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Ants belong to the most successful insects living on our planet earth. One criterion of their tremendous success is the division of labor among workers that can be related to age (age¬– or temporal polyethism) and/ or body size (size–related polymorphism). Young ants care for the queen and brood in the nest interior and switch to foraging tasks in the outside environment with ongoing age. This highly flexible interior–exterior transition probably allows the ant workers to properly match the colony needs and is one of the most impressive behaviors a single worker undergoes during its life. As environmental stimuli are changing with this transition, workers are required to perform a new behavioral repertoire. This requires significant adaptions in sensory and higher¬–order integration centers in the brain, like the mushroom bodies. Furthermore, foragers need proper time measuring mechanisms to cope with daily environmental changes and to adapt their own mode of life. Therefore, they possess a functional endogenous clock that generates rhythms with a period length of approximately 24 hours. The species–rich genus of Camponotus ants constitute a rewarding model to study how behavioral duties of division of labor were performed and modulated within the colony and how synaptic plasticity in the brain is processed, as they can divide their labor to both, age and body size, simultaneously.
In my PhD thesis, I started to investigate the behavioral repertoire (like foraging and locomotor activity) of two sympatric Camponotus species, C. mus and C. rufipes workers under natural and under controlled conditions. Furthermore, I focused on the division of labor in C. rufipes workers and started to examine structural and ultrastructural changes of neuronal architectures in the brain that are accompanied by the interior–exterior transition of C. rufipes ants.
In the first part of my thesis, I started to analyze the temporal organization of task allocation throughout the life of single C. rufipes workers. Constant video–tracking of individually labeled workers for up to 11 weeks, revealed an age–related division of labor of interior and exterior workers. After emergence, young individuals are tended to by older ones within the first 48 hours of their lives before they themselves start nurturing larvae and pupae. Around 52% switch to foraging duties at an age of 14–20 days. The workers that switched to foraging
tasks are mainly media–sized workers and seem to be more specialized than nurses. Variations in proportion and the age of switching workers between and within different subcolonies indicate how highly flexible and plastic the age–related division of labor occurs in this ant species. Most of the observed workers were engaged in foraging tasks exclusively during nighttime. As the experiments were conducted in the laboratory, they are completely lacking environmental stimuli of the ants´ natural habitat.
I therefore asked in a second study, how workers of the two closely related Camponotus species, C. rufipes and C. mus, adapt their daily activity patterns (foraging and locomotor activity) under natural (in Uruguay, South America) and controlled (in the laboratory) conditions to changing thermal conditions. Monitoring the foraging activity of both Camponotus species in a field experiment revealed, that C. mus workers are exclusively diurnal, whereas C. rufipes foragers are predominantly nocturnal. However, some nests showed an elevated daytime activity, which could be an adaption to seasonally cold night temperatures. To further investigate the impact of temperature and light on the differing foraging activity patterns in the field, workers of both Camponotus species were artificially exposed to different thermal regimes in the laboratory, simulating local winter and summer conditions. Here again, C. mus workers display solely diurnal locomotor activity, whereas workers of C. rufipes shifted their locomotor activity from diurnal under thermal winter conditions to nocturnal under thermal summer conditions. Hence, the combination of both, field work and laboratory studies, shows that daily activity is mostly shaped by thermal conditions and that temperature cycles are not just limiting foraging activity but can be used as zeitgeber to schedule the outside activities of the nests.
Once an individual worker switches from indoor duties to exterior foraging tasks, it is confronted with an entirely new set of sensory information. To cope with changes of the environmental conditions and to facilitate the behavioral switch, workers need a highly flexible and plastic neuronal system. Hence, my thesis further focuses on the underlying neuronal adaptations of the visual system, including the optic lobes as the primary visual neuropil and the mushroom bodies as secondary visual brain neuropil, that are accompanied with the behavioral switch from nursing to foraging. The optic lobes as well as the mushroom bodies of light–deprived workers show an `experience–independent´ volume increase during the first two weeks of adulthood. An additional light exposure for 4 days induces an `experience–dependent´ decrease of synaptic complexes in the mushroom body collar,
followed by an increase after extended light exposure for 14 days. I therefore conclude, that the plasticity of the central visual system represents important components for the optimal timing of the interior–exterior transitions and flexibility of the age–related division of labor. These remarkable structural changes of synaptic complexes suggest an active involvement of the mushroom body neuropil in the lifetime plasticity that promotes the interior–exterior transition of Camponotus rufipes ants. Beside these investigations of neuronal plasticity of synaptic complexes in the mushroom bodies on a structural level, I further started to examine mushroom body synaptic structures at the ultrastructural level. Until recently, the detection of synaptic components in projection neuron axonal boutons were below resolution using classical Transmission Electron Microscopy. Therefore, I started to implement Electron Tomography to increase the synaptic resolution to understand architectural changes in neuronal plasticity process. By acquiring double tilt series and consecutive computation of the acquired tilt information, I am now able to resolve individual clear–core and dense–core vesicles within the projection neuron cytoplasm of C. rufipes ants. I additionally was able to reveal single postsynaptic Kenyon cell dendritic spines (~62) that surround one individual projection neuron bouton. With this, I could reveal first insights into the complex neuronal architecture of single projection neuron boutons in the olfactory mushroom body lip region. The high resolution images of synaptic architectures at the ultrastructural level, received with Electron Tomography would promote the understanding of architectural changes in neuronal plasticity.
