@phdthesis{Weiland2010, author = {Weiland, Romy}, title = {Facial reactions in response to gustatory and olfactory stimuli in healthy adults, patients with eating disorders, and patients with attention-deficit hyperactivity disorder}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-51759}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2010}, abstract = {The aim of this project was to investigate whether reflex-like innate facial reactions to tastes and odors are altered in patients with eating disorders. Qualitatively different tastes and odors have been found to elicit specific facial expressions in newborns. This specificity in newborns is characterized by positive facial reactions in response to pleasant stimuli and by negative facial reactions in response to unpleasant stimuli. It is, however, unclear, whether these specific facial displays remain stable during ontogeny (1). Despite the fact that several studies had shown that taste-and odor-elicited facial reactions remain quite stable across a human's life-span, the specificity of research questions, as well as different research methods, allow only limited comparisons between studies. Moreover, the gustofacial response patterns might be altered in pathological eating behavior (2). To date, however, the question of whether dysfunctional eating behavior might alter facial activity in response to tastes and odors has not been addressed. Furthermore, changes in facial activity might be linked to deficient inhibitory facial control (3). To investigate these three research questions, facial reactions in response to tastes and odors were assessed. Facial reactions were analyzed using the Facial Action Coding System (FACS, Ekman \& Friesen, 1978; Ekman, Friesen, \& Hager, 2002) and electromyography.}, subject = {Mimik}, language = {en} } @phdthesis{Steinke2009, author = {Steinke, Axel}, title = {Untersuchungen zur molekularen Zusammensetzung von Verschluss- und Adherenskontakten im olfaktorischen Epithel und den Fila olfactoria der Ratte}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-35974}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2009}, abstract = {Verschluss- und Adherenskontakte zwischen olfaktorischen Neuronen, olfaktorischen Gliazellen und den epithelialen Zellen des peripheren olfaktorischen Systems bestimmen Barriere- und Adh{\"a}sionseigenschaften im olfaktorischen Epithel, sowie die Kompartimentierung und Axonwachstumsprozesse in den Fila olfactoria. Zur Untersuchung der zellul{\"a}ren und subzellul{\"a}ren Lokalisation von Verschlusskontaktproteinen (Occludin, Claudin 1-5, Zonula occludens proteins (ZO) 1-3) und Adherenskontaktproteinen (N-Cadherin, E-Cadherin, alpha-, beta-, p120-Catenin) wurden immunhistochemische und immunelektronenmikroskipsche Verfahren an Gewebeschnitten des olfaktorischen Systems der Ratte durchgef{\"u}hrt. Mit Ausnahme von Claudin 2 waren alle untersuchten Verschlusskontaktproteine in Kontakten des olfaktorischen Epithels kolokalisiert. Unterschiedliche Immunfluoreszenzintensit{\"a}ten konnten in den Kontakten zwischen olfaktorischen Neuronen und epithelialen Zellen beobachtet werden. Immunreaktivit{\"a}t von Claudin 5 wurde in Kontakten der olfaktorischen Gliazellen in den Fila olfactoria lokalisiert, Claudin 1- Immunreaktivit{\"a}t konnte in peripheren Bereichen der Fila olfactoria beobachtet werden. Hierbei zeigten sich Unterschiede in der Lokalistaion der Claudine mit verschiedenen ZOs. St{\"u}tzzellen bildeten durch N-Cadherin vermittelte Adherenskontakte mit den olfaktorischen Neuronen, E-Cadherin-vermittelte Adherenskontakte mit Dr{\"u}sen- und Microvilluszellen, sowie durch N- und E-Cadherin vermittelte Adherenskontakte mit benachbarten St{\"u}tzzellen aus. Alpha-, beta- und p120-Catenin konnten in allen Adherenskontakten des olfaktorischen Epithels nachgewiesen werden. Olfaktorische Neurone bildeten in Abh{\"a}ngigkeit von deren Reifestadium unterschiedlich h{\"a}ufig Adherenskontakte aus. Adherenskontakte in den Fila olfactoria wurden zwischen Gliazellen, zwischen Gliazellen und Axonen, sowie zwischen Axonen untereinander lokalisiert. In den meisten Adherenskontakten der Fila olfactoria zeigte sich Kolokalisation zwischen N-Cadherin und den verschiedenen untersuchten Cateninen. In der Peripherie der Fila olfactoria konnten durch E-Cadherin vermittelte Adherenskontakte beobachtet werden. Die Funktion von Interzellularkontakten wird maßgeblich durch ihren molekularen Aufbau bestimmt. Charakteristische molekulare Zusammensetzungen der neuronalen, epithelialen und glialen Verschlusskontakte im olfaktorischen Epithel und den Fila olfactoria l{\"a}sst auf unterschiedliche Eigenschaften dieser Kontakte schließen. Adherenskontakte sind f{\"u}r Neuro- und Axogenesevorg{\"a}nge