40 research outputs found

    The serotonergic central nervous system of the Drosophila larva: anatomy and behavioral function.

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    The Drosophila larva has turned into a particularly simple model system for studying the neuronal basis of innate behaviors and higher brain functions. Neuronal networks involved in olfaction, gustation, vision and learning and memory have been described during the last decade, often up to the single-cell level. Thus, most of these sensory networks are substantially defined, from the sensory level up to third-order neurons. This is especially true for the olfactory system of the larva. Given the wealth of genetic tools in Drosophila it is now possible to address the question how modulatory systems interfere with sensory systems and affect learning and memory. Here we focus on the serotonergic system that was shown to be involved in mammalian and insect sensory perception as well as learning and memory. Larval studies suggested that the serotonergic system is involved in the modulation of olfaction, feeding, vision and heart rate regulation. In a dual anatomical and behavioral approach we describe the basic anatomy of the larval serotonergic system, down to the single-cell level. In parallel, by expressing apoptosis-inducing genes during embryonic and larval development, we ablate most of the serotonergic neurons within the larval central nervous system. When testing these animals for naĂŻve odor, sugar, salt and light perception, no profound phenotype was detectable; even appetitive and aversive learning was normal. Our results provide the first comprehensive description of the neuronal network of the larval serotonergic system. Moreover, they suggest that serotonin per se is not necessary for any of the behaviors tested. However, our data do not exclude that this system may modulate or fine-tune a wide set of behaviors, similar to its reported function in other insect species or in mammals. Based on our observations and the availability of a wide variety of genetic tools, this issue can now be addressed

    Gene expression during zombie ant biting behavior reflects the complexity underlying fungal parasitic behavioral manipulation

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    Analysis of predictive features in the dopaminergic System of Drosophila melanogaster using genetically encoded Calcium Sensors

