Genome-Wide Analysis of Estrogen Receptor α DNA Binding and Tethering Mechanisms Identifies Runx1 as a Novel Tethering Factor in Receptor-Mediated Transcriptional Activation

Author:

Stender Joshua D.1,Kim Kyuri2,Charn Tze Howe3,Komm Barry4,Chang Ken C. N.4,Kraus W. Lee5,Benner Christopher6,Glass Christopher K.6,Katzenellenbogen Benita S.2

Affiliation:

1. Departments of Biochemistry

2. Molecular and Integrative Physiology

3. Bioengineering, University of Illinois at Urbana-Champaign, Urbana, Illinois 61801

4. Women's Health and Musculoskeletal Biology, Wyeth Research, Collegeville, Pennsylvania 19426

5. Department of Molecular Biology and Genetics, Cornell University, Ithaca, New York 14853

6. Department of Cellular and Molecular Medicine, University of California, San Diego, California 92093

Abstract

ABSTRACT Nuclear receptor estrogen receptor alpha (ERα) controls the expression of hundreds of genes responsible for target cell phenotypic properties, but the relative importance of direct versus tethering mechanisms of DNA binding has not been established. In this first report, we examine the genome-wide chromatin localization of an altered-specificity mutant ER with a DNA binding domain deficient in binding to estrogen response element (ERE)-containing DNA (DBDmut ER) versus wild-type ERα. Using high-throughput sequencing of ER chromatin immunoprecipitations (ChIP-Seq) and mRNA transcriptional profiling, we show that direct ERE binding is required for most of (75%) estrogen-dependent gene regulation and 90% of hormone-dependent recruitment of ER to genomic binding sites. De novo motif analysis of the chromatin binding regions in MDA-MB-231 human breast cancer cells defined unique transcription factor profiles responsible for genes regulated through tethering versus direct ERE binding, with Runx motifs enriched in ER-tethered sites. We confirmed a role for Runx1 in mediating ERα genomic recruitment and regulation of tethering genes. Our findings delineate the contributions of direct receptor ERE binding versus binding through response elements for other transcription factors in chromatin localization and ER-dependent gene regulation, paradigms likely to underlie the gene regulatory actions of other nuclear receptors as well.

Publisher

American Society for Microbiology

Subject

Cell Biology,Molecular Biology

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