@phdthesis{Schmalz2023, author = {Schmalz, Fabian Dominik}, title = {Processing of behaviorally relevant stimuli at different levels in the bee brain}, doi = {10.25972/OPUS-28882}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-288824}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2023}, abstract = {The behavior of honeybees and bumblebees relies on a constant sensory integration of abiotic or biotic stimuli. As eusocial insects, a sophisticated intraspecific communication as well as the processing of multisensory cues during foraging is of utter importance. To tackle the arising challenges, both honeybees and bumblebees have evolved a sophisticated olfactory and visual processing system. In both organisms, olfactory reception starts at the antennae, where olfactory sensilla cover the antennal surface in a sex-specific manner. These sensilla house olfactory receptor neurons (ORN) that express olfactory receptors. ORNs send their axons via four tracts to the antennal lobe (AL), the prime olfactory processing center in the bee brain. Here, ORNs specifically innervate spheroidal structures, so-called glomeruli, in which they form synapses with local interneurons and projection neurons (PN). PNs subsequently project the olfactory information via two distinct tracts, the medial and the lateral antennal-lobe tract, to the mushroom body (MB), the main center of sensory integration and memory formation. In the honeybee calyx, the sensory input region of the MB, PNs synapse on Kenyon cells (KC), the principal neuron type of the MB. Olfactory PNs mainly innervate the lip and basal ring layer of the calyx. In addition, the basal ring receives input from visual PNs, making it the first site of integration of visual and olfactory information. Visual PNs, carrying sensory information from the optic lobes, send their terminals not only to the to the basal ring compartment but also to the collar of the calyx. Receiving olfactory or visual input, KCs send their axons along the MB peduncle and terminate in the main output regions of the MB, the medial and the vertical lobe (VL) in a layer-specific manner. In the MB lobes, KCs synapse onto mushroom body output neurons (MBON). In so far barely understood processes, multimodal information is integrated by the MBONs and then relayed further into the protocerebral lobes, the contralateral brain hemisphere, or the central brain among others. This dissertation comprises a dichotomous structure that (i) aims to gain more insight into the olfactory processing in bumblebees and (ii) sets out to broaden our understanding of visual processing in honeybee MBONs. The first manuscript examines the olfactory processing of Bombus terrestris and specifically investigates sex-specific differences. We used behavioral (absolute conditioning) and electrophysiological approaches to elaborate the processing of ecologically relevant odors (components of plant odors and pheromones) at three distinct levels, in the periphery, in the AL and during olfactory conditioning. We found both sexes to form robust memories after absolute conditioning and to generalize towards the carbon chain length of the presented odors. On the contrary, electroantennographic (EAG) activity showed distinct stimulus and sex-specific activity, e.g. reduced activity towards citronellol in drones. Interestingly, extracellular multi-unit recordings in the AL confirmed stimulus and sex-specific differences in olfactory processing, but did not reflect the differences previously found in the EAG. Here, farnesol and 2,3-dihydrofarnesol, components of sex-specific pheromones, show a distinct representation, especially in workers, corroborating the results of a previous study. This explicitly different representation suggests that the peripheral stimulus representation is an imperfect indication for neuronal representation in high-order neuropils and ecological importance of a specific odor. The second manuscript investigates MBONs in honeybees to gain more insights into visual processing in the VL. Honeybee MBONs can be categorized into visually responsive, olfactory responsive and multimodal. To clarify which visual features are represented at this high-order integration center, we used extracellular multi-unit recordings in combination with visual and olfactory stimulation. We show for the first time that information about brightness and wavelength is preserved in the VL. Furthermore, we defined three specific classes of visual MBONs that distinctly encode the intensity, identity or simply the onset of a stimulus. The identity-subgroup exhibits a specific tuning towards UV light. These results support the view of the MB as the center of multimodal integration that categorizes sensory input and subsequently channels this information into specific MBON populations. Finally, I discuss differences between the peripheral representations of stimuli and their distinct processing in high-order neuropils. The unique activity of farnesol in manuscript 1 or the representation of UV light in manuscript 2 suggest that the peripheral representation of a stimulus