von entscheidender Bedeutung, und es liegt nahe, dass diese Kontakte auch bei diesen Prozessen im peripheren olfaktorischen Epithel eine wichtige Rolle spielen. Um Untersuchungen zur Ausbildung und zu m{\"o}glichen Funktionen von Kontakten zwischen olfaktorischen Gliazellen und olfaktorischen Neuronen auch in vitro zu erm{\"o}glichen, wurden Prim{\"a}rkulturen von olfaktorischen Gliazellen etabliert und erste Experimente zur Charakterisierung der Kulturen bez{\"u}glich ihrer Homogenit{\"a}t sowie bez{\"u}glich verschiedener in vivo gefundener Eigenschaften, wie die Expression von Kontaktproteinen und die Produktion des ciliary neurotrophic factor (CNTF) in Einzelkulturen und in Kokulturen mit olfaktorischen Neuronen durchgef{\"u}hrt.}, subject = {Epithel}, language = {de} } @phdthesis{Junker2010, author = {Junker, Robert R.}, title = {Scents as Floral Defence : Impact on Species and Communities, Mechanisms and Ecological Consequences}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-51827}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2010}, abstract = {Floral scents are compositions of diverse volatile substances. Despite the chemical complexity, the interpretation of their ecological relevance was mostly confined to the attractive function facilitating interactions with pollinators. However, the negative impact on plants' reproduction by non-pollinating flower visitors is pronounced and demands floral adaptations that exclude antagonists. The aim of this dissertation was to explore the defensive properties of floral odours and to imbed them into ecological contexts. The thesis covered four scopes: the scents' impact on individual species and on flower-visitor communities, the mechanisms that explain the dual function of floral volatiles (attraction and defence), and the ecological consequences of missing defences for plants and pollinators. The most important floral antagonists that are known to reduce the reproductive fitness of plants were identified and their responses towards floral scents were examined. We found that representatives of non-pollinating florivores (bush crickets), predators that lure for pollinators (spiders), and microorganisms that potentially colonize petals were repelled, deterred or inhibited in their growth by floral secondary metabolites. An earlier study revealed the same effect on nectar thieving ants. These experimental studies clearly demonstrate that scents universally serve as floral defences that have the potential to reduce or even prevent the visitation and exploitation of flowers by these antagonists. Within diverse communities, we tested whether species-specific responses to odours reflect the structure of naturally occurring flower-visitor interactions in order to examine the ecological importance of defensive floral scents. On three Hawaiian Islands, ant-flower interactions involving co-occurring native and introduced plants were observed. Ants were historically absent from the geographically isolated Hawaiian archipelago. Thus, we hypothesized that native Hawaiian plants lack floral features that exclude ants and therefore would be heavily exploited by introduced, invasive ants. We quantified the residual interaction strength of each pair of ant/plant species as the deviation of the observed interaction frequency from a null-model prediction based on available nectar sugar in a local plant community and local ant activity at sugar baits. As predicted, flowers of plants that are endemic or indigenous to Hawaii were stronger exploited by ants than flowers of co- occurring introduced plants, which share an evolutionary history with ants. We showed experimentally that the absence of ants on flowers of most introduced and few native plants species was due to morphological barriers and/or repellent floral scents, examined in a mobile olfactometer. Analysis of floral volatiles, however, revealed no consistent ant- repellent "syndrome", probably due to the high chemical variability within the floral scent bouquets. On a fallow land in Germany, we linked the responses of receivers (flower visitors) towards signals (flower scent) with the structure of a highly diverse natural flower-insect network. For each interaction, we defined link temperature - a newly developed metric - as the deviation of the observed interaction strength from neutrality, assuming that animals randomly interact with flowers. Link temperature was positively correlated to the specific visitors' responses to floral scents. Thus, communication between plants and consumers via phytochemical signals reflects a significant part of the microstructure in a complex network. Negative as well as positive responses towards floral scents contributed to these results, where