lokalisationsveränderungen, die auf einen möglichen Einfluss von Mbt hinweisen. Obwohl PAKs zentrale Regulatoren des Zytoskeletts sind, zeigte die mbtP1 Mutante keine offensichtlichen Veränderungen des Aktin- und Tubulin-Zytoskeletts. Armadillo, ein Aktin-assoziiertes Mbt-Substrat, zeigte ebenfalls keine Lokalisationsveränderung in Neuroblasten. Mbt steuert jedoch die apikale Anreicherung von Cno, einem weiteren Aktin-assoziierten Protein, in Neuroblasten. Darüber hinaus beeinflusst Mbt die Zellgröße von Neuroblasten, sowie deren Proliferationspotenzial und Überleben. mbtP1 Neuroblasten sind kleiner als wildtypische Neuroblasten, haben ein geringeres Proliferationsvermögen und eine geringere Überlebenswahrscheinlichkeit. Der Zelltod von Neuroblasten ist jedoch ein sekundärer Effekt. Daher kann eine Blockierung von Apoptose den adulten Pilzkörperphänotyp nicht retten. Signalwege, die Zellgröße und Proliferation regulieren, wurden auf eine Beteiligung von Mbt hin analysiert. mbtP1 induzierte leichte Effekte im Insulin-Signalweg und die Delokalisation eines nukleolären Proteins. Eine genetische Interaktion von mbtP1 mit Mutationen in Genen des klassischen MAPK-Signalweges identifzierte mbt als Positivregulator dieses Signalweges im Auge. Ein ähnlicher, schwächerer Effekt wurde auch bzgl. der Proliferation und Größe von Neuroblasten beobachtet. Eine 2D-Gelanalyse von Larvengehirnen identifizierte Bic und Hsp83 als mögliche von Mbt regulierte Proteine. Diese Arbeit charakterisiert eine bisher unbekannte Funktion der p21-aktivierten Kinase Mbt in neuronalen Stammzellen und liefert damit Ansatzpunkte für eine detaillierte Aufklärung der Funktionsmechanismen von Typ II PAKs bei der Regulation von Zellproliferation und Überleben
There is such vast amount of visual information in our surroundings at any time that filtering out the important information for further processing is a basic requirement for any visual system. This is accomplished by deploying attention to focus on one source of sensory inputs to the exclusion of others (Luck and Mangun 2009). Attention has been studied extensively in humans and non human primates (NHPs). In Drosophila, visual attention was first demonstrated in 1980 (Wolf and Heisenberg 1980) but this field remained largely unexplored until recently. Lately, however, studies have emerged that hypothesize the role of attention in several behaviors but do not specify the characteristic properties of attention. So, the aim of this research was to characterize the phenomenon of visual attention in wild-type Drosophila, including both externally cued and covert attention using tethered flight at a torque meter. Development of systematic quantifiable behavioral tests was a key aspect for this which was not only important for analyzing the behavior of a population of wild-type flies but also for comparing the wild-type flies with mutant flies. The latter would help understand the molecular, genetic, and neuronal bases of attention. Since Drosophila provides handy genetic tools, a model of attention in Drosophila will serve to the greater questions about the neuronal circuitry and mechanisms involved which might be analogous to those in primates. Such a model might later be used in research involving disorders of attention. Attention can be guided to a certain location in the visual field by the use of external cues. Here, using visual cues the attention of the fly was directed to one or the other of the two visual half-fields. A simple yet robust paradigm was designed with which the results were easily quantifiable. This paradigm helped discover several interesting properties of the cued attention, the most substantial one being that this kind of external guidance of attention is restricted to the lower part of the fly’s visual field. The guiding cue had an after-effect, i.e. it could occur at least up to 2 seconds before the test and still bias it. The cue could also be spatially separated from the test by at least 20° and yet attract the attention although the extent of the focus of attention (FoA) was smaller than one lower visual half-field. These observations excluded the possibility of any kind of interference between the test and the cue stimuli. Another interesting observation was the essentiality of continuous visibility of the test stimulus but not the cue for effective cuing. When the contrast of the visual scene was inverted, differences in response frequencies and cuing effects were observed. Syndirectional yaw torque responses became more frequent than the antidirectional responses and cuing was no longer effective in the lower visual field with inverted contrast. Interestingly, the test stimulus with simultaneous displacement of two stripes not only effectuated a phasic yaw torque response but also a landing response. A 50 landing response was produced in more than half of the cases whenever a yaw torque response was produced. Elucidation of the neuronal correlates of the cued attention was commenced. Pilot experiments with hydroxyurea (HU) treated flies showed that mushroom bodies were not required for the kind of guidance of attention tested in this study. Dopamine mutants were also tested for the guidance of attention in the lower visual field. Surprisingly, TH-Gal4/UAS-shits1 flies flew like wild-type flies and also showed normal optomotor response during the initial calibration phase of the experiment but did not show any phasic yaw torque or landing response at 18 °C, 25 °C or 30 °C. dumb2 flies that have almost no D1 dopamine receptor dDA1 expression in the mushroom bodies and the central complex (Kim et al. 2007) were also tested and like THGal4/ UAS-shits1 flies did not show any phasic yaw torque or landing response. Since the dopamine mutants did not show the basic yaw torque response for the test the role of dopamine in attention could not be deduced. A different paradigm would be needed to test these mutants. Not only can attention be guided through external cues, it can also be shifted endogenously (covert attention). Experiments with the windows having oscillating stripes nicely demonstrated the phenomenon of covert attention due to the production of a characteristic yaw torque pattern by the flies. However, the results were not easily quantifiable and reproducible thereby calling for a more systematic approach. Experiments with simultaneous opposing displacements of two stripes provide a promising avenue as the results from these experiments showed that the flies had a higher tendency to deliver one type of response than when the responses would be produced stochastically suggesting that attention increased this tendency. Further experiments and analysis of such experiments could shed more light on the mechanisms of covert attention in flies.
Die heterotetramere Proteinkinase CK2 nimmt aufgrund der großen Anzahl und Diversität ihrer Substrate, sowie aufgrund ihrer Eigenschaft Signalwege miteinander zu vernetzen eine Sonderstellung innerhalb der Kinasen ein. CK2 beeinflusst Proliferation, Differenzierung und Apoptose, Prozesse an denen auch Polyamine und der MAPK-Signalweg beteiligt sind. Eine vor kurzem durchgeführte Arbeit beschreibt die Bindung von CK2 an das Gerüstprotein KSR und die Verstärkung des MAPK-Signalwegs durch Phosphorylierung von Raf-Proteinen in Vertebraten. In dieser Arbeit konnte gezeigt werden, dass CK2 auch in Drosophila mit KSR interagiert und das einzige in Drosophila vorhandene Raf-Potein (DRaf) in vitro phosphoryliert. Im Gegensatz zur Phosphorylierung der humanen B-Raf und C-Raf Proteine an Serin 446 bzw. Serin 338 innerhalb der „negative charge regulatory region“ (N-Region), führten Kinasereaktionen und Massenspektrometrische Untersuchungen zur Identifizierung von Serin 11 als CK2 Phosphorylierungsstelle in DRaf, während ein zu Serin 446 in B-Raf äquivalentes Serin in der N-Region in Drosophila nicht durch CK2 phosphoryliert wird. Durch Überexpression von DRaf sowie von zwei DRaf-Varianten bei denen Serin 11 durch Alanin oder Aspartat substituiert wurde (DRafS11A und DRafS11D) konnte in Zellkulturexperimenten gezeigt werden, dass die Ladung an der Aminosäureposition 11 die Funktion von DRaf beeinflusst, wobei eine negative Ladung an dieser Stelle zur Phosphorylierung und Aktivierung der Effektorkinase Erk führt. Die Phosphorylierung durch CK2 ist unabhängig von regulatorischen Botenstoffen ("second messengers"), wird aber durch Bindung von Polyaminen moduliert. Intrazelluläre Polyamine entstammen zum grossen Teil dem zellulären Aminosäurekatabolismus und beeinflussen die Phosphorylierung von DRaf durch CK2 in vitro, wobei Spermin ein effizienter Inhibitor der Reaktion ist, während die Effekte von Putrescin und Spermidin gering sind. Auch in Drosophila Schneider S2 Zellen und in adulten weiblichen Fliegen hat Spermin einen inhibitorischen, CK2-abhängigen Effekt auf die Aktivierung von Erk. Ausserdem konnte gezeigt werden, dass Putrescin und Spermidin in der Lage sind die Aktivierung von Erk, im Vergleich zu Zellen die nur mit Spermin behandelt wurden, zu erhöhen. Das spricht dafür, dass die Phosphorylierung von DRaf und die davon abhängige Aktivierung von Erk durch CK2 von der Menge und Relation der verschiedenen Polyamine zueinander abhängt. Die Ergebnisse dieser Arbeit lassen den Schluss zu, dass der Polyaminmetabolismus über CK2 mit dem MAPK-Signalweg verknüpft ist. Nachdem Polyamine durch Aminosäurekatabolismus enstehen, kann auf diese Weise der MAPK-Signalweg in Abhängigkeit der Verfügbarkeit zellulärer Aminosäuren reguliert werden. Vorversuche zeigten eine Beeinflussung von Proliferation und Apoptose durch CK2 und Polyamine. Weitere Untersuchungen sind aber nötig um spezifische Einflüsse von Polyaminen und CK2 auf zelluläre Prozesse wie Proliferation, Differenzierung und Apoptose aufzudecken.
