@phdthesis{Schmitt2017, author = {Schmitt, Dominique}, title = {Initial characterization of mouse Syap1 in the nervous system: Search for interaction partners, effects of gene knockdown and knockout, and tissue distribution with focus on the adult brain}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-147319}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2017}, abstract = {The synapse-associated protein of 47 kDa (Sap47) in Drosophila melanogaster is the founding member of a phylogenetically conserved protein family of hitherto unknown molecular function. Sap47 is localized throughout the entire neuropil of adult and larval brains and closely associated with glutamatergic presynaptic vesicles of larval motoneurons. Flies lacking the protein are viable and fertile and do not exhibit gross structural or marked behavioral deficiencies indicating that Sap47 is dispensable for basic synaptic function, or that its function is compensated by other related proteins. Syap1 - the mammalian homologue of Sap47 - was reported to play an essential role in Akt1 phosphorylation in various non-neuronal cells by promoting the association of mTORC2 with Akt1 which is critical for the downstream signaling cascade for adipogenesis. The function of Syap1 in the vertebrate nervous system, however, is unknown so far. The present study provides a first description of the subcellular localization of mouse Syap1 in cultured motoneurons as well as in selected structures of the adult mouse nervous system and reports initial functional experiments. Preceding all descriptive experiments, commercially available Syap1 antibodies were tested for their specificity and suitability for this study. One antibody raised against the human protein was found to recognize specifically both the human and murine Syap1 protein, providing an indispensable tool for biochemical, immunocytochemical and immunohistochemical studies. In the course of this work, a Syap1 knockout mouse was established and investigated. These mice are viable and fertile and do not show obvious changes in morphology or phenotype. As observed for Sap47 in flies, Syap1 is widely distributed in the synaptic neuropil, particularly in regions rich in glutamatergic synapses but it was also detected at perinuclear Golgi-associated sites in certain groups of neuronal somata. In motoneurons the protein is especially observed in similar perinuclear structures, partially overlapping with Golgi markers and in axons, dendrites and axonal growth cones. Biochemical and immunohistochemical analyses showed widespread Syap1 expression in the central nervous system with regionally distinct distribution patterns in cerebellum, hippocampus or olfactory bulb. Besides its expression in neurons, Syap1 is also detected in non-neuronal tissue e.g. liver, kidney and muscle tissue. In contrast, non-neuronal cells in the brain lack the typical perinuclear accumulation. First functional studies with cultured primary motoneurons on developmental, structural and functional aspects reveal no influence of Syap1 depletion on survival and morphological features such as axon length or dendritic length. Contrary to expectations, in neuronal tissues or cultured motoneurons a reduction of Akt phosphorylation at Ser473 or Thr308 was not detected after Syap1 knockdown or knockout.}, subject = {Synapse}, language = {en} } @phdthesis{Batsching2016, author = {Batsching, Sophie Johanna}, title = {Behavior under uncontrollable stress in \(Drosophila\) \(melanogaster\) - Learned Helplessness revisited}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-145416}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2016}, abstract = {In order to select the appropriate behavior, it is important to choose the right behavior at the right time out of many options. It still remains unclear nowadays how exactly this is managed. To address this question, I expose flies (Drosophila melanogaster) to uncontrollable stress to study their behavior under restrictive circumstances by using the so-called shock box. Exposing animals to uncontrollable stress may have an impact on subsequent behavior and can last for some time. The animal learns that whatever it does, it cannot change the situation and therefore can develop something called learned helplessness. The term was first conceptualized by two American psychologists Maier and Seligman (1967), who discovered this phenomenon while doing experiments with dogs. They found out that dogs which are exposed to inescapable stress, later fail in a learning task ('shuttle box'). In this work the walking patterns of three different types of experimental flies, walking in a small dark chamber, were evaluated. Using the triadic design (Seligman and Maier, 1967), flies were either exposed to electric shock randomly (yoked), could turn it off by being active (master) or did not receive punishment at all (control). Master flies were