Cargando…

HDAC2 negatively regulates memory formation and synaptic plasticity

Chromatin modifications, especially histone-tail acetylation, have been implicated in memory formation. Increased histone-tail acetylation induced by inhibitors of histone deacetylases (HDACis) facilitates learning and memory in wildtype mice as well as in mouse models of neurodegeneration. Harnessi...

Descripción completa

Detalles Bibliográficos
Autores principales: Guan, Ji-Song, Haggarty, Stephen J., Giacometti, Emanuela, Dannenberg, Jan-Hermen, Joseph, Nadine, Gao, Jun, Nieland, Thomas J.F., Zhou, Ying, Wang, Xinyu, Mazitschek, Ralph, Bradner, James E., DePinho, Ronald A., Jaenisch, Rudolf, Tsai, Li-Huei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2009
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3498958/
https://www.ncbi.nlm.nih.gov/pubmed/19424149
http://dx.doi.org/10.1038/nature07925
_version_ 1782249894627508224
author Guan, Ji-Song
Haggarty, Stephen J.
Giacometti, Emanuela
Dannenberg, Jan-Hermen
Joseph, Nadine
Gao, Jun
Nieland, Thomas J.F.
Zhou, Ying
Wang, Xinyu
Mazitschek, Ralph
Bradner, James E.
DePinho, Ronald A.
Jaenisch, Rudolf
Tsai, Li-Huei
author_facet Guan, Ji-Song
Haggarty, Stephen J.
Giacometti, Emanuela
Dannenberg, Jan-Hermen
Joseph, Nadine
Gao, Jun
Nieland, Thomas J.F.
Zhou, Ying
Wang, Xinyu
Mazitschek, Ralph
Bradner, James E.
DePinho, Ronald A.
Jaenisch, Rudolf
Tsai, Li-Huei
author_sort Guan, Ji-Song
collection PubMed
description Chromatin modifications, especially histone-tail acetylation, have been implicated in memory formation. Increased histone-tail acetylation induced by inhibitors of histone deacetylases (HDACis) facilitates learning and memory in wildtype mice as well as in mouse models of neurodegeneration. Harnessing the therapeutic potential of HDACi requires knowledge of the specific HDAC family member(s) linked to cognitive enhancement. Here we show that neuron-specific overexpression of HDAC2, but not HDAC1, reduced dendritic spine density, synapse number, synaptic plasticity, and memory formation. Conversely, HDAC2 deficiency resulted in increased synapse number and memory facilitation, similar to chronic HDACi treatment in mice. Notably, reduced synapse number and learning impairment of HDAC2-overexpressing mice were ameliorated by chronic HDACi treatment. Correspondingly, HDACi treatment failed to further facilitate memory formation in HDAC2-deficient mice. Furthermore, analysis of promoter occupancy revealed association of HDAC2 with the promoters of genes implicated in synaptic plasticity and memory formation. Together, our results suggest that HDAC2 plays a role in modulating synaptic plasticity and long-lasting changes of neural circuits, which in turn negatively regulates learning and memory. These observations encourage the development and testing of HDAC2-selective inhibitors for human diseases associated with memory impairment.
format Online
Article
Text
id pubmed-3498958
institution National Center for Biotechnology Information
language English
publishDate 2009
record_format MEDLINE/PubMed
spelling pubmed-34989582012-11-15 HDAC2 negatively regulates memory formation and synaptic plasticity Guan, Ji-Song Haggarty, Stephen J. Giacometti, Emanuela Dannenberg, Jan-Hermen Joseph, Nadine Gao, Jun Nieland, Thomas J.F. Zhou, Ying Wang, Xinyu Mazitschek, Ralph Bradner, James E. DePinho, Ronald A. Jaenisch, Rudolf Tsai, Li-Huei Nature Article Chromatin modifications, especially histone-tail acetylation, have been implicated in memory formation. Increased histone-tail acetylation induced by inhibitors of histone deacetylases (HDACis) facilitates learning and memory in wildtype mice as well as in mouse models of neurodegeneration. Harnessing the therapeutic potential of HDACi requires knowledge of the specific HDAC family member(s) linked to cognitive enhancement. Here we show that neuron-specific overexpression of HDAC2, but not HDAC1, reduced dendritic spine density, synapse number, synaptic plasticity, and memory formation. Conversely, HDAC2 deficiency resulted in increased synapse number and memory facilitation, similar to chronic HDACi treatment in mice. Notably, reduced synapse number and learning impairment of HDAC2-overexpressing mice were ameliorated by chronic HDACi treatment. Correspondingly, HDACi treatment failed to further facilitate memory formation in HDAC2-deficient mice. Furthermore, analysis of promoter occupancy revealed association of HDAC2 with the promoters of genes implicated in synaptic plasticity and memory formation. Together, our results suggest that HDAC2 plays a role in modulating synaptic plasticity and long-lasting changes of neural circuits, which in turn negatively regulates learning and memory. These observations encourage the development and testing of HDAC2-selective inhibitors for human diseases associated with memory impairment. 2009-05-07 /pmc/articles/PMC3498958/ /pubmed/19424149 http://dx.doi.org/10.1038/nature07925 Text en Users may view, print, copy, download and 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
Guan, Ji-Song
Haggarty, Stephen J.
Giacometti, Emanuela
Dannenberg, Jan-Hermen
Joseph, Nadine
Gao, Jun
Nieland, Thomas J.F.
Zhou, Ying
Wang, Xinyu
Mazitschek, Ralph
Bradner, James E.
DePinho, Ronald A.
Jaenisch, Rudolf
Tsai, Li-Huei
HDAC2 negatively regulates memory formation and synaptic plasticity
title HDAC2 negatively regulates memory formation and synaptic plasticity
title_full HDAC2 negatively regulates memory formation and synaptic plasticity
title_fullStr HDAC2 negatively regulates memory formation and synaptic plasticity
title_full_unstemmed HDAC2 negatively regulates memory formation and synaptic plasticity
title_short HDAC2 negatively regulates memory formation and synaptic plasticity
title_sort hdac2 negatively regulates memory formation and synaptic plasticity
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3498958/
https://www.ncbi.nlm.nih.gov/pubmed/19424149
http://dx.doi.org/10.1038/nature07925
work_keys_str_mv AT guanjisong hdac2negativelyregulatesmemoryformationandsynapticplasticity
AT haggartystephenj hdac2negativelyregulatesmemoryformationandsynapticplasticity
AT giacomettiemanuela hdac2negativelyregulatesmemoryformationandsynapticplasticity
AT dannenbergjanhermen hdac2negativelyregulatesmemoryformationandsynapticplasticity
AT josephnadine hdac2negativelyregulatesmemoryformationandsynapticplasticity
AT gaojun hdac2negativelyregulatesmemoryformationandsynapticplasticity
AT nielandthomasjf hdac2negativelyregulatesmemoryformationandsynapticplasticity
AT zhouying hdac2negativelyregulatesmemoryformationandsynapticplasticity
AT wangxinyu hdac2negativelyregulatesmemoryformationandsynapticplasticity
AT mazitschekralph hdac2negativelyregulatesmemoryformationandsynapticplasticity
AT bradnerjamese hdac2negativelyregulatesmemoryformationandsynapticplasticity
AT depinhoronalda hdac2negativelyregulatesmemoryformationandsynapticplasticity
AT jaenischrudolf hdac2negativelyregulatesmemoryformationandsynapticplasticity
AT tsailihuei hdac2negativelyregulatesmemoryformationandsynapticplasticity