TY - JOUR A1 - Brill, Martin F. A1 - Meyer, Anneke A1 - Roessler, Wolfgang T1 - It takes two—coincidence coding within the dual olfactory pathway of the honeybee JF - Frontiers in Physiology N2 - To rapidly process biologically relevant stimuli, sensory systems have developed a broad variety of coding mechanisms like parallel processing and coincidence detection. Parallel processing (e.g., in the visual system), increases both computational capacity and processing speed by simultaneously coding different aspects of the same stimulus. Coincidence detection is an efficient way to integrate information from different sources. Coincidence has been shown to promote associative learning and memory or stimulus feature detection (e.g., in auditory delay lines). Within the dual olfactory pathway of the honeybee both of these mechanisms might be implemented by uniglomerular projection neurons (PNs) that transfer information from the primary olfactory centers, the antennal lobe (AL), to a multimodal integration center, the mushroom body (MB). PNs from anatomically distinct tracts respond to the same stimulus space, but have different physiological properties, characteristics that are prerequisites for parallel processing of different stimulus aspects. However, the PN pathways also display mirror-imaged like anatomical trajectories that resemble neuronal coincidence detectors as known from auditory delay lines. To investigate temporal processing of olfactory information, we recorded PN odor responses simultaneously from both tracts and measured coincident activity of PNs within and between tracts. Our results show that coincidence levels are different within each of the two tracts. Coincidence also occurs between tracts, but to a minor extent compared to coincidence within tracts. Taken together our findings support the relevance of spike timing in coding of olfactory information (temporal code). KW - olfaction KW - mushroom body KW - insect KW - coincidence KW - multi-electrode-recording KW - antennal lobe Y1 - 2015 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-126179 VL - 6 IS - 208 ER - TY - THES A1 - Brill, Martin Fritz T1 - Processing and plasticity within the dual olfactory pathway in the honeybee brain T1 - Verarbeitung und Plastizität in der dualen olfaktorischen Bahn im Gehirn der Honigbiene N2 - 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. N2 - In ihrem natürlichen Lebensraum sind Lebewesen mit komplexen und hoch dynamischen olfaktorischen Reizen konfrontiert, was eine schnelle und zuverlässige Duft-Verarbeitung sowohl bei Insekten als auch bei Wirbeltieren erfordert. Im visuellen oder auditorischen System wird sensorischer Eingang durch Parallel-Verarbeitung schneller und effektiver an höhere Gehirnzentren übertragen und verarbeitet. Im olfaktorischen System ist generell und im speziellen über Parallel-Verarbeitung noch wenig bekannt. Die Honigbiene stellt jedoch mit ihrer hoch spezialisierten Duftwahrnehmung und ihrem Duft und Pheromon gesteuerten Verhalten aufgrund ihrer Neuroanatomie einen besonderen Modelorganismus für die Erforschung der Duftverarbeitung und insbesondere der olfaktorischen Parallel-Verarbeitung dar. Honigbienen besitzen „duale olfaktorische Bahnen“, die ausschließlich in Hymenopteren (Bienen, Ameisen, Wespen) als Merkmal ausgeprägt sind. Gebildet werden sie aus zwei spiegelbildlichen Projektions-Neuronen (PN) Ausgangs-Trakten, die das erste olfaktorische Verarbeitungs-Zentrum, den Antennal-Lobus (vergleichbar mit dem Olfaktorischen Bulbus der Wirbeltiere, OB) mit sekundären Verarbeitungszentren, dem Pilzkörper (MB) und dem lateralen Horn (LH) verbinden. Der mediale Antennal-Lobusprotocerebrale Trakt (m-APT) innerviert erst den MB und dann das LH, der laterale Trakt (l-APT) projiziert in umgekehrter Reihenfolge. Der MB ist bei Orientierung, Lernen und Gedächtnis involviert, über die Funktion des LH ist in der Biene noch wenig bekannt. Über die Neuroanatomie und Evolution dieser dualen Bahnen wurde viel geforscht, die Funktion und damit ihre Physiologie sind allerdings noch unzureichend aufgeklärt. Die vorliegende Dissertation beschäftigt sich deshalb mit der Duftverarbeitung im Bienengehirn und im Speziellen mit Parallelverarbeitung in der Olfaktorik. Für die Aufklärung wurde eine neu entwickelte und in