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Endogenous clocks regulate physiological as well as behavioral rhythms within all organisms. They are well investigated in D. melanogaster on a molecular as well as anatomical level. The neuronal clock network within the brain represents the center for rhythmic activity control. One neuronal clock subgroup, the pigment dispersing factor (PDF) neurons, stands out for its importance in regulating rhythmic behavior. These neurons express the neuropeptide PDF (pigment dispersing factor). A small neuropil at the medulla’s edge, the accessory medulla (AME), is of special interest, as it has been determined as the main center for clock control. It is not only highly innervated by the PDF neurons but also by terminals of all other clock neuron subgroups. Furthermore, terminals of the photoreceptors provide light information to the AME. Many different types of neurons converge within the AME and afterward spread to their next target. Thereby the AME is supplied with information from a variety of brain regions. Among these neurons are the aminergic ones whose receptors’ are expressed in the PDF neurons. The present study sheds light onto putative synaptic partners and anatomical arrangements within the neuronal clock network, especially within the AME, as such knowledge is a prerequisite to understand circadian behavior. The aminergic neurons’ conspicuous vicinity to the PDF neurons suggests synaptic communication among them. Thus, based on former anatomical studies regarding this issue detailed light microscopic studies have been performed. Double immunolabellings, analyses of the spatial relation of pre- and postsynaptic sites of the individual neuron populations with respect to each other and the identification of putative synaptic partners using GRASP reenforce the hypothesis of synaptic interactions within the AME between dopaminergic/ serotonergic neurons and the PDF neurons. To shed light on the synaptic partners I performed first steps in array tomography, as it allows terrific informative analyses of fluorescent signals on an ultrastructural level. Therefore, I tested different ways of sample preparation in order to achieve and optimize fluorescent signals on 100 nm thin tissue sections and I made overlays with electron microscopic images. Furthermore, I made assumptions about synaptic modulations within the neuronal clock network via glial cells. I detected their cell bodies in close vicinity to the AME and PDFcontaining clock neurons. It has already been shown that glial cells modulate the release of PDF from s-LNvs’ terminals within the dorsal brain. On an anatomical level this modulation appears to exist also within the AME, as synaptic contacts that involve PDF-positive dendritic terminals are embedded into glial fibers. Intriguingly, these postsynaptic PDF fibers are often VIIAbstract part of dyadic or even multiple-contact sites in opposite to prolonged presynaptic active zonesimplicating complex neuronal interactions within the AME. To unravel possible mechanisms of such synaptic arrangements, I tried to localize the ABC transporter White. Its presence within glial cells would indicate a recycling mechanism of transmitted amines which allows their fast re-provision. Taken together, synapses accompanied by glial cells appear to be a common arrangement within the AME to regulate circadian behavior. The complexity of mechanisms that contribute in modulation of circadian information is reflected by the complex diversity of synaptic arrangements that involves obviously several types of neuron populations
Memory is dynamic: shortly after acquisition it is susceptible to amnesic treatments, gets gradually consolidated, and becomes resistant to retrograde amnesia (McGaugh, 2000). Associative olfactory memory of the fruit fly Drosophila melanogaster also shows these features. After a single associative training where an odor is paired with electric shock (Quinn et al., 1974; Tully and Quinn, 1985), flies form an aversive odor memory that lasts for several hours, consisting of qualitatively different components. These components can be dissociated by mutations, their underlying neuronal circuitry and susceptibility to amnesic treatments (Dubnau and Tully, 1998; Isabel et al., 2004; Keene and Waddell, 2007; Masek and Heisenberg, 2008; Xia and Tully, 2007). A component that is susceptible to an amnesic treatment, i.e. anesthesia-sensitive memory (ASM), dominates early memory, but decays rapidly (Margulies et al., 2005; Quinn and Dudai, 1976). A consolidated anesthesia-resistant memory component (ARM) is built gradually within the following hours and lasts significantly longer (Margulies et al., 2005; Quinn and Dudai, 1976). I showed here that the establishment of ARM requires less intensity of shock reinforcement than ASM. ARM and ASM rely on different molecular and/or neuronal processes: ARM is selectively impaired in the radish mutant, whereas for example the amnesiac and rutabaga genes are specifically required for ASM (Dudai et al., 1988; Folkers et al., 1993; Isabel et al., 2004; Quinn and Dudai, 1976; Schwaerzel et al., 2007; Tully et al., 1994). The latter comprise the cAMP signaling pathway in the fly, with the PKA being its supposed major target (Levin et al., 1992). Here I showed that a synapsin null-mutant encoding the evolutionary conserved phosphoprotein Synapsin is selectively impaired in the labile ASM. Further experiments suggested Synapsin as a potential downstream effector of the cAMP/PKA cascade. Similar to my results, Synapsin plays a role for different learning tasks in vertebrates (Gitler et al., 2004; Silva et al., 1996). Also in Aplysia, PKA-dependent phosphorylation of Synapsin has been proposed to be involved in regulation of neurotransmitter release and short-term plasticity (Angers et al., 2002; Fiumara et al., 2004). Synapsin is associated with a reserve pool of vesicles at the presynapse and is required to maintain vesicle release specifically under sustained high frequency nerve stimulation (Akbergenova and Bykhovskaia, 2007; Li et al., 1995; Pieribone et al., 1995; Sun et al., 2006). In contrast, the requirement of Bruchpilot, which is homologous to the mammalian active zone proteins ELKS/CAST (Wagh et al., 2006), is most pronounced in immediate vesicle release (Kittel et al., 2006). Under repeated stimulation of a bruchpilot mutant motor neuron, immediate vesicle release is severely impaired whereas the following steady-state release is still possible (Kittel et al., 2006). In line with that, knockdown of the Bruchpilot protein causes impairment in clustering of Ca2+ channels to the active zones and a lack of electron-dense projections at presynaptic terminals (T-bars). Thus, less synaptic vesicles of the readily-releasable pool are accumulated to the release sites and their release probability is severely impaired (Kittel et al., 2006; Wagh et al., 2006). First, I showed that Bruchpilot is required for aversive olfactory memory and localized the requirement of Bruchpilot to the Kenyon cells of the mushroom body, the second-order olfactory interneurons in Drosophila. Furthermore, I demonstrated that Bruchpilot selectively functions for the consolidated anesthesia-resistant memory. Since Synapsin is specifically required for the labile anesthesia sensitive memory, different synaptic proteins can dissociate consolidated and labile components of olfactory memory and two different modes of neurotransmission (high- vs. low frequency dependent) might differentiate ASM and ARM.
Sleep is a highly conserved and essential behaviour in many species, including the fruit fly Drosophila melanogaster. In the wild, sensory signalling encoding environmental information must be integrated with sleep drive to ensure that sleep is not initiated during detrimental conditions. However, the molecular and circuit mechanisms by which sleep timing is modulated by the environment are unclear. Here we introduce a novel behavioural paradigm to study this issue. We show that in male fruit flies, onset of the daytime siesta is delayed by ambient temperatures above 29°C. We term this effect Prolonged Morning Wakefulness (PMW). We show that signalling through the TrpA1 thermo-sensor is required for PMW, and that TrpA1 specifically impacts siesta onset, but not night sleep onset, in response to elevated temperatures. We identify two critical TrpA1-expressing circuits and show that both contact DN1p clock neurons, the output of which is also required for PMW. Finally, we identify the circadian blue-light photoreceptor CRYPTOCHROME as a molecular regulator of PMW, and propose a model in which the Drosophila nervous system integrates information encoding temperature, light, and time to dynamically control when sleep is initiated. Our results provide a platform to investigate how environmental inputs co-ordinately regulate sleep plasticity.
