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Loss of GCN5 leads to increased neuronal apoptosis by upregulating E2F1- and Egr-1-dependent BH3-only protein Bim

Cellular acetylation homeostasis is a kinetic balance precisely controlled by histone acetyl-transferase (HAT) and histone deacetylase (HDAC) activities. The loss of the counterbalancing function of basal HAT activity alters the precious HAT:HDAC balance towards enhanced histone deacetylation, resul...

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Autores principales: Wu, Yanna, Ma, Shanshan, Xia, Yong, Lu, Yangpeng, Xiao, Shiyin, Cao, Yali, Zhuang, Sidian, Tan, Xiangpeng, Fu, Qiang, Xie, Longchang, Li, Zhiming, Yuan, Zhongmin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5386373/
https://www.ncbi.nlm.nih.gov/pubmed/28125090
http://dx.doi.org/10.1038/cddis.2016.465
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author Wu, Yanna
Ma, Shanshan
Xia, Yong
Lu, Yangpeng
Xiao, Shiyin
Cao, Yali
Zhuang, Sidian
Tan, Xiangpeng
Fu, Qiang
Xie, Longchang
Li, Zhiming
Yuan, Zhongmin
author_facet Wu, Yanna
Ma, Shanshan
Xia, Yong
Lu, Yangpeng
Xiao, Shiyin
Cao, Yali
Zhuang, Sidian
Tan, Xiangpeng
Fu, Qiang
Xie, Longchang
Li, Zhiming
Yuan, Zhongmin
author_sort Wu, Yanna
collection PubMed
description Cellular acetylation homeostasis is a kinetic balance precisely controlled by histone acetyl-transferase (HAT) and histone deacetylase (HDAC) activities. The loss of the counterbalancing function of basal HAT activity alters the precious HAT:HDAC balance towards enhanced histone deacetylation, resulting in a loss of acetylation homeostasis, which is closely associated with neuronal apoptosis. However, the critical HAT member whose activity loss contributes to neuronal apoptosis remains to be identified. In this study, we found that inactivation of GCN5 by either pharmacological inhibitors, such as CPTH2 and MB-3, or by inactivation with siRNAs leads to a typical apoptosis in cultured cerebellar granule neurons. Mechanistically, the BH3-only protein Bim is transcriptionally upregulated by activated Egr-1 and E2F1 and mediates apoptosis following GCN5 inhibition. Furthermore, in the activity withdrawal- or glutamate-evoked neuronal apoptosis models, GCN5 loses its activity, in contrast to Bim induction. Adenovirus-mediated overexpression of GCN5 suppresses Bim induction and apoptosis. Interestingly, the loss of GCN5 activity and the induction of Egr-1, E2F1 and Bim are involved in the early brain injury (EBI) following subarachnoid haemorrhage (SAH) in rats. HDAC inhibition not only significantly rescues Bim expression and apoptosis induced by either potassium deprivation or GCN5 inactivation but also ameliorates these events and EBI in SAH rats. Taken together, our results highlight a new mechanism by which the loss of GCN5 activity promotes neuronal apoptosis through the transcriptional upregulation of Bim, which is probably a critical event in triggering neuronal death when cellular acetylation homeostasis is impaired.
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spelling pubmed-53863732017-04-26 Loss of GCN5 leads to increased neuronal apoptosis by upregulating E2F1- and Egr-1-dependent BH3-only protein Bim Wu, Yanna Ma, Shanshan Xia, Yong Lu, Yangpeng Xiao, Shiyin Cao, Yali Zhuang, Sidian Tan, Xiangpeng Fu, Qiang Xie, Longchang Li, Zhiming Yuan, Zhongmin Cell Death Dis Original Article Cellular acetylation homeostasis is a kinetic balance precisely controlled by histone acetyl-transferase (HAT) and histone deacetylase (HDAC) activities. The loss of the counterbalancing function of basal HAT activity alters the precious HAT:HDAC balance towards enhanced histone deacetylation, resulting in a loss of acetylation homeostasis, which is closely associated with neuronal apoptosis. However, the critical HAT member whose activity loss contributes to neuronal apoptosis remains to be identified. In this study, we found that inactivation of GCN5 by either pharmacological inhibitors, such as CPTH2 and MB-3, or by inactivation with siRNAs leads to a typical apoptosis in cultured cerebellar granule neurons. Mechanistically, the BH3-only protein Bim is transcriptionally upregulated by activated Egr-1 and E2F1 and mediates apoptosis following GCN5 inhibition. Furthermore, in the activity withdrawal- or glutamate-evoked neuronal apoptosis models, GCN5 loses its activity, in contrast to Bim induction. Adenovirus-mediated overexpression of GCN5 suppresses Bim induction and apoptosis. Interestingly, the loss of GCN5 activity and the induction of Egr-1, E2F1 and Bim are involved in the early brain injury (EBI) following subarachnoid haemorrhage (SAH) in rats. HDAC inhibition not only significantly rescues Bim expression and apoptosis induced by either potassium deprivation or GCN5 inactivation but also ameliorates these events and EBI in SAH rats. Taken together, our results highlight a new mechanism by which the loss of GCN5 activity promotes neuronal apoptosis through the transcriptional upregulation of Bim, which is probably a critical event in triggering neuronal death when cellular acetylation homeostasis is impaired. Nature Publishing Group 2017-01 2017-01-26 /pmc/articles/PMC5386373/ /pubmed/28125090 http://dx.doi.org/10.1038/cddis.2016.465 Text en Copyright © 2017 The Author(s) http://creativecommons.org/licenses/by/4.0/ Cell Death and Disease is an open-access journal published by Nature Publishing Group. This work is licensed under a Creative Commons Attribution 4.0 International License. The images or other third party material in this article are included in the article's Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/
spellingShingle Original Article
Wu, Yanna
Ma, Shanshan
Xia, Yong
Lu, Yangpeng
Xiao, Shiyin
Cao, Yali
Zhuang, Sidian
Tan, Xiangpeng
Fu, Qiang
Xie, Longchang
Li, Zhiming
Yuan, Zhongmin
Loss of GCN5 leads to increased neuronal apoptosis by upregulating E2F1- and Egr-1-dependent BH3-only protein Bim
title Loss of GCN5 leads to increased neuronal apoptosis by upregulating E2F1- and Egr-1-dependent BH3-only protein Bim
title_full Loss of GCN5 leads to increased neuronal apoptosis by upregulating E2F1- and Egr-1-dependent BH3-only protein Bim
title_fullStr Loss of GCN5 leads to increased neuronal apoptosis by upregulating E2F1- and Egr-1-dependent BH3-only protein Bim
title_full_unstemmed Loss of GCN5 leads to increased neuronal apoptosis by upregulating E2F1- and Egr-1-dependent BH3-only protein Bim
title_short Loss of GCN5 leads to increased neuronal apoptosis by upregulating E2F1- and Egr-1-dependent BH3-only protein Bim
title_sort loss of gcn5 leads to increased neuronal apoptosis by upregulating e2f1- and egr-1-dependent bh3-only protein bim
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5386373/
https://www.ncbi.nlm.nih.gov/pubmed/28125090
http://dx.doi.org/10.1038/cddis.2016.465
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