In my PhD thesis, I demonstrate that the temporal organization within Camponotus colonies involves the perfect timing of different tasks. Temperature seems to be the most scheduling abiotic factors of foraging and locomotor activity. The ants do not only need to adapt their behavioral repertoire in accordance to the interior–exterior switch, also the parts in the peripheral and central that process visual information need to adapt to the new sensory environment.
Mechanisms of visual memory formation in bees: About immediate early genes and synaptic plasticity
(2017)
Animals form perceptual associations through processes of learning, and retain that information through mechanisms of memory. Honeybees and bumblebees are classic models for insect perception and learning, and despite their small brains with about one million neurons, they are organized in highly social colonies and possess an astonishing rich behavioral repertoire including navigation, communication and cognition. Honeybees are able to harvest hundreds of morphologically divergent flower types in a quick and efficient manner to gain nutrition and, back in the hive, communicate discovered food sources to nest mates. To accomplish such complex tasks, bees must be equipped with diverse sensory organs receptive to stimuli of different modalities and must be able to associatively learn and memorize the acquired information. Particularly color vision plays a prominent role, e.g. in navigation along landmarks and when bees identify inflorescences by their color signals. Once acquired, bees are known to retain visual information for days or even months. Numerous studies on visual perception and color vision have been conducted in the past decades and largely revealed the information processing pathways in the brain. In contrast, there are no data available on how the brain may change in the course of color learning experience and whether pathways differ for coarse and fine color learning. Although long-term memory (LTM) storage is assumed to generally include reorganization of the neuronal network, to date it is unclear where in the bee brain such changes occur in the course of color learning and whether visual memories are stored in one particular site or decentrally distributed over different brain domains. The present dissertation research aimed to dissect the visual memory trace in bees that is beyond mere stimulus processing and therefore two different approaches were elaborated: first, the application of immediate early genes (IEG) as genetic markers for neuronal activation to localize early processes underlying the formation of a stable LTM. Second, the analysis of late consequences of memory formation, including synaptic reorganization in central brain areas and dependencies of color discrimination complexity.
Immediate early genes (IEG) are a group of rapidly and transiently expressed genes that are induced by various types of cellular stimulation. A great number of different IEGs are routinely used as markers for the localization of neuronal activation in vertebrate brains. The present dissertation research was dedicated to establish this approach for application in bees, with focus on the candidate genes Amjra and Amegr, which are orthologous to the two common vertebrate IEGs c-jun and egr-1. First the general requirement of gene transcription for visual LTM formation was proved. Bumblebees were trained in associative proboscis extension response (PER) conditioning to monochromatic light and subsequently injected with an inhibitor of gene transcription. Memory retention tests at different intervals revealed that gene transcription is not required for the formation of a mid-term memory, but for stable LTM. Next, the appliance of the candidate genes was validated. Honeybees were exposed to stimulation with either alarm pheromone or a light pulse, followed by qPCR analysis of gene expression. Both genes differed in their expression response to sensory exposure: Amjra was upregulated in all analyzed brain parts (antennal lobes, optic lobes and mushroom bodies, MB), independent from stimulus modality, suggesting the gene as a genetic marker for unspecific general arousal. In contrast, Amegr was not significantly affected by mere sensory exposure. Therefore, the relevance of associative learning on Amegr expression was assessed. Honeybees were trained in visual PER conditioning followed by a qPCR-based analysis of the expression of all three Amegr isoforms at different intervals after conditioning. No learning-dependent alteration of gene expression was observed. However, the presence of AmEgr protein in virtually all cerebral cell nuclei was validated by immunofluorescence staining. The most prominent immune-reactivity was detected in MB calyx neurons.