All animals learn in order to cope with challenges imposed on them by their environment. This is true also for both larval and adult fruit flies as exemplified in pavlovian conditioning. The focus of this Thesis is on various aspects of the fruit flies learning ability. My main project deals with two types of learning which we call punishment-learning and pain-relief learning. Punishment learning happens when fruit flies are exposed to an odour which is followed by electric shock. After such training, flies have learned that that odour signals pain and consequently will avoid it in the future. If the sequence of the two stimuli is reversed such that odour follows shock, flies learn the odour as a signal for relief and will later on approach it. I first report a series of experiments investigating qualitative and parametric features of relief-learning; I find that (i) relief learning does result from true associative conditioning, (ii) it requires a relatively high number of training trials, (iii) context-shock training is ineffective for subsequent shock-odour learning. A further question is whether punishment-learning and pain-relief learning share genetic determinants. In terms of genetics, I test a synapsin mutant strain, which lacks all Synapsin protein, in punishment and relief-learning. Punishment learning is significantly reduced, and relief-learning is abolished. Pan-neuronal RNAi-mediated knock-down of Synapsin results in mutant-like phenotypes, confirming the attribution of the phenotype to lack of Synapsin. Also, a rescue of Synapsin in the mushroom body of syn97 mutants restores both punishment- and relief-learning fully, suggesting the sufficiency of Synapsin in the mushroom body for both these kinds of learning. I also elucidate the relationship between perception and physiology in adult fruit flies. I use odour-shock conditioning experiments to identify degrees of similarity between odours; I find that those similarity measures are consistent across generalization and discrimination tasks of diverse difficulty. Then, as collaborator of T. Völler and A. Fiala, I investigate how such behavioural similarity/dissimilarity is reflected at the physiological level. I combine the behaviour data with calcium imaging data obtained by measuring the activity patterns of those odours in either the sensory neurons or the projection neurons at the antennal lobe. Our interpretation of the results is that the odours perceptual similarity is organized by antennal lobe interneurons. In another project I investigate the effect of gustatory stimuli on reflexive behaviour as well as their role as reinforcer in larval learning. Drosophila larvae greatly alter their behaviour in presence of sodium chloride. Increasing salt concentration modulates choice behaviour from weakly appetitive to strongly aversive. A similar concentration-behaviour function is also found for feeding: larval feeding is slightly enhanced in presence of low salt concentrations, and strongly decreased in the presence of high salt concentrations. Regarding learning, relatively weak salt concentrations function as appetitive reinforcer, whereas high salt concentrations function as aversive reinforcer. Interestingly, the behaviour-concentration curves are shifted towards higher concentrations from reflexive behaviour (choice behaviour, feeding) as compared to associative learning. This dissociation may reflect a different sensitivity in the respective sensory-motor circuitry.
The fruit fly Drosophila melanogaster is an established model organism in chronobiology, because genetic manipulation and breeding in the laboratory are easy. The circadian clock neuroanatomy in D. melanogaster is one of the best-known clock networks in insects and basic circadian behavior has been characterized in detail in this insect. Another model in chronobiology is the honey bee Apis mellifera, of which diurnal foraging behavior has been described already in the early twentieth century. A. mellifera hallmarks the research on the interplay between the clock and sociality and complex behaviors like sun compass navigation and time-place-learning. Nevertheless, there are aspects of clock structure and function, like for example the role of the clock in photoperiodism and diapause, which can be only insufficiently investigated in these two models. Unlike high-latitude flies such as Chymomyza costata or D. ezoana, cosmopolitan D. melanogaster flies do not display a photoperiodic diapause. Similarly, A. mellifera bees do not go into “real” diapause, but most solitary bee species exhibit an obligatory diapause. Furthermore, sociality evolved in different Hymenoptera independently, wherefore it might be misleading to study the social clock only in one social insect. Consequently, additional research on non-model insects is required to understand the circadian clock in Diptera and Hymenoptera. In this review, we introduce the two chronobiology model insects D. melanogaster and A. mellifera, compare them with other insects and show their advantages and limitations as general models for insect circadian clocks.