dieser Dissertation beschriebene Messmethode etabliert (1. Kapitel). Mit Hilfe dieser Messapparatur (Multi-Unit Recordings) ist es jetzt das erste Mal möglich, hoch-zeitaufgelöst simultan aus beiden Trakten mehrere PNs auf unterschiedliche Düfte hin zu untersuchen. Das 2. Kapitel beschäftigt sich eingehender mit der Analyse von Duftanworten der PN. Die Hauptergebnisse sind, dass beide Trakte auf alle getesteten Düfte regieren, dies aber mit unterschiedlichen Charakteristiken tun. Da gezeigt wurde, dass beide Trakte ähnlichen olfaktorischen Eingang erhalten, die Trakte aber Düfte unterschiedlich verarbeiten, stellen diese Ergebnisse ein erstes Indiz für Parallelverarbeitung im olfaktorischen System der Biene dar. M-APT PN reagieren mit Zeitverzögerung und duftspezifisch, d.h. selektiver auf Düfte. Dagegen reagieren l-APT PN vergleichsweise schneller und duft-unspezifischer auf die in dieser Arbeit verwendeten Düfte. In einigen PN beider Trakte wurde gefunden, dass die PN Duft-Identitäten über duftspezifische Antwort-Latenzen abgebildet werden können. Um Aufschluss über die Gesamtdynamik der PN zu gewinnen, wurden l- und m-APT PN Antworten über weite Duftkonzentrationen (10-6 bis 10-2) hin untersucht (3. Kapitel). Die PN reagierten mit linearen und nicht-linearen Korrelationen. Zudem sind in den meisten Fällen l-APT PN bei schwachen Duftkonzentrationen sensitiver. Die Antwort-Latenz ist zur Duftkonzentration in beiden Trakten negativ-proportional. Alternative Kodierungsmöglichkeiten und die Ausarbeitung der Hypothese, dass die dualen Bahnen eine Koinzidenzverschaltung auf die nächst höheren Neurone, die Kenyon Zellen (KC), bilden könnten, wird im 4. Kapitel behandelt. Dazu zeigen Kreuz-Korrelationsanalysen und synchrone Antwortmuster aus beiden Trakten, dass prinzipiell Düfte auch über Zeit-Kodierung verarbeitet werden können. Generell zeigt sich, dass die dualen olfaktorischen Bahnen eine verbesserte Duftkodierung gegenüber einem Trakt gewährleisten. In einem weiteren Ansatz wurde die alterskorrelierte Plastizität der inhibitorischen GABAergen (gamma-Aminobuttersäure) Innervation im Pilzkörper der Biene während der Adult-Reifung bestimmt (5. Kapitel). Inhibition ist für olfaktorische Kodierung sehr wichtig. Eine fast dreifache Reduktion in der Gesamtmenge von GABA wurde während der Adult-Reifung in beiden Zielregionen der dualen olfaktorischen Bahn gleichermaßen gefunden. Dieser Effekt wurde mit einer insgesamt halbierten GABA Innervierung ebenfalls im visuellen Innervationsgebiet des MB gefunden. Die Ergebnisse passen gut in das derzeitige Verständnis von Adultplastizität der Pilzkörper in der Honigbiene, in denen eine Ausdünnung (Pruning) präsynaptischer Endigungen von PN und ein Auswachsen von KC-Dendriten beschrieben wurde. Aus den neuroanatomischen und physiologischen Eigenschaften der dualen olfaktorischen Bahnen lässt sich schlussfolgern, dass Düfte sowohl über Raten- als auch Zeit-Kodierung bis hin zu Koinzidenz-Verschaltungen verarbeitet werden können. Zudem zeigen derzeitige Arbeiten über analoge Ausgangs-Trakte im OB von Wirbeltieren, dass Parallelverarbeitung im olfaktorischen System ein allgemeines Kodierungsprinzip über weit entfernte Taxa zu sein scheint. KW - Tierphysiologie KW - Geruchssinn KW - Nervennetz KW - Nervenzelle KW - Biene KW - Antennallobus KW - antennal lobe KW - olfaction KW - multi-unit recording KW - Insekten KW - Geruch KW - Physiologie Y1 - 2013 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-85600 ER - TY - JOUR A1 - Chen, Yi-chun A1 - Gerber, Bertram T1 - Generalization and discrimination tasks yield concordant measures of perceived distance between odours and their binary mixtures in larval Drosophila JF - The Journal of Experimental Biology N2 - Similarity between odours is notoriously difficult to measure. Widely used behavioural approaches in insect olfaction research are cross-adaptation, masking, as well as associative tasks based on olfactory learning and the subsequent testing for how specific the established memory is. A concern with such memory-based approaches is that the learning process required to establish an odour memory may alter the way the odour is processed, such that measures of perception taken at the test are distorted. The present study was therefore designed to see whether