TY - THES A1 - Lyutova, Radostina T1 - Functional dissection of recurrent feedback signaling within the mushroom body network of the Drosophila larva T1 - Funktionelle Analyse einer Rückkopplungsschleife innerhalb der Pilzkörper von Drosophila Larven N2 - Behavioral adaptation to environmental changes is crucial for animals’ survival. The prediction of the outcome of one owns action, like finding reward or avoiding punishment, requires recollection of past experiences and comparison with current situation, and adjustment of behavioral responses. The process of memory acquisition is called learning, and the Drosophila larva came up to be an excellent model organism for studying the neural mechanisms of memory formation. In Drosophila, associative memories are formed, stored and expressed in the mushroom bodies. In the last years, great progress has been made in uncovering the anatomical architecture of these brain structures, however there is still a lack of knowledge about the functional connectivity. Dopamine plays essential roles in learning processes, as dopaminergic neurons mediate information about the presence of rewarding and punishing stimuli to the mushroom bodies. In the following work, the function of a newly identified anatomical connection from the mushroom bodies to rewarding dopaminergic neurons was dissected. A recurrent feedback signaling within the neuronal network was analyzed by simultaneous genetic manipulation of the mushroom body Kenyon cells and dopaminergic neurons from the primary protocerebral anterior (pPAM) cluster, and learning assays were performed in order to unravel the impact of the Kenyon cells-to-pPAM neurons feedback loop on larval memory formation. In a substitution learning assay, simultaneous odor exposure paired with optogenetic activation of Kenyon cells in fruit fly larvae in absence of a rewarding stimulus resulted in formation of an appetitive memory, whereas no learning behavior was observed when pPAM neurons were ablated in addition to the KC activation. I argue that the activation of Kenyon cells may induce an internal signal that mimics reward exposure by feedback activation of the rewarding dopaminergic neurons. My data further suggests that the Kenyon cells-to-pPAM communication relies on peptidergic signaling via short neuropeptide F and underlies memory stabilization. N2 - Eine Anpassung des eigenen Verhaltens an Veränderungen der Umwelt ist unerlässlich für das Überleben der Tiere. Vorhersage über die Konsequenzen der eigenen Handlungen, z.B. belohnt oder bestraft zu werden, erfordert den Vergleich von gemachten Erfahrungen und der aktuellen Situation. Eine solche Vorhersage kann zu einer Verhaltensanpassung führen. Der Prozess der Gedächtnisbildung ist auch bekannt als Lernen. Als hervorragender Modellorganismus zum Erforschen der Lernverhaltensmechanismen hat sich die Drosophila Larve etabliert. In Drosophila werden olfaktorische Gedächtnisse in einer bilateralen Struktur des Protozerebrums gespeichert, den Pilzkörpern. In den letzten Jahren sind erhebliche Fortschritte in der Beschreibung der anatomischen Strukturen der Pilzkörper gemacht worden. Allerdings ist die funktionelle Konnektivität dieser Gehirnstrukturen noch unzureichend verstanden. Dopamin spielt eine essentielle Rolle in Lernprozessen. Dopaminerge Neurone vermitteln Informationen über das Vorliegen belohnender oder bestrafender Stimuli. Die Funktion einer vor kurzem beschriebenen anatomischen Verbindung von den Pilzkörpern zu belohnenden dopaminergen pPAM Neuronen wurde in der folgenden Arbeit untersucht, und der rückläufige Signalweg innerhalb des neuronalen Netzwerks wurde mittels simultaner genetischer Manipulation der Pilzkörperneurone, die sog. Kenyon Zellen, und der pPAM Neuronen analysiert. Der Einfluss der Rückkopplungsschleife zwischen Kenyon Zellen und pPAM Neuronen auf das larvale Verhalten wurde durch verschiedene Verhaltensexperimente getestet. In dieser Arbeit wurden Drosophila Larven darauf trainiert, einen Duft mit optogenetischer Aktivierung der Pilzkörper Neurone zu assoziieren. Dabei konnte die Ausbildung eines positiven Gedächtnisses in Abwesenheit einer physischen Belohnung beobachtet werden. Wurden aber zusätzlich die dopaminergen Neurone des pPAM Clusters ablatiert, so zeigten die Larven keine Expression des Gedächtnisses mehr. Meine Daten zeigten, dass die Aktivierung der Kenyon Zellen in einer Aktivierung der dopaminergen Neurone über der Rückkopplungsschleife