Analysis of task-dependent neuronal correlates underlying visual long-term memory was conducted in free-flying honeybees confronted with either absolute conditioning to one of two perceptually similar colors or differential conditioning with both colors. Subsequent presentation of the two colors in non-rewarded discrimination tests revealed that only bees trained with differential conditioning preferred the previously learned color. In contrast, bees of the absolute conditioning group chose randomly among color stimuli. To investigate whether the observed difference in memory acquisition is also reflected at the level of synaptic microcircuits, so called microglomeruli (MG), within the visual domains of the MB calyces, MG distribution was quantified by whole-mount immunostaining three days following conditioning. Although learning-dependent differences in neuroarchitecture were absent, a significant correlation between learning performance and MG density was observed.
Taken together, this dissertation research provides fundamental work on the potential use of IEGs as markers for neuronal activation and promotes future research approaches combining behaviorally relevant color learning tests in bees with examination of the neuroarchitecture to pave the way for unraveling the visual memory trace.
Desert ants of the genus Cataglyphis have become model systems for the study of insect navigation. An age-related polyethism subdivides their colonies into interior workers and short-lived light-exposed foragers. While foraging in featureless and cluttered terrain over distances up to several hundred meters, the ants are able to precisely return back to their often inconspicuous nest entrance. They accomplish this enormous navigational performance by using a path integration system - including a polarization compass and an odometer - as their main navigational means in addition to landmark-dependent orientation and olfactory cues. C. fortis, being the focus of the present thesis, is endemic to the salt flats of western North Africa, which are completely avoided by other Cataglyphis species. The fact that Cataglyphis ants undergo a behavioral transition associated with drastically changing sensory demands makes these ants particularly interesting for studying synaptic plasticity in visual and olfactory brain centers. This thesis focuses on plastic changes in the mushroom bodies (MBs) - sensory integration centers supposed to be involved in learning and memory presumably including landmark learning - and in synaptic complexes belonging to the lateral accessory lobe (LAL) known to be a relay station in the polarization processing pathway. To investigate structural synaptic plasticity in the MBs of C. fortis, synaptic complexes (microglomeruli, MG) in the visual (collar) and olfactory (lip) input regions of the MB calyx were immunolabeled and their pre- and postsynaptic profiles were quantified. The results show that a volume increase of the MB calyx during behavioral transition is associated with a decrease of MG number - an effect called pruning - in the collar and, less pronounced, in the lip that goes along with dendritic expansion in MB intrinsic Kenyon cells. Light-exposure of dark-reared ants of different age classes revealed similar effects and dark-reared ants age-matched to foragers had MG numbers comparable to those of interior workers. The results indicate that the enormous structural synaptic plasticity of the MB calyx collar is primarily driven by visual experience rather than by an internal program. Ants aged artificially for up to one year expressed a similar plasticity indicating that the system remains flexible over the entire life-span. To investigate whether light-induced synaptic reorganization is reversible, experienced foragers were transferred back to darkness with the result that their MBs exhibit only some reverse-type characteristics, in particular differences in presynaptic synapsin expression. To investigate the structure of large synaptic complexes in the LAL of C. fortis and to detect potential structural changes, pre- and postsynaptic profiles in interior workers and foragers were immunolabeled and quantified by using confocal imaging and 3D-reconstruction. The results show that these complexes consist of postsynaptic processes located in a central region that is surrounded by a cup-like presynaptic profile. Tracer injections identified input and output tracts of the LAL: projection neurons from the anterior optic tubercle build connections with neurons projecting to the central complex. The behavioral transition is associated with an increase by ~13% of synaptic complexes suggesting that the polarization pathway may undergo some sort of calibration process. The structural features of these synaptic contacts indicate that they may serve a fast and reliable signal transmission in the polarization vision pathway. Behavioral analyses of C. fortis in the field revealed that the ants perform exploration runs including pirouette-like turns very close to the nest entrance for a period of up to two days, before they actually start their foraging activity. During these orientation runs the ants gather visual experience and might associate the nest entrance with specific landmarks or get entrained to other visual information like the polarization pattern, and, concomitantly adapt their neuronal circuitries to the upcoming challenges. Moreover, the pirouettes may serve to stimulate and calibrate the neuronal networks involved in the polarization compass pathway. Video recordings and analyses demonstrate that light experience enhanced the ants’ locomotor activity after three days of exposure. The fact that both the light-induced behavioral and neuronal changes in visual brain centers occur in the same time frame suggests that there may be a link between structural synaptic plasticity and the behavioral transition from interior tasks to outdoor foraging. Desert ants of the genus Cataglyphis possess remarkable visual navigation capabilities, but also employ olfactory cues for detecting nest and food sites. Using confocal imaging and 3D-reconstruction, potential adaptations in primary olfactory brain centers were analyzed by comparing the number, size and spatial arrangement of olfactory glomeruli in the antennal lobe of C. fortis, C. albicans, C. bicolor, C. rubra, and C. noda. Workers of all Cataglyphis species have smaller numbers of glomeruli compared to those of more olfactory-guided Formica species - a genus closely related to Cataglyphis - and to those previously found in other olfactory-guided ant species. C. fortis has the lowest number of glomeruli compared to all other species, but possesses a conspicuously enlarged glomerulus that is located close to the antennal nerve entrance. Males of C. fortis have a significantly smaller number of glomeruli compared to female workers and queens and a prominent male-specific macroglomerulus likely to be involved in sex pheromone communication. The behavioral significance of the enlarged glomerulus in female workers remains elusive. The fact that C. fortis inhabits microhabitats that are avoided by all other Cataglyphis species suggests that extreme ecological conditions may not only have resulted in adaptations of visual capabilities, but also in specializations of the olfactory system. The present thesis demonstrates that Cataglyphis is an excellent candidate for studying the neuronal mechanisms underlying navigational features and for studying neuronal plasticity associated with the ant’s lifelong flexibility of individual behavioral repertoires.