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    Die Technik des optischen Imaging unter Verwendung DNA-codierter Sensoren ermöglicht es, Messungen neuraler Aktivitäten in genetisch definierten Populationen von Neuronen durchzuführen. In der Vielzahl der verschiedenen entwickelten Sensoren konnten die Calciumsensoren bisher das beste Verhältnis zwischen Signal und Rauschen und die beste zeitliche Auflösung aufzeigen. Hierbei handelt es sich in erster Linie um zwei Typen von Sensoren, zum einen ratiometrische Sensoren, deren Signal auf einem Fluoreszenz Resonanz Energie Transfer (FRET) basiert, und zum anderen um zirkulär permutierte Sensoren, die auf einem modifizierten GFP-Molekül basieren, wobei das Signal auf einer veränderten Protonierung des Chromophors beruht. Beide Arten dieser Sensoren wurden schon erfolgreich zum Messen neuraler Aktivitäten in Nervensystemen verschiedener Tierarten verwendet. Ein Teil dieser Arbeit bestand darin, zu untersuchen, welche Sensoren sich für die Messung an einem lebenden Organismus am besten eignen. Hierfür wurden die Eigenschaften von vier verschiedenen FRET basierten Sensoren und zwei der zyklisch permutierten Sensoren nach Expression im zentralen Nervensystem von Drosophila charakterisiert. Die Sensoren wurden in Neuronen zweiter und dritter Ordnung des olfaktorischen Signalwegs exprimiert und ihre Antworten auf physiologische Duftstimulation oder artifiziell induzierte Depolarisation des Gehirns untersucht. Während die calciumabhängigen Signale der zyklisch permutierten Sensoren in der Regel größer waren als die der FRET basierten Sensoren, zeichneten sich letztere durch ein besseres Signal zu Rausch-Verhältnis aus, wenn Bewegungen der fluoreszierenden Strukturen nicht zu vermeiden waren. Dies war auch der ausschlaggebende Grund für die Verwendung eines FRET basierten Sensors im anschließenden Teil der Arbeit. Im zweiten Teil der Arbeit wurde der Effekt untersucht, den die Paarung eines neutralen Stimulus mit einem bestrafenden Stimulus auf dopaminerge Neurone hat. Eine solche Paarung kann zu einer klassischen Konditionierung führen, einer einfachen Form des Lernens, in welcher das Tier einem ursprünglich neutralen Stimulus einen Wert zuordnet, und dadurch sein Verhalten dem Stimulus gegenüber ändert. Die olfaktorische klassische Konditionierung in Drosophila wird seit vielen Jahren intensiv untersucht, um die molekularen und neuronalen Grundlagen von Lernen und Gedächtnis zu charakterisieren. Dabei hat sich gezeigt, dass besonders die Pilzkörper von essentieller Bedeutung für die Ausbildung eines olfaktorischen Gedächtnisses sind. Während das olfactorische System bei Insekten bereits detailiert analysiert wurde, ist über die Neurone, die den bestrafenden Stimulus vermitteln, nur sehr wenig bekannt. Unter Anwendung des funktionellen optischen Calcium Imaging konnte im Rahmen der Arbeit gezeigt werden, dass die Projektionen von dopaminergen Neuronen im Bereich der Loben der Pilzkörper schwach auf die Präsentation eines Duftes, jedoch sehr stark auf eine Stimulation durch einen Elektroschock antworten. Nach mehrmaliger Paarung eines Duftes mit einem Elektroschock während eines Trainings, verlängert sich die Aktivität dieser dopaminergen Neurone auf den bestraften Duft hin im Test ohne Elektroschock drastisch, während die Antwort auf den Kontrollduft keine signifikanten Veränderungen aufweist. Während bei Säugetieren belohnende Reize bei appetitiven Lernvorgängen über dopaminerge Neurone vermittelt werden, spielen bei Drosophila diese Neurone offensichtlich eine Rolle bei der aversiven Konditionierung. Jedoch blieb, auch wenn sich die Rolle des Dopamins im Laufe der Evolution geändert zu haben scheint, die Fähigkeit dieses Neuronentyps, nicht nur auf einen eintreffenden verstärkenden Stimulus zu reagieren, sondern diesen auch vorhersagen zu können, zwischen Säugern und Drosophila erhalten.The technique of optical in vivo imaging using genetically encoded fluorescent sensors in transgenic animals has paved the way for real-time monitoring of spatio-temporal activity in the brain. Among the different fluorescent probes, the calcium sensors produce signals with the highest signal to noise ratio and the best temporal resolution. Basically these sensors can be split into two groups, those based on a FRET-effect between two modified green fluorescent proteins (GFPs) and those which make use of on a circular permutation of GFP. Both types have successfully been used for measuring neuronal activity in various species. One part of the present work was to test which of these different sensor types are best suited for an in vivo situation. For this, two members of the class of circularly permutated sensors and four members of the class of FRET based sensors were tested and compaired in Drosophila. Each sensor was expressed in second and third order neurons of the olfactory pathway and the calcium activity evoked by artificial depolarisation or physiological odour stimuli was recorded. Whereas the Calcium dependent change in signal intensity is substantially higher for the circularly permutated sensors, the FRET based sensors tested in this work showed a better signal to noise ratio when movement of the brain structures under investigation could not be prevented. For this reason a FRET based sensor was chosen to measure the activity of dopaminergic neuronsin a classical conditioning paradigm. In the second part of this work the effect of pairing a neutral stimulus with a negative reinforcer (in this case an electric shock) on the activity of dopaminergic neurons was investigated. The pairing of these two stimuli can lead to classical conditioning, a simple form of learning in which the animal assigns a value (positive or negative) to the formerly neutral stimulus. Olfactory classical conditioning in Drosophila melanogaster is a prime model for the analysis of the molecular and neuronal substrate of this type of learning and memory. In particular the mushroom bodies have been shown to be essential for olfactory memory formation. While the olfactory system of insects has been extensively characterized little is known about the neurons that mediate the reinforcing stimulus. Using the technique of optical calcium imaging it was possible to show that dopaminergic projections in the region of the mushroom body lobes responded weakly to odour presentations, but strongly to the stimulation by an electric shock. After pairing for several times one of two odours presented to the fly with an electric shock (training), the activity of the dopaminergic neurons to the punished odour is significantly prolonged in a test after the training. No change is observed after the training for the control odour that was not paired with the electric shock. Whereas in mammals rewarding stimuli are mediated by dopaminergic neurons, in Drosophila this catecholamine apparently plays a role in mediating aversive reinforcement. Even though the role of dopamine seems to have changed during evolution the capability of dopaminergic neurons to predict a reinforcing stimulus appears to be conserved between Drosophila and mammals