shocked whenever they sat for more than 0.9 seconds. At the same time yoked flies received a shock as well independent of what they were doing, to ensure the same amount of shocks received and to create random punishment pattern for the yoked group. With this so-called no-idleness paradigm flies were conditioned either 10 minutes, which resulted in a short (3 minutes) after-effect, or 20 minutes that turned out to be more stable (10 minutes). In a second part, the behavior during the 20 minute conditioning and a 10 minutes post-test was described in detail. Female flies of the yoked group developed lower activity levels, longer pauses and walked more slowly than master and control flies during conditioning. In the time after the shocks while still in the box, the yoked flies also reduced the frequency and duration of walking bouts as well as their walking speed. Additionally, they took more time to resume walking after the onset of an electric shock than master flies (escape latency) and turned out to make less pauses lasting between 1-1.5 seconds which supports the finding concerning the escape latency. Male flies, tested under the same conditions, showed a slightly weaker after-effect regarding the difference between master and yoked during conditioning and post-test when compared to female flies. When comparing the 20 minutes conditioning with subsequent 10 minutes test in the heat and the shock box in parallel, one finds the same effect: Flies which do not have control over the shocks, lower their activity, make less but longer pauses and walk more slowly than their respective master flies. Despite the similar effect of heat and shock on the flies, some differences between the devices occurred, which can partly be explained by different humidity conditions as well as by different surfaces within the chambers. When the control over the shocks is given back to the yoked flies, it takes them about seven minutes to realize it. One could also show that dopamine levels in the brain were reduced in comparison to flies which did not receive shocks. Yoked flies also were impaired in a place learning task (place learning) and their reaction to light (exit from the box towards the light) directly after conditioning. After characterizing the walking behavior in the chambers, the study deals with the question whether the effects observed in the chambers transfer to different environments. In free walk they only differed from flies which did not receive electric shocks and no effect of uncontrollability was transferred to courtship behavior. Handling as the cause could be excluded. Since handling could be exclude to be the cause of losing the effect, I assumed that the behavior shown in the boxes are context depend. Not only were the after-effects of inescapable shock subject of the current research also the impact of the rearing situation on the response to electric shock was investigated in the present study. Flies which grew up in a single-reared situation turned out to be less affected by inescapable stress in both sexes. In the next part, the first steps to unravel the neuronal underpinning were taken. A mutant - fumin - which is defective in the dopamine re-uptake transporter showed less reaction to inescapable foot shocks, while a mutant for the gene which encodes an adenylate cyclase (rutabaga2080) resulted in a good score during conditioning, but showed no stable after-effect. Downregulating the expression of the adenylate cyclase gene (rutabaga) in different parts of the mushroom bodies showed, that rutabaga is necessary in the α'β'-lobes for expressing the differences between master and yoked flies in the no-idleness paradigm. The study further confirmed previous findings, that rutabaga is needed in operant but not in classical conditioning. As a result, the study could show that not the stimulus itself causes the state of uncontrollability but the fact that the fly learned that it was not in control of the stimulus. This state turned out to be context and time dependent.}, subject = {Taufliege}, language = {en} } @phdthesis{Halder2011, author = {Halder, Partho}, title = {Identification and characterization of synaptic proteins of Drosophila melanogaster using monoclonal antibodies of the Wuerzburg Hybridoma Library}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-67325}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2011}, abstract = {For a large fraction of the proteins expressed in the human brain only the primary structure is known from the genome project. Proteins conserved in evolution can be studied in genetic models such as Drosophila. In this doctoral thesis monoclonal antibodies (mAbs) from the Wuerzburg Hybridoma library are produced and characterized with the aim to identify the target antigen. The mAb ab52 was found to be an IgM which recognized a cytosolic protein of Mr ~110 kDa on Western blots. The antigen was resolved by