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
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.
Large-scale anatomical and functional analyses of the connectivity in both invertebrate and mammalian brains have gained intense attention in recent years. At the same time, the understanding of synapses on a molecular level still lacks behind. We have only begun to unravel the basic mechanisms of how the most important synaptic proteins regulate release and reception of neurotransmitter molecules, as well as changes of synaptic strength. Furthermore, little is known regarding the stoichiometry of presynaptic proteins at different synapses within an organism. An assessment of these characteristics would certainly promote our comprehension of the properties of different synapse types. Presynaptic proteins directly influence, for example, the probability of neurotransmitter release as well as mechanisms for short-term plasticity. We have examined the strength of expression of several presynaptic proteins at different synapse types in the central nervous system of Drosophila melanogaster using immunohistochemistry. Clear differences in the relative abundances of the proteins were obvious on different levels: variations in staining intensities appeared from the neuropil to the synaptic level. In order to quantify these differences, we have developed a ratiometric analysis of antibody stainings. By application of this ratiometric method, we could assign average ratios of presynaptic proteins to different synapse populations in two central relays of the olfactory pathway. In this manner, synapse types could be characterized by distinct fingerprints of presynaptic protein ratios. Subsequently, we used the method for the analysis of aberrant situations: we reduced levels of Bruchpilot, a major presynaptic protein, and ablated different synapse or cell types. Evoked changes of ratio fingerprints were proportional to the modifications we had induced in the system. Thus, such ratio signatures are well suited for the characterization of synapses. In order to contribute to our understanding of both the molecular composition and the function of synapses, we also characterized a novel synaptic protein. This protein, Drep-2, is a member of the Dff family of regulators of apoptosis. We generated drep-2 mutants, which did not show an obvious misregulation of apoptosis. By contrast, Drep-2 was found to be a neuronal protein, highly enriched for example at postsynaptic receptor fields of the input synapses of the major learning centre of insects, the mushroom bodies. Flies mutant for drep-2 were viable but lived shorter than wildtypes. Basic synaptic transmission at both peripheral and central synapses was in normal ranges. However, drep-2 mutants showed a number of deficiencies in adaptive behaviours: adult flies were locomotor hyperactive and hypersensitive towards ethanol-induced sedation. Moreover, the mutant animals were heavily impaired in associative learning. In aversive olfactory conditioning, drep-2 mutants formed neither short-term nor anaesthesia-sensitive memories. We could demonstrate that Drep-2 is required in mushroom body intrinsic neurons for normal olfactory learning. Furthermore, odour-evoked calcium transients in these neurons, a prerequisite for learning, were reduced in drep-2 mutants. The impairment of the mutants in olfactory learning could be fully rescued by pharmacological application of an agonist to metabotropic glutamate receptors (mGluRs). Quantitative mass spectrometry of Drep-2 complexes revealed that the protein is associated with a large number of translational repressors, among them the fragile X mental retardation protein FMRP. FMRP inhibits mGluR-mediated protein synthesis. Lack of this protein causes the fragile X syndrome, which constitutes the most frequent monogenic cause of autism. Examination of the performance of drep-2 mutants in courtship conditioning showed that the animals were deficient in both short- and long-term memory. Drep-2 mutants share these phenotypes with fmrp and mGluR mutants. Interestingly, drep-2; fmrp double mutants exhibited normal memory. Thus, we propose a model in which Drep-2 antagonizes FMRP in the regulation of mGluR-dependent protein synthesis. Our hypothesis is supported by the observation that impairments in synaptic plasticity can arise if mGluR signalling is imbalanced in either direction. We suggest that Drep-2 helps in establishing this balance.
