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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.
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.
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
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.
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).
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.
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.
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.
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.