Epigenome-wide SRC-1-Mediated Gene Silencing Represses Cellular Differentiation in Advanced Breast Cancer

Elspeth Ward1, Damir Varešlija1, Sara Charmsaz1

  • 1Endocrine Oncology Research Group, Department of Surgery, Royal College of Surgeons in Ireland, Dublin, Ireland.

Insights

Epigenetic changes, specifically hypermethylation driven by SRC-1, contribute to endocrine resistance in estrogen receptor-positive breast cancer by silencing differentiation genes. Reactivating these genes can reverse the aggressive tumor phenotype.

Area of Science:

  • Oncology
  • Epigenetics
  • Molecular Biology

Background:

  • Endocrine therapies are crucial for estrogen receptor-positive (ER) breast cancer but face resistance in up to 40% of patients.
  • The molecular mechanisms underlying endocrine resistance and treatment adaptation are not fully understood.
  • Aberrations in DNA methylation (epimutations) are implicated in cancer growth, but their role in drug resistance requires elucidation.

Purpose of the Study:

  • To investigate the role of DNA methylation and epigenetic remodeling in endocrine resistance in ER-positive breast cancer.
  • To identify molecular determinants driving resistance to endocrine therapy.
  • To assess the clinical relevance of identified epigenetic targets in human breast cancer.

Main Methods:

  • Employed a genome-wide multi-omics sequencing approach.
  • Utilized paired methylation and transcriptional profiling in cell models and human tumors.
  • Assessed clinical relevance in a cohort of endocrine-treated human breast cancers and patient-derived xenografts.

Main Results:

  • Endocrine-resistant cells and metastatic tumors exhibit enhanced global hypermethylation compared to sensitive counterparts.
  • SRC-1-dependent aberrant hypermethylation leads to reduced expression of key differentiation genes.
  • Low expression of these prodifferentiation genes in ER-positive tumors significantly correlates with poor clinical outcomes.
  • Reactivation of these genes reverses the aggressive cancer phenotype in vitro and ex vivo.

Conclusions:

  • SRC-1-dependent epigenetic remodeling is a key regulator of the poorly differentiated state in endocrine-resistant ER-positive breast cancer.
  • A pathway of epigenetic reprogramming involving concerted DNA methylation changes potentiated by SRC-1 drives endocrine resistance.
  • These findings reveal potential therapeutic targets for overcoming endocrine resistance in breast cancer.

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