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Updated: Dec 31, 2025

Profiling of Estrogen-regulated MicroRNAs in Breast Cancer Cells
Published on: February 21, 2014
ELF5 modulates the estrogen receptor cistrome in breast cancer
Catherine L Piggin1,2, Daniel L Roden1,2, Andrew M K Law1,2
1Garvan Institute of Medical Research and The Kinghorn Cancer Centre, Victoria Street Darlinghurst Sydney, NSW, Australia.
Abstract:
Acquired resistance to endocrine therapy is responsible for half of the therapeutic failures in the treatment of breast cancer. Recent findings have implicated increased expression of the ETS transcription factor ELF5 as a potential modulator of estrogen action and driver of endocrine resistance, and here we provide the first insight into the mechanisms by which ELF5 modulates estrogen sensitivity. Using chromatin immunoprecipitation sequencing we found that ELF5 binding overlapped with FOXA1 and ER at super enhancers, enhancers and promoters, and when elevated, caused FOXA1 and ER to bind to new regions of the genome, in a pattern that replicated the alterations to the ER/FOXA1 cistrome caused by the acquisition of resistance to endocrine therapy. RNA sequencing demonstrated that these changes altered estrogen-driven patterns of gene expression, the expression of ER transcription-complex members, and 6 genes known to be involved in driving the acquisition of endocrine resistance. Using rapid immunoprecipitation mass spectrometry of endogenous proteins, and proximity ligation assays, we found that ELF5 interacted physically with members of the ER transcription complex, such as DNA-PKcs. We found 2 cases of endocrine-resistant brain metastases where ELF5 levels were greatly increased and ELF5 patterns of gene expression were enriched, compared to the matched primary tumour. Thus ELF5 alters ER-driven gene expression by modulating the ER/FOXA1 cistrome, by interacting with it, and by modulating the expression of members of the ER transcriptional complex, providing multiple mechanisms by which ELF5 can drive endocrine resistance.
Insights
The transcription factor ELF5 drives endocrine resistance in breast cancer by altering estrogen receptor binding and interacting with the estrogen receptor complex. This provides new mechanisms for therapeutic resistance.
Area of Science:
- Endocrinology
- Molecular Biology
- Genomics
Background:
- Acquired resistance to endocrine therapy causes significant treatment failures in breast cancer.
- Increased expression of the ETS transcription factor ELF5 is implicated in endocrine resistance.
Purpose of the Study:
- To elucidate the mechanisms by which ELF5 modulates estrogen sensitivity and drives endocrine resistance in breast cancer.
Main Methods:
- Chromatin immunoprecipitation sequencing (ChIP-seq) to map ELF5, FOXA1, and ER binding.
- RNA sequencing to analyze gene expression changes.
- Rapid immunoprecipitation mass spectrometry (RIMS) and proximity ligation assays (PLA) to detect protein interactions.
Main Results:
- Elevated ELF5 altered the binding of FOXA1 and ER to new genomic regions, mimicking resistance patterns.
- ELF5 modulated estrogen-driven gene expression and the expression of ER transcriptional complex members.
- ELF5 physically interacted with ER complex components like DNA-PKcs.
- High ELF5 levels and altered gene expression were observed in endocrine-resistant brain metastases.
Conclusions:
- ELF5 drives endocrine resistance by altering the ER/FOXA1 cistrome and interacting with the ER transcriptional complex.
- ELF5 represents a potential therapeutic target for overcoming endocrine resistance in breast cancer.
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