TY - JOUR A1 - Aso, Yoshinori A1 - Herb, Andrea A1 - Ogueta, Maite A1 - Siwanowicz, Igor A1 - Templier, Thomas A1 - Friedrich, Anja B. A1 - Ito, Kei A1 - Scholz, Henrike A1 - Tanimoto, Hiromu T1 - Three Dopamine Pathways Induce Aversive Odor Memories with Different Stability JF - PLoS Genetics N2 - Animals acquire predictive values of sensory stimuli through reinforcement. In the brain of Drosophila melanogaster, activation of two types of dopamine neurons in the PAM and PPL1 clusters has been shown to induce aversive odor memory. Here, we identified the third cell type and characterized aversive memories induced by these dopamine neurons. These three dopamine pathways all project to the mushroom body but terminate in the spatially segregated subdomains. To understand the functional difference of these dopamine pathways in electric shock reinforcement, we blocked each one of them during memory acquisition. We found that all three pathways partially contribute to electric shock memory. Notably, the memories mediated by these neurons differed in temporal stability. Furthermore, combinatorial activation of two of these pathways revealed significant interaction of individual memory components rather than their simple summation. These results cast light on a cellular mechanism by which a noxious event induces different dopamine signals to a single brain structure to synthesize an aversive memory. KW - dynamics KW - serotonin KW - expression KW - melanogaster KW - neurons form KW - olfactory memory KW - long-term-memory KW - drosophila mushroom body KW - sensitization KW - localization Y1 - 2012 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-130631 VL - 8 IS - 7 ER - TY - THES A1 - Aso, Yoshinori T1 - Dissecting the neuronal circuit for olfactory learning in Drosophila T1 - Die neuronale Schaltung für olfaktorisches Lernen in Drosophila N2 - This thesis consists of three major chapters, each of which has been separately published or under the process for publication. The first chapter is about anatomical characterization of the mushroom body of adult Drosophila melanogaster. The mushroom body is the center for olfactory learning and many other functions in the insect brains. The functions of the mushroom body have been studied by utilizing the GAL4/UAS gene expression system. The present study characterized the expression patterns of the commonly used GAL4 drivers for the mushroom body intrinsic neurons, Kenyon cells. Thereby, we revealed the numerical composition of the different types of Kenyon cells and found one subtype of the Kenyon cells that have not been described. The second and third chapters together demonstrate that the multiple types of dopaminergic neurons mediate the aversive reinforcement signals to the mushroom body. They induce the parallel memory traces that constitute the different temporal domains of the aversive odor memory. In prior to these chapters, “General introduction and discussion” section reviews and discuss about the current understanding of neuronal circuit for olfactory learning in Drosophila. N2 - Diese Dissertation umfasst drei Kapitel. Das erste Kapitel handelt von der anatomischen Charakterisierung des Pilzkörpers in adulten Drosophila melanogaster. Der Pilzkörper ist das Zentrum für olfaktorisches Lernen und viele andere Funktionen im Insektengehirn. Diese wurden mit Hilfe des GAL4/UAS Genexpressionssystems untersucht. Die vorliegende Arbeit charakterisiert die Expressionsmuster der gewöhnlich verwendeten GAL4 Treiberlinien für die Pilzkörperintrinsischen Neurone, den Kenyonzellen. Dabei zeigten ich die zahlenmäßige Zusammensetzung der unterschiedlichen Kenyonzelltypen und fanden einen Kenyonzellsubtyp, welcher bisher noch nicht beschrieben wurde. Das zweite und dritte Kapitel zeigen, dass verschiedene Typen dopaminerger Neurone aversive Verstärkungssignale (Unkonditionierte Stimuli) zum Pilzkörper übermitteln. Sie induzieren parallele Gedächtnisspuren, welche den unterschiedlichen zeitlichen Komponenten von aversivem Duftgedächtnis zugrunde liegen. Vor diesen Kapiteln enthält der Abschnitt „General introduction and discussion” einen Überblick und eine Diskussion über das derzeitige Verständnis des neuronalen Netzwerks, welches olfaktorischem Lernen in Drosophila zugrunde liegt. KW - Taufliege KW - Geruchswahrnehmung KW - Lernverhalten KW - Pilzkörper KW - olfaktorisches Lernen KW - Drosophila KW - olfactory learning KW - Drosophila KW - mushroom body KW - Dopamine Y1 - 2010 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-55483 ER -