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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.
Es wurde die Hypothese überprüft , daß ein enger Zusammenhang zwischen Metagedächtnis, Gedächtnisverhalten und -leistung bei Grundschulkindern dann hergestellt werden kann, wenn mittlere Aufgabenschwierigkeit und reliable Erfassungsinstrumente vorliegen sowie weiterhin Transferleistungen im Anschluß an eine Trainingsphase gefordert sind. Am Beispiel von semantischen Kategorisietungsaufgaben ergab sich für eine Stichprobe von Drinkläßlern, (N = 106), daß die postulierten korrelativen Zusammenhänge besonders für den Prätest (also vor Trainingsbeginn) nachweisbar waren. Die erwarteten Effekte eines aufgabenspezifischen Trainingsprogramms auf den Zusammenhang zwischen Wissen und Verhalten ließen sich nicht sichern. Anhand eines Kausalmodells ließen sich erste empirische Anhaltspunkte für die Bestätigung der sog. "Rückkoppelungshypotbese" (Brown, 1978; Flavell, 1978) finden, derzufolge kausale Wirkungsketten zwischen Metagedächtnis und Gedächtnisverhalten anzunehmen sind.
According to a changing environment it is crucial for animals to make experience and learn about it. Sensing, integrating and learning to associate different kinds of modalities enables animals to expect future events and to adjust behavior in the way, expected as the most profitable. Complex processes as memory formation and storage make it necessary to investigate learning and memory on different levels. In this context Drosophila melanogaster represents a powerful model organism. As the adult brain of the fly is still quite complex, I chose the third instar larva as model - the more simple the system, the easier to isolate single, fundamental principles of learning. In this thesis I addressed several kinds of questions on different mechanism of olfactory associative and synaptic plasiticity in Drosophila larvae. I focused on short-term memory throughout my thesis. First, investigating larval learning on behavioral level, I developed a one-odor paradigm for olfactory associative conditioning. This enables to estimate the learnability of single odors, reduces the complexity of the task and simplify analyses of "learning mutants". It further allows to balance learnability of odors for generalization-type experiments to describe the olfactory "coding space". Furthermore I could show that innate attractiveness and learnability can be dissociated and found finally that paired presentation of a given odor with reward increase performance, whereas unpaired presentations of these two stimuli decrease performance, indicating that larva are able to learn about the presence as well as about the absence of a reward. Second, on behavioral level, together with Thomas Niewalda and colleagues we focussed on salt processing in the context of choice, feeding and learning. Salt is required in several physiological processes, but can neither be synthesized nor stored. Various salt concentrations shift the valence from attraction to repulsion in reflexive behaviour. Interestingly, the reinforcing effect of salt in learning is shifted by more than one order of magnitude toward higher concentrations. Thus, the input pathways for gustatory behavior appear to be more sensitive than the ones supporting gustatory reinforcement, which is may be due to the dissociation of the reflexive and the reinforcing signalling pathways of salt. Third, in cooperation with Michael Schleyer we performed a series of behavioral gustatory, olfactory preference tests and larval learning experiments. Based on the available neuroanatomical and behavioral data we propose a model regarding chemosensory processing, odor-tastant memory trace formation and the 'decision' like process. It incorporates putative sites of interaction between olfactory and gustatory pathways during the establishment as well as behavioral expression of odor-tastant memory. We claim that innate olfactory behavior is responsive in nature and suggest that associative conditioned behavior is not a simple substitution like process, but driven more likely by the expectation of its outcome. Fourth, together with Birgit Michels and colleagues we investigated the cellular site and molecular mode of Synapsin, an evolutionarily conserved, presynaptic vesicular phosphoprotein and its action in larval learning. We confirmed a previously described learning impairment upon loss of Synapsin. We localized this Synapsin dependent memory trace in the mushroom bodies, a third-order "cortical" brain region, and could further show on molecular level, that Synapsin is as a downstream element of the AC-cAMP-PKA signalling cascade. This study provides a comprehensive chain of explanation from the molecular level to an associative behavioral change. Fifth, in the main part of my thesis I focused on molecular level on another synaptic protein, the Synapse associated protein of 47kDa (Sap47) and its role in larval behavior. As a member of a phylogenetically conserved gene family of hitherto unknown function. It is localized throughout the whole neuropil of larval brains and associated with presynaptic vesicles. Upon loss of Sap47 larvae exhibit normal sensory detection of the to-be-associated stimuli as well as normal motor performance and basic synaptic transmission. Interestingly, short-term plasticity is distorted and odorant–tastant associative learning ability is reduced. This defect in associative function could be rescued by restoring Sap47 expression. Therefore, this report is the first to suggest a function for Sap47 and specifically argues that Sap47 is required for synaptic as well as for behavioral plasticity in Drosophila larva. This prompts the question whether its homologs are required for synaptic and behavioral plasticity also in other species. Further in the last part of my thesis I contributed to the study of Ayse Yarali. Her central topic was the role of the White protein in punishment and relief learning in adult flies. Whereas stimuli that precede shock during training are subsequently avoided as predictors for punishment, stimuli that follow shock during training are later on approached, as they predict relief. Concerning the loss of White we report that pain-relief learning as well as punishment learning is changed. My contribution was a comparison between wild type and the white1118 mutant larvae in odor-reward learning. It turned out that a loss of White has no effect on larval odorant-tastant learning. This study, regarding painrelief learning provides the very first hints concerning the genetic determinants of this form of learning.
