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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 genetics of species differences is an outstanding question in evolutionary biology. How do species evolve to become phenotypically distinct and how is the genetic architecture organized that underlie species differences? Phenotypic diverged traits are supposed to be frequently involved in prezygotic isolation, i.e. they prevent the formation of hybrids, whereas postzygotic isolation occurs when hybrids experience a fitness reduction. The parasitic wasp genus Nasonia represents an appropriate model system to investigate the genetics of species differences as well as the genetics of postzygotic isolation. The genus consists of three species N. vitripennis, N. longicornis and N. giraulti that differ particularly in male traits that are assumed to posses an adaptive significance: courtship behaviour and wing size differences. The courtship behaviour consists of cyclically repeated series of head nods that are separated by pauses. The stereotypic performance allowed to split up the display into distinct courtship components. Males of N. vitripennis bear vestigial forewings and are incapable of flight, whereas N. longicornis wear intermediate sized wings and N. giraulti is fully capable of flying. Nasonia species can produce interspecific hybrids after removing Wolbachia bacteria induced hybrid incompatibilities with antibiotics. Postzygotic isolation occurs to different extent and is asymmetric among reciprocal crosses, e.g. inviability is stronger in the N. vitripennis (♀) x N. longicornis (♂) cross than in the N. longicornis (♀) x N. vitripennis (♂) cross. The formation of hybrids allow to study the genetic of species differences in QTL (quantitative trait locus) analyses as well as the genetics of postzygotic isolation causing hybrid inviability. The aim of the study was to investigate the genetic architecture of differences in courtship behaviour and wing size between N. vitripennis and N. longicornis and to assess the genetics of postzygotic isolation to gain clues about the evolutionary processes underlying trait divergence and establishment of reproductive isolation between taxa. In a QTL analysis based on 94 F2-hybrid individuals of an LV cross only few QTL for wing size differences have been found with relatively large effects, although a large proportion of the phenotypic variance remained unexplained. The QTL on courtship behaviour analysis based on 94-F2 hybrid males revealed a complex genetic architecture of courtship behaviour with QTL of large phenotypic effects that explained more than 40 % of the phenotypic variance in one case. Additionally, an epistatic analysis (non-additive interlocus interaction) of courtship QTL revealed frequent genetic interchromsomal relations leading in some instances to hybrid specific effects, e.g. reversion of phenotypic effects or the transgression of phenotypes. A QTL analysis based on a threefold sample size revealed, however, an overestimation of QTL effects in the analysis based on smaller sample size pointing towards a genetic architecture of many loci with small effects governing the phenotypic differences in courtship behaviour. Furthermore, the the study comprised the analysis of postzygotic isolation in the reciprocal crosses N. vitripennis (♀) x N. longicornis (♂) versus N. longicornis (♀) x N. vitripennis (♂) located several loci distributed over different chromosomes that are involved in hybrid incompatibility. The mapping of hybrid incompatibility regions reproduced for the first time the observed asymmetries in the strength of postzygotic isolation in reciprocal crosses of between the more distant related taxa within the genus Nasonia. Stronger postzygotic incompatibilities in the VL cross are supposed to result from the superposition of nuclear-nuclear incompatibilities with nuclear-cytoplasmic incompatibilities, whereas the coincidences of these to types of incompatibilities were found to be much weaker in the reciprocal LV cross.
In this thesis the Drosophila mutant loechrig (loe), that shows progressive degeneration of the nervous system, is further described. Loe is missing a neuronal isoform of the protein kinase AMPK γ subunit (AMP-activated protein kinase- also known as SNF4Aγ) The heterotrimeric AMPK controls the energy level of the cell, which requires constant monitoring of the ATP/AMP levels. It is activated by low energy levels and metabolic insults like oxygen starvation and regulates multiple important signal pathways that control cell metabolism. Still, its role in neuronal survival is unclear. One of AMPK’s downstream targets is HMGR (hydroxymethylglutaryl-CoA- reductase), a key enzyme in cholesterol and isoprenoid synthesis. It has been shown that manipulating the levels of HMGR affects the severity of the neurodegenerative phenotype in loe. Whereas the regulatory role of AMPK on HMGR is conserved in Drosophila, insects cannot synthesize cholesterol de novo. However, the synthesis of isoprenoids is a pathway that is evolutionarily conserved between vertebrates and insects. Isoprenylation of target proteins like small G-proteins provides a hydrophobic anchor that allows the association of these proteins with membranes and following activation. This thesis