Understanding of complex interactions and events in a nervous system, leading from the molecular level up to certain behavioural patterns calls for interdisciplinary interactions of various research areas. The goal of the presented work is to achieve such an interdisciplinary approach to study and manipulate animal behaviour and its underlying mechanisms. Optical in vivo imaging is a new constantly evolving method, allowing one to study not only the local but also wide reaching activity in the nervous system. Due to ease of its genetic accessibility Drosophila melanogaster represents an extraordinary experimental organism to utilize not only imaging but also various optogenetic techniques to study the neuronal underpinnings of behaviour. In this study four genetically encoded sensors were used to investigate the temporal dynamics of cAMP concentration changes in the horizontal lobes of the mushroom body, a brain area important for learning and memory, in response to various physiological and pharmacological stimuli. Several transgenic lines with various genomic insertion sites for the sensor constructs Epac1, Epac2, Epac2K390E and HCN2 were screened for the best signal quality, one line was selected for further experiments. The in vivo functionality of the sensor was assessed via pharmacological application of 8-bromo-cAMP as well as Forskolin, a substance stimulating cAMP producing adenylyl cyclases. This was followed by recording of the cAMP dynamics in response to the application of dopamine and octopamine, as well as to the presentation of electric shock, odorants or a simulated olfactory signal, induced by acetylcholine application to the observed brain area. In addition the interaction between the shock and the simulated olfactory signal by simultaneous presentation of both stimuli was studied. Preliminary results are supporting a coincidence detection mechanism at the level of the adenylyl cyclase as postulated by the present model for classical olfactory conditioning. In a second series of experiments an effort was made to selecticvely activate a subset of neurons via the optogenetic tool Channelrhodopsin (ChR2). This was achieved by recording the behaviour of the fly in a walking ball paradigm. A new method was developed to analyse the walking behaviour of the animal whose brain was made optically accessible via a dissection technique, as used for imaging, thus allowing one to target selected brain areas. Using the Gal4-UAS system the protocerebral bridge, a substructure of the central complex, was highlighted by expressing the ChR2 tagged by fluorescent protein EYFP. First behavioural recordings of such specially prepared animals were made. Lastly a new experimental paradigm for single animal conditioning was developed (Shock Box). Its design is based on the established Heat Box paradigm, however in addition to spatial and operant conditioning available in the Heat Box, the design of the new paradigm allows one to set up experiments to study classical and semioperant olfactory conditioning, as well as semioperant place learning and operant no idleness experiments. First experiments involving place learning were successfully performed in the new apparatus.
This thesis consists of three major chapters, each of which has been separately published or under the process for publication. The first chapter is about anatomical characterization of the mushroom body of adult Drosophila melanogaster. The mushroom body is the center for olfactory learning and many other functions in the insect brains. The functions of the mushroom body have been studied by utilizing the GAL4/UAS gene expression system. The present study characterized the expression patterns of the commonly used GAL4 drivers for the mushroom body intrinsic neurons, Kenyon cells. Thereby, we revealed the numerical composition of the different types of Kenyon cells and found one subtype of the Kenyon cells that have not been described. The second and third chapters together demonstrate that the multiple types of dopaminergic neurons mediate the aversive reinforcement signals to the mushroom body. They induce the parallel memory traces that constitute the different temporal domains of the aversive odor memory. In prior to these chapters, “General introduction and discussion” section reviews and discuss about the current understanding of neuronal circuit for olfactory learning in Drosophila.
