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Neural circuit mechanisms for transforming learned olfactory valences into wind-oriented movement

How memories are used by the brain to guide future action is poorly understood. In olfactory associative learning in Drosophila, multiple compartments of the mushroom body act in parallel to assign a valence to a stimulus. Here, we show that appetitive memories stored in different compartments induc...

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Autores principales: Aso, Yoshinori, Yamada, Daichi, Bushey, Daniel, Hibbard, Karen L, Sammons, Megan, Otsuna, Hideo, Shuai, Yichun, Hige, Toshihide
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10588983/
https://www.ncbi.nlm.nih.gov/pubmed/37721371
http://dx.doi.org/10.7554/eLife.85756
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author Aso, Yoshinori
Yamada, Daichi
Bushey, Daniel
Hibbard, Karen L
Sammons, Megan
Otsuna, Hideo
Shuai, Yichun
Hige, Toshihide
author_facet Aso, Yoshinori
Yamada, Daichi
Bushey, Daniel
Hibbard, Karen L
Sammons, Megan
Otsuna, Hideo
Shuai, Yichun
Hige, Toshihide
author_sort Aso, Yoshinori
collection PubMed
description How memories are used by the brain to guide future action is poorly understood. In olfactory associative learning in Drosophila, multiple compartments of the mushroom body act in parallel to assign a valence to a stimulus. Here, we show that appetitive memories stored in different compartments induce different levels of upwind locomotion. Using a photoactivation screen of a new collection of split-GAL4 drivers and EM connectomics, we identified a cluster of neurons postsynaptic to the mushroom body output neurons (MBONs) that can trigger robust upwind steering. These UpWind Neurons (UpWiNs) integrate inhibitory and excitatory synaptic inputs from MBONs of appetitive and aversive memory compartments, respectively. After formation of appetitive memory, UpWiNs acquire enhanced response to reward-predicting odors as the response of the inhibitory presynaptic MBON undergoes depression. Blocking UpWiNs impaired appetitive memory and reduced upwind locomotion during retrieval. Photoactivation of UpWiNs also increased the chance of returning to a location where activation was terminated, suggesting an additional role in olfactory navigation. Thus, our results provide insight into how learned abstract valences are gradually transformed into concrete memory-driven actions through divergent and convergent networks, a neuronal architecture that is commonly found in the vertebrate and invertebrate brains.
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spelling pubmed-105889832023-10-21 Neural circuit mechanisms for transforming learned olfactory valences into wind-oriented movement Aso, Yoshinori Yamada, Daichi Bushey, Daniel Hibbard, Karen L Sammons, Megan Otsuna, Hideo Shuai, Yichun Hige, Toshihide eLife Neuroscience How memories are used by the brain to guide future action is poorly understood. In olfactory associative learning in Drosophila, multiple compartments of the mushroom body act in parallel to assign a valence to a stimulus. Here, we show that appetitive memories stored in different compartments induce different levels of upwind locomotion. Using a photoactivation screen of a new collection of split-GAL4 drivers and EM connectomics, we identified a cluster of neurons postsynaptic to the mushroom body output neurons (MBONs) that can trigger robust upwind steering. These UpWind Neurons (UpWiNs) integrate inhibitory and excitatory synaptic inputs from MBONs of appetitive and aversive memory compartments, respectively. After formation of appetitive memory, UpWiNs acquire enhanced response to reward-predicting odors as the response of the inhibitory presynaptic MBON undergoes depression. Blocking UpWiNs impaired appetitive memory and reduced upwind locomotion during retrieval. Photoactivation of UpWiNs also increased the chance of returning to a location where activation was terminated, suggesting an additional role in olfactory navigation. Thus, our results provide insight into how learned abstract valences are gradually transformed into concrete memory-driven actions through divergent and convergent networks, a neuronal architecture that is commonly found in the vertebrate and invertebrate brains. eLife Sciences Publications, Ltd 2023-09-18 /pmc/articles/PMC10588983/ /pubmed/37721371 http://dx.doi.org/10.7554/eLife.85756 Text en © 2023, Aso et al https://creativecommons.org/licenses/by/4.0/This article is distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use and redistribution provided that the original author and source are credited.
spellingShingle Neuroscience
Aso, Yoshinori
Yamada, Daichi
Bushey, Daniel
Hibbard, Karen L
Sammons, Megan
Otsuna, Hideo
Shuai, Yichun
Hige, Toshihide
Neural circuit mechanisms for transforming learned olfactory valences into wind-oriented movement
title Neural circuit mechanisms for transforming learned olfactory valences into wind-oriented movement
title_full Neural circuit mechanisms for transforming learned olfactory valences into wind-oriented movement
title_fullStr Neural circuit mechanisms for transforming learned olfactory valences into wind-oriented movement
title_full_unstemmed Neural circuit mechanisms for transforming learned olfactory valences into wind-oriented movement
title_short Neural circuit mechanisms for transforming learned olfactory valences into wind-oriented movement
title_sort neural circuit mechanisms for transforming learned olfactory valences into wind-oriented movement
topic Neuroscience
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10588983/
https://www.ncbi.nlm.nih.gov/pubmed/37721371
http://dx.doi.org/10.7554/eLife.85756
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