Structural and functional modifications of synaptic connections (“synaptic plasticity”) are believed to mediate learning and memory processes. Thus, molecular mechanisms of how synapses assemble in both structural and functional terms are relevant for our understanding of neuronal development as well as the processes of learning and memory. Synapses form by an asymmetric association of highly specialized membrane domains: at the presynaptic active zone transmitter filled vesicles fuse, while transmitter receptors at the opposite postsynaptic density sense this signal. By genetic analysis, matrix proteins of active zones from various families have been shown to be important for fast vesicle fusion, and were suggested to contribute to synapse stability and assembly. The Sigrist lab in collaboration with the Buchner lab previously had shown that the large scaffold protein Bruchpilot (Brp) is essential for both the structural and functional integrity of active zones and for synaptic plasticity in Drosophila melanogaster. The work described in this thesis investigated several candidate proteins which appear to be involved in preand postsynaptic function, as summarized in the following: (1) DREP-2 (DEF45 related protein-2) had been found by co-immunoprecipitations with anti-Brp antibodies by Dr. Manuela Schmidt (unpublished data). Mutants and antibodies for the further study of DREP- 2 were generated in this thesis. Yeast two hybrid results suggest that DREP-2 might interact with dynein light chain 2, while in vivo imaging indicates that DREP-2 might be involved in bidirectional axonal transport. (2) Coimmunoprecipitation and pull down experiments suggested that the ARFGAP [ADP-ribosylation factor (ARF)-directed GTPase activating protein (GAP)] protein GIT (G-protein coupled receptor kinase interacting protein) could interact with the endocytosis associated molecule Stoned B (StnB). Mutants in the dgit gene showed an accumulation of large size vesicles, membrane intermediates and decreased vesicle density at the 3rd instar larval neuromuscular junction (NMJ) by electron microscopy (EM). The phenotypes accumulation of large size vesicles and membrane intermediates could be rescued partially by expression of Drosophila GIT (DGIT) or human GIT in dgit mutant background. Furthermore, by immunofluorescence the dgit mutant shows specifically decreased levels of StnB, which could be restored partially by the expression of DGIT. These results strongly support the suggestion that DGIT interacts with StnB, which is involved in the regulation of vesicle size, endocytosis or recycling of synaptic vesicles (SVs). Furthermore, the dgit mutants also showed signs of a mislocalization of the presynaptic protein Brp relative to the postsynaptic protein GluRIID, which could be rescued by expression of DGIT or human GIT in the dgit mutant background, but not by StnB. These results suggest that GIT on one hand executes roles in the regulation of synaptic vesicle endocytosis, but potentially also has structural roles for synapse assembly (3) Djm-1 is a candidate locus to mediate mental retardation in human patients when it is mutated. As a first step towards an understanding of the mechanistic role of DJM-1, Drosophila genetics were used to address DJM-1 function. So far, however, the djm-1 mutant generated in this thesis did not show a nervous system phenotype.
An animal depends heavily on its sense of smell and its ability to form olfactory associations as this is crucial for its survival. This thesis studies in two parts about such associative olfactory learning in larval Drosophila. The first part deals with different aspects of odour processing while the second part is concerned with aspects related to memory and learning. Chapter I.1 highlights how odour intensities could be integrated into the olfactory percept of larval Drosophila. I first describe the dose-effect curves of learnability across odour intensities for different odours and then choose odour intensities from these curves such that larvae are trained at intermediate odour intensity, but are tested for retention with either that trained intermediate odour intensity, or with respectively HIGHer or LOWer intensities. I observe a specificity of retention for the trained intensity for all the odours used. Further I compare these findings with the case of adult Drosophila and propose a circuit level model of how such intensity coding comes about. Such intensity specificity of learning adds to appreciate the richness in 'content' of olfactory memory traces, and to define the demands on computational models of olfaction and olfactory learning. Chapter I.2 provides a behaviour-based estimate of odour similarity using four different types of experiments to yield a combined, task-independent estimate of perceived difference between odour-pairs. Further comparison of these perceived differences to published measures of physico- chemical difference reveals a weak correlation. Notable exceptions to this correlation are 3-octanol and benzaldehyde. Chapter I.3 shows for two odours (3-octanol and 1-octene-3-ol) that perceptual differences between these odours can either be ignored after non-discriminative training (generalization), or accentuated by odour-specific reinforcement (discrimination). Anosmic Or83b1 mutants have lost these faculties, indicating that this adaptive adjustment is taking place downstream of Or83b expressing sensory neurons. Chapter II.1 of this thesis deals with food supplementation with dried roots of Rhodiola rosea. This dose-dependently improves odour- reward associative function in larval Drosophila. Supplementing fly food with commercially available tablets or extracts, however, does not have a 'cognitive enhancing' effect, potentially enabling us to differentiate between the effective substances in the root versus these preparations. Thus Drosophila as a genetically tractable study case should now allow accelerated analyses of the molecular mechanism(s) that underlie this 'cognitive enhancement' conveyed by Rhodiola rosea. Chapter II.2 describes the role of Synapsin, an evolutionarily conserved presynaptic phosphoprotein using a combined behavioural and genetic approach and asks where and how, this protein affects functions in associative plasticity of larval Drosophila. This study shows that a Synapsin-dependent memory trace can be pinpointed to the mushroom bodies, a 'cortical' brain region of the insects. On the molecular level, data in this study assign Synapsin as a behaviourally- relevant effector of the AC-cAMP-PKA cascade.