two-dimensional gel electrophoresis (2DE) as a single distinct spot. Mass spectrometric analysis of this spot revealed EPS-15 (epidermal growth factor receptor pathway substrate clone 15) to be a strong candidate. Another mAb from the library, aa2, was already found to recognize EPS-15, and comparison of the signal of both mAbs on Western blots of 1D and 2D electrophoretic separations revealed similar patterns, hence indicating that both antigens could represent the same protein. Finally absence of the wild-type signal in homozygous Eps15 mutants in a Western blot with ab52 confirmed the ab52 antigen to be EPS-15. Thus both the mAbs aa2 and ab52 recognize the Drosophila homologue of EPS-15. The mAb aa2, being an IgG, is more suitable for applications like immunoprecipitation (IP). It has already been submitted to the Developmental Studies Hybridoma Bank (DSHB) to be easily available for the entire research community. The mAb na21 was also found to be an IgM. It recognizes a membrane associated antigen of Mr ~10 kDa on Western blots. Due to the membrane associated nature of the protein, it was not possible to resolve it by 2DE and due to the IgM nature of the mAb it was not possible to enrich the antigen by IP. Preliminary attempts to biochemically purify the endogenously expressed protein from the tissue, gave promising results but could not be completed due to lack of time. Thus biochemical purification of the protein seems possible in order to facilitate its identification by mass spectrometry. Several other mAbs were studied for their staining pattern on cryosections and whole mounts of Drosophila brains. However, many of these mAbs stained very few structures in the brain, which indicated that only a very limited amount of protein would be available as starting material. Because these antibodies did not produce signals on Western blots, which made it impossible to enrich the antigens by electrophoretic methods, we did not attempt their purification. However, the specific localization of these proteins makes them highly interesting and calls for their further characterization, as they may play a highly specialized role in the development and/or function of the neural circuits they are present in. The purification and identification of such low expression proteins would need novel methods of enrichment of the stained structures.}, subject = {Taufliege}, language = {en} } @phdthesis{Koenig2016, author = {K{\"o}nig, Sebastian}, title = {Spatially selective visual attention in Drosophila melanogaster}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-134452}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2016}, abstract = {Finding the right behavior at the right time is one of the major tasks of brains. In a natural scenery there is often an abundance of stimuli present and the brain has to separate the relevant from the irrelevant ones. Selective visual attention (SVA) is a property of higher visual systems that achieves this separation, as it allows to '[…] focus on one source of sensory input to the exclusion of others' (Luck and Mangun, 1996). There are probably several forms of SVA depending upon the criteria used for the separation, such as salience, color, location in space, novelty, or motion. Many studies have investigated SVA in humans and non-human primates. However, complex functions like attention were initially not expected to be already implemented in the brains of simple organisms like Drosophila. After a first demonstration of selective attention in the fly (Wolf and Heisenberg, 1980), it took some time until other studies included attentional mechanisms in their argumentation to explain certain behaviors of Drosophila. However, their definition and characterization of attention differed and often was ambiguous. Here, one particular form, spatially selective visual attention in the fly Drosophila is investigated. It has been shown earlier that the fly spontaneously may restrict its behavioral responses in stationary flight to the visual stimuli on one side of the visual field. On the basis of experiments of Sareen et al., (2011) it has been conjectured that the fly has a focus of attention (FoA) and that the fly responds to the visual stimuli within this area of the visual field. Whether the FoA is the adequate concept for this spatial property of SVA in the fly needs to be further discussed and is a subject also of the present study. At this stage, the concept will be used in the description of the new results expanding the characterization of SVA. This study continued the investigation of SVA during tethered flight with variable but controlled visual input and an automated primary data evaluation. This standardized paradigm allowed for analysis of wild-type behavior as well as for a comparison of several mutant and pharmacologically manipulated strains to the wild-type. Some properties of human SVA like the occurrence of