Olfaction plays an important role in a variety of behaviors throughout the life of the European honeybee. Caste specific, environmentally induced and aging/experiencedependent differences in olfactory behavior represent a promising model to investigate mechanisms and consequences of phenotypic neuronal plasticity within the olfactory pathway of bees. This study focuses on the two different female phenotypes within the honeybee society, queens and workers. In this study, for the first time, structural plasticity in the honeybee brain was investigated at the synaptic level. Queens develop from fertilized eggs that are genetically not different from those that develop into workers. Adult queens are larger than workers, live much longer, and display different behaviors. Developmental trajectory is mainly determined by nutritional factors during the larval period. Within the subsequent post-capping period, brood incubation is precisely controlled, and pupae are incubated close to 35°C via thermoregulatory activity of adult workers. Behavioral studies suggest that lower rearing temperatures cause deficits in olfactory learning in adult bees. To unravel possible neuronal correlates for thermoregulatory and caste dependent influences on olfactory behavior, I examined structural plasticity of developing as well as mature olfactory synaptic neuropils. Brood cells were reared in incubators and pupal as well as adult brains were dissected for immunofluorescent staining. To label synaptic neuropils, I used an antibody to synapsin and fluophore-conjugated phalloidin which binds to filamentous (F-) actin. During development, neuronal F-actin is expressed in growing neurons, and in the mature nervous system, F-actin is most abundant in presynaptic terminals and dendritic spines. In the adult brains, this double labeling technique enables the quantification of distinct synaptic complexes microglomeruli [MG]) within olfactory and visual input regions of the mushroom bodies (MBs) prominent higher sensory integration centers. Analyses during larval-adult metamorphosis revealed that the ontogenetic plasticity in the female castes is reflected in the development of the brain. Distinct differences among the timing of the formation of primary and secondary olfactory neuropils were also revealed. These differences at different levels of the olfactory pathway in queens and workers correlate with differences in tasks performed by both female castes. In addition to caste specific differences, thermoregulation of sealed brood cells has important consequences on the synaptic organization within the MB calyces of adult workers and queens. Even small differences in rearing temperatures affected the number of MG in the olfactory calyx lip regions. In queens, the highest number of MG in the olfactory lip developed at 1°C below the temperature where the maximum of MG is found in workers (33.5 vs. 34.5°C). Apart from this developmental neuronal plasticity, this study exhibits a striking age-related plasticity of MG throughout the extended life span of queens. Interestingly, MG numbers in the olfactory lip increased with age, but decreased within the adjacent visual collar of the MB calyx. To conclude, developmental and adult plasticity of the synaptic circuitry in the sensory input regions of the MB calyx may underlie caste- and age-specific adaptations and long-term plasticity in behavior.
Es konnte in dieser Arbeit gezeigt werden, daß das olfaktorische Kurzzeitgedächtnis von Drosophila melanogaster in den Pilzkörpern lokalisiert ist. Zu Beginn dieser Doktorarbeit war bekannt, daß die Pilzkörper notwendig für das Geruchsgedächtnis sind. Drei unabhängige Methoden der Ablation bzw. Veränderung der biochemischen Eigenschaften der Pilzkörper hatten zu dem selben Ergebnis geführt, daß funktionierende Pilzkörper unentbehrlich für den Aufbau eines Geruchsgedächtnisses sind. Noch informativer als ein Experiment, in dem durch Zerstörung einer Struktur eine Leistung unmöglich gemacht wird ist der umgekehrte Weg, der durch einen gewebespezifischen „rescue“ die Leistung wiederherstellt. Dazu wurde in dieser Arbeit das wildtypische Allel des Gens rutabaga in rut-mutanten Fliegen mit Hilfe des Gal4/UAS-Systems ausschließlich in den Pilzkörpern, bzw., im Gegenexperiment, nur außerhalb der Pilzkörper zur Expression gebracht. rut kodiert für die Adenylatcyclase I, die mit synaptischer Plastizität bei Drosophila, Aplysia und Mäusen in Verbindung gebracht wird. Man geht davon aus, daß synaptische Plastizität die molekulare Grundlage für Lernen und Gedächtnis ist. Die AC I stellt cAMP her, dessen Menge und präzise Regulation die Übertragungsstärke an Neuronen beeinflußt. Eine Störung dieses Signalweges z. B. durch die rut-Mutation führt zu einer Beeinträchtigung des Gedächtnisses bei Drosophila. rut wurde mit Hilfe des in Drosophila etablierten Gal4/UAS-Systems exprimiert: Der gewebespezifisch aktive Hefe-Transkriptionsfaktor Gal4 führt dazu, daß das hinter einen Gal4-spezifischen UAS-Promotor klonierte wildtypische rut-Gen in denjenigen Zellen transkribiert wird, in denen der Transkriptionsfaktor vorhanden ist. Dies wurde in einer rut-Mutante durchgeführt, so daß in allen anderen