For a large fraction of the proteins expressed in the human brain only the primary structure is known from the genome project. Proteins conserved in evolution can be studied in genetic models such as Drosophila. In this doctoral thesis monoclonal antibodies (mAbs) from the Wuerzburg Hybridoma library are produced and characterized with the aim to identify the target antigen. The mAb ab52 was found to be an IgM which recognized a cytosolic protein of Mr ~110 kDa on Western blots. The antigen was resolved by two-dimensional gel electrophoresis (2DE) as a single distinct spot. Mass spectrometric analysis of this spot revealed EPS-15 (epidermal growth factor receptor pathway substrate clone 15) to be a strong candidate. Another mAb from the library, aa2, was already found to recognize EPS-15, and comparison of the signal of both mAbs on Western blots of 1D and 2D electrophoretic separations revealed similar patterns, hence indicating that both antigens could represent the same protein. Finally absence of the wild-type signal in homozygous Eps15 mutants in a Western blot with ab52 confirmed the ab52 antigen to be EPS-15. Thus both the mAbs aa2 and ab52 recognize the Drosophila homologue of EPS-15. The mAb aa2, being an IgG, is more suitable for applications like immunoprecipitation (IP). It has already been submitted to the Developmental Studies Hybridoma Bank (DSHB) to be easily available for the entire research community. The mAb na21 was also found to be an IgM. It recognizes a membrane associated antigen of Mr ~10 kDa on Western blots. Due to the membrane associated nature of the protein, it was not possible to resolve it by 2DE and due to the IgM nature of the mAb it was not possible to enrich the antigen by IP. Preliminary attempts to biochemically purify the endogenously expressed protein from the tissue, gave promising results but could not be completed due to lack of time. Thus biochemical purification of the protein seems possible in order to facilitate its identification by mass spectrometry. Several other mAbs were studied for their staining pattern on cryosections and whole mounts of Drosophila brains. However, many of these mAbs stained very few structures in the brain, which indicated that only a very limited amount of protein would be available as starting material. Because these antibodies did not produce signals on Western blots, which made it impossible to enrich the antigens by electrophoretic methods, we did not attempt their purification. However, the specific localization of these proteins makes them highly interesting and calls for their further characterization, as they may play a highly specialized role in the development and/or function of the neural circuits they are present in. The purification and identification of such low expression proteins would need novel methods of enrichment of the stained structures.
Auf der Suche nach Mutanten mit einer vom Wildtyp abweichenden Verteilung des Aktive Zone-Proteins Bruchpilot wurde die Serin/Arginin-Proteinkinase SRPK79D identifiziert. Hier zeigte sich, dass die Mutation im Srpk79D-Gen zu einer Agglomeration von Bruchpilot in den larvalen segmentalen und intersegmentalen Nerven führt. In der vorliegenden Arbeit sollte die SRPK79D genauer charakterisiert werden. Nach Präadsorptionen und Affinitätsreinigungen von in einer früheren Arbeit erzeugten Antiseren, gelang es die Lokalisation der überexprimierten SRPK79D-GFP-Isoformen zu bestimmen. Dabei zeigte sich, dass keines der Antiseren die endogene Kinase im Western Blot oder immunhistocheimisch detektieren konnte. Dies legt den Schluss nahe, dass die Expression der SRPK79D in einer geringen Konzentration erfolgt. Es war jedoch möglich die endogene SRPK79D-PC-Isoform mittels einer Immunpräzipitation soweit anzureichern, dass sie im Western Blot nachweisbar war. Für die SRPK79D-PB-Isoform gelang dies allerdings nicht. Anhand von larvalen Nerv-Muskel-Präparaten konnte gezeigt werden, dass die panneural überexprimierte SRPK79D-PC-GFP-Isoform an die Aktiven Zone transportiert wird und dort mit Bruchpilot, sowie den Interaktionspartnern von Bruchpilot Liprin-α und Rab3 kolokalisiert. Außerdem liegt sie diffus im Zytoplasma von neuronalen Zellkörpern vor. In adulten Gehirnen lokalisiert die transgen überexprimierte SRPK79D-PC-GFP im Fanshaped body, Ringkomplex und in neuronalen Zellkörpern. Die panneural überexprimierte SRPK79D-PB-GFP-Isoform liegt im larvalen und adulten Gehirn lokal im Zytoplasma der Perikaryen akkumuliert vor und wird nicht an die Aktive Zone transportiert. Das PB-Antiserum erkennt im adulten Gehirn neuronale Zellkörper und das Neuropil in der Calyxregion der Pilzkörper. Immunhistochemische Färbungen von larvalen Nerv-Muskel-Präparaten mit verschiedenen Antikörpern gegen neuronale Proteine belegen, dass die Agglomerate in der Srpk79D-Mutante für Bruchpilot spezifisch sind. Es konnten bisher keine weiteren Komponenten der Agglomerate detektiert werden. Auch ein genereller axonaler Defekt konnte durch Färbungen gegen CSP, Synaptotagmin und Experimenten mit dem Mitochondrienfarbstoff MitoTracker® FM Green ausgeschlossen werden. Die quantitative Auswertung der Präparate zeigte, dass die Morphologie der synaptischen Boutons und die Zahl der Aktiven Zonen durch die Mutation im Srpk79D-Gen nicht beeinflusst werden. Um gesicherte Kenntnis darüber zu erlangen, ob die Mutation im Srpk79D-Gen die beobachteten Phänotypen verursacht, wurden Rettungsexperimente durchgeführt. Es konnte sowohl für das hypomorphe Srpk79DP1-Allel, als auch für die Nullmutante Srpk79DVN eine nahezu vollständige Rettung des Agglomerat-Phänotyps mit der panneural exprimierten SRPK79D-PF- oder der SRPK79D-PB-Isoform erreicht werden. Aus diesen Ergebnissen folgt, dass beide Isoformen der SRPK79D in der Lage sind den Bruchpilot-Agglomerat-Phänotyp zu retten, die Rettung der Verhaltensdefizite jedoch alle Isoformgruppen benötigen. Um zu untersuchen, ob der Agglomerations-Phänotyp der Srpk79D-Mutanten auf einer Überexpression des Bruchpilotgens oder auf Fehlspleißen seiner prä-mRNA beruht, wurden Immunpräzipitationen, semiquantitative RT-PCRs und Real Time-PCRs durchgeführt. Ausgehend von den Ergebnissen kann eine mögliche Überexpression bzw. Spleißdefekte von Bruchpilot weitgehend ausgeschlossen werden. Die simultane Überexpression von SRPK79D und Bruchpilot konnte den Phänotyp der Bruchpilot-Überexpression nicht retten. Anhand der stimulated emission depletion-Mikroskopie konnte gezeigt werden, dass die gebildeten Agglomerate das charakteristische Donut-förmige Muster der T-bars zeigen und wahrscheinlich als fusionierte Ketten von T-bars in den larvalen Nerven vorliegen. Beim in vivo Imaging Versuch konnte demonstriert werden, dass das verkürzte Bruchpilot-D3-Strawberry in die Bruchpilot-Agglomerate der Srpk79D-Nullmutante eingebaut wird und dass größere Agglomerate unbewegt im Nerv verharren. Der anterograde und retrograde Transport kleinerer Agglomerate konnte verzeichnet werden. Bei CytoTrap-Yeast-two-hybrid-Experimenten konnten für die SRPK79D-PB Isoform vier potentielle Interaktionspartner identifiziert werden: das Hitzeschockprotein Hsp70Bbb, die mitochondriale NADH-Dehydrogenase mt:ND5, das large ribosomal RNA Gen in Mitochondrien und das am Spleißen beteiligte Protein 1.3CC/Caper. Die Sequenzierung zeigte, dass nur das letzte Exon von Caper im pMyr-Vektor vorliegt. Der für die PC-Isoform durchgeführte CytoTrap-Versuch ergab nur Temperatur-Revertanten. SR-Proteinkinasen phosphorylieren die RS-Domäne von SR-Proteinen und sind dadurch an der Regulation des konstitutiven und alternativen Spleißens beteiligt. Somit stellen die acht identifizierten SR-Proteine in Drosophila potentielle Interaktionspartner der SRPK79D dar. Die durch RNAi-vermittelte Reduktion von sieben SR-Proteinen führte zu keiner Agglomeration von Bruchpilot. Jedoch führte die RNAi-vermittelte Reduktion des SR-Proteins Spleißfaktor 2 (SF2) zu kleineren Bruchpilot-Agglomeraten in den axonalen Nerven. SF2 ist selbst kein Bestandteil der Agglomerate der Srpk79D-Nullmutante. Die Überexpression von SF2 führt wahrscheinlich zu einem axonalen Transportdefekt, wie die Färbung gegen das Cysteine string protein zeigte. Weiterhin führt die Überexpression zu einer Akkumulation von SF2 in larvalen Axonen und im adulten Gehirn der Fliegen. SF2 ist nicht nur in Zellkernen sämtlicher Zellen nachweisbar, sondern es konnte auch ein spezifisches Signal im subsynaptischen Retikulum der Postsynapse detektiert werden, wie die Färbungen gegen Disc large bestätigten.
