@phdthesis{Busch2009, author = {Busch, Sebastian}, title = {Morphologie und Organisation individueller oktopaminerger Neurone im Gehirn von Drosophila m.}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-36203}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2009}, abstract = {Das biogene Amin Oktopamin moduliert verschiedene Verhaltensweisen in Invertebraten. In verschiedenen Insektenspezies, wie Heuschrecken, Grillen oder Schaben, ist die Funktion und die Architektur des peripheren oktopaminergen Systems auf Einzelzellebene bekannt. Um die zellul{\"a}re Grundlage f{\"u}r die verschiedenen Funktionen von Oktopamin im Zentralnervensystem zu verstehen, ist eine detaillierte Analyse der Architektur des zentralen oktopaminergen Systems notwendig. Innerhalb meiner Doktorarbeit fertigte eine anatomische Karte individueller oktopaminerger Neurone des adulten Hirns von Drosophila an. Ich nutzte die Flp-out Technik, um einzelne oktopaminerge Neurone anzuf{\"a}rben. Anhand ihrer Projektionsmuster konnte ich 28 verschiedene Zelltypen in vier Oktopamin-immunoreaktiven Zellclustern identifizieren. Ihre Morphologie sowie die Verteilung genetischer Marker zeigte, dass die meisten Zelltypen mehrere Neuropile innervieren und dabei eine klare Trennung von Pr{\"a}- und Postsynaptischen Regionen aufweisen. Die Mehrheit der Zelltypen bildet dendritische Verzweigungen in einer bestimmten Region, der posterioren Slope. Jedoch innerviert jeder Zelltyp stereotyp eine bestimmte Kombination von Zielregionen im Gehirn. Das deutet stark darauf hin, dass oktopaminerge Neurone kombinatorisch organisiert sind: Jedes individuelle Neuron scheint Komponente eines spezifischen neuronalen Schaltkreises zu sein. Dabei k{\"o}nnte jeder Zelltyp eine Art "Modul" darstellen, das selektiv bestimmte Funktionen in den jeweiligen Zielregionen moduliert. Das oktopaminerge Mittelliniencluster des Sub{\"o}sophagealen Ganglions zeigt eine besondere zellul{\"a}re Organisation. Es besteht aus gepaarten und ungepaarten Neuronen, die des Zentralgehirn mit extensiven Verzweigungen versorgen. Um die Ordnung hinter dieser komplexen Organisation zu verstehen, wurden die segmentale Organistion der Mittellinienneurone auf Einzelzellebene analysiert und ihre embryonalen Anlagen verglichen. Letzteres erm{\"o}glichte die morphologische Analyse von einzelnen oktopaminergen Mittellinienklonen. OA-VPM und OA-VUM Neurone bilden zusammen drei Subcluster im Sub{\"o}sophagealen Ganglion, die wahrscheinlich die drei gnathalen Neuromere repr{\"a}sentieren. Alle OA-VUM Neurone stammen von der embryonalen Mittellinie ab. In den mandibularen und maxillaren Neuromeren formen sie morphologisch identische Zelltypen, mit stereotypen Innervationsmustern. OA-VPM Neurone gehen nicht aus der embryonalen Mittellinie hervor und sind nicht segmental dupliziert. Diese Arbeit vermittelt nicht nur einen Eindruck {\"u}ber die Architektur individueller oktopaminerger Neurone, sondern auch {\"u}ber die Organisation des oktopaminergen Systems auf Einzelzellebene.}, subject = {Drosophila}, language = {de} } @phdthesis{Nuwal2010, author = {Nuwal, Nidhi}, title = {Optogenetic investigation of nervous system functions using walking behavior and genome wide transcript analysis of Synapsin and Sap47 mutants of Drosophila}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-51694}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2010}, abstract = {PART I Animals need to constantly evaluate their external environment in order to survive. In some cases the internal state of the animal changes to cope with it's surrounding. In our study we wanted to investigate the role of amines in modulating internal states of Drosophila. We have designed a behavioral paradigm where the flies are fixed in space but can walk on a small styrofoam ball suspended by a gentle stream of air. The walking activity of flies was used as behavioral readout. PART I Animals need to constantly evaluate their external environment in order to survive. In some cases the internal state of the animal changes to cope with it's surrounding. In our study we wanted to investigate the role of amines in modulating internal states of Drosophila. We have designed a behavioral paradigm where the flies are fixed in space but can walk on a small styrofoam ball suspended by a gentle stream of air. The walking activity of flies was used as behavioral readout. An operant training paradigm was established by coupling one of the walking directions to incidence of heat punishment. We observed that animals quickly realized the contingency of punishment with walking direction and avoided walking in the punished direction in the presence of punishment, but did not continue walking in the unpunished direction in the absence of the punishment. This would indicate that the flies do not form a memory for the punished direction or rapidly erase it under new conditions. On having established the paradigm with heat punishment we have attempted to activate selected subsets of neuronal populations of Drosophila while they were walking on the ball. The selective activation of neurons was achieved by expressing the light-activated ion channel channelrhodopsin-2 (ChR2) using the Gal4-UAS system and coupling the unidirectional walking of the animals on the ball with the incidence of blue light required to activate the channels and depolarize the neurons. The feasibility of this approach was tested by light-activating sugar sensitive gustatory receptor neurons expressing ChR2, we found that when the light was actuated the flies preferred to turn in one direction the optically "rewarded" direction. Next we similarly