Zars and co-workers were able to localize an engram of aversive olfactory memory to the mushroom bodies of Drosophila (Zars et al., 2000). In this thesis, I followed up on this finding in two ways. Inspired by Zars et al. (2000), I first focused on the whether it would also be possible to localize memory extinction.While memory extinction is well established behaviorally, little is known about the underlying circuitry and molecular mechanisms. In extension to the findings by Zars et al (2000), I show that aversive olfactory memories remain localized to a subset of mushroom body Kenyon cells for up to 3 hours. Extinction localizes to the same set of Kenyon cells. This common localization suggests a model in which unreinforced presentations of a previously learned odorant intracellularly antagonizes the signaling cascades underlying memory formation. The second part also targets memory localization, but addresses appetitive memory. I show that memories for the same olfactory cue can be established through either sugar or electric shock reinforcement. Importantly, these memories localize to the same set of neurons within the mushroom body. Thus, the question becomes apparent how the same signal can be associated with different events. It is shown that two different monoamines are specificaly necessary for formation of either of these memories, dopamine in case of electric shock and octopamine in case of sugar memory, respectively. Taking the representation of the olfactory cue within the mushroom bodies into account, the data suggest that the two memory traces are located in the same Kenyon cells, but in separate subcellular domains, one modulated by dopamine, the other by octopamine. Taken together, this study takes two further steps in the search for the engram. (1) The result that in Drosophila olfactory learning several memories are organized within the same set of Kenyon cells is in contrast to the pessimism expressed by Lashley that is might not be possible to localize an engram. (2) Beyond localization, a possibible mechanism how several engrams about the same stimulus can be localized within the same neurons might be suggested by the models of subcellular organisation, as postulated in case of appetitive and aversive memory on the one hand and acquisition and extinction of aversive memory on the other hand.
Im Rahmen dieser Arbeit wurden visuelle Einflüsse auf die Beinplatzierung beim Laufen und auf das Kletterverhalten der Fliege Drosophila melanogaster analysiert. Während sich die Beinplatzierung als vorwiegend taktil gesteuert herausstellte, ist das Klettern sowohl bezüglich der Entscheidung zur Durchführung (Motivationssteuerung) als auch bezüglich der Ausführung selbst unter präziser visueller Kontrolle. Für die Untersuchungen wurde ein Lücken-Überwindungsparadigma entwickelt und die Kinematik des Kletterns über verschieden breite Lücken mit einer eigens entwickelten 3D-Hochgeschwindigkeits-Videoanlage erstmals quantitativ beschrieben. Drei wesentliche Verhaltensanpassungen sorgen dafür, dass die Fliegen die maximal mögliche Spannbreite ihrer Beine voll ausnützen und Lücken von bis zu 170% der eigenen Körperlänge überqueren können. Das Kletterverhalten wird abhängig von der Lückenbreite initiiert und sinnlose Versuche an unüberwindbar breiten Lücken vermieden. Die visuelle Lückenbreitenmessung wurde analysiert; sie beruht auf der Auswertung von Bewegungsparallaxe beim Anlauf. Einige Erkenntnisse aus der Laufforschung an Fliegen wurden auf einem im Rahmen dieser Arbeit modifizierten hexapoden Laufroboter umgesetzt und die Verbesserungen quantifiziert.
