TY - THES A1 - Nguyen, Tu Anh Thi T1 - Neural coding of different visual cues in the monarch butterfly sun compass T1 - Neuronale Kodierung verschiedener visueller Signale im Sonnenkompass des Monarchfalters N2 - Monarch butterflies are famous for their annual long-distance migration. Decreasing temperatures and reduced daylight induce the migratory state in the autumn generation of monarch butterflies. Not only are they in a reproductive diapause, they also produce fat deposits to be prepared for the upcoming journey: Driven by their instinct to migrate, they depart from their eclosion grounds in the northern regions of the North American continent and start their southern journey to their hibernation spots in Central Mexico. The butterflies cover a distance of up to 4000 km across the United States. In the next spring, the same butterflies invert their preferred heading direction due to seasonal changes and start their northward spring migration. The spring migration is continued by three consecutive butterfly generations, until the animals repopulate the northern regions in North America as non-migratory monarch butterflies. The monarch butterflies’ migratory state is genetically and epigenetically regulated, including the directed flight behavior. Therefore, the insect’s internal compass system does not only have to encode the butterflies preferred, but also its current heading direction. However, the butterfly’s internal heading representation has to be matched to external cues, to avoid departing from its initial flight path and increasing its risk of missing its desired destination. During the migratory flight, visual cues provide the butterflies with reliable orientation information. The butterflies refer to the sun as their main orientation cue. In addition to the sun, the butterflies likely use the polarization pattern of the sky for orientation. The sky compass signals are processed within a region in the brain, termed the central complex (CX). Previous research on the CX neural circuitry of the monarch butterflies demonstrated that tangential central complex neurons (TL) carry the visual input information into the CX and respond to a simulated sun and polarized light. However, whether these cells process additional visual cues like the panoramic skyline is still unknown. Furthermore, little is known about how the migratory state affects visual cue processing. In addition to this, most experiments studying the monarch butterfly CX focused on how neurons process single visual cues. However, how combined visual stimuli are processed in the CX is still unknown. This thesis is investigating the following questions: 1) How does the migratory state affect visual cue processing in the TL cells within the monarch butterfly brain? 2) How are multiple visual cues integrated in the TL cells? 3) How is compass information modulated in the CX? To study these questions, TL neurons from both animal groups (migratory and non-migratory) were electrophysiologically characterized using intracellular recordings while presenting different simulated celestial cues and visual sceneries. I showed that the TL neurons of migratory butterflies are more narrowly tuned to the sun, possibly helping them in keeping a directed flight course during migration. Furthermore, I found that TL cells encode a panoramic skyline, suggesting that the CX network combines celestial and terrestrial information. Experiments with combined celestial stimuli revealed that the TL cells combine both cue information linearly. However, if exposing the animals to a simulated visual scenery containing a panoramic skyline and a simulated sun, the single visual cues are weighted differently. These results indicate that the CX’s input region can flexibly adapt to different visual cue conditions. Furthermore, I characterize a previously unknown neuron in the monarch butterfly CX which responds to celestial stimuli and connects the CX with other brain neuropiles. How this cell type affects heading direction encoding has yet to be determined. N2 - Monarchfalter sind berühmt für ihre jährlichen Migrationsflüge. Sinkende Temperaturen und die verkürzte Tageslichtbestrahlung induzieren die Migration in einer Herbstgeneration der Monarchfalter. Sie sind nicht nur in reproduktiver Diapause, sondern produzieren Fettreserven für die bevorstehende Reise: Getrieben von ihrem Migrationsinstinkt verlassen sie ihre Schlüpfstätten in den nördlichen Regionen des Nordamerikanischen Kontinents und starten ihre südliche Wanderung zu ihren Überwinterunsgstätten in Zentralmexiko. Dabei legen die Schmetterlinge Strecken von bis zu 4000 km durch die Vereinigten Staaten zurück. Im nächsten Frühling kehren die gleichen Schmetterlinge ihre Vorzugsrichtung durch die jahreszeitlich bedingten Veränderungen um und die Tiere bewegen sich nordwärts. Die Frühlingsgeneration wird insgesamt über drei Schmetterlingsgeneration durchgeführt, bis die Tiere die nördlichen Regionen in Nordamerika wieder als nicht-migrierende Monarchfalter besiedeln. Der Migrationsstatus der Monarchfalter ist genetisch und epigenetisch reguliert, was