externally as well as internally caused shifts of attention were found in Drosophila and it could be shown, that SVA in the fly can be externally guided and has an attention span. Additionally, a neurotransmitter and proteins, which play a significant role in SVA were discovered. Based on this, the genetic tools available for Drosophila provided the means to a first examination of cells and circuits involved in SVA. Finally, the free walk behavior of flies that had been shown to have compromised SVA was characterized. The results suggested that the observed phenotypes of SVA were not behavior specific. Covert shifts of the FoA were investigated. The FoA can be externally guided by visual cues to one or the other side of the visual field and even after the cue has disappeared it remains there for <4s. An intriguing finding of this study is the fact, that the quality of the cue determines whether it is attractive or repellent. For example a cue can be changed from being repellent (negative) to being attractive (positive) by changing its oscillation amplitude from 4° to 2°. Testing the effectiveness of cues in the upper and lower visual field separately, revealed that the perception of a cue by the fly is not exclusively based on a sum of its specifications. Because positive cueing did not have an after-effect in each of the two half-fields alone, but did so if the cue was shown in both, the fly seems to evaluate the cue for each combination of parameters specifically. Whether this evaluation of the cue changed on a trial-to-trial basis or if the cue in some cases failed to shift the FoA can at this point not be determined. Looking at the responses of the fly to the displacement of a black vertical stripe showed that they can be categorized as no responses, syn-directional responses (following the direction of motion of the stripe) and anti-directional responses (in the opposite direction of the motion of the stripe). The yaw-torque patterns of the latter bared similarities with spontaneous body saccades and they most likely represented escape attempts of the fly. Syn-directional responses, however, were genuine object responses, distinguishable by a longer latency until they were elicited and a larger amplitude. These properties as well as the distribution of response polarities were not influenced by the presence or absence of a cue. When two stripes were displaced simultaneously in opposite directions the rate of no responses increased in comparison to the displacement of a single stripe. If one of the stripes was cued, both, the responses towards and away from the side of cue resembled the syn-directional responses. Significant progress was made with the elucidation of the neuronal underpinnings of SVA. Ablation of the mushroom bodies (MB) demonstrated their requirement for SVA. Furthermore, it was shown that dopamine signaling has to be balanced between too much and too little. Either inhibiting the synthesis of dopamine or its re-uptake at the synapse via the dDAT impaired the flies' susceptibility to cueing. Using the Gal4/UAS system, cell specific expression or knockdown of the dDAT was used to scrutinize the role of MB sub-compartments in SVA. The αβ-lobes turned out to be necessary and sufficient to maintain SVA. The Gal4-line c708a labels only a subset of Kenyon cells (KC) within the αβ-lobes, αβposterior. These cells stand out, because of (A) the mesh-like arrangement of their fibers within the lobes and (B) the fact that unlike the other KCs they bypass the calyx and thereby the main source of olfactory input to the MBs, forming connections only in the posterior accessory calyx (Tanaka et al., 2008). This structure receives no or only marginal olfactory input, suggesting for it a role in tasks other than olfaction. This study shows their requirement in a visual task by demonstrating that they are necessary to uphold SVA. Restoring dDAT function in these approximately only 90 cells was probably insufficient to lower the dopamine concentration at the relevant synapses and hence a rescue failed. Alternatively, the processes mediating SVA at the αβ-lobes might require an interplay between all of their KCs. In conclusion, the results provide an initial point for future research to fully understand the localization of and circuitry required for SVA in the brain. In the experiments described so far, attention has been externally guided. However, flies are also able to internally shift their FoA without any cues from the outside world. In a set of 60 consecutive simultaneous displacements of two stripes, they were more likely to produce a response with the same polarity as the preceding one than a random polarity selection predicted. This suggested a dwelling of the FoA on one side of the visual field. Assuming that each response was influenced by the previous one in a way that the probability to repeat the response polarity was increased by a