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A Genome-Wide Screen of CREB Occupancy Identifies the RhoA Inhibitors Par6C and Rnd3 as Regulators of BDNF-Induced Synaptogenesis

Neurotrophin-regulated gene expression is believed to play a key role in long-term changes in synaptic structure and the formation of dendritic spines. Brain-derived neurotrophic factor (BDNF) has been shown to induce increases in dendritic spine formation, and this process is thought to function in...

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Autores principales: Lesiak, Adam, Pelz, Carl, Ando, Hideaki, Zhu, Mingyan, Davare, Monika, Lambert, Talley J., Hansen, Katelin F., Obrietan, Karl, Appleyard, Suzanne M., Impey, Soren, Wayman, Gary A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3675129/
https://www.ncbi.nlm.nih.gov/pubmed/23762244
http://dx.doi.org/10.1371/journal.pone.0064658
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author Lesiak, Adam
Pelz, Carl
Ando, Hideaki
Zhu, Mingyan
Davare, Monika
Lambert, Talley J.
Hansen, Katelin F.
Obrietan, Karl
Appleyard, Suzanne M.
Impey, Soren
Wayman, Gary A.
author_facet Lesiak, Adam
Pelz, Carl
Ando, Hideaki
Zhu, Mingyan
Davare, Monika
Lambert, Talley J.
Hansen, Katelin F.
Obrietan, Karl
Appleyard, Suzanne M.
Impey, Soren
Wayman, Gary A.
author_sort Lesiak, Adam
collection PubMed
description Neurotrophin-regulated gene expression is believed to play a key role in long-term changes in synaptic structure and the formation of dendritic spines. Brain-derived neurotrophic factor (BDNF) has been shown to induce increases in dendritic spine formation, and this process is thought to function in part by stimulating CREB-dependent transcriptional changes. To identify CREB-regulated genes linked to BDNF-induced synaptogenesis, we profiled transcriptional occupancy of CREB in hippocampal neurons. Interestingly, de novo motif analysis of hippocampal ChIP-Seq data identified a non-canonical CRE motif (TGGCG) that was enriched at CREB target regions and conferred CREB-responsiveness. Because cytoskeletal remodeling is an essential element of the formation of dendritic spines, within our screens we focused our attention on genes previously identified as inhibitors of RhoA GTPase. Bioinformatic analyses identified dozens of candidate CREB target genes known to regulate synaptic architecture and function. We showed that two of these, the RhoA inhibitors Par6C (Pard6A) and Rnd3 (RhoE), are BDNF-induced CREB-regulated genes. Interestingly, CREB occupied a cluster of non-canonical CRE motifs in the Rnd3 promoter region. Lastly, we show that BDNF-stimulated synaptogenesis requires the expression of Par6C and Rnd3, and that overexpression of either protein is sufficient to increase synaptogenesis. Thus, we propose that BDNF can regulate formation of functional synapses by increasing the expression of the RhoA inhibitors, Par6C and Rnd3. This study shows that genome-wide analyses of CREB target genes can facilitate the discovery of new regulators of synaptogenesis.
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spelling pubmed-36751292013-06-12 A Genome-Wide Screen of CREB Occupancy Identifies the RhoA Inhibitors Par6C and Rnd3 as Regulators of BDNF-Induced Synaptogenesis Lesiak, Adam Pelz, Carl Ando, Hideaki Zhu, Mingyan Davare, Monika Lambert, Talley J. Hansen, Katelin F. Obrietan, Karl Appleyard, Suzanne M. Impey, Soren Wayman, Gary A. PLoS One Research Article Neurotrophin-regulated gene expression is believed to play a key role in long-term changes in synaptic structure and the formation of dendritic spines. Brain-derived neurotrophic factor (BDNF) has been shown to induce increases in dendritic spine formation, and this process is thought to function in part by stimulating CREB-dependent transcriptional changes. To identify CREB-regulated genes linked to BDNF-induced synaptogenesis, we profiled transcriptional occupancy of CREB in hippocampal neurons. Interestingly, de novo motif analysis of hippocampal ChIP-Seq data identified a non-canonical CRE motif (TGGCG) that was enriched at CREB target regions and conferred CREB-responsiveness. Because cytoskeletal remodeling is an essential element of the formation of dendritic spines, within our screens we focused our attention on genes previously identified as inhibitors of RhoA GTPase. Bioinformatic analyses identified dozens of candidate CREB target genes known to regulate synaptic architecture and function. We showed that two of these, the RhoA inhibitors Par6C (Pard6A) and Rnd3 (RhoE), are BDNF-induced CREB-regulated genes. Interestingly, CREB occupied a cluster of non-canonical CRE motifs in the Rnd3 promoter region. Lastly, we show that BDNF-stimulated synaptogenesis requires the expression of Par6C and Rnd3, and that overexpression of either protein is sufficient to increase synaptogenesis. Thus, we propose that BDNF can regulate formation of functional synapses by increasing the expression of the RhoA inhibitors, Par6C and Rnd3. This study shows that genome-wide analyses of CREB target genes can facilitate the discovery of new regulators of synaptogenesis. Public Library of Science 2013-06-06 /pmc/articles/PMC3675129/ /pubmed/23762244 http://dx.doi.org/10.1371/journal.pone.0064658 Text en © 2013 Lesiak et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Lesiak, Adam
Pelz, Carl
Ando, Hideaki
Zhu, Mingyan
Davare, Monika
Lambert, Talley J.
Hansen, Katelin F.
Obrietan, Karl
Appleyard, Suzanne M.
Impey, Soren
Wayman, Gary A.
A Genome-Wide Screen of CREB Occupancy Identifies the RhoA Inhibitors Par6C and Rnd3 as Regulators of BDNF-Induced Synaptogenesis
title A Genome-Wide Screen of CREB Occupancy Identifies the RhoA Inhibitors Par6C and Rnd3 as Regulators of BDNF-Induced Synaptogenesis
title_full A Genome-Wide Screen of CREB Occupancy Identifies the RhoA Inhibitors Par6C and Rnd3 as Regulators of BDNF-Induced Synaptogenesis
title_fullStr A Genome-Wide Screen of CREB Occupancy Identifies the RhoA Inhibitors Par6C and Rnd3 as Regulators of BDNF-Induced Synaptogenesis
title_full_unstemmed A Genome-Wide Screen of CREB Occupancy Identifies the RhoA Inhibitors Par6C and Rnd3 as Regulators of BDNF-Induced Synaptogenesis
title_short A Genome-Wide Screen of CREB Occupancy Identifies the RhoA Inhibitors Par6C and Rnd3 as Regulators of BDNF-Induced Synaptogenesis
title_sort genome-wide screen of creb occupancy identifies the rhoa inhibitors par6c and rnd3 as regulators of bdnf-induced synaptogenesis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3675129/
https://www.ncbi.nlm.nih.gov/pubmed/23762244
http://dx.doi.org/10.1371/journal.pone.0064658
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