activated different subsets of aminergic neurons. We observed that in our setup animals avoided to turn in the direction which was coupled to activation of dopaminergic neurons indicating that release of dopamine is disliked by the animals. This is in accordance with associative learning experiments where dopamine is believed to underlie the formation of an association between a neutral conditioned stimulus with the aversive unconditioned stimulus. However, when we activated tyraminergic/octopaminergic neurons we did not observe any directional preference. The activation of dopaminergic and tyraminergic/octopaminergic neurons led to arousal of the animals indicating that we were indeed successful in activating those neurons. Also, the activation of serotonergic neurons did not have any effect on directional preference of the animals. With this newly established paradigm it will be interesting to find out if in insects like in mammals a reward mediating system exists and to test subsets of aminergic or peptidergic neurons that could possibly be involved in a reward signaling system which has not been detected in our study. Also, it would be interesting to localize neuropile regions that would be involved in mediating choice behavior in our paradigm. PART II In collaboration with S. Kneitz (IZKF Wuerzburg) and T. Nuwal we performed genome-wide expression analysis of two pre-synaptic mutants - Synapsin (Syn97) and Synapse associated protein of 47 kDa (Sap47156). The rationale behind these experiments was to identify genes that were up- or down-regulated due to these mutations. The microarray experiments provided us with several candidate genes some of which we have verified by qPCR. From our qPCR analysis we can conclude that out of the verified genes only Cirl transcripts seem to be reproducibly down regulated in Synapsin mutants. The Cirl gene codes for a calcium independent receptor for latrotoxin. Further qPCR experiments need to be performed to verify other candidate genes. The molecular interactions between CIRL and SYN or their genes should now be investigated in detail.}, subject = {Taufliege}, language = {en} } @phdthesis{KayaZeeb2023, author = {Kaya-Zeeb, Sinan David}, title = {Octopaminergic Signaling in the Honeybee Flight Muscles : A Requirement for Thermogenesis}, doi = {10.25972/OPUS-31408}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-314089}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2023}, abstract = {For all animals the cold represents a dreadful danger. In the event of severe heat loss, animals fall into a chill coma. If this state persists, it is inevitably followed by death. In poikilotherms (e.g. insects), the optimal temperature range is narrow compared to homeotherms (e.g. mammals), resulting in a critical core temperature being reached more quickly. As a consequence, poikilotherms either had to develop survival strategies, migrate or die. Unlike the majority of insects, the Western honeybee (Apis mellifera) is able to organize itself into a superorganism. In this process, worker bees warm and cool the colony by coordinated use of their flight muscles. This enables precise control of the core temperature in the hive, analogous to the core body temperature in homeothermic animals. However, to survive the harsh temperatures in the northern hemisphere, the thermogenic mechanism of honeybees must be in constant readiness. This mechanism is called shivering thermogenesis, in which honeybees generate heat using their flight muscles. My thesis presents the molecular and neurochemical background underlying shivering thermogenesis in worker honeybees. In this context, I investigated biogenic amine signaling. I found that the depletion of vesicular monoamines impairs thermogenesis, resulting in a decrease in thoracic temperature. Subsequent investigations involving various biogenic amines showed that octopamine can reverse this effect. This clearly indicates the involvement of the octopaminergic system. Proceeding from these results, the next step was to elucidate the honeybee thoracic octopaminergic system. This required a multidisciplinary approach to ultimately provide profound insights into the function and action of octopamine at the flight muscles. This led to the identification of octopaminergic flight muscle controlling neurons, which presumably transport octopamine to the flight muscle release sites. These neurons most likely innervate octopamine β receptors and their activation may stimulate intracellular glycolytic pathways, which ensure sufficient energy supply to the muscles. Next, I examined the response of the thoracic octopaminergic system to cold stress conditions. I found that the thoracic octopaminergic system tends towards an equilibrium, even though the initial stress response leads to fluctuations of octopamine signaling. My results indicate the importance of the neuro-muscular octopaminergic system and thus the need for its robustness. Moreover, cold sensitivity was observed for the expression of one transcript of the octopamine receptor gene AmOARβ2. Furthermore, I found that honeybees without colony context show a physiological disruption within the octopaminergic system. This disruption has profound effects on the honeybees protection against the cold. I could show how important the neuro-muscular octopaminergic system is for thermogenesis in honeybees. In this context, the previously unknown neurochemical modulation of the honeybee thorax has now been revealed. I also provide a broad basis to conduct further experiments regarding honeybee thermogenesis and muscle physiology.}, subject = {Octopamin}, language = {en} }