resultiert, und dementsprechend einen internen Belohnungssignalweg einleitet. Dadurch wird das Vorhandensein einer „echten“ Belohnung nachgeahmt. Es konnte weiterhin gezeigt werden, dass die Rückkopplung von den Kenyon Zellen zu den pPAM Neurone von peptiderger Natur ist. Die Kenyon Zellen exprimieren das Neuropeptid short neuropeptide F, das an Rezeptoren in den pPAM Neurone bindet und das Lernverhalten beeinflusst. Darüber hinaus konnte gezeigt werden, dass die Aktivierung der Rückkopplungsschleife eine Auswirkung auf die Stabilität des positiven Gedächtnisses in Richtung nachhaltiger Erinnerungen hat. KW - Lernen KW - Lernverhalten KW - Gedächtnis KW - Dopamin KW - Drosophila KW - learning KW - memory KW - Drosophila KW - dopamine KW - short neuropeptide F Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-187281 ER - TY - JOUR A1 - Chen, Yi-chun A1 - Mishra, Dushyant A1 - Gläß, Sebastian A1 - Gerber, Bertram T1 - Behavioral Evidence for Enhanced Processing of the Minor Component of Binary Odor Mixtures in Larval Drosophila JF - Frontiers in Psychology N2 - A fundamental problem in deciding between mutually exclusive options is that the decision needs to be categorical although the properties of the options often differ but in grade. We developed an experimental handle to study this aspect of behavior organization. Larval Drosophila were trained such that in one set of animals odor A was rewarded, but odor B was not (A+/B), whereas a second set of animals was trained reciprocally (A/B+). We then measured the preference of the larvae either for A, or for B, or for “morphed” mixtures of A and B, that is for mixtures differing in the ratio of the two components. As expected, the larvae showed higher preference when only the previously rewarded odor was presented than when only the previously unrewarded odor was presented. For mixtures of A and B that differed in the ratio of the two components, the major component dominated preference behavior—but it dominated less than expected from a linear relationship between mixture ratio and preference behavior. This suggests that a minor component can have an enhanced impact in a mixture, relative to such a linear expectation. The current paradigm may prove useful in understanding how nervous systems generate discrete outputs in the face of inputs that differ only gradually. KW - learning KW - memory KW - perception KW - compound conditioning KW - decision-making KW - Drosophila Y1 - 2017 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-170011 VL - 8 IS - 1923 ER - TY - JOUR A1 - Grob, Robin A1 - Fleischmann, Pauline N. A1 - Grübel, Kornelia A1 - Wehner, Rüdiger A1 - Rössler, Wolfgang T1 - The role of celestial compass information in Cataglyphis ants during learning walks and for neuroplasticity in the central complex and mushroom bodies JF - Frontiers in Behavioral Neuroscience N2 - Central place foragers are faced with the challenge to learn the position of their nest entrance in its surroundings, in order to find their way back home every time they go out to search for food. To acquire navigational information at the beginning of their foraging career, Cataglyphis noda performs learning walks during the transition from interior worker to forager. These small loops around the nest entrance are repeatedly interrupted by strikingly accurate back turns during which the ants stop and precisely gaze back to the nest entrance—presumably to learn the landmark panorama of the nest surroundings. However, as at this point the complete navigational toolkit is not yet available, the ants are in need of a reference system for the compass component of the path integrator to align their nest entrance-directed gazes. In order to find this directional reference system, we systematically manipulated the skylight information received by ants during learning walks in their natural habitat, as it has been previously suggested that the celestial compass, as part of the path integrator, might provide such a reference system. High-speed video analyses of distinct learning walk elements revealed that even exclusion from the skylight polarization pattern, UV-light spectrum and the position of the sun did not alter the accuracy of the look back to the nest behavior. We therefore conclude that C. noda uses a different reference system to initially align their gaze directions. However, a comparison of neuroanatomical changes in the central complex and the mushroom bodies before and after learning