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A modulated empirical Bayes model for identifying topological and temporal estrogen receptor α regulatory networks in breast cancer

BACKGROUND: Estrogens regulate diverse physiological processes in various tissues through genomic and non-genomic mechanisms that result in activation or repression of gene expression. Transcription regulation upon estrogen stimulation is a critical biological process underlying the onset and progre...

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Autores principales: Shen, Changyu, Huang, Yiwen, Liu, Yunlong, Wang, Guohua, Zhao, Yuming, Wang, Zhiping, Teng, Mingxiang, Wang, Yadong, Flockhart, David A, Skaar, Todd C, Yan, Pearlly, Nephew, Kenneth P, Huang, Tim HM, Li, Lang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3117732/
https://www.ncbi.nlm.nih.gov/pubmed/21554733
http://dx.doi.org/10.1186/1752-0509-5-67
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author Shen, Changyu
Huang, Yiwen
Liu, Yunlong
Wang, Guohua
Zhao, Yuming
Wang, Zhiping
Teng, Mingxiang
Wang, Yadong
Flockhart, David A
Skaar, Todd C
Yan, Pearlly
Nephew, Kenneth P
Huang, Tim HM
Li, Lang
author_facet Shen, Changyu
Huang, Yiwen
Liu, Yunlong
Wang, Guohua
Zhao, Yuming
Wang, Zhiping
Teng, Mingxiang
Wang, Yadong
Flockhart, David A
Skaar, Todd C
Yan, Pearlly
Nephew, Kenneth P
Huang, Tim HM
Li, Lang
author_sort Shen, Changyu
collection PubMed
description BACKGROUND: Estrogens regulate diverse physiological processes in various tissues through genomic and non-genomic mechanisms that result in activation or repression of gene expression. Transcription regulation upon estrogen stimulation is a critical biological process underlying the onset and progress of the majority of breast cancer. Dynamic gene expression changes have been shown to characterize the breast cancer cell response to estrogens, the every molecular mechanism of which is still not well understood. RESULTS: We developed a modulated empirical Bayes model, and constructed a novel topological and temporal transcription factor (TF) regulatory network in MCF7 breast cancer cell line upon stimulation by 17β-estradiol stimulation. In the network, significant TF genomic hubs were identified including ER-alpha and AP-1; significant non-genomic hubs include ZFP161, TFDP1, NRF1, TFAP2A, EGR1, E2F1, and PITX2. Although the early and late networks were distinct (<5% overlap of ERα target genes between the 4 and 24 h time points), all nine hubs were significantly represented in both networks. In MCF7 cells with acquired resistance to tamoxifen, the ERα regulatory network was unresponsive to 17β-estradiol stimulation. The significant loss of hormone responsiveness was associated with marked epigenomic changes, including hyper- or hypo-methylation of promoter CpG islands and repressive histone methylations. CONCLUSIONS: We identified a number of estrogen regulated target genes and established estrogen-regulated network that distinguishes the genomic and non-genomic actions of estrogen receptor. Many gene targets of this network were not active anymore in anti-estrogen resistant cell lines, possibly because their DNA methylation and histone acetylation patterns have changed.
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spelling pubmed-31177322011-06-18 A modulated empirical Bayes model for identifying topological and temporal estrogen receptor α regulatory networks in breast cancer Shen, Changyu Huang, Yiwen Liu, Yunlong Wang, Guohua Zhao, Yuming Wang, Zhiping Teng, Mingxiang Wang, Yadong Flockhart, David A Skaar, Todd C Yan, Pearlly Nephew, Kenneth P Huang, Tim HM Li, Lang BMC Syst Biol Research Article BACKGROUND: Estrogens regulate diverse physiological processes in various tissues through genomic and non-genomic mechanisms that result in activation or repression of gene expression. Transcription regulation upon estrogen stimulation is a critical biological process underlying the onset and progress of the majority of breast cancer. Dynamic gene expression changes have been shown to characterize the breast cancer cell response to estrogens, the every molecular mechanism of which is still not well understood. RESULTS: We developed a modulated empirical Bayes model, and constructed a novel topological and temporal transcription factor (TF) regulatory network in MCF7 breast cancer cell line upon stimulation by 17β-estradiol stimulation. In the network, significant TF genomic hubs were identified including ER-alpha and AP-1; significant non-genomic hubs include ZFP161, TFDP1, NRF1, TFAP2A, EGR1, E2F1, and PITX2. Although the early and late networks were distinct (<5% overlap of ERα target genes between the 4 and 24 h time points), all nine hubs were significantly represented in both networks. In MCF7 cells with acquired resistance to tamoxifen, the ERα regulatory network was unresponsive to 17β-estradiol stimulation. The significant loss of hormone responsiveness was associated with marked epigenomic changes, including hyper- or hypo-methylation of promoter CpG islands and repressive histone methylations. CONCLUSIONS: We identified a number of estrogen regulated target genes and established estrogen-regulated network that distinguishes the genomic and non-genomic actions of estrogen receptor. Many gene targets of this network were not active anymore in anti-estrogen resistant cell lines, possibly because their DNA methylation and histone acetylation patterns have changed. BioMed Central 2011-05-09 /pmc/articles/PMC3117732/ /pubmed/21554733 http://dx.doi.org/10.1186/1752-0509-5-67 Text en Copyright ©2011 Shen et al; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/2.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Shen, Changyu
Huang, Yiwen
Liu, Yunlong
Wang, Guohua
Zhao, Yuming
Wang, Zhiping
Teng, Mingxiang
Wang, Yadong
Flockhart, David A
Skaar, Todd C
Yan, Pearlly
Nephew, Kenneth P
Huang, Tim HM
Li, Lang
A modulated empirical Bayes model for identifying topological and temporal estrogen receptor α regulatory networks in breast cancer
title A modulated empirical Bayes model for identifying topological and temporal estrogen receptor α regulatory networks in breast cancer
title_full A modulated empirical Bayes model for identifying topological and temporal estrogen receptor α regulatory networks in breast cancer
title_fullStr A modulated empirical Bayes model for identifying topological and temporal estrogen receptor α regulatory networks in breast cancer
title_full_unstemmed A modulated empirical Bayes model for identifying topological and temporal estrogen receptor α regulatory networks in breast cancer
title_short A modulated empirical Bayes model for identifying topological and temporal estrogen receptor α regulatory networks in breast cancer
title_sort modulated empirical bayes model for identifying topological and temporal estrogen receptor α regulatory networks in breast cancer
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3117732/
https://www.ncbi.nlm.nih.gov/pubmed/21554733
http://dx.doi.org/10.1186/1752-0509-5-67
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