Locus-specific epigenetic remodeling controls addiction- and depression-related behaviors

Chronic exposure to drugs of abuse or stress regulates transcription factors, chromatin-modifying enzymes and histone post-translational modifications in discrete brain regions. Given the promiscuity of the enzymes involved, it has not yet been possible to obtain direct causal evidence to implicate...

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Bibliographic Details
Main Authors: Sun, Haosheng, Shao, Ningyi, Feng, Jian, Mazei-Robison, Michelle, Ferguson, Deveroux, Knight, Scott, Nievera, Christian, Han, Ming-Hu, Shen, Li, Zhang, H Steve, Zhang, Feng, Nestler, Eric J, Heller, Elizabeth A., Cates, Hannah M., Pena, Catherine J., Golden, Sam A., Herman, James P., Walsh, Jessica J., Gerber, Mark A., Russo, Scott J., Tamminga, Carol S., Neve, Rachael L.
Other Authors: Massachusetts Institute of Technology. Department of Brain and Cognitive Sciences
Format: Article
Language:en_US
Published: Nature Publishing Group 2016
Online Access:http://hdl.handle.net/1721.1/102587
https://orcid.org/0000-0003-2782-2509
https://orcid.org/0000-0002-3854-5968
Description
Summary:Chronic exposure to drugs of abuse or stress regulates transcription factors, chromatin-modifying enzymes and histone post-translational modifications in discrete brain regions. Given the promiscuity of the enzymes involved, it has not yet been possible to obtain direct causal evidence to implicate the regulation of transcription and consequent behavioral plasticity by chromatin remodeling that occurs at a single gene. We investigated the mechanism linking chromatin dynamics to neurobiological phenomena by applying engineered transcription factors to selectively modify chromatin at a specific mouse gene in vivo. We found that histone methylation or acetylation at the Fosb locus in nucleus accumbens, a brain reward region, was sufficient to control drug- and stress-evoked transcriptional and behavioral responses via interactions with the endogenous transcriptional machinery. This approach allowed us to relate the epigenetic landscape at a given gene directly to regulation of its expression and to its subsequent effects on reward behavior.