TY - JOUR
T1 - Activity of defined mushroom body output neurons underlies learned olfactory behavior in Drosophila
AU - Owald, David
AU - Felsenberg, Johannes
AU - Talbot, Clifford B.
AU - Das, Gaurav
AU - Perisse, Emmanuel
AU - Huetteroth, Wolf
AU - Waddell, Scott
PY - 2015/4/22
Y1 - 2015/4/22
N2 - During olfactory learning in fruit flies, dopaminergic neurons assign value to odor representations in themushroom body Kenyon cells. Here we identify a class of downstream glutamatergic mushroom body output neurons (MBONs) called M4/6, or MBON-β2β'2a, MBON-β'2mp, and MBON-γ5β'2a, whose dendritic fields overlap with dopaminergic neuron projections in the tips of the β, β', and γ lobes. This anatomy and their odor tuning suggests that M4/6 neurons pool odor-driven Kenyon cell synaptic outputs. Like that of mushroom body neurons, M4/6 output is required for expression of appetitive and aversive memory performance. Moreover, appetitiveand aversive olfactory conditioning bidirectionally alters the relative odor-drive of M4β' neurons (MBON-β'2mp). Direct block of M4/6 neurons in naive flies mimics appetitive conditioning, being sufficient to convert odor-driven avoidance into approach, while optogenetically activating these neurons induces avoidance behavior. We therefore propose that drive to the M4/6 neurons reflects odor-directed behavioral choice.
AB - During olfactory learning in fruit flies, dopaminergic neurons assign value to odor representations in themushroom body Kenyon cells. Here we identify a class of downstream glutamatergic mushroom body output neurons (MBONs) called M4/6, or MBON-β2β'2a, MBON-β'2mp, and MBON-γ5β'2a, whose dendritic fields overlap with dopaminergic neuron projections in the tips of the β, β', and γ lobes. This anatomy and their odor tuning suggests that M4/6 neurons pool odor-driven Kenyon cell synaptic outputs. Like that of mushroom body neurons, M4/6 output is required for expression of appetitive and aversive memory performance. Moreover, appetitiveand aversive olfactory conditioning bidirectionally alters the relative odor-drive of M4β' neurons (MBON-β'2mp). Direct block of M4/6 neurons in naive flies mimics appetitive conditioning, being sufficient to convert odor-driven avoidance into approach, while optogenetically activating these neurons induces avoidance behavior. We therefore propose that drive to the M4/6 neurons reflects odor-directed behavioral choice.
UR - http://www.scopus.com/inward/record.url?scp=84929157040&partnerID=8YFLogxK
U2 - 10.1016/j.neuron.2015.03.025
DO - 10.1016/j.neuron.2015.03.025
M3 - Article
C2 - 25864636
AN - SCOPUS:84929157040
SN - 0896-6273
VL - 86
SP - 417
EP - 427
JO - Neuron
JF - Neuron
IS - 2
ER -