walks revealed that exposure to UV light together with a naturally changing polarization pattern was essential to induce neuroplasticity in these high-order sensory integration centers of the ant brain. This suggests a crucial role of celestial information, in particular a changing polarization pattern, in initially calibrating the celestial compass system. KW - sky-compass pathway KW - visual orientation KW - look-back behavior KW - desert ants KW - vector navigation KW - memory KW - central complex KW - mushroom body Y1 - 2017 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-159235 VL - 11 IS - 226 ER - TY - JOUR A1 - Hassouna, I. A1 - Ott, C. A1 - Wüstefeld, L. A1 - Offen, N. A1 - Neher, R. A. A1 - Mitkovski, M. A1 - Winkler, D. A1 - Sperling, S. A1 - Fries, L. A1 - Goebbels, S. A1 - Vreja, I. C. A1 - Hagemeyer, N. A1 - Dittrich, M. A1 - Rossetti, M. F. A1 - Kröhnert, K. A1 - Hannke, K. A1 - Boretius, S. A1 - Zeug, A. A1 - Höschen, C. A1 - Dandekar, T. A1 - Dere, E. A1 - Neher, E. A1 - Rizzoli, S. O. A1 - Nave, K.-A. A1 - Sirén, A.-L. A1 - Ehrenreich, H. T1 - Revisiting adult neurogenesis and the role of erythropoietin for neuronal and oligodendroglial differentiation in the hippocampus JF - Molecular Psychiatry N2 - Recombinant human erythropoietin (EPO) improves cognitive performance in neuropsychiatric diseases ranging from schizophrenia and multiple sclerosis to major depression and bipolar disease. This consistent EPO effect on cognition is independent of its role in hematopoiesis. The cellular mechanisms of action in brain, however, have remained unclear. Here we studied healthy young mice and observed that 3-week EPO administration was associated with an increased number of pyramidal neurons and oligodendrocytes in the hippocampus of similar to 20%. Under constant cognitive challenge, neuron numbers remained elevated until >6 months of age. Surprisingly, this increase occurred in absence of altered cell proliferation or apoptosis. After feeding a \(^{15}\)N-leucine diet, we used nanoscopic secondary ion mass spectrometry, and found that in EPO-treated mice, an equivalent number of neurons was defined by elevated \(^{15}\)N-leucine incorporation. In EPO-treated NG2-Cre-ERT2 mice, we confirmed enhanced differentiation of preexisting oligodendrocyte precursors in the absence of elevated DNA synthesis. A corresponding analysis of the neuronal lineage awaits the identification of suitable neuronal markers. In cultured neurospheres, EPO reduced Sox9 and stimulated miR124, associated with advanced neuronal differentiation. We are discussing a resulting working model in which EPO drives the differentiation of non-dividing precursors in both (NG2+) oligodendroglial and neuronal lineages. As endogenous EPO expression is induced by brain injury, such a mechanism of adult neurogenesis may be relevant for central nervous system regeneration. KW - neural stem-cells KW - recombinat-human-erythropoietin KW - cognitive functions KW - pyramidal neurons KW - nervous-sytem KW - brain-injury KW - mouse-brain KW - progenitors KW - mice KW - memory Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-186669 VL - 21 IS - 12 ER - TY - JOUR A1 - Düzel, Emrah A1 - van Praag, Henriette A1 - Sendtner, Michael T1 - Can physical exercise in old age improve memory and hippocampal function? JF - Brain N2 - Physical exercise can convey a protective effect against cognitive decline in ageing and Alzheimer’s disease. While the long-term health-promoting and protective effects of exercise are encouraging, it’s potential to induce neuronal and vascular plasticity in the ageing brain is still poorly understood. It remains unclear whether exercise slows the trajectory of normal ageing by modifying vascular and metabolic risk factors and/or consistently boosts brain function by inducing structural and neurochemical changes in the hippocampus and related medial temporal lobe circuitry—brain areas that are important for learning and memory. Hence, it remains to be established to what extent exercise interventions in old age can improve brain plasticity above and beyond preservation of function. Existing data suggest that exercise trials aiming for improvement and preservation may require different outcome measures and that the balance between the two may depend on exercise intensity and duration, the presence of preclinical Alzheimer’s disease pathology, vascular and metabolic risk factors and genetic variability. KW - hippocampus KW - exercise KW - cerebral blood flow KW - Alzheimer's disease KW - memory Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-190721 VL - 139 IS - 3 ER - TY - JOUR A1 - Bahník, Štěpán A1 - Stuchlík, Aleš T1 - Temporal and spatial strategies in an active place avoidance task on Carousel: a study of effects of stability of arena rotation speed in rats JF - PeerJ N2 - The active place avoidance task is a dry-arena task used to assess spatial navigation and memory in rodents. In this task, a subject is put on a rotating circular arena and avoids an invisible sector that is stable in relation to the room. Rotation of the arena means that the subject's avoidancemust be active, otherwise the subject will be moved in the to-be-avoided sector by the rotation of the arena and a slight electric shock will be administered. The present experiment explored the effect of variable arena rotation speed on the ability to avoid the to-be-avoided sector. Subjects in a group with variable arena rotation speed learned to avoid the sector with the same speed and attained the same avoidance ability as rats in a group with a stable arena rotation speed. Only a slight difference in preferred position within the room was found between the two groups. No difference was found between the two groups in the dark phase, where subjects could not use orientation cues in the room. Only one rat was able to learn the avoidance of the to-be-avoided sector in this phase. The results of the experiment suggest that idiothetic orientation and interval timing are not crucial for learning avoidance of the to-be-avoided sector. However, idiothetic orientation might be sufficient for avoiding the sector in the dark. KW - navigation KW - interval timing KW - rats KW - morris water maze KW - hippocampal-neurons KW - D2 receptors KW - animal model KW - acute MK-801 KW - memory KW - behavior KW - dissociation KW - flexibility KW - spatial navigation KW - substratal idiothetic navigation KW - inertial idiothetic navigation Y1 - 2015 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-141931 VL - 3 IS - e1257 ER - TY - JOUR A1 - Lichtenstein, Leonie A1 - Sommerlandt, Frank M. J. A1 - Spaethe, Johannes T1 - Dumb and Lazy? A Comparison of Color Learning and Memory Retrieval in Drones and Workers of the Buff-Tailed Bumblebee, Bombus terrestris, by Means of PER Conditioning JF - PLoS One N2 - More than 100 years ago, Karl von Frisch showed that honeybee workers learn and discriminate colors. Since then, many studies confirmed the color learning capabilities of females from various hymenopteran species. Yet, little is known about visual learning and memory in males despite the fact that in most bee species males must take care of their own needs and must find rewarding flowers to obtain food. Here we used the proboscis extension response (PER) paradigm to study the color learning capacities of workers and drones of the bumblebee, Bombus terrestris. Light stimuli were paired with sucrose reward delivered to the insects’ antennae and inducing a reflexive extension of the proboscis. We evaluated color learning (i.e. conditioned PER to color stimuli) in absolute and differential conditioning protocols and mid-term memory retention was measured two hours after conditioning. Different monochromatic light stimuli in combination with neutral density filters were used to ensure that the bumblebees could only use chromatic and not achromatic (e.g. brightness) information. Furthermore, we tested if bees were able to transfer the learned information from the PER conditioning to a novel discrimination task in a Y-maze. Both workers and drones were capable of learning and discriminating between monochromatic light stimuli and retrieved the learned stimulus after two hours. Drones performed as well as workers during conditioning and in the memory test, but failed in the transfer test in contrast to workers. Our data clearly show that bumblebees can learn to associate a color stimulus with a sugar reward in PER conditioning and that both workers and drones reach similar acquisition and mid-term retention performances. Additionally, we provide evidence that only workers transfer the learned information from a Pavlovian to an operant situation. KW - memory KW - bumblebees KW - behavioral conditioning KW - honey bees KW - flowers KW - sucrose KW - bees KW - learning Y1 - 2015 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-125832 VL - 10 IS - 7 ER - TY - JOUR A1 - Topolinski, Sascha