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Updated: Jun 24, 2026

A Modified In vitro Invasion Assay to Determine the Potential Role of Hormones, Cytokines and/or Growth Factors in Mediating Cancer Cell Invasion
Published on: April 24, 2015
Cistromics of hormone-dependent cancer
1Dartmouth Medical School, Norris Cotton Cancer Center, Lebanon, New Hampshire 03756, USA.
Abstract:
Alterations in transcription programs are a fundamental feature of cancer. Nuclear receptors, such as the estrogen receptor alpha (ERalpha) and androgen receptors (ARs), are central in this process as they can directly impact gene expression through interaction with the chromatin and subsequent association with coregulators and the transcriptional machinery. Unbiased genome-wide investigations have demonstrated the predominant recruitment of both ERalpha and AR to distant (non-promoter)-regulatory elements. Furthermore, these studies revealed a clear relationship between sites of transcription factor recruitment and gene regulation. Indeed, expression profiles from AR-positive primary prostate tumors and cell lines directly relate to the AR cistrome in prostate cancer cells, while the ERalpha cistrome in breast cancer cells relates to expression profiles from ERalpha-positive primary breast tumors. Additionally, cell-type-specific ERalpha cistromes are linked to lineage-specific estrogen-induced expression profiles in different cell types, for example osteosarcoma and breast cancer cells. The pioneer factor forkhead box A1 (FoxA1/HNF3alpha) plays a central role in AR and ERalpha signaling. It is recruited in a lineage-specific manner translating the epigenetic signature consisting of mono- and dimethylated histone H3 on lysine 4 (H3K4me1/me2) into functional regulatory elements. Hence, through the interplay between the pioneer factor, namely FoxA1, and epigenetic events, the transcriptional potential of a given cell lineage is predefined. Since this directly impacts signaling through nuclear receptors, these discoveries should significantly impact the development of novel therapeutic strategies directed against multiple types of cancer.
Insights
Cancer
Area of Science:
- Molecular Biology
- Genomics
- Cancer Research
Background:
- Nuclear receptors, like estrogen receptor alpha (ERalpha) and androgen receptors (ARs), are key regulators of gene expression in cancer.
- These receptors primarily bind to distant regulatory elements in the genome, influencing gene activity.
- Previous studies highlight a direct correlation between transcription factor binding sites and gene regulation in cancer.
Purpose of the Study:
- To investigate the genome-wide recruitment patterns of ERalpha and AR in cancer.
- To understand the role of the pioneer factor FoxA1 in nuclear receptor signaling and gene regulation.
- To explore the link between epigenetic modifications and the functional regulatory elements targeted by nuclear receptors.
Main Methods:
- Genome-wide investigations to map ERalpha and AR binding sites (cistromes).
- Analysis of gene expression profiles in cancer cells and tumors.
- Studies on the recruitment of the pioneer factor FoxA1 and its interaction with histone modifications (H3K4me1/me2).
Main Results:
- ERalpha and AR predominantly bind to distant regulatory elements, not promoters.
- Cancer cell and tumor gene expression profiles correlate with the respective AR and ERalpha cistromes.
- FoxA1 acts as a lineage-specific pioneer factor, translating epigenetic marks into functional regulatory elements for nuclear receptors.
Conclusions:
- The interplay between FoxA1 and epigenetic events predefines the transcriptional potential of cell lineages.
- Understanding these mechanisms is crucial for developing targeted cancer therapies.
- Nuclear receptor recruitment to specific genomic sites is directly linked to cancer gene expression patterns.
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