Epigenetic remodelling of enhancers in response to estrogen deprivation and re-stimulation

Author:

Sklias Athena1,Halaburkova Andrea1,Vanzan Ludovica2,Jimenez Nora Fernandez3,Cuenin Cyrille1,Bouaoun Liacine4,Cahais Vincent1,Ythier Victor2,Sallé Aurélie1,Renard Claire1,Durand Geoffroy5,Le Calvez-Kelm Florence5,Khoueiry Rita1,Murr Rabih26,Herceg Zdenko1ORCID

Affiliation:

1. Epigenetics Group, International Agency for Research on Cancer (IARC), 69372 Lyon Cedex 08, France

2. Department of Genetic Medicine and Development (GEDEV), University of Geneva, Geneva, Switzerland

3. Department of Genetics, Physical Anthropology and Animal Physiology, University of the Basque Country (UPV/EHU), Biocruces-Bizkaia Health Research Institute, Leioa, Basque Country 48940, Spain

4. Section of Environment and Radiation, International Agency for Research on Cancer (IARC), 69372 Lyon Cedex 08, France

5. Genetic Cancer Susceptibility Group, International Agency for Research on Cancer (IARC), Lyon, France

6. Institute for Genetics and Genomics in Geneva (iGE3), University of Geneva, Geneva, Switzerland

Abstract

Abstract Estrogen hormones are implicated in a majority of breast cancers and estrogen receptor alpha (ER), the main nuclear factor mediating estrogen signaling, orchestrates a complex molecular circuitry that is not yet fully elucidated. Here, we investigated genome-wide DNA methylation, histone acetylation and transcription after estradiol (E2) deprivation and re-stimulation to better characterize the ability of ER to coordinate gene regulation. We found that E2 deprivation mostly resulted in DNA hypermethylation and histone deacetylation in enhancers. Transcriptome analysis revealed that E2 deprivation leads to a global down-regulation in gene expression, and more specifically of TET2 demethylase that may be involved in the DNA hypermethylation following short-term E2 deprivation. Further enrichment analysis of transcription factor (TF) binding and motif occurrence highlights the importance of ER connection mainly with two partner TF families, AP-1 and FOX. These interactions take place in the proximity of E2 deprivation-mediated differentially methylated and histone acetylated enhancers. Finally, while most deprivation-dependent epigenetic changes were reversed following E2 re-stimulation, DNA hypermethylation and H3K27 deacetylation at certain enhancers were partially retained. Overall, these results show that inactivation of ER mediates rapid and mostly reversible epigenetic changes at enhancers, and bring new insight into early events, which may ultimately lead to endocrine resistance.

Funder

Institut National Du Cancer

European Commission

Fondation ARC pour la Recherche sur le Cancer

Fonds National de la Recherche Luxembourg

IARC

Swiss National Science Foundation

Publisher

Oxford University Press (OUP)

Subject

Genetics

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