Memory is dynamic: shortly after acquisition it is susceptible to amnesic treatments, gets gradually consolidated, and becomes resistant to retrograde amnesia (McGaugh, 2000). Associative olfactory memory of the fruit fly Drosophila melanogaster also shows these features. After a single associative training where an odor is paired with electric shock (Quinn et al., 1974; Tully and Quinn, 1985), flies form an aversive odor memory that lasts for several hours, consisting of qualitatively different components. These components can be dissociated by mutations, their underlying neuronal circuitry and susceptibility to amnesic treatments (Dubnau and Tully, 1998; Isabel et al., 2004; Keene and Waddell, 2007; Masek and Heisenberg, 2008; Xia and Tully, 2007). A component that is susceptible to an amnesic treatment, i.e. anesthesia-sensitive memory (ASM), dominates early memory, but decays rapidly (Margulies et al., 2005; Quinn and Dudai, 1976). A consolidated anesthesia-resistant memory component (ARM) is built gradually within the following hours and lasts significantly longer (Margulies et al., 2005; Quinn and Dudai, 1976). I showed here that the establishment of ARM requires less intensity of shock reinforcement than ASM. ARM and ASM rely on different molecular and/or neuronal processes: ARM is selectively impaired in the radish mutant, whereas for example the amnesiac and rutabaga genes are specifically required for ASM (Dudai et al., 1988; Folkers et al., 1993; Isabel et al., 2004; Quinn and Dudai, 1976; Schwaerzel et al., 2007; Tully et al., 1994). The latter comprise the cAMP signaling pathway in the fly, with the PKA being its supposed major target (Levin et al., 1992). Here I showed that a synapsin null-mutant encoding the evolutionary conserved phosphoprotein Synapsin is selectively impaired in the labile ASM. Further experiments suggested Synapsin as a potential downstream effector of the cAMP/PKA cascade. Similar to my results, Synapsin plays a role for different learning tasks in vertebrates (Gitler et al., 2004; Silva et al., 1996). Also in Aplysia, PKA-dependent phosphorylation of Synapsin has been proposed to be involved in regulation of neurotransmitter release and short-term plasticity (Angers et al., 2002; Fiumara et al., 2004). Synapsin is associated with a reserve pool of vesicles at the presynapse and is required to maintain vesicle release specifically under sustained high frequency nerve stimulation (Akbergenova and Bykhovskaia, 2007; Li et al., 1995; Pieribone et al., 1995; Sun et al., 2006). In contrast, the requirement of Bruchpilot, which is homologous to the mammalian active zone proteins ELKS/CAST (Wagh et al., 2006), is most pronounced in immediate vesicle release (Kittel et al., 2006). Under repeated stimulation of a bruchpilot mutant motor neuron, immediate vesicle release is severely impaired whereas the following steady-state release is still possible (Kittel et al., 2006). In line with that, knockdown of the Bruchpilot protein causes impairment in clustering of Ca2+ channels to the active zones and a lack of electron-dense projections at presynaptic terminals (T-bars). Thus, less synaptic vesicles of the readily-releasable pool are accumulated to the release sites and their release probability is severely impaired (Kittel et al., 2006; Wagh et al., 2006). First, I showed that Bruchpilot is required for aversive olfactory memory and localized the requirement of Bruchpilot to the Kenyon cells of the mushroom body, the second-order olfactory interneurons in Drosophila. Furthermore, I demonstrated that Bruchpilot selectively functions for the consolidated anesthesia-resistant memory. Since Synapsin is specifically required for the labile anesthesia sensitive memory, different synaptic proteins can dissociate consolidated and labile components of olfactory memory and two different modes of neurotransmission (high- vs. low frequency dependent) might differentiate ASM and ARM.
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.
In dieser Doktorarbeit habe ich die Regulation der Expression des zuckerbelohnten Verhaltens durch den Fütterungszustand bei Drosophila melanogaster untersucht. Die Fliegen können während einer Trainingsphase mit Hilfe einer Zuckerbelohnung auf einen bestimmten Duft konditioniert werden. Nach dem Training können die Fliegen dann auf das olfaktorische Gedächtnis getestet werden. Die Bereitschaft das zuckerkonditionierte Gedächtnis im Test zu zeigen wird vom Fütterungszustand kontrolliert, wie ich in Übereinstimmung mit den Ergebnissen früherer Arbeiten demonstrierte (Tempel et al. 1983; Gruber 2006; Krashes et al. 2008). Nur nicht gefütterte Fliegen exprimieren das Gedächtnis, während Fütterungen bis kurz vor dem Test eine reversibel supprimierende Wirkung haben. Einen ähnlichen regulatorischen Einfluss übt der Futterentzug auch auf die Expression anderer futterbezogener Verhaltensweisen, wie z.B. die naive Zuckerpräferenz, aus. Nachdem ich den drastischen Einfluss des Fütterungszustands auf die Ausprägung des zuckerkonditionierten Verhaltens gezeigt bzw. bestätigt hatte, habe ich nach verhaltensregulierenden Faktoren gesucht, die bei einer Fütterung die Gedächtnisexpression unterdrücken. Als mögliche Kandidaten untersuchte ich Parameter, die zum Teil bereits bei verschiedenen futterbezogenen Verhaltensweisen unterschiedlicher Tierarten als „Sättigungssignale“ identifiziert worden waren (Marty et al. 2007; Powley and Phillips 2004; Havel 2001; Bernays and Chapman 1974; Simpson and Bernays 1983; Gelperin 1971a). Dabei stellte sich heraus, dass weder die „ernährende“ Eigenschaft des Futters, noch ein durch Futteraufnahme bedingter Anstieg der internen Glukosekonzentration für die Suppression des zuckerkonditionierten Gedächtnisses notwendig sind. Die Unterdrückung der Gedächtnisexpression kann auch nicht durch Unterschiede in den aufgenommenen Futtermengen, die als verhaltensinhibitorische Dehnungssignale des Verdauungstrakts wirken könnten, oder mit der Stärke des süßen Geschmacks erklärt werden. Die Suppression des zuckerbelohnten Verhaltens folgte den Konzentrationen der gefütterten Substanzen und war unabhängig von deren chemischen Spezifität. Deshalb wird die Osmolarität des aufgenommenen Futters als ein entscheidender Faktor für die Unterdrückung der zuckerkonditionierten Gedächtnisexpression angenommen. Weil nur inkorporierte Substanzen einen Unterdrückungseffekt hatten, wird ein osmolaritätsdetektierender Mechanismus im Körper 67 postuliert, wahrscheinlich im Verdauungstrakt und/oder der Hämolymphe. Die Hämolymphosmolarität ist als „Sättigungssignal“ bei einigen wirbellosen Tieren bereits nachgewiesen worden (Bernays and Chapman 1974; Simpson and Raubenheimer 1993; Gelperin 1971a; Phifer and Prior 1985). Deshalb habe ich mit Hilfe genetischer Methoden und ohne die Fliegen zu füttern, versucht über einen künstlich induzierten Anstieg der Trehaloseund Lipidkonzentrationen die Osmolarität der Hämolymphe in Drosophila zu erhöhen. Eine solche konzentrationserhöhende Wirkung für Lipide und die Trehalose, dem Hauptblutzucker der Insekten, ist bereits für das adipokinetische Hormon (AKH), das von Zellen der Corpora cardiaca exprimiert wird, nachgewiesen worden (Kim and Rulifson 2004; Lee and Park 2004; Isabel et al. 2005). Es stellte sich heraus, dass die künstliche Stimulierung AKH-produzierender Neurone das zuckerkonditionierten Verhalten temporär, reversible und selektiv unterdrückt. Gleiche Behandlungen hatten keinen Effekt auf ein aversiv konditioniertes olfaktorisches Gedächtnis oder ein naives Zuckerpräferenzverhalten. Wie aus dieser Arbeit hervorgeht, stellt wahrscheinlich die Osmolarität des Verdauungstrakts und der Hämolymphe oder nur der Hämolymphe ein physiologisches Korrelat zum Fütterungszustand dar und wirkt als unterdrückendes Signal. Dass Fütterungen das zuckerkonditionierte Verhalten und die Zuckerpräferenz supprimieren, die künstliche Stimulation AKH-produzierender Zellen aber selektiv nur die zuckerbelohnte Gedächtnisexpression unterdrückt, deutet auf mindestens zwei unterschiedliche „Sättigungssignalwege“ hin. Außerdem macht es deutlich wie uneinheitlich futterbezogene Verhaltensweisen, wie das zuckerbelohnte Verhalten und die naive Zuckerpräferenz, reguliert werden.
