Identification of an Operant Learning Circuit by Whole Brain Functional Imaging in Larval Zebrafish

When confronted with changing environments, animals can generally adjust their behavior to optimize reward and minimize punishment. The process of modifying one's behavior based on its consequences is referred to as operant or instrumental learning. Operant learning makes specific demands on th...

Full description

Bibliographic Details
Main Author: Li, Jennifer Mengbo
Other Authors: Schier, Alexander F
Language:en_US
Published: Harvard University 2013
Subjects:
Online Access:http://dissertations.umi.com/gsas.harvard:11032
http://nrs.harvard.edu/urn-3:HUL.InstRepos:10974703
id ndltd-harvard.edu-oai-dash.harvard.edu-1-10974703
record_format oai_dc
spelling ndltd-harvard.edu-oai-dash.harvard.edu-1-109747032015-08-14T15:42:26ZIdentification of an Operant Learning Circuit by Whole Brain Functional Imaging in Larval ZebrafishLi, Jennifer MengboNeurosciencesWhen confronted with changing environments, animals can generally adjust their behavior to optimize reward and minimize punishment. The process of modifying one's behavior based on its consequences is referred to as operant or instrumental learning. Operant learning makes specific demands on the animal. The animal must exhibit some flexibility in its behavior, switching from unsuccessful motor responses to potentially successful ones. The animal must represent the consequence of its actions. Finally, the animal must select the correct response based on its past history of reinforcement. Studies in mammalian systems have found competing and complementary circuits in the cortex and striatum that mediate different aspects of this learning process. The larval zebrafish is an ideal system to extend the study of operant learning due to its genetic and optical properties. We have developed a behavioral paradigm and imaging system that have allowed us to comprehensively image neural activity throughout the zebrafish brain during the process of operant conditioning. Our analysis of the neural network activity underlying this learning process reveals several classes of neurons whose activity correlates with learning and decision making. The distribution of these learning-related neurons is highly localized to regions of the habenula and forebrain. We describe, in particular, a lateralized habenula circuit that may encode prediction and relief prediction error.Schier, Alexander F2013-08-21T17:46:15Z2013-08-2120122015-06-08T07:30:32ZThesis or DissertationLi, Jennifer Mengbo. 2012. Identification of an Operant Learning Circuit by Whole Brain Functional Imaging in Larval Zebrafish. Doctoral dissertation, Harvard University.http://dissertations.umi.com/gsas.harvard:11032http://nrs.harvard.edu/urn-3:HUL.InstRepos:10974703en_USopenhttp://nrs.harvard.edu/urn-3:HUL.InstRepos:dash.current.terms-of-use#LAAHarvard University
collection NDLTD
language en_US
sources NDLTD
topic Neurosciences
spellingShingle Neurosciences
Li, Jennifer Mengbo
Identification of an Operant Learning Circuit by Whole Brain Functional Imaging in Larval Zebrafish
description When confronted with changing environments, animals can generally adjust their behavior to optimize reward and minimize punishment. The process of modifying one's behavior based on its consequences is referred to as operant or instrumental learning. Operant learning makes specific demands on the animal. The animal must exhibit some flexibility in its behavior, switching from unsuccessful motor responses to potentially successful ones. The animal must represent the consequence of its actions. Finally, the animal must select the correct response based on its past history of reinforcement. Studies in mammalian systems have found competing and complementary circuits in the cortex and striatum that mediate different aspects of this learning process. The larval zebrafish is an ideal system to extend the study of operant learning due to its genetic and optical properties. We have developed a behavioral paradigm and imaging system that have allowed us to comprehensively image neural activity throughout the zebrafish brain during the process of operant conditioning. Our analysis of the neural network activity underlying this learning process reveals several classes of neurons whose activity correlates with learning and decision making. The distribution of these learning-related neurons is highly localized to regions of the habenula and forebrain. We describe, in particular, a lateralized habenula circuit that may encode prediction and relief prediction error.
author2 Schier, Alexander F
author_facet Schier, Alexander F
Li, Jennifer Mengbo
author Li, Jennifer Mengbo
author_sort Li, Jennifer Mengbo
title Identification of an Operant Learning Circuit by Whole Brain Functional Imaging in Larval Zebrafish
title_short Identification of an Operant Learning Circuit by Whole Brain Functional Imaging in Larval Zebrafish
title_full Identification of an Operant Learning Circuit by Whole Brain Functional Imaging in Larval Zebrafish
title_fullStr Identification of an Operant Learning Circuit by Whole Brain Functional Imaging in Larval Zebrafish
title_full_unstemmed Identification of an Operant Learning Circuit by Whole Brain Functional Imaging in Larval Zebrafish
title_sort identification of an operant learning circuit by whole brain functional imaging in larval zebrafish
publisher Harvard University
publishDate 2013
url http://dissertations.umi.com/gsas.harvard:11032
http://nrs.harvard.edu/urn-3:HUL.InstRepos:10974703
work_keys_str_mv AT lijennifermengbo identificationofanoperantlearningcircuitbywholebrainfunctionalimaginginlarvalzebrafish
_version_ 1716816728433885184