Auf der Suche nach Mutanten mit einer vom Wildtyp abweichenden Verteilung des Aktive Zone-Proteins Bruchpilot wurde die Serin/Arginin-Proteinkinase SRPK79D identifiziert. Hier zeigte sich, dass die Mutation im Srpk79D-Gen zu einer Agglomeration von Bruchpilot in den larvalen segmentalen und intersegmentalen Nerven führt. In der vorliegenden Arbeit sollte die SRPK79D genauer charakterisiert werden. Nach Präadsorptionen und Affinitätsreinigungen von in einer früheren Arbeit erzeugten Antiseren, gelang es die Lokalisation der überexprimierten SRPK79D-GFP-Isoformen zu bestimmen. Dabei zeigte sich, dass keines der Antiseren die endogene Kinase im Western Blot oder immunhistocheimisch detektieren konnte. Dies legt den Schluss nahe, dass die Expression der SRPK79D in einer geringen Konzentration erfolgt. Es war jedoch möglich die endogene SRPK79D-PC-Isoform mittels einer Immunpräzipitation soweit anzureichern, dass sie im Western Blot nachweisbar war. Für die SRPK79D-PB-Isoform gelang dies allerdings nicht. Anhand von larvalen Nerv-Muskel-Präparaten konnte gezeigt werden, dass die panneural überexprimierte SRPK79D-PC-GFP-Isoform an die Aktiven Zone transportiert wird und dort mit Bruchpilot, sowie den Interaktionspartnern von Bruchpilot Liprin-α und Rab3 kolokalisiert. Außerdem liegt sie diffus im Zytoplasma von neuronalen Zellkörpern vor. In adulten Gehirnen lokalisiert die transgen überexprimierte SRPK79D-PC-GFP im Fanshaped body, Ringkomplex und in neuronalen Zellkörpern. Die panneural überexprimierte SRPK79D-PB-GFP-Isoform liegt im larvalen und adulten Gehirn lokal im Zytoplasma der Perikaryen akkumuliert vor und wird nicht an die Aktive Zone transportiert. Das PB-Antiserum erkennt im adulten Gehirn neuronale Zellkörper und das Neuropil in der Calyxregion der Pilzkörper. Immunhistochemische Färbungen von larvalen Nerv-Muskel-Präparaten mit verschiedenen Antikörpern gegen neuronale Proteine belegen, dass die Agglomerate in der Srpk79D-Mutante für Bruchpilot spezifisch sind. Es konnten bisher keine weiteren Komponenten der Agglomerate detektiert werden. Auch ein genereller axonaler Defekt konnte durch Färbungen gegen CSP, Synaptotagmin und Experimenten mit dem Mitochondrienfarbstoff MitoTracker® FM Green ausgeschlossen werden. Die quantitative Auswertung der Präparate zeigte, dass die Morphologie der synaptischen Boutons und die Zahl der Aktiven Zonen durch die Mutation im Srpk79D-Gen nicht beeinflusst werden. Um gesicherte Kenntnis darüber zu erlangen, ob die Mutation im Srpk79D-Gen die beobachteten Phänotypen verursacht, wurden Rettungsexperimente durchgeführt. Es konnte sowohl für das hypomorphe Srpk79DP1-Allel, als auch für die Nullmutante Srpk79DVN eine nahezu vollständige Rettung des Agglomerat-Phänotyps mit der panneural exprimierten SRPK79D-PF- oder der SRPK79D-PB-Isoform erreicht werden. Aus diesen Ergebnissen folgt, dass beide Isoformen der SRPK79D in der Lage sind den Bruchpilot-Agglomerat-Phänotyp zu retten, die Rettung der Verhaltensdefizite jedoch alle Isoformgruppen benötigen. Um zu untersuchen, ob der Agglomerations-Phänotyp der Srpk79D-Mutanten auf einer Überexpression des Bruchpilotgens oder auf Fehlspleißen seiner prä-mRNA beruht, wurden Immunpräzipitationen, semiquantitative RT-PCRs und Real Time-PCRs durchgeführt. Ausgehend von den Ergebnissen kann eine mögliche Überexpression bzw. Spleißdefekte von Bruchpilot weitgehend ausgeschlossen werden. Die simultane Überexpression von SRPK79D und Bruchpilot konnte den Phänotyp der Bruchpilot-Überexpression nicht retten. Anhand