individual experience was important, apart from innate behaviour. The demonstration of the contrasting functions of floral scents that control the visitor spectrum of flowers represents the first evidence that floral scents act as filters allowing access to some flower visitors but simultaneously exclude others. These findings raise the central question of this thesis: what evolutionary mechanism explains the dual function of floral scents? The view of flower visitors as mutualistic and antagonistic agents considers primarily the interest of plants. A classification emphasizing the consumer's point of view, however, may be more useful when considering adaptations of animals to flower visits. Therefore, we introduced a novel classification that acknowledges the consumers' interest in the interaction: some animals evolved an obligate dependence on floral resources, others use nectar and pollen as supplement to their diet and are thus regarded as facultative flower visitors. In a meta-analysis covering 18 studies on the responses of animals to floral scents, we assigned the animals to the categories of obligate or facultative flower visitors. Their responses to floral scents were compared. On average, obligate flower visitors, often corresponding to pollinators, were attracted to floral scent compounds. In contrast, facultative and mainly antagonistic visitors were strongly repelled by flower odours. The findings confirm that floral scents have a dual function both as attractive and defensive cues. Whether an animal depends on floral resources determines its response to these signals, suggesting that obligate flower visitors evolved a tolerance against primarily defensive compounds. These findings were confirmed in an experimental study. We conclude that floral scents protect flowers against visitors that would otherwise reduce the reproductive success of plants. In Hawaii, where flowers do not have defensive means against ants, we studied the impact of ants on the pollination effectiveness of endemic and introduced bees and on the fruit set of an endemic tree Metrosideros polymorpha (Myrtaceae). Ants were dominant nectar-consumers that mostly depleted the nectar of visited inflorescences. Accordingly, the visitation frequency, duration, and consequently the pollinator effectiveness of nectar-foraging bees strongly decreased on ant-visited flowers, whereas pollen-collecting bees remained largely unaffected by ants. Overall, endemic bees (Hylaeus spp.) were much poorer pollinators than introduced honeybees (Apis mellifera). The average net effect of ants on pollination of M. polymorpha was neutral, corresponding to a similar fruit set of ant-visited and ant-free inflorescences. A second Hawaiian plant species, Vaccinium reticulatum (Ericaceae), was visited by the caterpillars of an introduced plume moth (Stenoptilodes littoralis) that destroyed buds and flowers of this species. The ants' presence on flowers strongly reduced flower parasitism by the caterpillars and consequently decreased the loss of flowers and buds. This is, to our knowledge, the first documented mutualism between invasive ants and an endemic plant species in Hawaii. Thus, ants that have been shown to be detrimental flower visitors elsewhere, had neutral (M. polymorpha) or even positive (V. reticulatum) effects on endemic Hawaiian plants. However, their overall negative effect on the Hawaiian flora and fauna should not be disregarded.}, subject = {Bl{\"u}te}, language = {en} } @phdthesis{EngelhardtgebChristiansen2013, author = {Engelhardt [geb. Christiansen], Frauke}, title = {Synaptic Connectivity in the Mushroom Body Calyx of Drosophila melanogaster}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-85058}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2013}, abstract = {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.}, subject = {Taufliege}, language = {en} } @phdthesis{Brill2013, author = {Brill, Martin Fritz}, title = {Processing and plasticity within the dual olfactory pathway in the honeybee brain}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-85600}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2013}, abstract = {In their natural environment animals face complex and highly dynamic olfactory input. This requires fast and reliable processing of olfactory information, in vertebrates as well as invertebrates. Parallel processing has been shown to improve processing speed and power in other sensory systems like auditory or visual. In the olfactory system less is known about olfactory coding in general and parallel processing in particular. With its elaborated olfactory system and due to their specialized neuroanatomy, honeybees are well-suited model organism to study parallel olfactory