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Systems Biology of Metabolic Regulation by Estrogen Receptor Signaling in Breast Cancer
Published on: March 17, 2016
Estrogen Receptor Mutations as Novel Targets for Immunotherapy in Metastatic Estrogen Receptor-positive Breast Cancer
Jonathan Goldberg1,2, Na Qiao3, Jennifer L Guerriero1,2,4
1Division of Breast Surgery, Department of Surgery, Brigham and Women's Hospital, Boston, Massachusetts.
Abstract:
Estrogen receptor-positive (ER+) breast cancer is not considered immunogenic and, to date, has been proven resistant to immunotherapy. Endocrine therapy remains the cornerstone of treatment for ER+ breast cancers. However, constitutively activating mutations in the estrogen receptor alpha (ESR1) gene can emerge during treatment, rendering tumors resistant to endocrine therapy. Although these mutations represent a pathway of resistance, they also represent a potential source of neoepitopes that can be targeted by immunotherapy. In this study, we investigated ESR1 mutations as novel targets for breast cancer immunotherapy. Using machine learning algorithms, we identified ESR1-derived peptides predicted to form stable complexes with HLA-A*0201. We then validated the binding affinity and stability of the top predicted peptides through in vitro binding and dissociation assays and showed that these peptides bind HLA-A*0201 with high affinity and stability. Using tetramer assays, we confirmed the presence and expansion potential of antigen-specific CTLs from healthy female donors. Finally, using in vitro cytotoxicity assays, we showed the lysis of peptide-pulsed targets and breast cancer cells expressing common ESR1 mutations by expanded antigen-specific CTLs. Ultimately, we identified five peptides derived from the three most common ESR1 mutations (D538G, Y537S, and E380Q) and their associated wild-type peptides, which were the most immunogenic. Overall, these data confirm the immunogenicity of epitopes derived from ESR1 and highlight the potential of these peptides to be targeted by novel immunotherapy strategies.
Significance:
Estrogen receptor (ESR1) mutations have emerged as a key factor in endocrine therapy resistance. We identified and validated five novel, immunogenic ESR1-derived peptides that could be targeted through vaccine-based immunotherapy.
Insights
Estrogen receptor (ESR1) mutations in breast cancer, while causing endocrine therapy resistance, can be targeted by immunotherapy. This study identifies novel ESR1-derived peptides as potential immunotherapeutic targets for ER+ breast cancer.
Area of Science:
- Oncology
- Immunology
- Genetics
Background:
- Estrogen receptor-positive (ER+) breast cancer is typically resistant to immunotherapy.
- Mutations in the estrogen receptor alpha (ESR1) gene can lead to endocrine therapy resistance.
- These ESR1 mutations may represent neoepitopes for immunotherapy.
Purpose of the Study:
- To investigate ESR1 mutations as potential targets for breast cancer immunotherapy.
- To identify and validate immunogenic ESR1-derived peptides for therapeutic strategies.
Main Methods:
- Machine learning algorithms to predict ESR1-derived peptides binding to HLA-A*0201.
- In vitro assays to validate peptide binding affinity, stability, and T-cell responses.
- Cytotoxicity assays to assess the lysis of cancer cells by antigen-specific CTLs.
Main Results:
- Identified five immunogenic ESR1-derived peptides from common mutations (D538G, Y537S, E380Q).
- Validated high-affinity binding of these peptides to HLA-A*0201.
- Confirmed expansion of antigen-specific CTLs and their ability to lyse peptide-pulsed and ESR1-mutated cancer cells.
Conclusions:
- ESR1 mutations can generate immunogenic epitopes.
- Identified peptides show potential for novel vaccine-based immunotherapy strategies in ER+ breast cancer.
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