behavioural judgements of perceptual distance are different for two different memory-based tasks, namely generalization and discrimination. We used odour-reward learning in larval Drosophila as a study case. In order to challenge the larvae's olfactory system, we chose to work with binary mixtures and their elements (1-octanol, n-amyl acetate, 3-octanol, benzaldehyde and hexyl acetate). We determined the perceptual distance between each mixture and its elements, first in a generalization task, and then in a discrimination task. It turns out that scores of perceptual distance are correlated between both tasks. A re-analysis of published studies looking at element-to-element perceptual distances in larval reward learning and in adult punishment learning confirms this result. We therefore suggest that across a given set of olfactory stimuli, associative training does not grossly alter the pattern of perceptual distances. KW - discrimination KW - drosophila melanogaster KW - generalization KW - memory KW - olfaction KW - perception Y1 - 2014 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-121625 VL - 217 IS - 12 ER - TY - JOUR A1 - Falibene, Agustina A1 - Roces, Flavio A1 - Rössler, Wolfgang T1 - Long-term avoidance memory formation is associated with a transient increase in mushroom body synaptic complexes in leaf-cutting ants JF - Frontiers in Behavioral Neuroscience N2 - Long-term behavioral changes related to learning and experience have been shown to be associated with structural remodeling in the brain. Leaf-cutting ants learn to avoid previously preferred plants after they have proved harmful for their symbiotic fungus, a process that involves long-term olfactory memory. We studied the dynamics of brain microarchitectural changes after long-term olfactory memory formation following avoidance learning in Acromyrmex ambiguus. After performing experiments to control for possible neuronal changes related to age and body size, we quantified synaptic complexes (microglomeruli, MG) in olfactory regions of the mushroom bodies (MBs) at different times after learning. Long-term avoidance memory formation was associated with a transient change in MG densities. Two days after learning, MG density was higher than before learning. At days 4 and 15 after learning—when ants still showed plant avoidance—MG densities had decreased to the initial state. The structural reorganization of MG triggered by long-term avoidance memory formation clearly differed from changes promoted by pure exposure to and collection of novel plants with distinct odors. Sensory exposure by the simultaneous collection of several, instead of one, non-harmful plant species resulted in a decrease in MG densities in the olfactory lip. We hypothesize that while sensory exposure leads to MG pruning in the MB olfactory lip, the formation of long-term avoidance memory involves an initial growth of new MG followed by subsequent pruning. KW - microglomeruli KW - olfaction KW - avoidance learning KW - leaf-cutting ants KW - acromyrmex ambiguus KW - synaptic plasticity KW - mushroom body Y1 - 2015 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-125522 VL - 9 IS - 84 ER - TY - JOUR A1 - Falibene, Augustina A1 - Roces, Flavio A1 - Rössler, Wolfgang T1 - Long-term avoidance memory formation is associated with a transient increase in mushroom body synaptic complexes in leaf-cutting ants JF - Frontiers in Behavioural Neuroscience N2 - Long-term behavioral changes related to learning and experience have been shown to be associated with structural remodeling in the brain. Leaf-cutting ants learn to avoid previously preferred plants after they have proved harmful for their symbiotic fungus, a process that involves long-term olfactory memory. We studied the dynamics of brain microarchitectural changes after long-term olfactory memory formation following avoidance learning in Acromyrmex ambiguus. After performing experiments to control for possible neuronal changes related to age and body size, we quantified synaptic complexes (microglomeruli, MG) in olfactory regions of the mushroom bodies (MB) at different times after learning. Long-term avoidance memory formation was associated with a transient change in MG densities. Two days after learning, MG density was higher than before learning. At