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Layered reward signalling through octopamine and dopamine in Drosophila
Layered reward signalling through octopamine and dopamine in Drosophila
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Layered reward signalling through octopamine and dopamine in Drosophila
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Layered reward signalling through octopamine and dopamine in Drosophila
Layered reward signalling through octopamine and dopamine in Drosophila
Journal Article

Layered reward signalling through octopamine and dopamine in Drosophila

2012
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Overview
Dopamine is synonymous with reward in mammals but associated with aversive reinforcement in insects, where reward seems to be signalled by octopamine; here it is shown that flies have discrete populations of dopamine neurons representing positive or negative values that are coordinately regulated by octopamine. Shared neuronal reward signals The neurotransmitter dopamine has been synonymous with reward in mammals, but is associated with aversive reinforcement in insects. In insects, it was thought, reward was signalled by octopamine. Now Scott Waddell and colleagues show that flies have discrete 'negative' and 'positive' populations of dopamine neurons, which are coordinately regulated by octopamine. This work reconciles previous findings with octopamine and dopamine, and suggests that reinforcement systems in flies are more like those in mammals than previously thought. Dopamine is synonymous with reward and motivation in mammals 1 , 2 . However, only recently has dopamine been linked to motivated behaviour and rewarding reinforcement in fruitflies 3 , 4 . Instead, octopamine has historically been considered to be the signal for reward in insects 5 , 6 , 7 . Here we show, using temporal control of neural function in Drosophila , that only short-term appetitive memory is reinforced by octopamine. Moreover, octopamine-dependent memory formation requires signalling through dopamine neurons. Part of the octopamine signal requires the α-adrenergic-like OAMB receptor in an identified subset of mushroom-body-targeted dopamine neurons. Octopamine triggers an increase in intracellular calcium in these dopamine neurons, and their direct activation can substitute for sugar to form appetitive memory, even in flies lacking octopamine. Analysis of the β-adrenergic-like OCTβ2R receptor reveals that octopamine-dependent reinforcement also requires an interaction with dopamine neurons that control appetitive motivation. These data indicate that sweet taste engages a distributed octopamine signal that reinforces memory through discrete subsets of mushroom-body-targeted dopamine neurons. In addition, they reconcile previous findings with octopamine and dopamine and suggest that reinforcement systems in flies are more similar to mammals than previously thought.
Publisher
Nature Publishing Group UK,Nature Publishing Group
Subject

631/378/1595

/ 631/378/548/1964

/ 631/601/18

/ Animals

/ Appetitive Behavior - drug effects

/ Biological and medical sciences

/ Calcium Signaling - drug effects

/ Cellular signal transduction

/ Cloning

/ Conditioning, Psychological - drug effects

/ Conditioning, Psychological - physiology

/ Dopamine

/ Dopamine - metabolism

/ Dopamine - pharmacology

/ Dopaminergic Neurons - drug effects

/ Dopaminergic Neurons - metabolism

/ Drosophila

/ Drosophila melanogaster - drug effects

/ Drosophila melanogaster - metabolism

/ Drosophila Proteins - deficiency

/ Drosophila Proteins - genetics

/ Drosophila Proteins - metabolism

/ Female

/ Fundamental and applied biological sciences. Psychology

/ Humanities and Social Sciences

/ Insects

/ letter

/ Male

/ Mammals

/ Memory, Short-Term - drug effects

/ Memory, Short-Term - physiology

/ Motivation - drug effects

/ Motivation - physiology

/ multidisciplinary

/ Mushroom Bodies - cytology

/ Mushroom Bodies - drug effects

/ Mushroom Bodies - metabolism

/ Neurons

/ Neurotransmitters

/ Octopamine - metabolism

/ Octopamine - pharmacology

/ Olfactory system and olfaction. Gustatory system and gustation

/ Parkinson's disease

/ Physiological aspects

/ Properties

/ Receptors, Neurotransmitter - deficiency

/ Receptors, Neurotransmitter - genetics

/ Receptors, Neurotransmitter - metabolism

/ Reward

/ Reward (Psychology)

/ Science

/ Signal transduction

/ Signal Transduction - drug effects

/ Taste - drug effects

/ Taste - physiology

/ Vertebrates: nervous system and sense organs