auch das gerichtete Flugverhalten einschließt. Demnach muss das interne Kompasssystem der Falter nicht nur die bevorzugte, sondern auch die aktuelle Flugrichtung prozessieren. Die interne Repräsentation der Flugrichtung des Falters muss jedoch mit der Umwelt abgeglichen werden, ansonsten droht das Tier von der ursprünglichen Flugrichtung abzuweichen und erhöht das Risiko den Wunschort nicht zu erreichen. Während des Migrationsfluges bieten visuelle Signale verlässliche Orientierungsinformationen. Dabei ist die Sonne ihre Hauptorientierungsreferenz. Zusätzlich zur Sonne nutzen die Schmetterlinge vermutlich noch das Polarisationsmuster des Himmels zur Orientierung. Diese Himmelskompasssignale werden im Gehirn in einer Gehirnregion, den Zentralkomplex, integriert. Vergangene Forschungsprojekte am Zentralkomplex haben gezeigt, dass tangentiale Zentralkomplex-Neurone (TL) die visuellen Signale in den Zentralkomplex leiten und auf eine simulierte Sonne und polarisiertes Licht sensitiv sind. Ob diese Zellen noch weitere visuelle Signale verarbeiten, wie zum Beispiel den Horizont eines Panoramas, ist nicht bekannt. Auch ist der Einfluss des Migrationsstatus auf die visuelle Signalverarbeitung im Zentralkomplex bisher unerforscht. Des Weiteren haben die meisten Experimente am Zentralkomplex des Monarchfalters den Fokus auf die Verarbeitung einzelner simulierter visueller Reize gelegt. Wie aber Kombinationen aus Stimuli im Zentralkomplex verarbeitet werden, ist nicht bekannt.   Diese Dissertation beschäftigt sich mit folgenden Fragen: 1) Wie beeinflusst der Migrationsstatus die visuelle Reizverarbeitung in TL-Zellen im Monarchfaltergehirn? 2) Wie werden mehrere visuelle Reize in TL-Zellen miteinander kombiniert? 3) Wie wird Kompassinformation im Zentralkomplex moduliert? In diesem Zusammenhang wurden TL-Neurone aus beiden Gruppen (migrierende und nichtmigrierende Monarchfalter) elektrophysiologisch mittels intrazellulärer Aufnahmen charakterisiert, während den Tieren unterschiedliche simulierte Himmelkompasssignale und visuelle Szenerien präsentiert wurden. Hierbei konnte ich zeigen dass die TL-Neuronen in migrierenden Tieren ein engeres Tuning zur Sonne aufwiesen, was den Tieren helfen könnte, eine gerichtete Flugrichtung zu halten. Außerdem antworten die TL-Neurone auf ein Panorama, womit der Zentralkomplex in der Lage wäre, Himmelskompasssignale mit terrestrischer Information zu kombinieren. In Experimenten mit zwei kombinierten simulierten Himmelskompasssignalen konnte ich zeigen, dass die TL-Zellen beide Signalinformationen linear miteinander verrechnen. Wenn die TL-Zellen jedoch mit einer visuellen Szenerie stimuliert werden, welche eine simulierte Sonne und ein Panorama beinhaltet, werden die einzelnen visuellen Signale unterschiedlich gewichtet. Die Ergebnisse sind ein Hinweis darauf, dass die Eingangsregion im Zentralkomplex sich flexibel an die visuellen Signalbedingungen anpassen können. Außerdem habe ich ein bis dahin unbekanntes Neuron während meiner Studien charakterisieren können, welches auf simulierte Himmelskompasssignale antwortet und den Zentralkomplex mit anderen Neuropilen im Gehirn verbindet. Wie dieser Neuronentyp Einfluss auf die Kodierung der Flugrichtung nimmt, muss in der Zukunft weiter erforscht werden. KW - Monarchfalter KW - Danaus plexippus KW - Gehirn KW - Orientierung KW - Visuelle Wahrnehmung KW - monarch butterfly KW - brain KW - orientation KW - visual perception KW - central complex Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-303807 ER - TY - JOUR A1 - Rössler, Wolfgang A1 - Grob, Robin A1 - Fleischmann, Pauline N. T1 - The role of learning-walk related multisensory experience in rewiring visual circuits in the desert ant brain JF - Journal of Comparative Physiology A N2 - Efficient spatial orientation in the natural environment is crucial for the survival of most animal species. Cataglyphis desert ants possess excellent navigational skills. After far-ranging foraging excursions, the ants return to their inconspicuous nest entrance using celestial and panoramic cues. This review focuses on the question about how naïve ants acquire the necessary spatial information and adjust their visual compass systems. Naïve ants perform structured learning walks during their transition from the dark nest interior to foraging under bright sunlight. During initial learning walks, the ants perform rotational movements with nest-directed views using the earth’s magnetic field as an earthbound compass reference. Experimental manipulations demonstrate that specific sky compass cues trigger structural neuronal plasticity in visual circuits to integration centers in the central complex and mushroom bodies. During learning walks, rotation of the sky-polarization pattern is required for an increase in volume and synaptic complexes in both integration centers. In contrast, passive light exposure triggers light-spectrum (especially UV light) dependent changes in synaptic complexes upstream of the central complex. We discuss a multisensory circuit model in the ant brain for pathways mediating structural neuroplasticity at