processing. The honeybee possesses a unique neuronal architecture - a dual olfactory pathway. Two mirror-imaged output projection neuron (PN) pathways connect the first olfactory processing stage, the antennal lobe (analog to the vertebrates olfactory bulb, OB), with the second, the mushroom body (MB) known to be involved in orientation and learning and memory, and the lateral horn (LH). The medial antennal lobe-protocerebral tract (m-APT) first innervates the MB and thereafter the LH, while the other, the lateral-APT (l-APT) projects in opposite direction. The neuroanatomy and evolution of these pathways has been analyzed, yet little is known about its physiology. To analyze the function of the dual olfactory pathway a new established recording method was designed and is described in the first chapter of this thesis (multi-unit-recordings). This is now the first time where odor response from several PNs of both tracts is recorded simultaneously and with high temporal precision. In the second chapter the PN odor responses are analyzed. The major findings are: both tracts responded to all tested odors but with differing characteristics. Since recent studies describe the input to the two tracts being rather similar, the results now indicate differential odor processing along the tracts, therefore this is a good indicator for parallel processing. PNs of the m-APT process odors in a sparse manner with delayed response latencies, but with high odor-specificity. PNs of the l-APT in contrast respond to several odor stimuli and respond in general faster. In some PN originating from both tracts, characteristics of odor-identity coding via response latencies were found. Analyzing the over-all dynamic range of the PNs both l- and m-APT PNs were tested over a large odor concentration range (10-6 to 10-2) (3. chapter). The PNs responded with linear and non-linear correlation of the response strength to the odor concentration. In most cases the l-APT is comparatively more sensitive to low odor concentrations. Response latency decreases with increasing odor concentration in both tracts. Alternative coding principles and elaboration on the hypothesis whether the dual olfactory pathway may contribute coincidental innervation to the next higher-order neurons, the Kenyon cells (KC), is subject of the 4. chapter. Cross-correlations and synchronous responses of both tracts show that in principle odors may be coded via temporal coding. Results suggest that odor processing is enhanced if both tracts contribute to olfactory coding together. In another project the distribution of the inhibitory neurotransmitter GABA (gamma-aminobutyric acid) was measured in the bee's MB during adult maturation (5. chapter). GABAergic inhibition is of high importance in odor coding. An almost threefold decrease in the total amount of GABAergic innervation was found during adult maturation in the l- and m-APT target region, in particular at the change in division of labor during the transition from a young nurse bee to an older forager bee. The results fit well into the current understanding of brain development in the honeybee and other social insects during adult maturation, which was described as presynaptic pruning and KC dendritic outgrowth. Combining anatomical and functional properties of the bee's dual olfactory pathway suggests that both rate and temporal coding are implemented along two parallel streams. Comparison with recent work on analog output pathways of the vertebrate's OB indicates that parallel processing of olfactory information may be a common principle across distant taxa.}, subject = {Tierphysiologie}, language = {en} } @phdthesis{Brandstaetter2010, author = {Brandstaetter, Andreas Simon}, title = {Neuronal correlates of nestmate recognition in the carpenter ant, Camponotus floridanus}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-55963}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2010}, abstract = {Cooperation is beneficial for social groups and is exemplified in its most sophisticated form in social insects. In particular, eusocial Hymenoptera, like ants and honey bees, exhibit a level of cooperation only rarely matched by other animals. To assure effective defense of group members, foes need to be recognized reliably. Ants use low-volatile, colony-specific profiles of cuticular hydrocarbons (colony odor) to discriminate colony members (nestmates) from foreign workers (non-nestmates). For colony recognition, it is assumed that multi-component colony odors are compared to a neuronal template, located in a so far unidentified part of the nervous system, where a mismatch results in aggression. Alternatively, a sensory filter in the periphery of the nervous system has been suggested to act