der stimulated emission depletion-Mikroskopie konnte gezeigt werden, dass die gebildeten Agglomerate das charakteristische Donut-förmige Muster der T-bars zeigen und wahrscheinlich als fusionierte Ketten von T-bars in den larvalen Nerven vorliegen. Beim in vivo Imaging Versuch konnte demonstriert werden, dass das verkürzte Bruchpilot-D3-Strawberry in die Bruchpilot-Agglomerate der Srpk79D-Nullmutante eingebaut wird und dass größere Agglomerate unbewegt im Nerv verharren. Der anterograde und retrograde Transport kleinerer Agglomerate konnte verzeichnet werden. Bei CytoTrap-Yeast-two-hybrid-Experimenten konnten für die SRPK79D-PB Isoform vier potentielle Interaktionspartner identifiziert werden: das Hitzeschockprotein Hsp70Bbb, die mitochondriale NADH-Dehydrogenase mt:ND5, das large ribosomal RNA Gen in Mitochondrien und das am Spleißen beteiligte Protein 1.3CC/Caper. Die Sequenzierung zeigte, dass nur das letzte Exon von Caper im pMyr-Vektor vorliegt. Der für die PC-Isoform durchgeführte CytoTrap-Versuch ergab nur Temperatur-Revertanten. SR-Proteinkinasen phosphorylieren die RS-Domäne von SR-Proteinen und sind dadurch an der Regulation des konstitutiven und alternativen Spleißens beteiligt. Somit stellen die acht identifizierten SR-Proteine in Drosophila potentielle Interaktionspartner der SRPK79D dar. Die durch RNAi-vermittelte Reduktion von sieben SR-Proteinen führte zu keiner Agglomeration von Bruchpilot. Jedoch führte die RNAi-vermittelte Reduktion des SR-Proteins Spleißfaktor 2 (SF2) zu kleineren Bruchpilot-Agglomeraten in den axonalen Nerven. SF2 ist selbst kein Bestandteil der Agglomerate der Srpk79D-Nullmutante. Die Überexpression von SF2 führt wahrscheinlich zu einem axonalen Transportdefekt, wie die Färbung gegen das Cysteine string protein zeigte. Weiterhin führt die Überexpression zu einer Akkumulation von SF2 in larvalen Axonen und im adulten Gehirn der Fliegen. SF2 ist nicht nur in Zellkernen sämtlicher Zellen nachweisbar, sondern es konnte auch ein spezifisches Signal im subsynaptischen Retikulum der Postsynapse detektiert werden, wie die Färbungen gegen Disc large bestätigten.
Circadianes und Stress-System sind zwei physiologische Systeme, die dem Organismus helfen sich an Veränderungen ihrer Umwelt anzupassen. Während letzteres spontane und schnelle Antworten auf akute, unvorhersehbare Umweltreize liefert, sagt das circadiane System täglich wiederkehrende Ereignisse vorher and bereitet den Organismus so vorzeitig auf diese nahende Umweltveränderung vor. Dennoch, trotz dieser unterschiedlichen Reaktionsmechanismen agieren beide Systeme nicht komplett autonom. Studien der vergangen Jahre belegen vielmehr eine Interaktion beider Systeme. So postulieren sie zum einem Unterschiede in der Stressantwort in Abhängigkeit von der Tageszeit zu der der Reiz auftritt und weisen zugleich auf eine Zunahme von gestörten biologischen Tagesrhythmen, wie zum Beispiel Schlafstörungen, in Folge von unkontrollierten oder exzessiven Stress hin. Ebenso liefern kürzlich durchgeführte Studien an Vertebraten und Pilzen Hinweise, dass mit p38, eine Stress-aktivierte Kinase, an der Signalweiterleitung zur inneren Uhr beteiligt ist (Hayashi et al., 2003), sogar durch dieses endogene Zeitmesssystem reguliert wird (Vitalini et al., 2007; Lamb et al., 2011) und deuten damit erstmals eine mögliche Verbindung zwischen Stress-induzierten und regulären rhythmischen Anpassungen des Organismus an Umweltveränderungen an. Molekulare und zelluläre Mechanismen dieser Verknüpfung sind bisher noch nicht bekannt.