    Stochastic and Arbitrarily Generated Input Patterns to the Mushroom Bodies Can Serve as Conditioned Stimuli in Drosophila

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    Single neurons in the brains of insects often have individual genetic identities and can be unambiguously identified between animals. The overall neuronal connectivity is also genetically determined and hard-wired to a large degree. Experience-dependent structural and functional plasticity is believed to be superimposed onto this more-or-less fixed connectome. However, in Drosophila melanogaster, it has been shown that the connectivity between the olfactory projection neurons (OPNs) and Kenyon cells, the intrinsic neurons of the mushroom body, is highly stochastic and idiosyncratic between individuals. Ensembles of distinctly and sparsely activated Kenyon cells represent information about the identity of the olfactory input, and behavioral relevance can be assigned to this representation in the course of associative olfactory learning. Previously, we showed that in the absence of any direct sensory input, artificially and stochastically activated groups of Kenyon cells could be trained to encode aversive cues when their activation coincided with aversive stimuli. Here, we have tested the hypothesis that the mushroom body can learn any stochastic neuronal input pattern as behaviorally relevant, independent of its exact origin. We show that fruit flies can learn thermogenetically generated, stochastic activity patterns of OPNs as conditioned stimuli, irrespective of glomerular identity, the innate valence that the projection neurons carry, or inter-hemispheric symmetry

    Neural Control of Startle-Induced Locomotion by the Mushroom Bodies and Associated Neurons in Drosophila

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    International audienceStartle-induced locomotion is commonly used in Drosophila research to monitor locomotor reactivity and its progressive decline with age or under various neuropathological conditions. A widely used paradigm is startle-induced negative geotaxis (SING), in which flies entrapped in a narrow column react to a gentle mechanical shock by climbing rapidly upwards. Here we combined in vivo manipulation of neuronal activity and splitGFP reconstitution across cells to search for brain neurons and putative circuits that regulate this behavior. We show that the activity of specific clusters of dopaminergic neurons (DANs) afferent to the mushroom bodies (MBs) modulates SING, and that DAN-mediated SING regulation requires expression of the DA receptor Dop1R1/Dumb, but not Dop1R2/Damb, in intrinsic MB Kenyon cells (KCs). We confirmed our previous observation that activating the MB α'β', but not αβ, KCs decreased the SING response, and we identified further MB neurons implicated in SING control, including KCs of the γ lobe and two subtypes of MB output neurons (MBONs). We also observed that co-activating the αβ KCs antagonizes α'β' and γ KC-mediated SING modulation, suggesting the existence of subtle regulation mechanisms between the different MB lobes in locomotion control. Overall, this study contributes to an emerging picture of the brain circuits modulating locomotor reactivity in Drosophila that appear both to overlap and differ from those underlying associative learning and memory, sleep/wake state and stress-induced hyperactivity