certain factor (dwelling factor, df), a random selection of response type including a df was computed. Implementation of the df removed the difference between observed probability of polarity repetition and the one suggested by random selection. When the interval between displacements was iteratively increased to 5s, no significant df could be detected anymore for pauses longer than 4s. In conclusion, Drosophila has an attention span of approximately 4s. Flies with a mutation in the radish gene expressed no after-effect of cueing and had a shortened attention span of about 1s. The dDAT inhibitor methylphenidate is able to rescue the first, but does not affect the latter phenotype. Probably, radish is differently involved in the two mechanisms. This study showed, that endogenous (covert) shifts of spatially selective visual attention in the fly Drosophila can be internally and externally guided. The variables determining the quality of a cue turned out to be multifaceted and a more systematic approach is needed for a better understanding of what property or feature of the cue changes the way it is evaluated by the fly. A first step has been made to demonstrate that SVA is a fundamental process and compromising it can influence the characteristics of other behaviors like walking. The existence of an attention span, the dependence of SVA on dopamine as well as the susceptibility to pharmacological manipulations, which in humans are used to treat respective diseases, point towards striking similarities between SVA in humans and Drosophila.}, subject = {Taufliege}, language = {en} } @phdthesis{Ehmann2015, author = {Ehmann, Nadine}, title = {Linking the active zone ultrastructure to function in Drosophila}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-118186}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2015}, abstract = {Accurate information transfer between neurons governs proper brain function. At chemical synapses, communication is mediated via neurotransmitter release from specialized presynaptic intercellular contact sites, so called active zones. Their molecular composition constitutes a precisely arranged framework that sets the stage for synaptic communication. Active zones contain a variety of proteins that deliver the speed, accuracy and plasticity inherent to neurotransmission. Though, how the molecular arrangement of these proteins influences active zone output is still ambiguous. Elucidating the nanoscopic organization of AZs has been hindered by the diffraction-limited resolution of conventional light microscopy, which is insufficient to resolve the active zone architecture on the nanometer scale. Recently, super-resolution techniques entered the field of neuroscience, which yield the capacity to bridge the gap in resolution between light and electron microscopy without losing molecular specificity. Here, localization microscopy methods are of special interest, as they can potentially deliver quantitative information about molecular distributions, even giving absolute numbers of proteins present within cellular nanodomains. This thesis puts forward an approach based on conventional immunohistochemistry to quantify endogenous protein organizations in situ by employing direct stochastic optical reconstruction microscopy (dSTORM). Focussing on Bruchpilot (Brp) as a major component of Drosophila active zones, the results show that the cytomatrix at the active zone is composed of units, which comprise on average ~137 Brp molecules, most of which are arranged in approximately 15 heptameric clusters. To test for a quantitative relationship between active zone ultrastructure and synaptic output, Drosophila mutants and electrophysiology were employed. The findings indicate that the precise spatial arrangement of Brp reflects properties of short-term plasticity and distinguishes distinct mechanistic causes of synaptic depression. Moreover, functional diversification could be connected to a heretofore unrecognized ultrastructural gradient along a Drosophila motor neuron.}, subject = {Taufliege}, language = {en} } @phdthesis{Proft2014, author = {Proft, Florian Lukas Patrick}, title = {Molekulare Wirkmechanismen des Antidepressivums Venlafaxin - genetische Untersuchungen in Maus und Mensch}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-109201}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2014}, abstract = {Depressive Erkrankungen verursachen sowohl das pers{\"o}nliche Leid der erkrankten Individuen als auch volkswirtschaftlichen Schaden durch krankheitsbedingten Arbeitsausfall und Belastung der Gesundheitsversorgungssysteme. Therapeutische Konzepte wie die Anwendung pharmakotherapeutischer Intervention sind in unterschiedlichem Maß von Erfolg gekr{\"o}nt. Zahlreiche somatische Faktoren wurden mit der {\"A}tiologie depressiver St{\"o}rungen in Verbindung gebracht. Die prim{\"a}r verfolgten pharmakologischen Ans{\"a}tze basieren