days 4 and 15 after learning when ants still showed plant avoidance MG densities had decreased to the initial state. The structural reorganization of MG triggered by long-term avoidance memory formation clearly differed from changes promoted by pure exposure to and collection of novel plants with distinct odors. Sensory exposure by the simultaneous collection of several, instead of one, non-harmful plant species resulted in a decrease in MG densities in the olfactory lip. We hypothesize that while sensory exposure leads to MG pruning in the MB olfactory lip, the formation of long-term avoidance memory involves an initial growth of new MG followed by subsequent pruning. KW - Acromyrmex ambiguus KW - leaf-cutting ants KW - avoidance learning KW - olfaction KW - honeybee KW - microglomeruli KW - mushroom body KW - synaptic plasticity Y1 - 2015 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-148763 VL - 9 IS - 84 ER - TY - JOUR A1 - Falibene, Augustine A1 - Roces, Flavio A1 - Rössler, Wolfgang A1 - Groh, Claudia T1 - Daily Thermal Fluctuations Experienced by Pupae via Rhythmic Nursing Behavior Increase Numbers of Mushroom Body Microglomeruli in the Adult Ant Brain JF - Frontiers in Behavioral Neuroscience N2 - Social insects control brood development by using different thermoregulatory strategies. Camponotus mus ants expose their brood to daily temperature fluctuations by translocating them inside the nest following a circadian rhythm of thermal preferences. At the middle of the photophase brood is moved to locations at 30.8°C; 8 h later, during the night, the brood is transferred back to locations at 27.5°C. We investigated whether daily thermal fluctuations experienced by developing pupae affect the neuroarchitecture in the adult brain, in particular in sensory input regions of the mushroom bodies (MB calyces). The complexity of synaptic microcircuits was estimated by quantifying MB-calyx volumes together with densities of presynaptic boutons of microglomeruli (MG) in the olfactory lip and visual collar regions. We compared young adult workers that were reared either under controlled daily thermal fluctuations of different amplitudes, or at different constant temperatures. Thermal regimes significantly affected the large (non-dense) olfactory lip region of the adult MB calyx, while changes in the dense lip and the visual collar were less evident. Thermal fluctuations mimicking the amplitudes of natural temperature fluctuations via circadian rhythmic translocation of pupae by nurses (amplitude 3.3°C) lead to higher numbers of MG in the MB calyces compared to those in pupae reared at smaller or larger thermal amplitudes (0.0, 1.5, 9.6°C), or at constant temperatures (25.4, 35.0°C). We conclude that rhythmic control of brood temperature by nursing ants optimizes brain development by increasing MG densities and numbers in specific brain areas. Resulting differences in synaptic microcircuits are expected to affect sensory processing and learning abilities in adult ants, and may also promote interindividual behavioral variability within colonies. KW - microglomeruli KW - temperature KW - broodtranslocation KW - camponotus ants KW - olfaction KW - vision KW - synapticplasticity KW - mushroom body Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-146711 VL - 10 IS - 73 ER - TY - THES A1 - Frey, Monika T1 - Effects and mechanisms of a putative human pheromone T1 - Effekte und Mechanismen eines putativen menschlichen Pheromons N2 - There is evidence that pheromones are communicative signals in animals. However, the existence and function of human pheromones are still under discussion. During the last years several substances have been labeled as putative human pheromones and especially 4,16–androstadien-3-one (androstadienone), found in male and female sweat, became subject of intense investigation. In contrast to common odors androstadienone presumably modulates human physiological and psychological reactions. Data suggest that androstadienone might influence the processing of visual cues, specifically faces or affective stimuli, via projections from the fusiform gyrus and the amygdala. Moreover, attentional processes may be modulated, which is supported by explicit and implicit behavioral data. This thesis includes three experimental studies