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Distinct dopamine neurons mediate reward signals for short- and long-term memories
Author(s) -
Nobuhiro Yamagata,
Toshiharu Ichinose,
Yoshinori Aso,
Pierre-Yves Plaçais,
Anja Friedrich,
Richard Sima,
Thomas Préat,
Gerald M. Rubin,
Hiromu Tanimoto
Publication year - 2014
Publication title -
proceedings of the national academy of sciences
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.011
H-Index - 771
eISSN - 1091-6490
pISSN - 0027-8424
DOI - 10.1073/pnas.1421930112
Subject(s) - mushroom bodies , neuroscience , dopamine , olfactory memory , memory formation , long term memory , drosophila melanogaster , dopaminergic , memory consolidation , neuron , short term memory , odor , olfaction , biology , psychology , hippocampus , working memory , olfactory bulb , cognition , central nervous system , biochemistry , gene
Drosophila melanogaster can acquire a stable appetitive olfactory memory when the presentation of a sugar reward and an odor are paired. However, the neuronal mechanisms by which a single training induces long-term memory are poorly understood. Here we show that two distinct subsets of dopamine neurons in the fly brain signal reward for short-term (STM) and long-term memories (LTM). One subset induces memory that decays within several hours, whereas the other induces memory that gradually develops after training. They convey reward signals to spatially segregated synaptic domains of the mushroom body (MB), a potential site for convergence. Furthermore, we identified a single type of dopamine neuron that conveys the reward signal to restricted subdomains of the mushroom body lobes and induces long-term memory. Constant appetitive memory retention after a single training session thus comprises two memory components triggered by distinct dopamine neurons.

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