different levels following passive light exposure and multisensory experience during the performance of learning walks. KW - central complex KW - mushroom body KW - multisensory navigation KW - visual memory KW - neuronal and synaptic plasticity Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-325096 VL - 209 IS - 4 ER - TY - JOUR A1 - Nguyen, Tu Anh Thi A1 - Beetz, M. Jerome A1 - Merlin, Christine A1 - Pfeiffer, Keram A1 - el Jundi, Basil T1 - Weighting of celestial and terrestrial cues in the monarch butterfly central complex JF - Frontiers in Neural Circuits N2 - Monarch butterflies rely on external cues for orientation during their annual long-distance migration from Northern US and Canada to Central Mexico. These external cues can be celestial cues, such as the sun or polarized light, which are processed in a brain region termed the central complex (CX). Previous research typically focused on how individual simulated celestial cues are encoded in the butterfly's CX. However, in nature, the butterflies perceive several celestial cues at the same time and need to integrate them to effectively use the compound of all cues for orientation. In addition, a recent behavioral study revealed that monarch butterflies can rely on terrestrial cues, such as the panoramic skyline, for orientation and use them in combination with the sun to maintain a directed flight course. How the CX encodes a combination of celestial and terrestrial cues and how they are weighted in the butterfly's CX is still unknown. Here, we examined how input neurons of the CX, termed TL neurons, combine celestial and terrestrial information. While recording intracellularly from the neurons, we presented a sun stimulus and polarized light to the butterflies as well as a simulated sun and a panoramic scene simultaneously. Our results show that celestial cues are integrated linearly in these cells, while the combination of the sun and a panoramic skyline did not always follow a linear integration of action potential rates. Interestingly, while the sun and polarized light were invariantly weighted between individual neurons, the sun stimulus and panoramic skyline were dynamically weighted when both stimuli were simultaneously presented. Taken together, this dynamic weighting between celestial and terrestrial cues may allow the butterflies to flexibly set their cue preference during navigation. KW - insect KW - central complex KW - navigation KW - orientation KW - landmark KW - migration KW - panorama KW - lepidoptera Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-279445 SN - 1662-5110 VL - 16 ER - TY - JOUR A1 - Hensgen, Ronja A1 - England, Laura A1 - Homberg, Uwe A1 - Pfeiffer, Keram T1 - Neuroarchitecture of the central complex in the brain of the honeybee: Neuronal cell types JF - Journal of Comparative Neurology N2 - The central complex (CX) in the insect brain is a higher order integration center that controls a number of behaviors, most prominently goal directed locomotion. The CX comprises the protocerebral bridge (PB), the upper division of the central body (CBU), the lower division of the central body (CBL), and the paired noduli (NO). Although spatial orientation has been extensively studied in honeybees at the behavioral level, most electrophysiological and anatomical analyses have been carried out in other insect species, leaving the morphology and physiology of neurons that constitute the CX in the honeybee mostly enigmatic. The goal of this study was to morphologically identify neuronal cell types of the CX in the honeybee Apis mellifera. By performing iontophoretic dye injections into the CX, we traced 16 subtypes of neuron that connect a subdivision of the CX with other regions in the bee's central brain, and eight subtypes that mainly interconnect different subdivisions of the CX. They establish extensive connections between the CX and the lateral complex, the superior protocerebrum and the posterior protocerebrum. Characterized neuron classes and subtypes are morphologically similar to those described in other insects, suggesting considerable conservation in the neural network relevant for orientation. KW - RRID: AB_2337244 KW - RRID: AB_2315425 KW - central complex KW - insect brain KW - neuroanatomy KW - sky compass KW - Apis mellifera Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-215566 VL - 529 ER - TY - JOUR A1 - Grob, Robin A1 - Heinig, Niklas A1 - Grübel, Kornelia A1 - Rössler, Wolfgang A1 - Fleischmann, Pauline N. T1 - Sex-specific and caste-specific brain adaptations related to spatial orientation in Cataglyphis ants JF - Journal of Comparative Neurology N2 - Cataglyphis desert ants are charismatic central place foragers. After long-ranging foraging trips, individual workers navigate back to their nest relying mostly on visual cues. The reproductive caste faces other orientation challenges, i.e. mate finding and colony foundation. Here we compare brain structures involved in spatial orientation of Cataglyphis nodus males, gynes, and foragers by quantifying relative neuropil volumes associated with two visual pathways, and numbers and volumes