Gegenstand dieser Arbeit ist das Drosophila melanogaster Protein DPAK3, ein Vertreter der hochkonservierten Familie der p21-aktivierten Kinasen (PAK). DPAK3 und seine Homologen aus anderen Insektenarten und C. elegans können aufgrund eines Vergleichs der Proteinsequenz und struktureller Merkmale in eine eigenen Untergruppe 1* innerhalb der Gruppe 1 der PAK-Proteine eingeordnet werden. Das Genom von Drosophila kodiert noch für zwei weitere PAK-Proteine, das zur Gruppe 1 gehörende DPAK1 und das Gruppe 2 PAK-Protein Mbt. Wie die klassischen Gruppe 1 PAK-Proteine bildet DPAK3 im inaktiven Zustand Dimere. DPAK3 interagiert mit den GTP-gebundenen Formen der RhoGTPasen Rac1, Rac2 und Cdc42. Durch die Bindung dieser Proteine geht DPAK3 aus dem dimeren in den monomeren Zustand über und seine Kinaseaktivität wird durch diese Bindung gesteigert. DPAK3 ist für die Ausbildung der korrekten Morphologie kultivierter Drosophila Zellen erforderlich und beeinflußt die Regulation des Aktinzytoskeletts. Weiterhin konnte CK2beta, die regulatorische Untereinheit der Casein Kinase 2, als neuer Regulator von p21-aktivierten Kinasen identifiziert werden. Das Genom von Drosophila besitzt drei Transkriptionseinheiten, die für CK2beta', CK2betatestes und fünf verschiedene Isoformen von CK2beta kodieren. Eine vergleichende Analyse zeigt, daß alle CK2beta-Proteine mit DPAK1, DPAK3 und in geringerem Maß auch mit Mbt interagieren und in der Lage sind, die Aktivität der PAK-Proteine in vitro zu hemmen. Die Bindung von CK2beta an DPAK3 wird, wie bei allen anderen Serin- / Threoninkinasen, die bisher als Interaktionspartner von CK2beta identifiziert wurden, über die Kinasedomäne von DPAK3 vermittelt. Die Bildung des aus zwei katalytischen CK2a und zwei CK2beta Untereinheiten bestehenden CK2-Holoenzyms hängt von der Fähigkeit von CK2beta ab, Dimere zu bilden. Es konnte gezeigt werden, daß die Bildung eines b-b Dimers für die Interaktion mit und Regulation von DPAK3 nicht erforderlich ist. In vivo wurden die bisher bekannten Dpak3 Allele untersucht, wobei kein gesichertes Nullallel identifiziert werden konnte. Durch enzymatisch katalysierte Rekombination wurde eine neue Deletion hergestellt, die das komplette Leseraster von Dpak3 entfernt. Mit Hilfe von genetischen Mosaiken wurde die Rolle von DPAK3 in der Augenentwicklung untersucht. Durch den Verlust der Genfunktion von Dpak3 wird die Ausbildung der korrekten Struktur der Komplexaugen nur leicht beeinträchtigt. Bei der Analyse einer Dpak1 Mutante wurde dasselbe Ergebnis erzielt. Gleichzeitiger Verlust der Genfunktion von Dpak1 und Dpak3 hingegen führt zu massiven strukturellen Defekten. DPAK1 und DPAK3 erfüllen somit zumindest teilweise redundante Funktionen in der Augenentwicklung. Es wird Gegenstand zukünftiger Studien sein müssen, die gemeinsamen und getrennten Funktionen dieser PAK-Proteine in Drosophila aufzuklären.
In einer vorangegangenen Arbeit konnte eine hypomorphe Mutation innerhalb des Genlokus einer putativen Serin-/Threonin-Kinase als Auslöser der Aggregatbildung des Aktive-Zone- Proteins Bruchpilot in larvalen Motoneuronaxonen identifiziert werden (Nieratschker, 2004). Aufgrund der Homologien dieser Kinase zu SR-Proteinkinasen wurde der Name Serin- /Threonin-Proteinkinase 3 (SRPK3) vorgeschlagen. Laut ursprünglicher Annotation der „Flybase“ (http://flybase.bio.indiana.edu) codiert der Genlokus der Srpk3, der auf dem linken Arm des dritten Chromosoms innerhalb der Region 79D4 lokalisiert ist und sich über ca. 10,3 kb erstreckt, für zwei Transkripte (Srpk3-RC und Srpk3-RB). Diese beiden Transkripte haben unterschiedliche Transkriptions- und Translationsstartpunkte und unterscheiden sich in ihrem ersten kodierenden Exon, ab dem vierten Exon sind sie allerdings identisch. Das Srpk3-RCTranskript umfasst ca. 4,2 kb, das Srpk3-RB-Transkript ca. 3,8 kb. Die von diesen Transkripten kodierten Proteine bestehen aus 816 (Srpk3-RC) bzw. 749 (Srpk3-RB) Aminosäuren. Diese beiden ursprünglich annotierten Transkripte konnten durch RT-PCR-Experimente bestätigt werden. Dabei wurde auch ein zusätzliches, alternativ gespleißtes Exon von 159 bp entdeckt, das beiden Transkripten zugeordnet werden kann. Somit codiert der Srpk3-Genlokus für mindestens vier Transkripte, die Transkripte der RC/RF-Transkriptgruppe mit (Srpk3-RF) und ohne (Srpk3-RC) das alternativ gespleißte Exon und die Transkripte der RB/RETranskriptgruppe mit (Srpk3-RE) und ohne (Srpk3-RB) das alternativ gespleißte Exon. Die Existenz eines weiteren Transkriptes Srpk3-RD, die in der aktuellen Version der „Flybase“ annotiert ist, konnte durch RT-PCR-Experimente nicht nachgewiesen werden. Zu Beginn dieser Arbeit lag eine hypomorphe Mutante für die SRPK3 schon vor (Srpk3P1; Eberle, 1995). Diese Linie trägt eine P-Elementinsertion innerhalb des ersten Exons der RC/RF-Transkriptgruppe, die das Leseraster dieser Transkriptgruppe zerstört, so dass in dieser Linie nur die RB/RE-Transkriptgruppe gebildet werden kann. Wie bereits erwähnt, konnte diese Mutation in vorangegangenen Arbeiten bereits als der Auslöser der Aggregatbildung des Bruchpilot-Proteins in larvalen Motoneuronaxone, sowie einiger Verhaltensdefekte identifiziert werden (Nieratschker, 2004; Bock 2006). Diese Verhaltensdefekte ähneln stark denen, die durch einen knock-down der Bruchpilot-Expression mittels RNAi ausgelöst werden (Wagh et al., 2006; Bock, 2006), was auf eine Interaktion beider Proteine schließen lässt. Um nun den Beweis führen zu können, dass tatsächlich diese Mutation die beobachteten Phänotypen verursacht, wurden Rettungsversuche durchgeführt. Die Srpk3-RF-cDNA