nach wie vor auf Erkenntnissen aus der Mitte des vergangenen Jahrhunderts. In erster Linie setzt die Pharmakotherapie Substanzen ein, die die Wiederaufnahme monoaminerger Neurotransmitter (Serotonin, Noradrenalin, zum Teil auch Dopamin) aus dem synaptischen Spalt inhibieren und nach einer allerdings meist mehrw{\"o}chigen, regelm{\"a}ßigen Einnahme des Pr{\"a}parates zu einem R{\"u}ckgang der depressiven Symptomatik f{\"u}hren. Andererseits kann jedoch bei zahlreichen Erkrankten auch nach fortgesetzter Therapie mit verschiedenen Behandlungsans{\"a}tzen keine Remission verzeichnet werden und es stellt sich die Frage nach der Ursache dieser Diskrepanz. Im Fokus der vorliegenden Arbeit stand der als Antidepressivum eingesetzte selektive Serotonin- / Noradrenalin-Wiederaufnahme-Inhibitor Venlafaxin. Durch Blockade des pr{\"a}synaptischen Serotonin- und Noradrenalin-Transporters f{\"u}hrt Venlafaxin initial zu einer intensivierten Neurotransmission. Die Zielstrukturen von Venlafaxin sind der pr{\"a}synaptische Serotonin- und der Noradrenalin-Transporter, wobei aufgrund unterschiedlicher Affinit{\"a}t eine geringe Dosis beziehungsweise Konzentration als rein serotonerg betrachtet wird und bei einer hohen Dosis beziehungsweise Konzentration sowohl die Wiederaufnahme von Serotonin als auch Noradrenalin inhibiert wird. Es wurden in dieser Arbeit zwei Ziele verfolgt. Im ersten Teil wurde mittels Gen-expressionsuntersuchungen nach potentiellen Effektoren von Venlafaxin gesucht, um prinzipielle Mechanismen der antidepressiven Wirkung zu identifizieren und auf ihrer Basis die Entwicklung spezifischerer Intervention zu erm{\"o}glichen. Der zweite Teil beinhaltet eine pharmakogenetische Untersuchung am Menschen. Ziel war zu evaluieren, inwieweit die Expressionsaktivit{\"a}t von SLC6A2 und SLC6A4 und damit die pr{\"a}synaptische Transportkapazit{\"a}t in Kombination mit der Serumkonzentration aktiver Substanz als Pr{\"a}diktor des therapeutischen Effektes dienen kann. Die Kenntnis dieser Zusammenh{\"a}nge w{\"u}rde bei Vorliegen eines bestimmten Genotyps eine gezieltere Titration der individuell ben{\"o}tigten Konzentration erm{\"o}glichen und k{\"o}nnte die Effektivit{\"a}t der Therapie steigern. F{\"u}r die Genexpressionsuntersuchungen erhielten DBA/2-M{\"a}use {\"u}ber einen Zeitraum von 30 Tagen Venlafaxin in verschiedenen Dosierungen {\"u}ber das Trinkwasser. Anschließend wurden die Hippokampi der Tiere mittels genomweiter Microarray-Analyse hypothesenfrei auf zwischen den Dosisgruppen differentiell exprimierte Gene hin untersucht. Der Hippokampus wird als zentrales Element der Steuerung, Ausbildung und Ver{\"a}nderung von Verhaltensmustern gesehen. Signifikant differentiell exprimierte Gene, die in vorherigen Studien mit depressiver Erkrankung beziehungsweise einem Effekt psychiatrischer Medikation assoziiert worden waren, wurden mittels qRT-PCR-Analyse validiert. Im Anschluss an die Analyse im Tier wurden als differentiell exprimiert best{\"a}tigte Gene per qRT-PCR analog in humanen Leukozyten untersucht. Die Blutproben waren in einem klinisch-naturalistischen Design w{\"a}hrend der ersten und der f{\"u}nften Woche einer Venlafaxin-Pharmakotherapie von Patienten der Klinik f{\"u}r Psychiatrie, Psychosomatik und Psychotherapie des Universit{\"a}tsklinikums W{\"u}rzburg gewonnen worden, das heißt vor und nach potentiellem Eintreten der antidepressiven Wirkung. Trotz der unterschiedlichen Herkunft der analysierten Gewebe k{\"o}nnten auf diesem Weg Hinweise auf Vorg{\"a}nge im menschlichen Gehirn gefunden werden, wie in vergleichenden post mortem Untersuchungen zwischen peripherem und zentralem humanem Material erkannt worden war. Die in der Tierstudie identifizierten Gene kodieren f{\"u}r Transkriptionsfaktoren sowie Proteine die als Teil von second messenger-Kaskaden bekannt sind. Von statistischer Signifikanz erwies sich in der Analyse der humanen Leukozyten die Expressionsreduktion der mRNA der Transkriptionsfaktor-Untereinheit Fos. Befunde zu einer Funktion von Fos, die eine Interpretation im Bezug auf den antidepressiven Effekt von Venlafaxin erm{\"o}glichen, liegen lediglich aus Tierstudien vor. Fos-ko im Hippo-kampus von M{\"a}usen wurde mit reduziertem Angstverhalten und h{\"o}herer Exzitabilit{\"a}t von hippokampalen Neuronen assoziiert. Auch wurde eine Assoziation mit Vorg{\"a}ngen bei synaptischer Plastizit{\"a}t und damit potentiell bei Lernvorg{\"a}ngen gefunden. Auf der anderen Seite wurde depressions-{\"a}hnliches Verhalten bei Ratten mit niedriger hippokampaler Fos-Expression und dessen erfolgreiche pharmakologische "Therapie" mit einer Induktion der Fos-Expression assoziiert. Es scheinen also bereits zwischen nicht-menschlichen Spezies ausgepr{\"a}gte Unterschiede der Rolle von Fos beziehungsweise Fos zu bestehen. Aufgrund der unterschiedlichen Spezies und Gewebe in den hier durchgef{\"u}hrten Untersuchungen sowie den uneinheitlichen Befunden