is insufficient as a sole indicator for its neural activity in subsequent neuropils or its putative behavioral importance. In addition, I discuss the influence of hard-wired concepts or plasticity induced changes in the sensory pathways on the processing of such key stimuli in the peripheral reception as well as in high-order centers like the AL or the MB. The MB as the center of multisensory integration has been broadly examined for its olfactory processing capabilities and receives increasing interest about its visual coding properties. To further unravel its role of sensory integration and to include neglected modalities, future studies need to combine additional approaches and gain more insights on the multimodal aspects in both the input and output region.}, subject = {Biene}, language = {en} } @phdthesis{Ruchty2010, author = {Ruchty, Markus}, title = {Sensory basis of thermal orientation in leaf-cutting ants}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-48906}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2010}, abstract = {Leaf-cutting ants have a highly developed thermal sense which the insects use to regulate the own body temperature and also to optimize brood and fungus development. Apart from the already described temperature guided behaviors inside the nest it is unknown to what extent the ants may use their thermal sense outside the nest. As part of the present thesis, the question was addressed whether leaf-cutting ants (Atta vollenweideri) are able to learn the position of a warm object as landmark for orientation during foraging. Using absolute conditioning, it was shown that ten training trials are sufficient to elicit the association be-tween food reward and the temperature stimulus. In the test situation (without reward) a significantly higher amount of ants preferred the heated site compared to the unheated con-trol. Importantly, thermal radiation alone was sufficient to establish the learned association and served as orientation cue during the test situation (chapter IV). Based on the experi-mental design used in the previous chapter, the localization of thermosensitive neurons, which detect the underlying thermal stimuli, is restricted to the head or the antennae of the ants. The antennal sensillum coeloconicum is a potential candidate to detect the thermal stimuli during the orientation behavior. In chapter V the sensillum coeloconicum of Atta vollenweideri was investigated concerning its gross morphology, fine-structure and the phy-siology of the associated thermosensitive neuron. The sensillum is predominantly located on the apical antennal segment (antennal tip) where around 12 sensilla are clustered, and it has a peg-in-pit morphology with a double walled, multiporous peg. The sensory peg is deeply embedded in a cuticular pit, connected to the environment only by a tiny aperture. The sen-sillum houses three receptor neurons of which one is thermosensitive whereas the sensory modality of the other two neurons remains to be shown. Upon stimulation with a drop in temperature, the thermosensitve neuron responds with a phasic-tonic increase in neuronal activity (cold-sensitive neuron) and shows rapid adaptation to prolonged stimulation. In ad-dition, it is shown that thermal radiation is an effective stimulus for the thermosensitive neuron. This is the first evidence that sensilla coeloconica play an important role during the thermal orientation behavior described in chapter IV. During the test situation of the classic-al conditioning paradigm, the ants showed rapid antennal movements, indicating that they scan their environment in order to detect the heated object. Rapid antennal movements will result in rapid discontinuities of thermal radiation that re-quire thermosensitive neurons with outstanding sensitivity and high temporal resolution. In Chapter VI the question was addressed whether the thermosensitive neuron of the sensilla coeloconica fulfils these preconditions. Extracellular recordings revealed that the neuron is extremely sensitive to temperature transients and that, due to the response dynamics, an estimated stimulus frequency of up to 5 Hz can be resolved by the neuron. Already a tem-perature increase of only 0.005 °C leads to a pronounced response of the thermosensitive neuron. Through sensory adaptation, the sensitivity to temperature transients is maintained over a wide range of ambient temperatures. The discovered extreme sensitivity, the high temporal resolution and the pronounced adaptation abilities are further evidence support-ing the idea that sensilla coeloconica receive information of the thermal environment, which the ants may use for orientation. In order to understand how the ants use their thermal environment for orientation, it is ne-cessary to know where and how thermal information is processed in their central nervous system. In Chapter VII the question is addressed where in the brain the thermal information, specifically received by the thermosensitive neuron of sensilla coeloconica, is represented. By selectively staining single sensilla coeloconica, the axons of