Herzinsuffizienz, Depression und Angststörungen treten gehäuft gemeinsam auf und beeinflussen teilweise gegenseitig ihre Prognose. Die Zusammenhänge zwischen diesen Erkrankungen sind bislang nicht aufgeklärt.
In der vorliegenden Arbeit führte ischämische Herzinsuffizienz im Mausmodell zu Depressions-ähnlichem Verhalten innerhalb von 8 Wochen nach Infarktinduktion. Weiter zeigte sich eine Minderung der Gedächtnisleistung. Angst-assoziiertes Verhalten ließ sich nicht nachweisen. Immunhistochemisch konnten keine Veränderungen in spezifischen Hirnarealen nachgewiesen werden. Molekulare Methoden legen Veränderungen des Serotoninstoffwechsels als mögliche Erklärung nahe.
Nach operativer Ligatur eines Herzkrankgefäßes wurden C57/Bl6N Mäuse über einen Zeitraum von 8 Wochen beobachtet. In dieser Zeit wurden neben Herzultraschalluntersuchungen eine Reihe von Verhaltenstest durchgeführt, um depressive und ängstliche Verhaltensstrukturen sowie die kognitive Leistungsfähigkeit beurteilen zu können. Nach Ablauf des Beobachtungszeitraumes wurden das Herz und das Gehirn entnommen und weiteren histologischen und molekularen Untersuchungen zugeführt.
Die histologische Aufarbeitung des Herzens nach Ende des Versuchszeitraumes bestätigte die Beobachtungen anderen Autoren, dass eine Infarktgröße von mehr als 30% mit sehr hoher Wahrscheinlichkeit zur Entstehung einer Herzinsuffizienz führt.
Im der histologischen Aufarbeitung des Gehirns zeigen sich keine strukturellen Veränderungen bei herzkranken Mäusen, die die beobachteten Änderungen im Verhalten begründen könnten. Insbesondere kann eine hypoxische Hirnschädigung durch eine etwaige Minderperfusion empfindlicher Hirnareale ausgeschlossen werden.
Mäuse, die nach Induktion eines Myokardinfarktes eine Herzinsuffizienz entwickeln, zeigen nach 8 Wochen Depressions-assoziiertes, adynamisches Verhalten sowie eine Verminderung der kognitiven Leistungsfähigkeit, nicht aber Anzeichen von Angststörungen. Diesen Verhaltensänderungen kann kein strukturelles Korrelat im Gehirn zugewiesen werden. Dies ist ein Indiz dafür, dass sich Veränderung auf molekularer Ebene vollziehen, welche sich dem Mikroskop entziehen. Die im Myokard beobachtete Regulation des Serotoninstoffwechsels ist ein möglicher Erklärungsansatz hierfür.
Neurodevelopmental disorders, including attention-deficit/hyperactivity disorder (ADHD) and autism spectrum disorder (ASD) are disorders of mostly unknown etiopathogenesis, for which both genetic and environmental influences are expected to contribute to the phenotype observed in patients. Changes at all levels of brain function, from network connectivity between brain areas, over neuronal survival, synaptic connectivity and axonal growth, down to molecular changes and epigenetic modifications are suspected to play a key roles in these diseases, resulting in life-long behavioural changes.
Genome-wide association as well as copy-number variation studies have linked cadherin-13 (CDH13) as a novel genetic risk factor to neuropsychiatric and neurodevelopmental disorders. CDH13 is highly expressed during embryonic brain development, as well as in the adult brain, where it is present in regions including the hippocampus, striatum and thalamus (among others) and is upregulated in response to chronic stress exposure. It is however unclear how CDH13 interacts with environmentally relevant cues, including stressful triggers, in the formation of long-lasting behavioural and molecular changes. It is currently unknown how the environment influences CDH13 and which long term changes in behaviour and gene expression are caused by their interaction. This work therefore investigates the interaction between CDH13 deficiency and neonatal maternal separation (MS) in mice with the aim to elucidate the function of CDH13 and its role in the response to early-life stress (ELS).
