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Sensory Experience Remodels Genome Architecture in Neural Circuit to Drive Motor Learning

Neuronal activity-dependent transcription couples sensory experience to adaptive responses of the brain including learning and memory. Mechanisms of activity-dependent gene expression including alterations of the epigenome have been characterized(1–8). However, the fundamental question of whether an...

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Autores principales: Yamada, Tomoko, Yang, Yue, Valnegri, Pamela, Juric, Ivan, Abnousi, Armen, Markwalter, Kelly H., Guthrie, Arden N., Godec, Abigail, Oldenborg, Anna, Hu, Ming, Holy, Timothy E., Bonni, Azad
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6542709/
https://www.ncbi.nlm.nih.gov/pubmed/31068695
http://dx.doi.org/10.1038/s41586-019-1190-7
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author Yamada, Tomoko
Yang, Yue
Valnegri, Pamela
Juric, Ivan
Abnousi, Armen
Markwalter, Kelly H.
Guthrie, Arden N.
Godec, Abigail
Oldenborg, Anna
Hu, Ming
Holy, Timothy E.
Bonni, Azad
author_facet Yamada, Tomoko
Yang, Yue
Valnegri, Pamela
Juric, Ivan
Abnousi, Armen
Markwalter, Kelly H.
Guthrie, Arden N.
Godec, Abigail
Oldenborg, Anna
Hu, Ming
Holy, Timothy E.
Bonni, Azad
author_sort Yamada, Tomoko
collection PubMed
description Neuronal activity-dependent transcription couples sensory experience to adaptive responses of the brain including learning and memory. Mechanisms of activity-dependent gene expression including alterations of the epigenome have been characterized(1–8). However, the fundamental question of whether and how sensory experience remodels chromatin architecture in the adult brain in vivo to induce neural code transformations and learning and memory remains to be addressed. Here, in vivo calcium imaging, optogenetics, and pharmacological approaches reveal that granule neuron activation in the anterior dorsal cerebellar vermis (ADCV) plays a crucial role in a novel delay tactile startle learning paradigm in mice. Strikingly, using large-scale transcriptome and chromatin profiling, we have discovered that activation of the motor learning-linked granule neuron circuit reorganizes neuronal chromatin including through long-distance enhancer-promoter and transcriptionally active compartment interactions to orchestrate distinct granule neuron gene expression modules. Conditional CRISPR knockout of the chromatin architecture regulator Cohesin in ADCV granule neurons in adult mice disrupts enhancer-promoter interactions, activity-dependent transcription, and motor learning. These findings define how sensory experience patterns chromatin architecture and neural circuit coding in the brain to drive motor learning.
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spelling pubmed-65427092019-11-08 Sensory Experience Remodels Genome Architecture in Neural Circuit to Drive Motor Learning Yamada, Tomoko Yang, Yue Valnegri, Pamela Juric, Ivan Abnousi, Armen Markwalter, Kelly H. Guthrie, Arden N. Godec, Abigail Oldenborg, Anna Hu, Ming Holy, Timothy E. Bonni, Azad Nature Article Neuronal activity-dependent transcription couples sensory experience to adaptive responses of the brain including learning and memory. Mechanisms of activity-dependent gene expression including alterations of the epigenome have been characterized(1–8). However, the fundamental question of whether and how sensory experience remodels chromatin architecture in the adult brain in vivo to induce neural code transformations and learning and memory remains to be addressed. Here, in vivo calcium imaging, optogenetics, and pharmacological approaches reveal that granule neuron activation in the anterior dorsal cerebellar vermis (ADCV) plays a crucial role in a novel delay tactile startle learning paradigm in mice. Strikingly, using large-scale transcriptome and chromatin profiling, we have discovered that activation of the motor learning-linked granule neuron circuit reorganizes neuronal chromatin including through long-distance enhancer-promoter and transcriptionally active compartment interactions to orchestrate distinct granule neuron gene expression modules. Conditional CRISPR knockout of the chromatin architecture regulator Cohesin in ADCV granule neurons in adult mice disrupts enhancer-promoter interactions, activity-dependent transcription, and motor learning. These findings define how sensory experience patterns chromatin architecture and neural circuit coding in the brain to drive motor learning. 2019-05-08 2019-05 /pmc/articles/PMC6542709/ /pubmed/31068695 http://dx.doi.org/10.1038/s41586-019-1190-7 Text en Reprints and permissions information is available at www.nature.com/reprints (http://www.nature.com/reprints) . Users may view, print, copy, and download text and data-mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use:http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
Yamada, Tomoko
Yang, Yue
Valnegri, Pamela
Juric, Ivan
Abnousi, Armen
Markwalter, Kelly H.
Guthrie, Arden N.
Godec, Abigail
Oldenborg, Anna
Hu, Ming
Holy, Timothy E.
Bonni, Azad
Sensory Experience Remodels Genome Architecture in Neural Circuit to Drive Motor Learning
title Sensory Experience Remodels Genome Architecture in Neural Circuit to Drive Motor Learning
title_full Sensory Experience Remodels Genome Architecture in Neural Circuit to Drive Motor Learning
title_fullStr Sensory Experience Remodels Genome Architecture in Neural Circuit to Drive Motor Learning
title_full_unstemmed Sensory Experience Remodels Genome Architecture in Neural Circuit to Drive Motor Learning
title_short Sensory Experience Remodels Genome Architecture in Neural Circuit to Drive Motor Learning
title_sort sensory experience remodels genome architecture in neural circuit to drive motor learning
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6542709/
https://www.ncbi.nlm.nih.gov/pubmed/31068695
http://dx.doi.org/10.1038/s41586-019-1190-7
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