the receptor neurons could be tracked into the antennal lobe of Atta vollenweideri workers. Each of the three axons termi-nated in a single functional unit (glomerulus) of the antennal lobe. Two of the innervated glomeruli were adjacent to each other and are located lateral, while the third one was clear-ly separate and located medial in the antennal lobe. Using two-photon Ca2+ imaging of an-tennal lobe projection neurons, the general representation of thermal information in the antennal lobe was studied. In 11 investigated antennal lobes up to six different glomeruli responded to temperature stimulation in a single specimen. Both, warm- and cold-sensitive glomeruli could be identified. All thermosensitive glomeruli were located in the medial half of the antennal lobe. Based on the correlative evidence of the general representation of thermal information and the results from the single sensilla stainings, it is assumed that thermal information received by sensilla coeloconica is processed in the medial of the three target glomeruli. This part of the thesis shows the important role of the antennal lobe in temperature processing and links one specific thermosensitive neuron to its target region (a single glomerulus). In chapter V it was shown that the sensilla coeloconica are clustered at the antennal tip and have an extraordinary peg-in-pit morphology. In the last chapter of this thesis (Chapter VIII) the question is addressed whether the morphology of the sensilla coeloconica predicts the receptive field of the thermosensitive neuron during the detection of thermal radiation. The sensory pegs of all sensilla coeloconica in the apical cluster have a similar orientation, which was not constraint by the shape of the antennal tip where the cluster is located. This finding indicates that the sensilla coeloconica function as a single unit. Finally the hypothesis was tested whether a single sensillum could be direction sensitive to thermal radiation based on its eye-catching morphology. By stimulating the thermosensitive neuron from various angles around the sensillum this indeed could be shown. This is the last and most significant evi-dence that the sensilla coeloconica may be adapted to detect spatially distributed heated objects in the environment during the thermal landmark orientation of ants.}, subject = {Neurobiologie}, language = {en} } @phdthesis{Breher2009, author = {Breher, Stephanie}, title = {Die kardiale Funktion von Popdc1 in der Maus: Vom Gen zum Ph{\"a}n}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-37283}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2009}, abstract = {Die Popeye domain containing (Popdc)-Gene bilden eine evolution{\"a}r stark konservierte Genfamilie mit pr{\"a}ferenzieller Expression im Herzen und in der Skelettmuskulatur. In dieser Arbeit konnte gezeigt werden, dass Popdc1 in kardialen Myozyten in Glanzstreifen, lateralen Membranen und im T-Tubuli-System exprimiert wird und mit Ionenkan{\"a}len und anderen myozyt{\"a}ren Membranproteinen wie Cav1.2, Caveolin 3 und NCX1 kolokalisiert ist. Im ventrikul{\"a}ren Reizleitungssystem ist die Expression von Popdc1 gegen{\"u}ber dem ventrikul{\"a}ren Arbeitsmyokard erh{\"o}ht, w{\"a}hrend Atrium und Sinusknoten nahezu {\"a}quivalente Expressionsdom{\"a}nen aufweisen. Mithilfe von elektrophysiologischen Untersuchungen konnte bei den Popdc1-Nullmutanten eine stressinduzierte Sinusbradykardie festgestellt werden, die altersabh{\"a}ngig auftritt und auf Sinuspausen zur{\"u}ckzuf{\"u}hren ist. Histologische Untersuchungen, unter Zuhilfenahme des Sinusknotenmarkers HCN4, zeigten einen Zellverlust im inferioren Teil des Sinusknotens. Popdc1 ist ein Transmembranprotein, das eine 150 Aminos{\"a}ure umfassende, stark konservierte Popeye-Dom{\"a}ne aufweist. F{\"u}r diese Dom{\"a}ne konnte auf struktureller Ebene eine Homologie zu zyklischen Nukleotid-Bindungsdom{\"a}nen vorhergesagt und eine Bindung an cAMP und cGMP experimentell demonstriert werden. Es handelt sich bei den Popdc-Proteinen um einen neuen Zweig der Bindungsproteine f{\"u}r zyklische Nukleotidmonophosphate (cNMP). Die Bindungssequenz weist signifikante Unterschiede zu anderen bereits identifizierten cNMP-Bindungsproteinen auf. Weiterhin wurde die Interaktion von Popdc1 mit TREK1, einem Mitglied der Tandemporenkan{\"a}le untersucht. Es zeigte sich, dass Popdc1 nach Koexpression in Froschoozyten, den TREK1-Strom erh{\"o}ht und dass die \&\#946;-adrenerge Inhibition des TREK1 Kanals durch Popdc1 verst{\"a}rkt wird. Im Arbeitsmyokard, im kardialen Reizleitungssystem und in kotransfizierten Cos7-Zellen werden beide Proteine {\"u}berlappend exprimiert. Diese Daten zeigen, dass Popdc1 eine wichtige Funktion bei der Regulation der Schrittmacheraktivit{\"a}t, der Aufrechterhaltung der Sinusknotenmorphologie und der Modulation von Ionenkan{\"a}len aufweist. Interessanterweise wurden von unserer Arbeitsgruppe bereits die gleichen Ph{\"a}notypen f{\"u}r die Popdc2 Maus beschrieben, sodass die Popdc Genfamilie {\"u}berlappende und redundante Funktionen aufweist.}, subject = {Sinusknoten}, language = {de} }