bez{\"u}glich der Rolle von Fos beziehungsweise Fos in vorangegangenen Studien kann abschließend lediglich konstatiert werden, dass Fos vermutlich an der Entstehung depressionsbeg{\"u}nstigender Physiologie beteiligt ist und auch, dass eine antidepressive Pharmakotherapie mit Venlafaxin ihre Wirkung vermutlich unter Beteiligung von Fos entfaltet. Die Entwicklung innovativer Antidepressiva die unter Umgehung der monoaminergen Transmissionssysteme durch gezielte Reduktion der Fos-Abundanz das therapeutische Ziel erreichen lassen, k{\"o}nnte auf Basis der vorliegenden Studie angedacht werden, scheint allerdings aufgrund der ubiquit{\"a}ren Mediatorent{\"a}tigkeit des Proteins und insbesondere aufgrund seiner nicht endg{\"u}ltig definierten Rolle bei der Entstehung von Krebs nicht praktikabel. Zuk{\"u}nftige Untersuchungen sollten daher auf andere im Microarray differentiell exprimiert gefundene Gene fokussieren. In die Untersuchung der Expressionsaktivit{\"a}t der f{\"u}r die prim{\"a}ren Zielstrukturen von Venlafaxin (Serotonin- beziehungsweise Noradrenalin-Transporter) kodierenden Gene (SLC6A4 beziehungsweise SLC6A2) und der Serumkonzentration an aktiver Substanz nach Venlafaxin-Applikation im Hinblick auf deren Pr{\"a}diktivit{\"a}t des therapeutischen Effektes, wurden in einem klinisch-naturalistischen Design Patienten der Klinik f{\"u}r Psychiatrie, Psychosomatik und Psychotherapie des Universit{\"a}tsklinikums W{\"u}rzburg eingeschlossen. Genotypisiert wurden f{\"u}r SLC6A2 der SNP rs28386840 und f{\"u}r SLC6A4 der Polymorphismus 5-HTTLPR. Die Genotypen wurden jeweils in niedrig- und hoch-exprimierend unterteilt und damit auf die ph{\"a}notypische Transportkapazit{\"a}t der pr{\"a}synaptischen Membran Bezug genommen. Der therapeutische Erfolg wurde anhand der CGI-I-Skala evaluiert und f{\"u}r die Analysen in "gutes Ansprechen" und "schlechtes Ansprechen" dichotomisiert. Der SLC6A2-Polymorphismus zeigte sich als nicht mit dem therapeutischen Effekt assoziiert. Der hochexprimierende SLC6A4-Genotyp wurde signifikant mit einem schlechteren Ansprechen assoziiert. Dies war in den nach Serumkonzentration aktiver Substanz stratifizierten Unterkollektiven insbesondere in dem Bereich zwischen 200 und 400 ng / ml zu erkennen, wohingegen unter- und oberhalb dieses Bereiches keine Assoziation zu finden war. Aus diesen Resultaten kann gefolgert werden, dass sich aus der Genotypisierung von rs28386840 keine therapeutischen Instruktionen ableiten lassen. Bei Kenntnis des 5-HTTLPR-Genotyps k{\"o}nnte f{\"u}r den klinischen Alltag die Empfehlung ergehen, falls Venlafaxin als sSNRI bei Patienten mit hochexprimierendem Genotyp eingesetzt werden soll, eine Serumsummenkonzentration jenseits des durch die AGNP empfohlenen Bereiches (100 - 400 ng / ml) anzustreben. Da hier jedoch lediglich eine Stichprobe von 56 Patienten untersucht und insbesondere, da zahlreiche potentielle Kofaktoren des therapeutischen Effektes nicht in die Analyse einbezogen werden konnten, ist die Assoziation vor Anwendung in der Therapiesteuerung anhand umfassenderer prospektiver kontrollierter Studien zu validieren.}, subject = {Wirkmechanismus}, language = {de} } @phdthesis{BlancoRedondo2014, author = {Blanco Redondo, Beatriz}, title = {Studies of synapsin phosphorylation and characterization of monoclonal antibodies from the W{\"u}rzburg Hybridoma Library in Drosophila melanogaster}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-93766}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2014}, abstract = {Synapsins are conserved synapse-associated hosphoproteins involved in the fine regulation of neurotransmitter release. The aim of the present project is to study the phosphorylation of synapsins and the distribution of phospho-synapsin in the brain of Drosophila melanogaster. Three antibodies served as important tools in this work, a monoclonal antibody (3C11/α-Syn) that recognizes all known synapsin isoforms and two antisera against phosphorylated synapsin peptides (antiserum PSyn(S6) against phospho-serine 6 and antiserum PSyn(S464) against phospho-serine 464). These antisera were recently generated in collaboration with Bertram Gerber and Eurogentec. ...}, subject = {Synapsine}, language = {en} } @phdthesis{Ljaschenko2013, author = {Ljaschenko, Dmitrij}, title = {Hebbian plasticity at neuromuscular synapses of Drosophila}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-90465}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2013}, abstract = {Synaptic plasticity determines the development of functional neural circuits. It is widely accepted as the mechanism behind learning and memory. Among different forms of synaptic plasticity, Hebbian plasticity describes an activity-induced change in synaptic strength, caused by correlated pre- and postsynaptic activity. Additionally, Hebbian plasticity is characterised by input specificity, which means it takes place only at synapses, which