war dabei in der Lage die durch die hypomorphe Mutation der SRPK3 verursachten Phänotypen vollständig, oder zumindest teilweise zu retten (vgl. auch Bock, 2006; Bloch, 2007). Damit konnte belegt werden, dass die hypomorphe Mutation der SRPK3 tatsächlich die in der Mutante Srpk3P1 beobachteten Phänotypen verursacht. Um die durch in situ Hybridisierung erhaltenen Daten zur Lokalisation der SRPK3 im larvalen Gehirn (Nieratschker, 2004) bestätigen, sowie weitere Daten erhalten zu können, wurden Isoform-spezifische Antisera gegen die SRPK3 generiert. Diese Antiseren sind in der Lage überexprimiertes Protein zu detektieren (Bloch, 2007), allerdings ist es mit diesen Antiseren nicht möglich die SRPK3 in wildtypischen Präparaten nachzuweisen. Weitere Daten zur Lokalisation der SRPK3, die durch die Verwendung eines SRPK3-eGFPFusionsproteins erhalten wurden, zeigten, dass eine der ektopisch überexprimierten SRPK3- Isoformen mit Bruchpilot an der Aktiven Zone kolokalisiert. Dieses Ergebnis, in Verbindung mit den durch die Mutation der SRPK3 verursachten Bruchpilot-Aggregaten in larvalen Motoneuronaxonen und den Verhaltensdefekten, gibt Hinweise auf eine mögliche direkte Interaktion beider Proteine….
Es sollten neuronale Netzwerke in Drosophila melanogaster identifiziert werden, die in die Entwicklung von ethanolinduziertem Verhalten involviert sind. Mittels der Tyramin-beta-Hydroxylase (TbH) wird der letzte Schritt der Biosynthese von Oktopamin aus Tyramin gewährleistet. TbHM18 Mutanten entwickeln eine reduzierte Ethanoltoleranz und haben keine nachweisbaren Oktopamin Konzentrationen (MONASTIRIOTI et al. 1996; SCHOLZ et al. 2000). Die molekulargenetische Ursache dieser Mutante wurde näher untersucht. Wahrscheinlich ist die Deletion von einem Teil des Intron 1, des Exon 2 und einem Teil des Intron 2 des TbH-Gens verantwortlich für den Verlust der Tyramin-beta-Hydroxylase. Die Deletion der kodierenden Sequenz führt jedoch nicht zu einem Leserasterschub in der Aminosäuresequenz. Demzufolge könnte ein verkürztes Protein hergestellt werden. Ferner gibt es zwei Transkripte des TbH-Gens, woraus eventuell zwei Proteine exprimiert werden könnten. Ein Protein wäre die Tyramin-beta-Hydroxylase und das andere könnte eine Dopamin-beta-Hydroxylase sein. Um möglicherweise spezifische putative Subsets von TH-positiven Neuronen zu markieren, wurden verschiedene GAL4-Treiberlinien mit Hilfe unterschiedlicher Fragmente der Promoterregion des TbH-Gens hergestellt. Mittels des GAL4/UAS Systems konnte die Neurotransmitterausschüttung in putativen TbH-positiven Neuronen der TbH-GAL4-Linien inhibiert werden. Auf diese Weise sollte die Funktion der putativen TbH-positiven Neurone während der Entwicklung von Ethanolsensitivität und Toleranz untersucht werden. Das Transgen Tetanustoxin wurde mit der 1.3TbH-GAL4 Treiberlinie in einem bestimmten Set von Neuronen exprimiert. Die Inhibition der Synaptobrevin-abhängigen Neurotransmission in den 1.3TH-GAL4-positiven Neuronen beeinflusst nicht das ethanolinduzierte Verhalten. Hingegen das Ausschalten der Erregbarkeit der Zellen mit Hilfe eines UAS-Kir2.1 Transgens resultiert in erhöhter Resistenz gegenüber Ethanol. Das heißt, dass Synaptobrevin-unabhängige zelluläre Mechanismen der Zellen notwendig sind, um ethanolinduziertes Verhalten zu regulieren. Die 1.3TbH-GAL4-Linie exprimiert in einem sehr spezifischen Subset von Neuronen GAL4, bzw. Effektoren. Insgesamt werden ≈ 10 Zellen detektiert. Davon liegen die Somata zweier Neurone caudal und projizieren in die Region der ersten und vierten Bande des Fächerförmigen Körpers. Weitere kleine Ansammlungen von acht Zellen können um den Ösophagus und im Bereich des Subösophagialganglion verzeichnet werden. Die mit GFP markierten Neurone exprimieren wahrscheinlich kein Oktopamin. Ferner resultierte die Inhibition der synaptischen Transmission von 6.2TbH-GAL4-positiven Neuronen, mit Hilfe von Tetanustoxin, in einer erhöhten Ethanolsensitivität. Ebenfalls zu einer ethanolinduzierten Verhaltensänderung führt die Inaktivierung der 6.2TbH-GAL4 Zellen mittels eines UAS-Kir2.1 Transgens. Dabei entwickeln die Fliegen eine erhöhte Ethanolresistenz. Somit wäre möglich, dass die Entwicklung von Ethanolsensitivität und Resistenz über verschiedene zelluläre Mechanismen reguliert werden. Die 6.2TbH-GAL4-Linie ermöglicht die Transgen-Expression in 65-70 Neuronen. Diese innerverieren u.a. das Subösophagialganglion, den Ösophagus, den Ellipsoid Körper, das laterale und das dorso-laterale Protocerebrum. Fünf der Neurone, die sich durch die 6.2TbH-GAL4 Treiberlinie markieren lassen, exprimieren Oktopamin. Dazu gehört ein VUM-Neuron und vier große caudale Zellen. Eine weitere putativ oktopaminerge GAL4-Linie Tdc2-GAL4 wurde mit der UAS-Kir2.1 Effektorlinie gekreuzt und die Nachkommen im Inebriometer gemessen. Bei Inaktivierung der Erregbarkeit der Tdc2-positiven Neurone resultiert dies in einer erhöhten Ethanolsensitivität, hingegen in keiner Veränderung der Toleranz. Die reduzierten Levels an Oktopamin spielen dabei wahrscheinlich eine Rolle. Hingegen regulieren eventuelle neurosekretorische Zellen über andere Mechanismen die Ethanolresistenz, wie die 6.2TbH-GAL4, UAS-Kir2.1 Fliegen zeigen. Es konnte gezeigt werden, dass unterschiedliche Neuronencluster für verschiedene ethanolinduzierte Verhaltensantworten verantwortlich sind. Da wahrscheinlich neurosekretorische Zellen des PI die Ethanolresistenz beeinflussen (RODAN et al. 2002), hingegen den Zentralkomplex-innervierende Zellen eher für die Entwicklung von Ethanolsensitivität und Toleranz notwendig sind (URIZAR et al. 2007).