    A dopamine receptor contribute to paraquat-induced neurotoxicity in Drosophila

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    Long-term exposure to environmental oxidative stressors, like the herbicide paraquat (PQ), has been linked to the development of Parkinson\u27s disease (PD), the most frequent neurodegenerative movement disorder. Paraquat is thus frequently used in the fruit fly Drosophila melanogaster and other animal models to study PD and the degeneration of dopaminergic neurons (DNs) that characterizes this disease. Here, we show that a D1-like dopamine (DA) receptor, DAMB, actively contributes to the fast central nervous system (CNS) failure induced by PQ in the fly. First, we found that a long-term increase in neuronal DA synthesis reduced DAMB expression and protected against PQ neurotoxicity. Secondly, a striking age-related decrease in PQ resistance in young adult flies correlated with an augmentation of DAMBexpression. This aging-associated increase in oxidative stress vulnerability was not observed in a DAMB-deficient mutant. Thirdly, targeted inactivation of this receptor in glutamatergic neurons (GNs) markedly enhanced the survival of Drosophila exposed to either PQ or neurotoxic levels of DA, whereas, conversely, DAMB overexpression in these cells made the flies more vulnerable to both compounds. Fourthly, a mutation in the Drosophila ryanodine receptor (RyR), which inhibits activity-induced increase in cytosolic Ca2+, also strongly enhanced PQ resistance. Finally, we found that DAMB overexpression in specific neuronal populations arrested development of the fly and that in vivostimulation of either DNs or GNs increased PQ susceptibility. This suggests a model for DA receptor-mediated potentiation of PQ-induced neurotoxicity. Further studies of DAMB signaling in Drosophila could have implications for better understanding DA-related neurodegenerative disorders in humans

    Mushroom body miscellanea : transgenic Drosophila strains expressing anatomical and physiological sensor proteins in Kenyon cells

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    The fruit fly Drosophila melanogaster represents a key model organism for analyzing how neuronal circuits regulate behavior. The mushroom body in the central brain is a particularly prominent brain region that has been intensely studied in several insect species and been implicated in a variety of behaviors, e.g., associative learning, locomotor activity, and sleep. Drosophila melanogaster offers the advantage that transgenes can be easily expressed in neuronal subpopulations, e.g., in intrinsic mushroom body neurons (Kenyon cells). A number of transgenes has been described and engineered to visualize the anatomy of neurons, to monitor physiological parameters of neuronal activity, and to manipulate neuronal function artificially. To target the expression of these transgenes selectively to specific neurons several sophisticated bi- or even multipartite transcription systems have been invented. However, the number of transgenes that can be combined in the genome of an individual fly is limited in practice. To facilitate the analysis of the mushroom body we provide a compilation of transgenic fruit flies that express transgenes under direct control of the Kenyon-cell specific promoter, mb247. The transgenes expressed are fluorescence reporters to analyze neuroanatomical aspects of the mushroom body, proteins to restrict ectopic gene expression to mushroom bodies, or fluorescent sensors to monitor physiological parameters of neuronal activity of Kenyon cells. Some of the transgenic animals compiled here have been published already, whereas others are novel and characterized here for the first time. Overall, the collection of transgenic flies expressing sensor and reporter genes in Kenyon cells facilitates combinations with binary transcription systems and might, ultimately, advance the physiological analysis of mushroom body function

    A Single Dopamine Pathway Underlies Progressive Locomotor Deficits in a Drosophila Model of Parkinson Disease

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    Expression of the human Parkinson-disease-associated protein α-synuclein in all Drosophila neurons induces progressive locomotor deficits. Here, we identify a group of 15 dopaminergic neurons per hemisphere in the anterior medial region of the brain whose disruption correlates with climbing impairments in this model. These neurons selectively innervate the horizontal β and β′ lobes of the mushroom bodies, and their connections to the Kenyon cells are markedly reduced when they express α-synuclein. Using selective mushroom body drivers, we show that blocking or overstimulating neuronal activity in the β′ lobe, but not the β or γ lobes, significantly inhibits negative geotaxis behavior. This suggests that modulation of the mushroom body β′ lobes by this dopaminergic pathway is specifically required for an efficient control of startle-induced locomotion in flies
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