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Updated: Sep 16, 2025

Systems Biology of Metabolic Regulation by Estrogen Receptor Signaling in Breast Cancer
Published on: March 17, 2016
Decoding estrogen receptor and GPER biology: structural insights and therapeutic advances in ERα-positive breast
Taniya Saha1, Kiven Erique Lukong1
1Department of Biochemistry, Microbiology, and Immunology, University of Saskatchewan, Saskatoon, SK, Canada.
Abstract:
Classical estrogen receptors, ERα and ERβ, along with the membrane-bound G-protein-coupled estrogen receptor (GPER), play critical roles in driving ERα-positive breast cancer (BC). Clinical management of this subtype relies on endocrine therapy (ET), which targets ER signaling through selective estrogen receptors modulators (SERMs), degraders (SERDs), and aromatase inhibitors (AIs). While ET has significantly reduced recurrence and mortality rates, acquired resistance remains a major therapeutic challenge. Activating ESR1 mutations, which encode constitutively active ERα variants, are detected in 30-50% of therapy-resistant metastatic ERα-positive BC and serve as emerging biomarkers of poor prognosis. These hot-spot mutations stabilize ERα in its agonist conformation, thereby enabling ligand-independent transcriptional activation. Understanding the conformational constraints that keep wild-type ERα in an "off-state" in the absence of ligand-and how activating ESR1 mutations disrupt these regulatory mechanisms-is critical for developing effective targeted therapies. Concurrently, GPER-mediated non-genomic signaling, often inadvertently activated by SERMs and SERDs, contributes to tamoxifen resistance. This review explores the structural and functional intricacies of ERα, the impact of ESR1 mutations on its ligand-binding domain (ERα-LBD) and their contribution to ET resistance, and the role of GPER-mediated signaling in ERα-positive BC. We further highlight recent advances in next-generation therapeutics targeting both ERα mutants and GPER, which may offer a more effective, integrated strategy to overcome ET resistance.
Insights
Activating ESR1 mutations in ERα-positive breast cancer drive endocrine therapy resistance. Targeting these mutations and GPER offers a promising strategy to overcome treatment challenges in metastatic breast cancer.
Area of Science:
- Oncology
- Molecular Biology
- Endocrinology
Background:
- Estrogen receptors (ERα, ERβ) and GPER are key drivers of ERα-positive breast cancer.
- Endocrine therapy (ET) is standard treatment, but acquired resistance is a major challenge.
- Activating ESR1 mutations are common in resistant metastatic breast cancer, leading to ligand-independent ERα activation.
Purpose of the Study:
- To review the structural and functional aspects of ERα and ESR1 mutations in endocrine therapy resistance.
- To explore the role of GPER-mediated signaling in tamoxifen resistance.
- To highlight novel therapeutic strategies targeting ERα mutants and GPER for overcoming resistance.
Main Methods:
- Literature review of structural and functional studies on ERα, ESR1 mutations, and GPER.
- Analysis of mechanisms underlying endocrine therapy resistance in ERα-positive breast cancer.
- Synthesis of current research on next-generation therapeutics.
Main Results:
- ESR1 mutations stabilize ERα in an active conformation, promoting resistance.
- GPER signaling contributes to resistance, often activated by current therapies.
- Understanding these mechanisms is crucial for developing targeted therapies.
Conclusions:
- Targeting both ERα mutants and GPER may provide an integrated strategy against endocrine therapy resistance.
- Next-generation therapeutics offer hope for improved outcomes in metastatic ERα-positive breast cancer.
- Further research into these pathways is essential for clinical advancement.
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