A1 - Strack, Fritz T1 - Corrugator activity confirms immediate negative affect in surprise JF - Frontiers in Psychology N2 - The emotion of surprise entails a complex of immediate responses, such as cognitive interruption, attention allocation to, and more systematic processing of the surprising stimulus. All these processes serve the ultimate function to increase processing depth and thus cognitively master the surprising stimulus. The present account introduces phasic negative affect as the underlying mechanism responsible for this switch in operating mode. Surprising stimuli are schema discrepant and thus entail cognitive disfluency, which elicits immediate negative affect. This affect in turn works like a phasic cognitive tuning switching the current processing mode from more automatic and heuristic to more systematic and reflective processing. Directly testing the initial elicitation of negative affect by surprising events, the present experiment presented high and low surprising neutral trivia statements to N = 28 participants while assessing their spontaneous facial expressions via facial electromyography. High compared to low surprising trivia elicited higher corrugator activity, indicative of negative affect and mental effort, while leaving zygomaticus (positive affect) and frontalis (cultural surprise expression) activity unaffected. Future research shall investigate the mediating role of negative affect in eliciting surprise-related outcomes. KW - phasic affective modulation KW - processing fluency KW - intuition KW - surprise KW - EMG KW - elevator EMG activity KW - facial expressions KW - semantic coherence KW - emotion KW - judgments KW - attention KW - memory KW - affect KW - expectancy Y1 - 2015 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-144068 VL - 6 IS - 134 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 - Bing-Shi Tan, Ariel A1 - Kress, Sebastian A1 - Castro, Leticia A1 - Sheppard, Allan A1 - Raghunath, Michael T1 - Cellular re- and de-programming by microenvironmental memory: why short TGF-β1 pulses can have long effects JF - Fibrogenesis Tissue Repair N2 - Background Fibrosis poses a substantial setback in regenerative medicine. Histopathologically, fibrosis is an excessive accumulation of collagen affected by myofibroblasts and this can occur in any tissue that is exposed to chronic injury or insult. Transforming growth factor (TGF)-β1, a crucial mediator of fibrosis, drives differentiation of fibroblasts into myofibroblasts. These cells exhibit α-smooth muscle actin (α-SMA) and synthesize high amounts of collagen I, the major extracellular matrix (ECM) component of fibrosis. While hormones stimulate cells in a pulsatile manner, little is known about cellular response kinetics upon growth factor impact. We therefore studied the effects of short TGF-β1 pulses in terms of the induction and maintenance of the myofibroblast phenotype. Results Twenty-four hours after a single 30 min TGF-β1 pulse, transcription of fibrogenic genes was upregulated, but subsided 7 days later. In parallel, collagen I secretion rate and α-SMA presence were elevated for 7 days. A second pulse 24 h later extended the duration of effects to 14 days. We could not establish epigenetic changes on fibrogenic target genes to explain the long-lasting effects. However, ECM deposited under singly pulsed TGF-β1 was able to induce myofibroblast features in previously untreated fibroblasts. Dependent on the age of the ECM (1 day versus 7 days’ formation time), this property was diminished. Vice versa, myofibroblasts were cultured on fibroblast ECM and cells observed to express reduced (in comparison with myofibroblasts) levels of collagen I. Conclusions We demonstrated that short TGF-β1 pulses can exert long-lasting effects on fibroblasts by changing their microenvironment, thus leaving an imprint and creating a reciprocal feed-back loop. Therefore, the ECM might act as mid-term memory for pathobiochemical events. We would expect this microenvironmental memory to be dependent on matrix turnover and, as such, to be erasable. Our findings contribute to the current understanding of fibroblast induction and maintenance, and have bearing on the development of antifibrotic drugs. KW - cytokine KW - fibrosis KW - transforming growth factor-beta 1 KW - extracellular matrix KW - memory KW - pulses KW - phenotype KW - kinetics Y1 - 2013 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-131898 VL - 6 IS - 12 ER -