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A novel pathway regulates memory and plasticity via SIRT1 and miR-134

The NAD-dependent deacetylase Sir2 was initially identified as a mediator of replicative lifespan in budding yeast and was subsequently shown to modulate longevity in worms and flies1,2. Its mammalian homologue, SIRT1, appears to have evolved complex systemic roles in cardiac function, DNA repair, a...

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Autores principales: Gao, Jun, Wang, Wen-Yuan, Mao, Ying-Wei, Gräff, Johannes, Guan, Ji-Song, Pan, Ling, Mak, Gloria, Kim, Dohoon, Su, Susan C., Tsai, Li-Huei
Formato: Texto
Lenguaje:English
Publicado: 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2928875/
https://www.ncbi.nlm.nih.gov/pubmed/20622856
http://dx.doi.org/10.1038/nature09271
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author Gao, Jun
Wang, Wen-Yuan
Mao, Ying-Wei
Gräff, Johannes
Guan, Ji-Song
Pan, Ling
Mak, Gloria
Kim, Dohoon
Su, Susan C.
Tsai, Li-Huei
author_facet Gao, Jun
Wang, Wen-Yuan
Mao, Ying-Wei
Gräff, Johannes
Guan, Ji-Song
Pan, Ling
Mak, Gloria
Kim, Dohoon
Su, Susan C.
Tsai, Li-Huei
author_sort Gao, Jun
collection PubMed
description The NAD-dependent deacetylase Sir2 was initially identified as a mediator of replicative lifespan in budding yeast and was subsequently shown to modulate longevity in worms and flies1,2. Its mammalian homologue, SIRT1, appears to have evolved complex systemic roles in cardiac function, DNA repair, and genomic stability. Recent studies suggest a functional relevance of SIRT1 in normal brain physiology and neurological disorders. However, it is unknown if SIRT1 plays a role in higher-order brain functions. We report that SIRT1 modulates synaptic plasticity and memory formation via a microRNA-mediated mechanism. Activation of SIRT1 enhances, while its loss-of-function impairs, synaptic plasticity. Surprisingly, these effects were mediated via post-transcriptional regulation of CREB expression by a brain-specific microRNA, miR-134. SIRT1 normally functions to limit expression of miR-134 via a repressor complex containing the transcription factor YY1, and unchecked miR-134 expression following SIRT1 deficiency results in the down-regulated expression of CREB and BDNF, thereby impairing synaptic plasticity. These findings demonstrate a novel role for SIRT1 in cognition and a previously unknown microRNA-based mechanism by which SIRT1 regulates these processes. Furthermore, these results describe a separate branch of SIRT1 signaling, in which SIRT1 has a direct role in regulating normal brain function in a manner that is disparate from its cell survival functions, demonstrating its value as a potential therapeutic target for the treatment of CNS disorders.
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spelling pubmed-29288752011-02-01 A novel pathway regulates memory and plasticity via SIRT1 and miR-134 Gao, Jun Wang, Wen-Yuan Mao, Ying-Wei Gräff, Johannes Guan, Ji-Song Pan, Ling Mak, Gloria Kim, Dohoon Su, Susan C. Tsai, Li-Huei Nature Article The NAD-dependent deacetylase Sir2 was initially identified as a mediator of replicative lifespan in budding yeast and was subsequently shown to modulate longevity in worms and flies1,2. Its mammalian homologue, SIRT1, appears to have evolved complex systemic roles in cardiac function, DNA repair, and genomic stability. Recent studies suggest a functional relevance of SIRT1 in normal brain physiology and neurological disorders. However, it is unknown if SIRT1 plays a role in higher-order brain functions. We report that SIRT1 modulates synaptic plasticity and memory formation via a microRNA-mediated mechanism. Activation of SIRT1 enhances, while its loss-of-function impairs, synaptic plasticity. Surprisingly, these effects were mediated via post-transcriptional regulation of CREB expression by a brain-specific microRNA, miR-134. SIRT1 normally functions to limit expression of miR-134 via a repressor complex containing the transcription factor YY1, and unchecked miR-134 expression following SIRT1 deficiency results in the down-regulated expression of CREB and BDNF, thereby impairing synaptic plasticity. These findings demonstrate a novel role for SIRT1 in cognition and a previously unknown microRNA-based mechanism by which SIRT1 regulates these processes. Furthermore, these results describe a separate branch of SIRT1 signaling, in which SIRT1 has a direct role in regulating normal brain function in a manner that is disparate from its cell survival functions, demonstrating its value as a potential therapeutic target for the treatment of CNS disorders. 2010-07-11 2010-08-26 /pmc/articles/PMC2928875/ /pubmed/20622856 http://dx.doi.org/10.1038/nature09271 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
Gao, Jun
Wang, Wen-Yuan
Mao, Ying-Wei
Gräff, Johannes
Guan, Ji-Song
Pan, Ling
Mak, Gloria
Kim, Dohoon
Su, Susan C.
Tsai, Li-Huei
A novel pathway regulates memory and plasticity via SIRT1 and miR-134
title A novel pathway regulates memory and plasticity via SIRT1 and miR-134
title_full A novel pathway regulates memory and plasticity via SIRT1 and miR-134
title_fullStr A novel pathway regulates memory and plasticity via SIRT1 and miR-134
title_full_unstemmed A novel pathway regulates memory and plasticity via SIRT1 and miR-134
title_short A novel pathway regulates memory and plasticity via SIRT1 and miR-134
title_sort novel pathway regulates memory and plasticity via sirt1 and mir-134
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2928875/
https://www.ncbi.nlm.nih.gov/pubmed/20622856
http://dx.doi.org/10.1038/nature09271
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