as a template, causing specific anosmia to nestmate colony odor due to sensory adaptation and effectively blocking perception of nestmates. Colony odors are not stable, but change over time due to environmental influences. To adjust for this, the recognition system has to be constantly updated (template reformation). In this thesis, I provide evidence that template reformation can be induced artificially, by modifying the sensory experience of carpenter ants (Camponotus floridanus; Chapter 1). The results of the experiments showed that template reformation is a relatively slow process taking several hours and this contradicts the adaptation-based sensory filter hypothesis. This finding is supported by first in-vivo measurements describing the neuronal processes underlying template reformation (Chapter 5). Neurophysiological measurements were impeded at the beginning of this study by the lack of adequate technical means to present colony odors. In a behavioral assay, I showed that tactile interaction is not necessary for colony recognition, although colony odors are of very low volatility (Chapter 2). I developed a novel stimulation technique (dummy-delivered stimulation) and tested its suitability for neurophysiological experiments (Chapter 3). My experiments showed that dummy-delivered stimulation is especially advantageous for presentation of low-volatile odors. Colony odor concentration in headspace was further increased by moderately heating the dummies, and this allowed me to measure neuronal correlates of colony odors in the peripheral and the central nervous system using electroantennography and calcium imaging, respectively (Chapter 4). Nestmate and non-nestmate colony odor elicited strong neuronal responses in olfactory receptor neurons of the antenna and in the functional units of the first olfactory neuropile of the ant brain, the glomeruli of the antennal lobe (AL). My results show that ants are not anosmic to nestmate colony odor and this clearly invalidates the previously suggested sensory filter hypothesis. Advanced two-photon microscopy allowed me to investigate the neuronal representation of colony odors in different neuroanatomical compartments of the AL (Chapter 5). Although neuronal activity was distributed inhomogeneously, I did not find exclusive representation restricted to a single AL compartment. This result indicates that information about colony odors is processed in parallel, using the computational power of the whole AL network. In the AL, the patterns of glomerular activity (spatial activity patterns) were variable, even in response to repeated stimulation with the same colony odor (Chapter 4\&5). This finding is surprising, as earlier studies indicated that spatial activity patterns in the AL reflect how an odor is perceived by an animal (odor quality). Under natural conditions, multi-component odors constitute varying and fluctuating stimuli, and most probably animals are generally faced with the problem that these elicit variable neuronal responses. Two-photon microscopy revealed that variability was higher in response to nestmate than to non-nestmate colony odor (Chapter 5), possibly reflecting plasticity of the AL network, which allows template reformation. Due to their high variability, spatial activity patterns in response to different colony odors were not sufficiently distinct to allow attribution of odor qualities like 'friend' or 'foe'. This finding challenges our current notion of how odor quality of complex, multi-component odors is coded. Additional neuronal parameters, e.g. precise timing of neuronal activity, are most likely necessary to allow discrimination. The lower variability of activity patterns elicited by non-nestmate compared to nestmate colony odor might facilitate recognition of non-nestmates at the next level of the olfactory pathway. My research efforts made the colony recognition system accessible for direct neurophysiological investigations. My results show that ants can perceive their own nestmates. The neuronal representation of colony odors is distributed across AL compartments, indicating parallel processing. Surprisingly, the spatial activity patterns in response to colony are highly variable, raising the question how odor quality is coded in this system. The experimental advance presented in this thesis will be useful to gain further insights into how social insects discriminate friends and foes. Furthermore, my work will be beneficial for the research field of insect olfaction as colony recognition in social insects is an excellent model system to study the coding of odor quality and long-term memory mechanisms underlying recognition of complex, multi-component odors.}, subject = {Neuroethologie}, language = {en} }