Since the fruit fly Drosophila melanogaster entered the laboratories as a model organism, new genetic, physiological, molecular and behavioral techniques for the functional analysis of the brain rapidly accumulated. Nowadays this concerted assault obtains its main thrust form Gal4 expression patterns that can be visualized and provide the means for manipulating -in unrestrained animals- groups of neurons of the brain. To take advantage of these patterns one needs to know their anatomy. This thesis describes the Virtual Insect Brain (VIB) protocol, a software package for the quantitative assessment, comparison, and presentation of neuroanatomical data. It is based on the 3D-reconstruction and visualization software Amira (Mercury Inc.). Its main part is a standardization procedure which aligns individual 3D images (series of virtual sections obtained by confocal microscopy) to a common coordinate system and computes average intensities for each voxel (volume pixel). The VIB protocol facilitates direct comparison of gene expression patterns and describes their interindividual variability. It provides volumetry of brain regions and helps to characterize the phenotypes of brain structure mutants. Using the VIB protocol does not require any programming skills since all operations are carried out at a (near to) self-explanatory graphical user interface. Although the VIB protocol has been developed for the standardization of Drosophila neuroanatomy, the program structure can be used for the standardization of other 3D structures as well. Standardizing brains and gene expression patterns is a new approach to biological shape and its variability. Using the VIB protocol consequently may help to integrate knowledge on the correlation of form and function of the insect brain. The VIB protocol provides a first set of tools supporting this endeavor in Drosophila. The software is freely available at http://www.neurofly.de.
Die Technik des optischen Imaging unter Verwendung DNA-codierter Sensoren ermöglicht es, Messungen neuraler Aktivitäten in genetisch definierten Populationen von Neuronen durchzuführen. In der Vielzahl der verschiedenen entwickelten Sensoren konnten die Calciumsensoren bisher das beste Verhältnis zwischen Signal und Rauschen und die beste zeitliche Auflösung aufzeigen. Hierbei handelt es sich in erster Linie um zwei Typen von Sensoren, zum einen ratiometrische Sensoren, deren Signal auf einem Fluoreszenz Resonanz Energie Transfer (FRET) basiert, und zum anderen um zirkulär permutierte Sensoren, die auf einem modifizierten GFP-Molekül basieren, wobei das Signal auf einer veränderten Protonierung des Chromophors beruht. Beide Arten dieser Sensoren wurden schon erfolgreich zum Messen neuraler Aktivitäten in Nervensystemen verschiedener Tierarten verwendet. Ein Teil dieser Arbeit bestand darin, zu untersuchen, welche Sensoren sich für die Messung an einem lebenden Organismus am besten eignen. Hierfür wurden die Eigenschaften von vier verschiedenen FRET basierten Sensoren und zwei der zyklisch permutierten Sensoren nach Expression im zentralen Nervensystem von Drosophila charakterisiert. Die Sensoren wurden in Neuronen zweiter und dritter Ordnung des olfaktorischen Signalwegs exprimiert und ihre Antworten auf physiologische Duftstimulation oder artifiziell induzierte Depolarisation des Gehirns untersucht. Während die calciumabhängigen Signale der zyklisch permutierten Sensoren in der Regel größer waren als die der FRET basierten Sensoren, zeichneten sich letztere durch ein besseres Signal zu Rausch-Verhältnis aus, wenn Bewegungen der fluoreszierenden Strukturen nicht zu vermeiden waren. Dies war auch der ausschlaggebende Grund für die Verwendung eines FRET basierten Sensors im anschließenden Teil der Arbeit. Im zweiten Teil der Arbeit wurde der Effekt untersucht, den die Paarung eines neutralen Stimulus mit einem bestrafenden Stimulus auf dopaminerge Neurone hat. Eine solche Paarung kann zu einer klassischen Konditionierung führen, einer einfachen Form des Lernens, in welcher das Tier einem ursprünglich neutralen Stimulus einen Wert zuordnet, und dadurch sein Verhalten dem Stimulus gegenüber ändert. Die olfaktorische klassische Konditionierung in Drosophila wird seit vielen Jahren intensiv untersucht, um die molekularen und neuronalen Grundlagen von Lernen und Gedächtnis zu charakterisieren. Dabei hat sich gezeigt, dass besonders die Pilzkörper von essentieller Bedeutung für die Ausbildung eines olfaktorischen Gedächtnisses sind. Während das olfactorische System bei Insekten bereits detailiert analysiert wurde, ist über die Neurone, die den bestrafenden Stimulus vermitteln, nur sehr wenig bekannt. Unter Anwendung des funktionellen optischen Calcium Imaging konnte im Rahmen der Arbeit gezeigt werden, dass die Projektionen von dopaminergen Neuronen im Bereich der Loben der Pilzkörper schwach auf die Präsentation eines Duftes, jedoch sehr stark auf eine Stimulation durch einen Elektroschock antworten. Nach mehrmaliger Paarung eines Duftes mit einem Elektroschock während eines Trainings, verlängert sich die Aktivität dieser dopaminergen Neurone auf den bestraften Duft hin im Test ohne Elektroschock drastisch, während die Antwort auf den Kontrollduft keine signifikanten Veränderungen aufweist. Während bei Säugetieren belohnende Reize bei appetitiven Lernvorgängen über dopaminerge Neurone vermittelt werden, spielen bei Drosophila diese Neurone offensichtlich eine Rolle bei der aversiven Konditionierung. Jedoch blieb, auch wenn sich die Rolle des Dopamins im Laufe der Evolution geändert zu haben scheint, die Fähigkeit dieses Neuronentyps, nicht nur auf einen eintreffenden verstärkenden Stimulus zu reagieren, sondern diesen auch vorhersagen zu können, zwischen Säugern und Drosophila erhalten.
Inhaltsübersicht zum Schwerpunktthema: - Neurobiologie, Ökologie und Evolution des Verhaltens - "Unsere Forschungen werden international sehr stark beachtet" - Kleine Gehirne - großer Fortschritt - Fruchtfliegen verhelfen Laufrobotern zu sicherem Tritt - Mehr als eine Nummer aus dem Flohzirkus - DNA-Fingerabdruck weist Sklaverei bei Ameisen nach u. a.