examining effects of androstadienone exposure on behavioral and cortical reactions to visual and emotional stimuli. The main hypotheses were that androstadienone might influence human behavior to and perception of visual cues. The first study sought to clarify androstadienone effects on attention-related reactions as well as on behavioral tendencies. Motoric approach-avoidance reactions in response to happy and angry facial expressions were investigated in 30 women and 32 men. Participants either inhaled androstadienone or a control solution, without knowing the real content, while performing the following task: they had to push away or to pull towards them a joystick as fast as possible in reaction to either an angry or a happy cartoon face, which was presented on a computer screen. Results showed that androstadienone modulated the participant´s task performance by accelerating the reaction speed compared to the control compound. Faster reactions were observed particularly when reacting to angry faces but not when reacting to happy faces. This might be explained by the finding that human body odors, the source of androstadienone, were found to activate the human fear system, i.e. modulating fear-related attentional processes. Therefore, the quicker reaction towards angry faces with exposure to androstadienone could be due to an enhanced allocation of attentional resources towards fear-related cues like angry faces. Results also showed that androstadienone enhanced men´s approach tendency towards faces independent of emotional expressions. This observation might be explained by androstadienone´s former shown ability to improve attractiveness ratings of other persons. In this regard, the endogenous odor might enhance evaluations of faces in men and, thus, might improve their willingness to approach social stimuli. In contrast to men, women already showed in the control condition higher approach tendency towards faces. Therefore, androstadienone might rather maintain than enhance the approach score in women. In the second study event-related brain potentials (ERPs) triggered by social and non-social visual stimuli were investigated by means of electroencephalography. In a double-blind between-subjects design 51 women participated. Twenty-eight women inhaled androstadienone, whereas 23 women inhaled a control solution. Four different picture categories, i.e. real faces, pictures with couples, pictures with social and non-social scenes, each including three different valence categories, i.e. positive, negative and neutral, should clarify the stimulus type or context androstadienone is acting on. The androstadienone compared to the control odor did not influence brain responses significantly. Explorative analyses, however, suggested that androstadienone influences the processing of faces. While in the control group angry faces elicited larger P300 amplitudes than happy faces, the androstadienone group showed similar P300 amplitudes concerning all emotional expressions. This observation tentatively indicates that the endogenous odor might indeed affect the neuronal responses to emotional facial stimuli, especially late components reflecting evaluative processes. However, this observation has to be verified and further investigated, in particular whether androstadienone caused reduced responses to angry faces or enhanced responses to happy faces. The third study investigated androstadienone effects on face processing especially in men. ERPs elicited by happy, angry and neutral cartoon faces, which were presented on a computer screen, were measured while 16 men, not knowing the applicated odor, inhaled either androstadienone or a control solution. Exposure to androstadienone significantly increased later neuronal responses, the P300 amplitude. This belated component of the ERP reflects attention allocation and evaluative processes towards important stimuli. Therefore, androstadienone might facilitate central nervous face processing by enhancing attention towards these stimuli. In sum, the current results corroborate the notion of androstadienone as an active social chemosignal. In minute amounts and not detectable as an odor it influenced cortical and motoric reactions. Therefore, it might be concluded that androstadienone indeed affects cognitive