participate in activity. Because of its correlative nature, Hebbian plasticity suggests itself as a mechanism behind associative learning. Although it is commonly assumed that synaptic plasticity is closely linked to synaptic activity during development, the mechanistic understanding of this coupling is far from complete. In the present study channelrhodopsin-2 was used to evoke activity in vivo, at the glutamatergic Drosophila neuromuscular junction. Remarkably, correlated pre- and postsynaptic stimulation led to increased incorporation of GluR-IIA-type glutamate receptors into postsynaptic receptor fields, thus boosting postsynaptic sensitivity. This phenomenon is input-specific. Conversely, GluR-IIA was rapidly removed from synapses at which neurotransmitter release failed to evoke substantial postsynaptic depolarisation. This mechanism might be responsible to tame uncontrolled receptor field growth. Combining these results with developmental GluR-IIA dynamics leads to a comprehensive physiological concept, where Hebbian plasticity guides growth of postsynaptic receptor fields and sparse transmitter release stabilises receptor fields by preventing overgrowth. Additionally, a novel mechanism of retrograde signaling was discovered, where direct postsynaptic channelrhodopsin-2 based stimulation, without involvement of presynaptic neurotransmitter release, leads to presynaptic depression. This phenomenon is reminiscent of a known retrograde homeostatic mechanism, of inverted polarity, where neurotransmitter release is upregulated, upon reduction of postsynaptic sensitivity.}, subject = {Synapse}, language = {en} } @book{Halder2022, author = {Halder, Partho}, title = {Identification and characterization of synaptic proteins of Drosophila melanogaster using monoclonal antibodies of the Wuerzburg Hybridoma Library}, doi = {10.25972/OPUS-27020}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-270205}, publisher = {Universit{\"a}t W{\"u}rzburg}, year = {2022}, abstract = {For a large fraction of the proteins expressed in the human brain only the primary structure is known from the genome project. Proteins conserved in evolution can be studied in genetic models such as Drosophila. In this doctoral thesis monoclonal antibodies (mAbs) from the Wuerzburg Hybridoma library are produced and characterized with the aim to identify the target antigen. The mAb ab52 was found to be an IgM which recognized a cytosolic protein of Mr ~110 kDa on Western blots. The antigen was resolved by two-dimensional gel electrophoresis (2DE) as a single distinct spot. Mass spectrometric analysis of this spot revealed EPS-15 (epidermal growth factor receptor pathway substrate clone 15) to be a strong candidate. Another mAb from the library, aa2, was already found to recognize EPS-15, and comparison of the signal of both mAbs on Western blots of 1D and 2D electrophoretic separations revealed similar patterns, hence indicating that both antigens could represent the same protein. Finally absence of the wild-type signal in homozygous Eps15 mutants in a Western blot with ab52 confirmed the ab52 antigen to be EPS-15. Thus both the mAbs aa2 and ab52 recognize the Drosophila homologue of EPS-15. The mAb aa2, being an IgG, is more suitable for applications like immunoprecipitation (IP). It has already been submitted to the Developmental Studies Hybridoma Bank (DSHB) to be easily available for the entire research community. The mAb na21 was also found to be an IgM. It recognizes a membrane associated antigen of Mr ~10 kDa on Western blots. Due to the membrane associated nature of the protein, it was not possible to resolve it by 2DE and due to the IgM nature of the mAb it was not possible to enrich the antigen by IP. Preliminary attempts to biochemically purify the endogenously expressed protein from the tissue, gave 99 promising results but could not be completed due to lack of time. Thus biochemical purification of the protein seems possible in order to facilitate its identification by mass spectrometry. Several other mAbs were studied for their staining pattern on cryosections and whole mounts of Drosophila brains. However, many of these mAbs stained very few structures in the brain, which indicated that only a very limited amount of protein would be available as starting material. Because these antibodies did not produce signals on Western blots, which made it impossible to enrich the antigens by electrophoretic methods, we did not attempt their purification. However, the specific localization of these proteins makes them highly interesting and calls for their further characterization, as they may play a highly specialized role in the development and/or function of the neural circuits they are present in. The purification and identification of such low expression proteins would need novel methods of enrichment of the stained structures.}, subject = {Taufliege}, language = {en} }