Die Exozytose von Neurotransmittern und Peptiden während der Verarbeitung und Weiterleitung von Reizen im Nervensystem wird durch eine komplexe Maschinerie von Proteinen reguliert. Das konservierte Cysteine String Protein (CSP), das gebunden an synaptische und andere sekretorische Vesikel vorliegt, konnte in den vergangenen Jahren als Teil in diesen Prozess eingeordnet werden. Die Frage nach der genauen Funktion von CSP während der Exozytose ist allerdings weiterhin offen. CSP-Nullmutanten in Drosophila melanogaster zeigen temperatursensitive Paralyse und eine extrem verkürzte Lebenserwartung, gepaart mit verminderter Fertilität. In larvalen Nerv-Muskel Präparaten kommt es bei Temperaturen über 29°C zu einem reversiblen Block der elektrophysiologisch messbaren synaptischen Transmission. Die Primärstruktur des Cysteine String Proteins kann in folgende konservierte Sequenzabschnitte unterteilt werden: eine N-terminale Protein Kinase A Phosphorylierungsstelle, eine Region mit Homologie zu einer charakteristischen Domäne von DnaJ-Proteinen (DnaJ-Domäne), einen als Linkerregion bezeichneten Abschnitt, eine cysteinreiche Sequenz, die bei Drosophila aus dem namensgebenden Strang von 11 aufeinanderfolgenden Cysteinen flankiert von 2 Cysteinpaaren besteht, und einen schwächer konservierten C-Terminus, in dem sich auch einzelne Spleißvarianten unterscheiden. Versuche mit Vertebraten konnten zeigen, dass CSP in einem trimeren Komplex aus Hsc70/CSP/SGT vorkommt und bei der Exozytose wahrscheinlich als molekulares Co-Chaperon wirkt. Der Cysteinstrang liegt mehrfach palmityliert vor und ist für die Zielfindung des Proteins zur Vesikelmembran essentiell. In vorangegangenen Arbeiten wurde begonnen, bei Drosophila durch gezielte Mutagenese und Keimbahntransformation die Rolle des Cysteinstrangs, der Linkerregion und des C-Terminus für die Funktion des CSP zu analysieren. In der vorliegenden Dissertation wurden in transgenen Fliegen die Eigenschaften von Isoformen mit vier unterschiedlich mutierten Varianten des Cysteinstrangs (CSLP, SCSP, CLP, SSP) und je Deletionen in der Linkerregion (LΔ8) und im C-terminalen Bereich (CΔ27) charakterisiert. Die subzelluläre Verteilung und veränderte Membranbindungseigenschaften dieser Proteine wurden mithilfe von Membranfraktionierung und Glycerindichtegradienten von Homogenaten der transgenen Mutanten aufgezeigt. Die Isoformen CLP und SSP sind aufgrund der fehlenden Palmitylierung nicht an die Membran der synaptischen Vesikel gebunden, während die Isoform CSLP sowohl in der Vesikelmembranfraktion als auch als lösliches Protein nachgewiesen werden kann. Die flankierenden Cysteinpaare und die verbliebenen Cysteine in den Isoformen CSLP und SCSP erfüllen offenbar noch teilweise die Aufgabe des Cysteinstrangs bei der Zielfindung der Proteine. Eine Depalmitylierung mit Hydroxylamin löst das verkürzte SCSP Protein ebensowenig aus der Membran wie das intakte CSP. Die Ergebnisse dieser Untersuchungen stehen im Einklang mit immunhistochemischen Befunden. Die Deletion bzw. Substitution der zentralen 11 Cysteine in den Isoformen CSLP, CLP und SSP äußert sich in den transgenen Fliegen in einer gleichmäßigeren Verteilung der Proteine, die nicht mehr wie im Wildtyp auf das synaptische Neuropil beschränkt ist. Keine der Isoformen mit verändertem Cysteinstrang ist in der Lage die Funktion des wildtypischen CSP zu übernehmen, da die adulten transgenen Fliegen den temperatursensitiven Phänotyp und eine kurze Lebensdauer ähnlich den Csp-Nullmutanten zeigen. Die Proteinisoformen LΔ8 und CΔ27 dagegen lassen in den biochemischen Analysen keine Abweichung vom Wildtyp erkennen und weisen auch eine wildtypische Verteilung in Kryostat-Gehirnschnitten auf. Die Deletion in der Linkerregion in der Isoform LΔ8 scheint die Funktion des CSPs allerdings einzuschränken, da die entsprechenden transgenen Fliegen bereits bei 38°C, wildtypische Tiere dagegen erst bei 40°C paralysieren. Die in der Literatur beschriebene Interaktion zwischen Drosophila CSP und Syntaxin konnte für die transgen exprimierte größte CSP Isoform CSP1 in Immunpräzipitationsexperimenten mit Drosophila-Kopfhomogenat bestätigt werden. Die Frage nach einer Interaktion zwischen Syntaxin und den anderen untersuchten mutierten CSP-Isoformen bleibt dagegen offen. Der zweite Teil dieser Arbeit befasst sich mit dem Versuch, mithilfe des UAS/Gal4- und des Flippase/FRT -Systems die CSP-Expression räumlich und zeitlich zu kontrollieren. Dazu wurde aufgrund von Datenbankangaben eine minimale FRT-Sequenz aus Oligonukleotiden mit entsprechenden Linkern konstruiert. Das gesamte Csp-Gen beziehungsweise die Csp cDNA1 einschließlich der regulatorischen Sequenzen wurde zwischen zwei gleichgerichteten FRT-Sequenzen pW8 eingebracht. Die Keimbahntransformation führte zu mehreren transgenen Fliegenlinien. Nach aufwendigen Kreuzungen mit Gal4-, UAS-Flippase- und Csp-Null-Linien entstanden Fliegen im CSP-Nullhintergrund, welche eine durch die verwendete Gal4-Linie definierte Expression von Flippase zeigten und das FRT-Konstrukt trugen. Diese Fliegen sollten in Flippase positiven Bereichen keine CSP-Expression mehr zeigen. Verhaltensanalysen an solchen Tieren bei normaler und erhöhter Temperatur könnten dann Aufschluss über die Funktion der Zellen ohne CSP-Expression geben. Leider konnten die erwarteten Veränderungen in der CSP-Expression nicht beobachtet werden, obwohl alle Konstrukte sich nach einer Überprüfung als intakt erwiesen haben. Die Ursache für die fehlende Rekombination zwischen den FRT-Sequenzen ist möglicherweise in einer zu geringen Länge dieser Zielsequenz der Flippase zu suchen. Im dritten Abschnitt der Arbeit wird der Csp-Genlokus und seine benachbarten Gene vorgestellt, und die möglichen Auswirkungen der Deletionen in den zur Verfügung stehenden Mutanten CspU1, CspU1w und CspK16 diskutiert. Aufgrund der Daten aus dem Drosophila Genomprojekt lag die Spekulation nahe, dass der Phänotyp der Deletionsmutanten auch durch eine veränderte Expression der benachbarten Gene stromab- und stromaufwärts des Csp Gens beeinflusst werden könnte. Die Auswertung eines Northern Blots von PolyA+-RNA adulter Fliegen, sowie einfache Verhaltenstests an vorliegenden und neu generierten CSP-Nullmutanten konnten diesen Verdacht allerdings nicht bestätigen.
In operanten Konditionierungsexperimenten im Flugsimulator werden vier Parameter gefunden die Drosophila melanogaster aus visuellen Mustern extrahieren kann: Musterfläche, vertikale Position des Musterschwerpunkts, Verteiltheit und Musterausrichtung in horizontaler und vertikaler Richtung. Es ist nicht auszuschliessen, dass die Fliege weitere Musterparameter extrahieren kann. Spontane Musterpräferenzen und konditionierte Präferenzen zeigen unterschiedliche Zusammenhänge mit den Musterparametern. Aus räumlich getrennten Musterelementen zusammengesetzte Muster werden von der Fliege wie ein Gesamtmuster behandelt. Retinaler Transfer wird auch bei der Präsentation von Mustern an zwei verschiedenen vertikalen Trainingspositionen nicht beobachtet. Muster werden generalisiert, wenn die Schwerpunkte korrespondierender Muster zwischen Training und Test ungefähr an der gleichen Position liegen aber keine retinale Überlappung von Trainings- und Testmustern besteht. Retinotopie des Mustergedächtnisses liegt in diesem Fall nicht auf der Ebene der Bildpunkte, jedoch möglicherweise auf der Ebene des Parameters 'Musterschwerpunkt' vor. Fliegen können nicht trainiert werden bestimmte Musterpaare zu diskriminieren die sich nur durch die vertikale Position ihres Musterschwerpunktes unterscheiden. Dennoch bevorzugen sie beim Lerntest mit anderen Mustern mit korrespondierenden Schwerpunktspositionen die zuvor nicht bestrafte Schwerpunktsposition. Für die Modellierung der Extraktion von Musterschwerpunkt und Musterfläche wird ein einfaches künstliches neuronales Filter präsentiert, dessen Architektur auf einem Berechnungsalgorithmus für den gemeinsamen Schwerpunkt mehrerer Teilelemente beruht.