functions like attentional processes and in turn affects our behavior. The current results further support the notion that androstadienone acts like a human modulator pheromone, namely modulating ongoing behavior or a psychological reaction to a particular context, changing stimulus sensitivity, salience and sensory-motor integration. However, these conclusions remain tentative until further replication takes place, best in ecologically valid environments. Furthermore, one has to keep in mind that the current studies could not replicate several previous findings and could not verify some hypotheses assuming communicative effects of androstadienone. Thus, the main assumption of this thesis that androstadienone is an active chemosignal is still challenged. Also, whether the term “pheromone” is indeed suitable to label androstadienone remains open. N2 - Pheromone sind als Kommunikationssubstanzen im Tierreich unabkömmlich. Ob jedoch menschliche Pheromone tatsächlich existieren, wird noch immer diskutiert. Während der letzten Jahre wurden mehrere Substanzen als putative menschliche Pheromone bezeichnet. Unter diesen wurde v.a. 4,16–androstadien-3-on (Androstadienon), eine Komponente des männlichen und weiblichen Schweißes, intensiv untersucht. Bisherige Ergebnisse deuten darauf hin, dass Androstadienon im Gegensatz zu herkömmlichen Duftstoffen die Verarbeitung visueller Stimuli, v.a. von Gesichtern und von affektiven Stimuli, vermutlich über eine Modulation der Aktivität des Gyrus fusiformis und der Amygdala beeinflussen kann. Außerdem könnten Aufmerksamkeitsprozesse durch Androstadienon beeinflusst sein, was durch explizite und implizite Verhaltensdaten angedeutet wird. Diese Doktorarbeit untersuchte in drei verschiedenen Studien die Effekte von Androstadienon auf kortikale Reaktionen und Verhalten bei Männern und Frauen, während diese mit visuellen, insbesondere emotionalen Stimuli konfrontiert wurden. Die Haupthypothesen waren, dass Androstadienon die Wahrnehmung visueller Stimuli und menschliches Verhalten gegenüber diesen beeinflussen könnte. Die erste Studie untersuchte Androstadienoneffekte auf aufmerksamkeitsabhängige, motorische Reaktionen sowie auf Verhaltenstendenzen. Motorisches Annäherungs- und Vermeidungsverhalten als Reaktion auf freudige und ärgerliche Gesichter wurden bei 30 Frauen und 32 Männern untersucht. Während diese entweder Androstadienon oder einen Kontrollduft inhalierten, ohne zu wissen welchen, mussten sie so schnell wie möglich einen Joystick jeweils wegdrücken oder zu sich heranziehen, sobald entweder ein freudiges oder ärgerliches Gesicht auf einem Computerbildschirm erschien. Im Vergleich zum Kontrollduft beschleunigte Androstadienon die Reaktionsgeschwindigkeit spezifisch auf ärgerliche Gesichter unabhängig von der Bewegungsrichtung. Dies könnte damit zusammenhängen, dass menschlicher Körpergeruch, die Quelle von Androstadienon, das Angstsystem im menschlichen Gehirn aktiviert. Die schnellere Reaktion auf ärgerliche Gesichter durch den endogenen Geruch könnte dementsprechend auf eine erhöhte Bereitstellung von Aufmerksamkeitsressourcen für angstverwandte Stimuli, wie ärgerliche Gesichter, zurückzuführen sein. Zusätzlich zeigten die Ergebnisse, dass Androstadienon unabhängig vom Emotionsausdruck die Annäherungstendenz bei Männern zu den Gesichtern erhöht. Diese Beobachtung könnte durch die in einer früheren Studie gezeigte Eigenschaft von Androstadienon, die Attraktivitätsbewertungen anderer Personen zu erhöhen, erklärt werden. Demnach könnte der endogene Duftstoff bei Männern die Bewertung von Gesichtern verbessern und folglich die Bereitschaft, sich sozialen Stimuli anzunähern, erhöhen. Im Gegensatz zu Männern zeigten Frauen schon in der Kontrollbedingung eine stärkere Annäherungstendenz zu Gesichtern. Folglich könnte Androstadienon diese verstärkte Tendenz bei Frauen eher aufrechterhalten als verstärken. In der zweiten Studie wurden kortikale Reaktionen, d.h. ereigniskorrelierte Gehirnpotentiale (EKPs), auf soziale und nicht-soziale visuelle Bilder bei 28 Frauen, die Androstadienon rochen, und bei 23 Frauen die einem Kontrollduft ausgesetzt waren, mit Elektroenzephalographie untersucht. Allen Teilnehmerinnen war der Inhalt des applizierten Duftstoffes nicht bewusst. Vier verschiedene Bildkategorien, d.h. echte