For this purpose, mixed litters of wild-type (Cdh13+/+), heterozygous (Cdh13+/-) and homozygous knockout (Cdh13-/-) mice were maternally separated from postnatal day 1 (PN1) to postnatal day 14 (PN14) for 3 hours each day (180MS; PN1-PN14). In a first series of experiments, these mice were subjected to a battery of behavioural tests starting at 8 weeks of age in order to assess motor activity, memory functions as well as measures of anxiety. Subsequently, expression of RNA in various brain regions was measured using quantitativ real-time polymerase chain reaction (qRT-PCR). A second cohort of mice was exposed to the same MS procedure, but was not behaviourally tested, to assess molecular changes in hippocampus using RNA sequencing.
Behavioural analysis revealed that MS had an overall anxiolytic-like effect, with mice after MS spending more time in the open arms of the elevated-plus-maze (EPM) and the light compartment in the light-dark box (LDB). As a notable exception, Cdh13-/- mice did not show an increase of time spent in the light compartment after MS compared to Cdh13+/+ and Cdh13+/- MS mice. During the Barnes-maze learning task, mice of most groups showed a similar ability in learning the location of the escape hole, both in terms of primary latency and primary errors. Cdh13-/- control (CTRL) mice however committed more primary errors than Cdh13-/- MS mice. In the contextual fear conditioning (cFC) test, Cdh13-/- mice showed more freezing responses during the extinction recall, indicating a reduced extinction of fear memory. In the step-down test, an impulsivity task, Cdh13-/- mice had a tendency to wait longer before stepping down from the platform, indicative of more hesitant behaviour. In the same animals, qRT-PCR of several brain areas revealed changes in the GABAergic and glutamatergic systems, while also highlighting changes in the gatekeeper enzyme Glykogensynthase-Kinase 3 (Gsk3a), both in relation to Cdh13 deficiency and MS. Results from the RNA sequencing study and subsequent gene-set enrichment analysis revealed changes in adhesion and developmental genes due to Cdh13 deficiency, while also highlighting a strong link between CDH13 and endoplasmatic reticulum function. In addition, some results suggest that MS increased pro-survival pathways, while a gene x environment analysis showed alterations in apoptotic pathways and migration, as well as immune factors and membrane metabolism. An analysis of the overlap between gene and environment, as well as their interaction, highlighted an effect on cell adhesion factors, underscoring their importance for adaptation to the environment.
Overall, the stress model resulted in increased stress resilience in Cdh13+/+ and Cdh13+/- mice, a change absent in Cdh13-/- mice, suggesting a role of CDH13 during programming and adaptation to early-life experiences, that can results in long-lasting consequences on brain functions and associated behaviours. These changes were also visible in the RNA sequencing, where key pathways for cell-cell adhesion, neuronal survival and cell-stress adaptation were altered. In conclusion, these findings further highlight the role of CDH13 during brain development, while also shedding light on its function in the adaptation and response during (early life) environmental challenges.
Die Arbeit zeigt in erster Linie, dass die zwischenmenschliche Kommunikation entsteht, während man sich in einem interaktiven Prozess befindet. In Zweiter Linie erklärt sie den kulturellen Unterschied. Die verschiedenen Arten des Sprecherverhaltens werden anhand der Erzählung "Unkenrufe" von Günter Grass (1992) untersucht. Die Bedeutungen im Koreanischen Gespräch werden unter anderem mit dem Roman "Der entstellte held" von Mun-yol Yi (1987) erörtert.
Studien zeigen, dass Fahrer in Notfallsituationen meistens eher bremsen als ausweichen, obwohl ausweichen möglicherweise die bessere Strategie zur Kollisionsvermeidung gewesen wäre. Um Fahrer besser bei der Kollisionsvermeidung zu unterstützen, wurden daher in den letzten Jahren Assistenzsysteme entwickelt, die den Fahrer nicht mehr nur bei Notbremsmanövern, sondern auch bei Notausweichmanövern durch einen automatischen Eingriff in die Querführung unterstützen sollen. Allerdings zeigte sich in mehreren Studien, dass das Verhalten der Fahrer die Wirksamkeit dieser Assistenten reduziert, insbesondere wenn der Eingriff des Assistenten über das Lenkrad rückgemeldet wurde.