Zellen keine funktionierende AC I vorhanden war. Die rut-abhängige synaptische Plastizität wurde damit ausschließlich auf die gewünschten Regionen beschränkt. Das Expressionsmuster der Gal4-Linien wurde durch Immuncytochemie (Anti-Tau) sichtbar gemacht. Diese Fliegen wurden in einem klassischen Konditionierungsexperiment auf ihr Geruchs-Gedächtnis untersucht. Dazu wurden einer Gruppe von Fliegen nacheinander 2 Gerüche präsentiert, von denen einer mit Elektroschocks gepaart war. Nach ca. 2 min konnten diese Fliegen sich für einen der beiden Gerüche entscheiden, die nun gleichzeitig aus 2 unterschiedlichen Richtungen dargeboten wurden. Je nach Lernleistung entschieden sich mehr oder weniger Fliegen für den vorher unbestraften Geruch. Es ergab sich, daß der Ort im Gehirn, an dem die wildtypische AC I exprimiert wurde, über die Höhe des Gedächtniswertes entschied: Die AC I ausschließlich in den Pilzkörpern gewährte ein völlig normales Gedächtnis, wogegen die AC I außerhalb der Pilzkörper das Gedächtnis nicht gegenüber der rut-Mutante verbessern konnte. Die Analyse der Expressionsverteilung von insgesamt 9 getesteten Fliegenlinien mißt überdies dem -Lobus des Pilzkörpers eine besondere Bedeutung bei und läßt den Schluß zu, daß das hier untersuchte Gedächtnis ausschließlich in den -Loben lokalisiert ist. Dieses erfolgreiche rut-„rescue“ - Experiment zeigt, daß rut-abhängige synaptische Plastizität ausschließlich in den Pilzkörpern ausreichend für ein wildtypisches Gedächtnis ist. Dieses Ergebnis vervollständigt die Erkenntnisse von den Pilzkörper-Ablationsexperimenten insofern, als nun die Aussage zutrifft, daß die Pilzkörper notwendig und hinreichend für das olfaktorische Kurzzeitgedächtnis sind.
Diese Arbeit beschäftigt sich mit Mbt, einem hochkonservierten Signalmolekül aus der Familie der p21-aktivierten Kinasen (PAK) aus Drosophila, während der Augen- und Pilzkörperentwicklung. Mbt wird aufgrund von Sequenzhomologien der PAK Unterfamilie II (PAK4-6) zugeordnet. PAK4-6 binden präferentiell die aktivierten Rho-GTPasen Cdc42 und schwächer Rac, werden durch diese Bindung jedoch nicht aktiviert, sondern an bestimmte Zellkompartimente rekrutiert. In Struktur- Funktionsanalysen in vitro und in vivo konnte gezeigt werden, dass Mbt ebenfalls fast ausschließlich mit aktiviertem Cdc42 und kaum mit aktiviertem Rac interagiert. Diese Interaktion führt nicht zur Aktivierung von Mbt, sondern eher zu einer Verringerung der Kinaseaktivität. Eine weitere Funktion der Interaktion von Cdc42 und Mbt ist die Rekrutierung von Mbt an die Adhärenzverbindungen (AV) in sich entwickelnden Photorezeptorzellen. Außerdem kann katalytisch inaktives Mbt im Gegensatz zu Cdc42-bindungsdefizientem Mbt partiell die Mbt-Funktion in mbtP1-Fliegen übernehmen. Mbt hat also auch kinaseunabhängige Funktionen. Während der Pilzkörperentwicklung sind sind die Cdc42-Bindungsdomäne und die Kinasedomäne von Mbt ebenfalls essentiell, ob subzelluläre Lokalisation hier eine ähnlich wichtige Rolle spielt, wurde nicht untersucht. Als Mbt-Interaktionspartner wurden in einem Yeast-two-Hybrid Screen drei neuartige Proteine identifiziert. Zwei davon, CG8818 und CG14880, können als Substrat von Mbt fungieren. Allerdings kann nur für CG8818 eine direkte Bindung spezifisch mit aktiviertem Mbt nachgewiesen werden. Die Interaktion mit CG14880 scheint transient zu sein und nur für die Zeit der Phosphorylierungsreaktion anzudauern. Gegen CG8818 wurde ein Antiserum hergestellt, das nach seiner Charakterisierung in biochemischen und histologischen Ansätzen zum Einsatz kommen soll. In einem genetischen Screen wurden Mutationen in canoe als Verstärker und Mutationen in eip75b als Suppressor des mbtP3-Augenphänotyps gefunden. Eip75B ist ein putativer Steroidhormonrezeptor und wird während der Verpuppung exprimiert, also zu dem Zeitpunkt, wenn sich der mbt-Phänotyp ausbildet. Interessanterweise haben Mutationen in eip75b keinen Effekt auf den mbtP3-Pilzkörperphänotyp. Canoe ist wie Mbt an den AV von sich entwickelnden Photorezeptorzellen lokalisiert und spielt ebenfalls während deren Morphogenese eine Rolle. Canoe ist ein aktinbindendes Protein und könnte eine Verbindung von Mbt zum Cytoskelett darstellen, das der dynamischen Regulation bedarf, um morphogenetische Prozesse voranzutreiben. Eine direkte Interaktion kann nicht nachgewiesen werden. Auch während der Pilzkörperentwicklung scheinen Mbt und Canoe im gleichen Signalweg aktiv zu sein. Genetische Interaktion mit mbtP3 während der Augenentwicklung konnte außerdem für Mutationen in slingshot und twinstar gezeigt werden, die beide in die Regulation des Cytoskeletts involviert sind. Das Transmembranprotein Crumbs scheint ebenfalls zusammen mit Mbt in der Photorezeptorzellmorphogenese eine Rolle zu spielen. Außerdem weißen erste Experimente darauf hin, dass Mbt im ERK-MAP Kinase-Signalweg eine Rolle spielt. Durch die Entdeckung der direkten und indirekten Interaktionspartner bietet sich nun die Gelegenheit, die Funktion und Wirkungsweise von Mbt weiter zu entschlüsseln. Damit kann ein wesentlicher Beitrag zur Aufklärung der Rolle von PAK-Proteinen während morphogenetischer Prozesse und der Regulation der Zellzahl in der Entwicklung geleistet werden.
