Discrete Serotonin Systems Mediate Memory Enhancement and Escape Latencies after Unpredicted Aversive Experience in Drosophila Place Memory

Feedback mechanisms in operant learning are critical for animals to increase reward or reduce punishment. However, not all conditions have a behavior that can readily resolve an event. Animals must then try out different behaviors to better their situation through outcome learning. This form of lear...

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Main Authors: Divya Sitaraman, Elizabeth F. Kramer, Lily Kahsai, Daniela Ostrowski, Troy Zars
Format: Article
Language:English
Published: Frontiers Media S.A. 2017-12-01
Series:Frontiers in Systems Neuroscience
Subjects:
Online Access:http://journal.frontiersin.org/article/10.3389/fnsys.2017.00092/full
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spelling doaj-39d5b8df68a742d69f6d07d57b1e522a2020-11-24T23:54:05ZengFrontiers Media S.A.Frontiers in Systems Neuroscience1662-51372017-12-011110.3389/fnsys.2017.00092274069Discrete Serotonin Systems Mediate Memory Enhancement and Escape Latencies after Unpredicted Aversive Experience in Drosophila Place MemoryDivya Sitaraman0Elizabeth F. Kramer1Lily Kahsai2Daniela Ostrowski3Troy Zars4ivision of Biological Sciences, University of Missouri, Columbia, MO, United Statesivision of Biological Sciences, University of Missouri, Columbia, MO, United Statesivision of Biological Sciences, University of Missouri, Columbia, MO, United Statesivision of Biological Sciences, University of Missouri, Columbia, MO, United Statesivision of Biological Sciences, University of Missouri, Columbia, MO, United StatesFeedback mechanisms in operant learning are critical for animals to increase reward or reduce punishment. However, not all conditions have a behavior that can readily resolve an event. Animals must then try out different behaviors to better their situation through outcome learning. This form of learning allows for novel solutions and with positive experience can lead to unexpected behavioral routines. Learned helplessness, as a type of outcome learning, manifests in part as increases in escape latency in the face of repeated unpredicted shocks. Little is known about the mechanisms of outcome learning. When fruit fly Drosophilamelanogaster are exposed to unpredicted high temperatures in a place learning paradigm, flies both increase escape latencies and have a higher memory when given control of a place/temperature contingency. Here we describe discrete serotonin neuronal circuits that mediate aversive reinforcement, escape latencies, and memory levels after place learning in the presence and absence of unexpected aversive events. The results show that two features of learned helplessness depend on the same modulatory system as aversive reinforcement. Moreover, changes in aversive reinforcement and escape latency depend on local neural circuit modulation, while memory enhancement requires larger modulation of multiple behavioral control circuits.http://journal.frontiersin.org/article/10.3389/fnsys.2017.00092/fullserotoninlearningmemorylearned helplessnessDrosophila melanogaster
collection DOAJ
language English
format Article
sources DOAJ
author Divya Sitaraman
Elizabeth F. Kramer
Lily Kahsai
Daniela Ostrowski
Troy Zars
spellingShingle Divya Sitaraman
Elizabeth F. Kramer
Lily Kahsai
Daniela Ostrowski
Troy Zars
Discrete Serotonin Systems Mediate Memory Enhancement and Escape Latencies after Unpredicted Aversive Experience in Drosophila Place Memory
Frontiers in Systems Neuroscience
serotonin
learning
memory
learned helplessness
Drosophila melanogaster
author_facet Divya Sitaraman
Elizabeth F. Kramer
Lily Kahsai
Daniela Ostrowski
Troy Zars
author_sort Divya Sitaraman
title Discrete Serotonin Systems Mediate Memory Enhancement and Escape Latencies after Unpredicted Aversive Experience in Drosophila Place Memory
title_short Discrete Serotonin Systems Mediate Memory Enhancement and Escape Latencies after Unpredicted Aversive Experience in Drosophila Place Memory
title_full Discrete Serotonin Systems Mediate Memory Enhancement and Escape Latencies after Unpredicted Aversive Experience in Drosophila Place Memory
title_fullStr Discrete Serotonin Systems Mediate Memory Enhancement and Escape Latencies after Unpredicted Aversive Experience in Drosophila Place Memory
title_full_unstemmed Discrete Serotonin Systems Mediate Memory Enhancement and Escape Latencies after Unpredicted Aversive Experience in Drosophila Place Memory
title_sort discrete serotonin systems mediate memory enhancement and escape latencies after unpredicted aversive experience in drosophila place memory
publisher Frontiers Media S.A.
series Frontiers in Systems Neuroscience
issn 1662-5137
publishDate 2017-12-01
description Feedback mechanisms in operant learning are critical for animals to increase reward or reduce punishment. However, not all conditions have a behavior that can readily resolve an event. Animals must then try out different behaviors to better their situation through outcome learning. This form of learning allows for novel solutions and with positive experience can lead to unexpected behavioral routines. Learned helplessness, as a type of outcome learning, manifests in part as increases in escape latency in the face of repeated unpredicted shocks. Little is known about the mechanisms of outcome learning. When fruit fly Drosophilamelanogaster are exposed to unpredicted high temperatures in a place learning paradigm, flies both increase escape latencies and have a higher memory when given control of a place/temperature contingency. Here we describe discrete serotonin neuronal circuits that mediate aversive reinforcement, escape latencies, and memory levels after place learning in the presence and absence of unexpected aversive events. The results show that two features of learned helplessness depend on the same modulatory system as aversive reinforcement. Moreover, changes in aversive reinforcement and escape latency depend on local neural circuit modulation, while memory enhancement requires larger modulation of multiple behavioral control circuits.
topic serotonin
learning
memory
learned helplessness
Drosophila melanogaster
url http://journal.frontiersin.org/article/10.3389/fnsys.2017.00092/full
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