Gesichter, Bilder mit Paaren, Bilder mit Gruppen von Menschen und Bilder ohne Personen, mit jeweils positiver, negativer und neutraler Valenz wurden verwendet, um den Wirkkontext von Androstadienon zu klären. Androstadienon beeinflusste die Hirnreaktionen auf diese Stimuli nicht signifikant. Explorative Analysen deuteten aber an, dass Androstadienon die späte EKP Komponente, P300, beeinflussen kann. Während in der Kontrollgruppe ärgerliche Gesichter größere P300 Amplituden auslösten als freudige Gesichter, erzeugten in der Androstadienongruppe alle emotionalen Ausdrücke ähnliche P300 Amplituden. Dies könnte andeuten, dass Androstadienon attentive oder evaluative Prozesse bei der Gesichtsverarbeitung beeinflusst, was aber durch weitere Studien bestätigt und präzisiert werden muss. Die dritte Studie untersuchte Androstadienoneffekte auf zentralnervöse Prozesse der Gesichtsverarbeitung von Männern. EKPs auf freudige, ärgerliche und neutrale Cartoongesichter wurden aufgezeichnet, während 16 Männer entweder Androstadienon oder den Kontrollduft inhalierten, ohne jeweils zu wissen welchen. Androstadienon verstärkte eine späte neuronale Reaktion, die P300 Komponente, auf alle Gesichter signifikant. Diese Komponente des ereigniskorrelierten Potenzials spiegelt die Bereitstellung von Aufmerksamkeit auf wichtige Stimuli wider. Androstadienon könnte folglich die zentralnervöse Verarbeitung von Gesichtern erleichtern, indem es Aufmerksamkeit auf diese Stimuli lenkt. Zusammenfassend stützen die genannten Ergebnisse die Annahme, dass Androstadienon ein aktives soziales Chemosignal ist. In winzigen, bewusst nicht wahrnehmbaren Mengen beeinflusste es kortikale und motorische Reaktionen. Demzufolge scheint Androstadienon tatsächlich auf kognitive Funktionen wie Aufmerksamkeit zu wirken und deshalb unser Verhalten beeinflussen zu können. Die aktuellen Ergebnisse unterstützen auch die Annahme, dass Androstadienon ein menschliches Modulatorpheromon ist, das in einem speziellen Kontext unser Verhalten und eine psychologische Reaktion moduliert und Stimulussensitivität und die Sensor-Motor-Integration ändert. Dennoch müssen diese Interpretationen als vorläufig betrachtet werden bis die dargestellten Ergebnisse auch unter ökologisch validen Bedingungen repliziert werden konnten. Außerdem muss berücksichtigt werden, dass in dieser Doktorarbeit einige frühere Ergebnisse und einige Hypothesen bezüglich kommunikativer Effekte von Androstadienone nicht bestätigt werden konnten. Deshalb kann die Annahme, dass Androstadienon ein aktives Chemosignal ist, immer noch in Frage gestellt werden. Auch ob Androstadienon tatsächlich als menschliches Pheromon bezeichnet werden sollte bleibt offen. KW - Pheromon KW - Aufmerksamkeit KW - Mensch KW - Androstadienon KW - ereigniskorreliertes Potential KW - Antwortverhalten KW - Geruchssinn KW - androstadienone KW - humans KW - olfaction KW - pheromone KW - behavior KW - attention Y1 - 2011 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-72292 ER - TY - JOUR A1 - Groh, Claudia A1 - Rössler, Wolfgang T1 - Analysis of Synaptic Microcircuits in the Mushroom Bodies of the Honeybee JF - Insects N2 - Mushroom bodies (MBs) are multisensory integration centers in the insect brain involved in learning and memory formation. In the honeybee, the main sensory input region (calyx) of MBs is comparatively large and receives input from mainly olfactory and visual senses, but also from gustatory/tactile modalities. Behavioral plasticity following differential brood care, changes in sensory exposure or the formation of associative long-term memory (LTM) was shown to be associated with structural plasticity in synaptic microcircuits (microglomeruli) within olfactory and visual compartments of the MB calyx. In the same line, physiological studies have demonstrated that MB-calyx microcircuits change response properties after associative learning. The aim of this review is to provide an update and synthesis of recent research on the plasticity of microcircuits in the MB calyx of the honeybee, specifically looking at the synaptic connectivity between sensory projection neurons (PNs) and MB intrinsic neurons (Kenyon cells). We focus on the honeybee as a favorable experimental insect for studying neuronal mechanisms underlying complex social behavior, but