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The Megacomplex protects ER-alpha from degradation by Fulvestrant in epithelial ovarian cancer
Sushil Kumar Jaiswal1, Kevin Fedkenheuer1, Ronak Khamar1
1Translational and Functional Genomics Branch, National Human Genome Research Institute, Bethesda, MD, 20892, USA.
Abstract:
Ovarian cancer, a significant contributor to cancer-related mortality, exhibits limited responsiveness to hormonal therapies targeting the estrogen receptor (ERα). This study aimed to elucidate the mechanisms behind ERα resistance to the therapeutic drug Fulvestrant (ICI182780 or ICI). Notably, compared to the cytoplasmic version, nuclear ERα was minimally degraded by ICI, suggesting a mechanism for drug resistance via the protective confines of the nuclear substructures. Of these substructures, we identified a 1.3 MDa Megacomplex comprising transcription factors ERα, FOXA1, and PITX1 using size exclusion chromatography (SEC) in the ovarian cancer cell line, PEO4. ChIP-seq revealed these factors colocalized at 6775 genomic positions representing sites of Megacomplex formation. Megacomplex ERα exhibited increased resistance to degradation by ICI compared to cytoplasmic and nuclear ERα. A small molecule inhibitor of active chromatin and super-enhancers, JQ1, in combination with ICI significantly enhanced ERα degradation from Megacomplex as revealed by SEC and ChIP-seq. Interestingly, this combination degraded both the cytoplasmic as well as nuclear ERα. Pathway enrichment analysis showed parallel results for RNA-seq gene sets following Estradiol, ICI, or ICI plus JQ1 treatments as those defined by Megacomplex binding identified through ChIP-seq. Furthermore, similar pathway enrichments were confirmed in mass-spec analysis of the Megacomplex macromolecule fractions after modulation by Estradiol or ICI. These findings implicate Megacomplex in ERα-driven ovarian cancer chromatin regulation. This combined treatment strategy exhibited superior inhibition of cell proliferation and viability. Therefore, by uncovering ERα's resistance within the Megacomplex, the combined ICI plus JQ1 treatment elucidates a novel drug treatment vulnerability.
Insights
Ovarian cancer cells resist Fulvestrant (ICI) due to nuclear estrogen receptor alpha (ERα) within a protein complex. Combining ICI with JQ1 drug overcomes this resistance, offering a new treatment strategy.
Area of Science:
- Molecular Biology
- Oncology
- Endocrinology
Background:
- Ovarian cancer shows limited response to hormonal therapies targeting estrogen receptor alpha (ERα).
- Fulvestrant (ICI) is a therapeutic drug for ERα-positive cancers, but resistance mechanisms are not fully understood.
- Nuclear ERα appears less susceptible to ICI degradation than cytoplasmic ERα, suggesting nuclear localization contributes to resistance.
Purpose of the Study:
- To investigate the mechanisms of ERα resistance to Fulvestrant (ICI) in ovarian cancer.
- To identify protein complexes involved in ERα-mediated drug resistance.
- To evaluate the efficacy of combining ICI with a super-enhancer inhibitor (JQ1) in overcoming resistance.
Main Methods:
- Size exclusion chromatography (SEC) to identify protein complexes.
- Chromatin immunoprecipitation sequencing (ChIP-seq) to map Megacomplex binding sites.
- RNA sequencing (RNA-seq) and mass spectrometry to analyze pathway enrichment and protein degradation.
- Cell proliferation and viability assays to assess treatment efficacy.
Main Results:
- A 1.3 MDa Megacomplex containing ERα, FOXA1, and PITX1 was identified in ovarian cancer cells.
- Megacomplex-bound ERα showed increased resistance to ICI-induced degradation.
- Combined treatment with ICI and JQ1 significantly enhanced ERα degradation from the Megacomplex and other cellular compartments.
- The combination therapy effectively inhibited ovarian cancer cell proliferation and viability.
Conclusions:
- The ERα-containing Megacomplex plays a role in ERα-driven chromatin regulation and confers resistance to Fulvestrant in ovarian cancer.
- Combining Fulvestrant (ICI) with JQ1 represents a novel therapeutic strategy to overcome drug resistance by targeting ERα within the Megacomplex.
- This approach offers a new vulnerability for treating ERα-resistant ovarian cancer.
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