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Systems Biology of Metabolic Regulation by Estrogen Receptor Signaling in Breast Cancer
Published on: March 17, 2016
Combined Targeting of Estrogen Receptor Alpha and Exportin 1 in Metastatic Breast Cancers
Eylem Kulkoyluoglu Cotul1, Qianying Zuo1, Ashlie Santaliz-Casiano2
1Department of Food Science and Human Nutrition, University of Illinois at Urbana-Champaign, Urbana, IL 61801, USA.
Abstract:
The majority of breast cancer specific deaths in women with estrogen receptor positive (ER+) tumors occur due to metastases that are resistant to therapy. There is a critical need for novel therapeutic approaches to achieve tumor regression and/or maintain therapy responsiveness in metastatic ER+ tumors. The objective of this study was to elucidate the role of metabolic pathways that undermine therapy efficacy in ER+ breast cancers. Our previous studies identified Exportin 1 (XPO1), a nuclear export protein, as an important player in endocrine resistance progression and showed that combining selinexor (SEL), an FDA-approved XPO1 antagonist, synergized with endocrine agents and provided sustained tumor regression. In the current study, using a combination of transcriptomics, metabolomics and metabolic flux experiments, we identified certain mitochondrial pathways to be upregulated during endocrine resistance. When endocrine resistant cells were treated with single agents in media conditions that mimic a nutrient deprived tumor microenvironment, their glutamine dependence for continuation of mitochondrial respiration increased. The effect of glutamine was dependent on conversion of the glutamine to glutamate, and generation of NAD+. PGC1α, a key regulator of metabolism, was the main driver of the rewired metabolic phenotype. Remodeling metabolic pathways to regenerate new vulnerabilities in endocrine resistant breast tumors is novel, and our findings reveal a critical role that ERα-XPO1 crosstalk plays in reducing cancer recurrences. Combining SEL with current therapies used in clinical management of ER+ metastatic breast cancer shows promise for treating and keeping these cancers responsive to therapies in already metastasized patients.
Insights
Novel therapies targeting metabolic pathways can overcome endocrine resistance in metastatic estrogen receptor-positive (ER+) breast cancer. Combining selinexor with endocrine agents shows promise for sustained tumor regression and improved treatment response.
Area of Science:
- Oncology
- Molecular Biology
- Metabolic Pathways
Background:
- Metastatic estrogen receptor-positive (ER+) breast cancer often develops therapy resistance, leading to fatal outcomes.
- Exportin 1 (XPO1) antagonists, like selinexor (SEL), have shown potential in overcoming endocrine resistance.
- Understanding metabolic alterations is crucial for developing new therapeutic strategies against resistant ER+ breast cancer.
Purpose of the Study:
- To investigate the role of metabolic pathways in driving therapy resistance in ER+ breast cancer.
- To identify novel therapeutic vulnerabilities in endocrine-resistant ER+ tumors.
- To explore the potential of combining selinexor with endocrine agents to overcome resistance.
Main Methods:
- Transcriptomics, metabolomics, and metabolic flux analyses were employed.
- Experiments utilized endocrine-resistant ER+ breast cancer cells.
- Cellular responses were assessed under nutrient-deprived conditions mimicking the tumor microenvironment.
Main Results:
- Upregulation of specific mitochondrial pathways was observed in endocrine-resistant cells.
- Glutamine dependence for mitochondrial respiration increased in resistant cells, mediated by glutamate conversion and NAD+ generation.
- PGC1α was identified as a key regulator of the metabolic reprogramming.
Conclusions:
- Targeting metabolic pathways, particularly glutamine metabolism, presents a novel strategy to re-sensitize endocrine-resistant ER+ breast cancer.
- ERα-XPO1 crosstalk plays a significant role in preventing cancer recurrence.
- Combination therapy with selinexor and endocrine agents holds promise for managing metastatic ER+ breast cancer and maintaining treatment responsiveness.
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