In dieser Arbeit wurde davon ausgegangen, dass diese Reaktion der Fahrer eine Folge automatischer Korrekturprozesse innerhalb eines psychokybernetischen Regelkreises ist, an dem sensomotorische Regelprozesse zur Steuerung der Lenkradbewegung beteiligt sind. Dazu wurde ein Fahrerverhaltensmodell entwickelt, das den Einfluss der sensomotorischen Regelprozesse im Kontext der Fahraufgabe beschreibt. Auf Basis des Fahrerverhaltensmodells wird angenommen, dass unerwartete haptische Signale am Lenkrad auf Ebene der motorischen Regelung zunächst als Störung des ursprünglichen Handlungsziels interpretiert werden. Um die resultierenden Abweichungen zu korrigieren, wird auf sensomotorischer Ebene ein Korrekturprozess eingeleitet, der erst dann beendet wird, wenn der Fahrer die Möglichkeit hatte, die Situation visuell zu analysieren und sein Handlungsziel an die Situation anzupassen. Dies sollte sich im zeitlichen Verlauf der Fahrerreaktion am Lenkrad widerspiegeln und könnte eine Erklärung für die vom Fahrer verursachte Reduktion der Wirksamkeit sein.
Das Ziel der vorliegenden Arbeit war es, Anhaltspunkte für diese Annahme aufzuzeigen. Im Rahmen von sieben Experimenten wurden der Einfluss von Eingriffen mit haptischer Rückmeldung am Lenkrad und das resultierende Zusammenspiel von sensomotorischen und visuellen Kontrollprozessen untersucht. Alle Studien befassten sich mit Eingriffen in die Querführung, die den Fahrer potenziell bei Notausweichmanövern unterstützen könnten, und betrachteten sowohl Aspekte der Wirksamkeit als auch der Kontrollierbarkeit. Dabei wurde versucht, durch die Gestaltung des Eingriffs, einer gezielten Beeinflussung der Handlungsziele des Fahrers und einer Manipulation der Rückmeldung Unterschiede in der Reaktion des Fahrers auf unerwartete Eingriffe hervorzurufen. Die Lenkreaktionszeit und das Reaktionsmuster der Fahrer dienten hierbei als Indikatoren für die Leistungsfähigkeit der Fahrer, ihre Handlungsziele an die vorliegende Situation anzupassen.
Die Ergebnisse bestätigen die Relevanz der im Modell angenommenen sensomotorischen Kontrollprozesse und damit auch den Einfluss der haptischen Rückmeldung auf das Fahrerverhalten bei automatischen Eingriffen in die Querführung. Die beschriebene Betrachtung des zeitlichen Verlaufs des Lenkverhaltens ermöglicht zudem eine fundierte Evaluation der Fahrer-Fahrzeug-Interaktion, um verschiedene Assistenzsysteme miteinander zu vergleichen. Darüber hinaus liefert die vorliegende Arbeit wertvolle Hinweise für die Gestaltung von Assistenzsystemen, die den Fahrer in Notfallsituationen mit automatischen Eingriffen in die Querführung unterstützen sollen. Insgesamt bietet die Integration sensomotorischer Kontrollprozesse in bestehende Fahrerverhaltensmodelle einen Erklärungsansatz für bestehende Probleme bei der Fahrer-Fahrzeug-Interaktion bei automatischen Eingriffen in die Querführung, wodurch eine Lücke in der aktuellen verkehrspsychologischen Forschung geschlossen wurde.
This study was conducted to determine the influence of different stress factors on the honeybee Apis mellifera. The investigation was motivated by previous experiments that suggested the existence of an unspecific defense mechanism causing a generalized change of flight behavior after the onset of different diseases. This mechanism is thought to impede the ability of flight bees to return to their respective colonies thereby removing the disease from the colony over time. During the last years, the existence of such a “suicidal behavior” was supported by further studies. Thus, an unnoticed, potentially highly effective defense mechanism of social insects was revealed whose spectrum of activity and physiological basics require further investigation. Suggesting that the reaction by the bees is unspecific to different diseases as well as to other potential stress factors, this study was designed to investigate the influence of pathogens, insecticides, and different brood rearing temperatures on different parameters like lifespan, foraging activity, and foraging trip duration of worker bees.