also compare it with other insect species for certain aspects. This review concludes by highlighting open questions and promising routes for future research aimed at understanding the causal relationships between neuronal and behavioral plasticity in this charismatic social insect. KW - mushroom body KW - microglomeruli KW - projection neurons KW - Kenyon cells KW - dendritic specializations KW - structural synaptic plasticity KW - behavioral plasticity KW - vision KW - olfaction Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-200774 SN - 2075-4450 VL - 11 IS - 1 ER - TY - JOUR A1 - Heisswolf, Annette A1 - Ulmann, Sandra A1 - Obermaier, Elisabeth A1 - Mitesser, Oliver A1 - Poethke, Hans J. T1 - Host plant finding in the specialised leaf beetle Cassida canaliculata: an analysis of small-scale movement behaviour N2 - 1. Host plant finding in walking herbivorous beetles is still poorly understood. Analysis of small-scale movement patterns under semi-natural conditions can be a useful tool to detect behavioural responses towards host plant cues. 2. In this study, the small-scale movement behaviour of the monophagous leaf beetle Cassida canaliculata Laich. (Coleoptera: Chrysomelidae) was studied in a semi-natural arena (r = 1 m). In three different settings, a host (Salvia pratensis L., Lamiales: Lamiaceae), a non-host (Rumex conglomeratus Murr., Caryophyllales: Polygonaceae), or no plant was presented in the centre of the arena. 3. The beetles showed no differences in the absolute movement variables, straightness and mean walking speed, between the three settings. However, the relative movement variables, mean distance to the centre and mean angular deviation from walking straight to the centre, were significantly smaller when a host plant was offered. Likewise, the angular deviation from walking straight to the centre tended to decline with decreasing distance from the centre. Finally, significantly more beetles were found on the host than on the non-host at the end of all the trials. 4. It is concluded that C. canaliculata is able to recognise its host plant from a distance. Whether olfactory or visual cues (or a combination of both) are used to find the host plant remains to be elucidated by further studies. KW - Käfer KW - Blattkäfer KW - Ampfer KW - Wiesensalbei KW - Arena experiment KW - Coleoptera KW - Chrysomelidae KW - olfaction KW - Rumex KW - Salvia pratensis KW - vision KW - walking Y1 - 2007 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-49485 ER - TY - JOUR A1 - Kropf, Jan A1 - Rössler, Wolfgang T1 - In-situ recording of ionic currents in projection neurons and Kenyon cells in the olfactory pathway of the honeybee JF - PLoS ONE N2 - The honeybee olfactory pathway comprises an intriguing pattern of convergence and divergence: ~60.000 olfactory sensory neurons (OSN) convey olfactory information on ~900 projection neurons (PN) in the antennal lobe (AL). To transmit this information reliably, PNs employ relatively high spiking frequencies with complex patterns. PNs project via a dual olfactory pathway to the mushroom bodies (MB). This pathway comprises the medial (m-ALT) and the lateral antennal lobe tract (l-ALT). PNs from both tracts transmit information from a wide range of similar odors, but with distinct differences in coding properties. In the MBs, PNs form synapses with many Kenyon cells (KC) that encode odors in a spatially and temporally sparse way. The transformation from complex information coding to sparse coding is a well-known phenomenon in insect olfactory coding. Intrinsic neuronal properties as well as GABAergic inhibition are thought to contribute to this change in odor representation. In the present study, we identified intrinsic neuronal properties promoting coding differences between PNs and KCs using in-situ patch-clamp recordings in the intact brain. We found very prominent K+ currents in KCs clearly differing from the PN currents. This suggests that odor coding differences between PNs and KCs may be caused by differences in their specific ion channel properties. Comparison of ionic currents of m- and l-ALT PNs did not reveal any differences at a qualitative level. KW - action potentials KW - olfaction KW - honeybee Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-175869 VL - 13 IS - 1 ER -