shows that the loe mutation interferes with the prenylation of Rho1 and the regulation of the LIM kinase pathway, which plays an important role in actin turnover and axonal outgrowth. The results suggest that the mutation in LOE, causes hyperactivity of the isoprenoid synthesis pathway, which leads to increased farnesylation of RHO1 and therefore higher levels of phospho-cofilin. A mutation in Rho1 improves the neurodegenerative phenotype and life span. The increased inactive cofilin amount in loe leads to an up regulation of filamentous actin. Actin is involved in neuronal outgrowth and experiments analyzing loe neurons gave valuable insights into a possible role of AMPK and accordingly actin on neurite growth and stability. It was demonstrated that neurons derived from loe mutants exhibit reduces axonal transport suggesting that changes in the cytoskeletal network caused by the effect of loe on the Rho1 pathway lead to disruptions in axonal transport and subsequent neuronal death. It also shows that actin is not only involved in neuronal outgrowth, its also important in maintenance of neurons, suggesting that interference with actin dynamics leads to progressive degeneration of neurons. Together, these results further support the importance of AMPK in neuronal function and survival and provide a novel functional mechanisms how alterations in AMPK can cause neuronal degeneration
Hereditäre Netzhautdegenerationen betreffen weltweit etwa 15 Millionen Menschen. Sie sind klinisch und genetisch auffällig heterogen. Bisher wurden 139 verschiedene chromosomale Genorte mit Netzhautdystrophien assoziiert, wovon inzwischen 90 Gene identifiziert werden konnten. Mit Hilfe verschiedener Klonierungsstrategien konnte in der vorgelegten Arbeit ein Beitrag zur Aufklärung der genetischen Ursachen einiger ausgewählter Retinopathien geleistet werden. So konnte durch die Positionsklonierung das Gen, das mit der X-gebundenen juvenilen Retinoschisis (RS) assoziiert ist, identifiziert werden. Funktionelle Analysen des Genproduktes sowie die Generierung eines Mausmodells der RS geben einen Einblick in die Physiologie der Retina sowie den Pathomechanismus der Erkrankung. Die genomische Organisation des Interphotorezeptor-Matrixproteoglykans-1 (IMPG1) wurde aufgeklärt und die chromosomale Lokalisation auf 6q13-15 bestimmt. Damit kartierte das Gen in eine Region, in die die Genorte für 7 Retinopathien des Menschen kartiert wurden. Durch Kopplungs- und Mutationsanalysen konnten unsere Arbeiten ausschließen, daß IMPG1 mit North Carolina Makuladystrophie (MCDR1) oder der progressiven bifokalen chorioretinalen Atrophie (PBCRA) in Zusammenhang steht. Die Diacylglycerin Kinase-3 (DAGK3) konnte nach der Bestimmung der genomischen Organisation in die Region 3q27-28 kartiert werden. Dieser chromosomale Abschnitt deckt sich mit der chromosomalen Lokalisation der autosomal dominanten Optikusatrophie (OPA1). Auch hier konnte mit Hilfe von Mutationsanalysen ein Ausschluß des Gens erfolgen. Die X-gebundene juvenile Retinoschisis ist eine häufige Ursache juveniler Makula-degenerationen und betrifft etwa 300.000 junge Männer weltweit. Charakteristische Kennzeichen der Erkrankung sind Aufspaltungen in den inneren Netzhautschichten, die zu zystischen Veränderungen der zentralen Retina führen. Ungefähr 50 % der Patienten entwickeln auch periphere Manifestationen. Durch die Arbeit unserer und anderer Forschergruppen konnte der Krankheitslokus in einen etwa 900 kb großen Bereich auf dem kurzen Arm des X-Chromosoms (Xp22.2) kartiert werden. Durch einen Vergleich der genomischen DNA Sequenzen mit öffentlich zugänglichen ESTs (expressed sequence tags) konnte ein retinaspezifisches Transkript identifiziert werden. Es besteht aus 6 Exonen und kodiert für ein putatives 224 Aminosäuren großes Protein, das sekretiert wird und ein hochkonserviertes Discoidindomänen-Motiv enthält. Discoidindomänen sind in Zelladhäsion oder in Zell-Zell Interaktionen involviert. Mutationsanalysen in RS-Patienten bestätigten, daß es sich bei diesem Transkript um RS1, d.h. um das krankheitsassoziierte Gen der X-gebundenen juvenilen Retinoschisis handelte. Das RS1-Protein (Retinoschisin) kommt in homo-oligomeren Komplexen, die über Disulfidbrücken miteinander verbunden sind, auf der Zelloberfläche der Photorezeptoren und der Bipolaren sowie in den synaptischen Regionen der äußeren (OPL) und innere plexiformen Schicht (IPL) vor. Um die Funktion des normalen Retinoschisins zu untersuchen und um einen Einblick in die RS-Pathogenese zu bekommen, wurde nach der Charakterisierung des orthologen murinen Gens (Rs1h) eine Retinoschisin-defiziente knock-out Maus generiert. Ophthalmologische und histologische Untersuchungen der Rs1h-/Y-Maus zeigen signifikante Parallelen zu dem RS-Erkrankungsbild des Menschen. Damit stellt die Rs1h knock-out Maus ein ideales Tiermodell für die Untersuchung des zugrundeliegenden Krankheitsmechanismusses dar. So konnten wir inzwischen zeigen, daß apoptotische Prozesse zur Degeneration der Photorezeptoren führen. Gegenwärtig werden mit diesem Tiermodell erste gentherapeutische Versuche durchgeführt. Diese Arbeiten sollen Aufschluß darüber geben, ob ein Adeno-assoziierter Virus (AAV)-Transfer des RS1 Gens in die erkrankte Retina ein möglicher Therapieansatz für RS auch beim Menschen sein könnte.