Die Pilzkörper von Drosophila melanogaster stellen eine für die Lebensfähigkeit dieses Organismus entbehrliche Gehirnstruktur dar. Die Entwicklungsprozesse, die der Bildung dieser zentralnervösen Struktur zugrunde liegen, sind gut erforscht. Die neuronalen Stammzellen, die für die Bildung dieser Gehirnstruktur verantwortlich sind, sind identifiziert und experimentell gut zugänglich. Daher bietet sich die Drosophila-Pilzkörperentwicklung als neurogenetisches Modellsystem an, grundlegende Mechanismen der Gehirnentwicklung durch die Untersuchung von Pilzkörperstrukturmutanten zu erforschen. In dieser Arbeit wurde mushroom bodies undersized P1 (mbuP1) als eine durch Transposon- Insertion in den Casein-Kinase-2ß-Genlokus verursachte, hypomorphe Mutation identifiziert, die zu einer starken Verringerung der Anzahl der die Pilzkörper bildenden intrinsischen Neurone führt. Eine Reversion des mbuP1-Pilzkörperphänotyps konnte unter anderem durch die Expression von Casein-Kinase-2ß-(CK2ß)-Transgenen im mbuP1-Hintergrund erzielt werden. Durch Rekombination wurde ein fertiler mbuP1-Stamm etabliert, der nun die Untersuchung der zellulären mbuP1-Defekte ermöglicht. Eine partielle, letale Deletion der CK2ß-Transkriptionseinheit wurde erzeugt. Die Letalität dieser Deletion konnte sowohl durch ein genomisches CK2ß-Transgen als auch durch die ubiquitäre Expression einer CK2ß-cDNA gerettet, und hierdurch die essentielle Funktion der CK2ß-Transkriptionseinheit in Drosophila belegt werden. Durch die ubiquitäre Expression von in vitro-mutagenisierten CK2ß-cDNAs im CK2ß-Letalhintergrund wurde gezeigt, daß die Phosphorylierung der regulatorischen CK2ß-Untereinheit durch die katalytisch aktive CK2α-Untereinheit kein lebensnotwendiger Prozess ist. Gleichartige Experimente wurden zur Untersuchung der funktionellen Bedeutung eines CK2ß-Zinkfingermotivs und eines CK2ß-Destruction-Box-Motivs durchgeführt. Diese legen nahe, daß das Zinkfingermotiv im Gegensatz zum Destruction-Box-Motiv für die in vivo-Funktion der CK2ß-Untereinheit essentiell ist. Expression der in vitro-mutagenisierten CK2ß-cDNAs im mbuP1-Hintergrund werden die funktionelle Bedeutung der ausgetauschten Aminosäuren für die Pilzkörperentwicklung zeigen. Eine letale genetische Interaktion von mbuP1 mit einer Mutation des Drosophila-MAP-Kinase-Gens rolled (rlSem) und eine lebensfähige Interaktion von mbuP1 mit einer Mutation des Drosophila-S6-Kinase-p90rsk-Gens ignorant (ignP1), bei der Flügel- und Augenent-wicklungsdefekte zu beobachten sind, wurden gefunden. Es wurde zudem gezeigt, daß rlSem als Suppressor des Pilzkörperphänotyps eines schwächeren mbu-Allels wirkt. Hierdurch konnte eine Beteiligung der Casein-Kinase-2 an MAP-Kinase-Signalübertragungswegen wahrscheinlich gemacht werden.