Während die Rolle von p38 MAPK bei der Stress- und Immunantwort in Drosophila melanogaster gut charakterisiert ist, wurden Expression und Funktion von p38 in der inneren Uhr hingegen bislang nicht untersucht. Die hier vorliegende Arbeit hatte daher zum Ziel mittels immunhistochemischer, verhaltensphysiologischer und molekularer Methoden eine mögliche Rolle der Stress-aktivierten Kinase im circadianen System der Fliege aufzudecken. Antikörperfärbungen sowie Studien mit Reporterlinien zeigen deutliche Färbesignale in den s-LNv, l-LNv und DN1a und erbringen erstmals einen Nachweis für p38 Expression in den Uhrneuronen der Fliege. Ebenso scheint die Aktivität von p38 MAPK in den DN1a uhrgesteuert zu sein. So liegt p38 vermehrt in seiner aktiven Form in der Dunkelphase vor und zeigt, neben seiner circadian regulierten Aktivierung, zusätzlich auch eine Inaktivierung durch Licht. 15-Minuten-Lichtpulse in der subjektiven Nacht führen zu einer signifikanten Reduktion von aktivierter, phosphorylierter p38 MAPK in den DN1a von Canton S Wildtypfliegen im Vergleich zu Fliegen ohne Lichtpuls-Behandlung. Aufzeichnungen der Lokomotoraktivität offenbaren zusätzlich die Notwendigkeit von p38 MAPK für wildtypisches Timing der Abendaktivität sowie zum Erhalt von 24-Stunden-Verhaltensrhythmen unter konstanten Dauerdunkel-Bedindungen. So zeigen Fliegen mit reduzierten p38 Level in Uhrneuronen einen verzögerten Beginn der Abendaktivität und stark verlängerte Freilaufperioden. In Übereinstimmung mit Effekten auf das Laufverhalten scheint darüber hinaus die Expression einer dominant-negativen Form von p38b in Drosophila’s wichtigsten Uhrneuronen eine verspätete nukleäre Translokation von Period zur Folge zu haben. Westernblots legen zusätzlich einen Einfluss von p38 auf den Phosphorylierungsgrad von Period nahe und liefern damit einen mögliche Erklärung für den verspäteten Kerneintritt des Uhrproteins. Abschließende Stützung der Westernblotergebnisse bringen in vitro Kinasenassays und deuten auf p38 als eine potentielle „Uhrkinase“ hin, welche auch in vivo Period an Serin 661 sowie weiteren potentiellen Phosphorylierungsstellen phosphorylieren könnte.
Zusammengenommen deuten die Ergebnisse der hier vorliegenden Arbeit eindeutig auf eine bedeutende Rolle von p38, neben dessen Funkion im Stress-System, auch im circadianen System der Fliege hin und offenbaren damit die Möglichkeit, dass p38 als Schnittstelle zwischen beider Systeme fungiert.
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.
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.
Hangover links nuclear RNA signaling to cAMP regulation via the phosphodiesterase 4d ortholog dunce
(2017)
The hangover gene defines a cellular stress pathway that is required for rapid ethanol tolerance in Drosophila melanogaster. To understand how cellular stress changes neuronal function, we analyzed Hangover function on a cellular and neuronal level. We provide evidence that Hangover acts as a nuclear RNA binding protein and we identified the phosphodiesterase 4d ortholog dunce as a target RNA. We generated a transcript-specific dunce mutant that is impaired not only in ethanol tolerance but also in the cellular stress response. At the neuronal level, Dunce and Hangover are required in the same neuron pair to regulate experience-dependent motor output. Within these neurons, two cyclic AMP (cAMP)-dependent mechanisms balance the degree of tolerance. The balance is achieved by feedback regulation of Hangover and dunce transcript levels. This study provides insight into how nuclear Hangover/RNA signaling is linked to the cytoplasmic regulation of cAMP levels and results in neuronal adaptation and behavioral changes.