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Endocrine resistance in breast cancer--An overview and update
Robert Clarke1, John J Tyson2, J Michael Dixon3
1Department of Oncology, Georgetown University Medical Center, Washington DC 20057, USA.
Abstract:
Tumors that express detectable levels of the product of the ESR1 gene (estrogen receptor-α; ERα) represent the single largest molecular subtype of breast cancer. More women eventually die from ERα+ breast cancer than from either HER2+ disease (almost half of which also express ERα) and/or from triple negative breast cancer (ERα-negative, progesterone receptor-negative, and HER2-negative). Antiestrogens and aromatase inhibitors are largely indistinguishable from each other in their abilities to improve overall survival and almost 50% of ERα+ breast cancers will eventually fail one or more of these endocrine interventions. The precise reasons why these therapies fail in ERα+ breast cancer remain largely unknown. Pharmacogenetic explanations for Tamoxifen resistance are controversial. The role of ERα mutations in endocrine resistance remains unclear. Targeting the growth factors and oncogenes most strongly correlated with endocrine resistance has proven mostly disappointing in their abilities to improve overall survival substantially, particularly in the metastatic setting. Nonetheless, there are new concepts in endocrine resistance that integrate molecular signaling, cellular metabolism, and stress responses including endoplasmic reticulum stress and the unfolded protein response (UPR) that provide novel insights and suggest innovative therapeutic targets. Encouraging evidence that drug combinations with CDK4/CDK6 inhibitors can extend recurrence free survival may yet translate to improvements in overall survival. Whether the improvements seen with immunotherapy in other cancers can be achieved in breast cancer remains to be determined, particularly for ERα+ breast cancers. This review explores the basic mechanisms of resistance to endocrine therapies, concluding with some new insights from systems biology approaches further implicating autophagy and the UPR in detail, and a brief discussion of exciting new avenues and future prospects.
Insights
Endocrine therapies are vital for estrogen receptor-α positive breast cancer but often fail. New research explores resistance mechanisms, including cellular stress and metabolism, to find novel therapeutic targets and improve patient survival.
Area of Science:
- Oncology
- Molecular Biology
- Endocrinology
Background:
- Estrogen receptor-α (ERα) positive breast cancer is the most common subtype, with high mortality.
- Current endocrine therapies like antiestrogens and aromatase inhibitors are effective but resistance develops in nearly 50% of patients.
- Mechanisms of endocrine resistance, including ERα mutations and targeted therapies, are not fully understood.
Purpose of the Study:
- To review the fundamental mechanisms of endocrine resistance in ERα+ breast cancer.
- To explore novel insights from systems biology, including cellular metabolism and stress responses.
- To discuss emerging therapeutic targets and future prospects for overcoming endocrine resistance.
Main Methods:
- Literature review of basic mechanisms of endocrine resistance.
- Exploration of new concepts integrating molecular signaling, cellular metabolism, and stress responses.
- Discussion of systems biology approaches, autophagy, and the unfolded protein response (UPR).
Main Results:
- Endocrine therapy resistance is a significant challenge in ERα+ breast cancer, with unclear underlying causes.
- New research highlights the role of cellular stress responses, such as endoplasmic reticulum stress and UPR, in resistance.
- Combinations with CDK4/CDK6 inhibitors show promise in extending recurrence-free survival.
Conclusions:
- Understanding complex resistance mechanisms is crucial for improving ERα+ breast cancer treatment.
- Targeting cellular metabolism and stress pathways, including autophagy and UPR, offers innovative therapeutic strategies.
- Further research into immunotherapy and drug combinations is needed to enhance overall survival in metastatic settings.
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