of antennal lobe (AL) olfactory glomeruli. Furthermore, we determined absolute numbers of synaptic complexes in visual and olfactory regions of the mushroom bodies (MB) and a major relay station of the sky-compass pathway to the central complex (CX). Both female castes possess enlarged brain centers for sensory integration, learning, and memory, reflected in voluminous MBs containing about twice the numbers of synaptic complexes compared with males. Overall, male brains are smaller compared with both female castes, but the relative volumes of the optic lobes and CX are enlarged indicating the importance of visual guidance during innate behaviors. Male ALs contain greatly enlarged glomeruli, presumably involved in sex-pheromone detection. Adaptations at both the neuropil and synaptic levels clearly reflect differences in sex-specific and caste-specific demands for sensory processing and behavioral plasticity underlying spatial orientation. KW - antennal lobe KW - synaptic plasticity KW - polymorphism KW - optic lobes KW - mushroom bodies KW - learning and memory KW - central complex Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-257299 VL - 529 IS - 18 ER - TY - JOUR A1 - Habenstein, Jens A1 - Amini, Emad A1 - Grübel, Kornelia A1 - el Jundi, Basil A1 - Rössler, Wolfgang T1 - The brain of Cataglyphis ants: Neuronal organization and visual projections JF - Journal of Comparative Neurology N2 - Cataglyphis ants are known for their outstanding navigational abilities. They return to their inconspicuous nest after far‐reaching foraging trips using path integration, and whenever available, learn and memorize visual features of panoramic sceneries. To achieve this, the ants combine directional visual information from celestial cues and panoramic scenes with distance information from an intrinsic odometer. The largely vision‐based navigation in Cataglyphis requires sophisticated neuronal networks to process the broad repertoire of visual stimuli. Although Cataglyphis ants have been subjected to many neuroethological studies, little is known about the general neuronal organization of their central brain and the visual pathways beyond major circuits. Here, we provide a comprehensive, three‐dimensional neuronal map of synapse‐rich neuropils in the brain of Cataglyphis nodus including major connecting fiber systems. In addition, we examined neuronal tracts underlying the processing of visual information in more detail. This study revealed a total of 33 brain neuropils and 30 neuronal fiber tracts including six distinct tracts between the optic lobes and the cerebrum. We also discuss the importance of comparative studies on insect brain architecture for a profound understanding of neuronal networks and their function. KW - 3D reconstruction KW - ant brain KW - antennal lobes KW - central complex KW - insect KW - mushroom bodies KW - optical tracts Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-218212 VL - 528 IS - 18 SP - 3479 EP - 3506 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 - Held, Martina A1 - Berz, Annuska A1 - Hensgen, Ronja A1 - Muenz, Thomas S. A1 - Scholl, Christina A1 - Rössler, Wolfgang A1 - Homberg, Uwe A1 - Pfeiffer, Keram T1 - Microglomerular Synaptic Complexes in the Sky-Compass Network of the Honeybee Connect Parallel Pathways from the Anterior Optic Tubercle to the Central Complex JF - Frontiers in Behavioral Neuroscience N2 - While the ability of honeybees to navigate relying on sky-compass information has been investigated in a large number of behavioral studies, the underlying neuronal system has so far received less attention. The sky-compass pathway has recently been described from its input region, the dorsal rim area (DRA) of the compound eye, to the anterior optic tubercle (AOTU). The aim of this study is to reveal the connection from the AOTU to the central complex (CX). For this purpose, we investigated the anatomy of large microglomerular synaptic complexes in the medial and lateral bulbs (MBUs/LBUs) of the lateral complex (LX). The synaptic complexes are formed by tubercle-lateral accessory lobe neuron 1 (TuLAL1) neurons of the AOTU and GABAergic tangential neurons of the central body’s (CB) lower division (TL neurons). Both TuLAL1 and TL neurons strongly resemble neurons forming these complexes in other insect species. We further investigated the ultrastructure of these synaptic complexes using transmission electron microscopy. We found that single large presynaptic terminals of TuLAL1 neurons enclose many small profiles (SPs) of TL neurons. The synaptic connections between these neurons are established by two types of synapses: divergent dyads and divergent tetrads. Our data support the assumption that these complexes are a highly conserved feature in the insect brain and play an important role in reliable signal transmission within the sky-compass pathway. KW - sky-compass orientation KW - insect brain KW - polarization vision KW - synaptic connections KW - anterior optic tubercle KW - central complex KW - honeybee Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-165080 VL - 10 IS - 186 ER -