Unraveling Vulnerabilities in Endocrine Therapy-Resistant HER2+/ER+ Breast Cancer
Shaymaa Bahnassy1, Hillary Stires2, Lu Jin1
1Department of Oncology, Lombardi Comprehensive Cancer Center, Georgetown University, Washington, DC.
Background:
Breast tumors overexpressing human epidermal growth factor receptor (HER2) confer intrinsic resistance to endocrine therapy (ET), and patients with HER2/ estrogen receptor-positive (HER2+/HR+) breast cancer (BCa) are less responsive to ET than HER2-/ER+. However, real-world evidence reveals that a large subset of HER2+/ER+ patients receive ET as monotherapy, positioning this treatment pattern as a clinical challenge. In the present study, we developed and characterized two distinct in vitro models of ET-resistant (ETR) HER2+/ER+ BCa to identify possible therapeutic vulnerabilities.
Methods:
To mimic ETR to aromatase inhibitors (AI), we developed two long-term estrogen-deprived (LTED) cell lines from BT-474 (BT474) and MDA-MB-361 (MM361). Growth assays, PAM50 molecular subtyping, genomic and transcriptomic analyses, followed by validation and functional studies, were used to identify targetable differences between ET-responsive parental and ETR-LTED HER2+/ER+ cells.
Results:
Compared to their parental cells, MM361 LTEDs grew faster, lost ER, and increased HER2 expression, whereas BT474 LTEDs grew slower and maintained ER and HER2 expression. Both LTED variants had reduced responsiveness to fulvestrant. Whole-genome sequencing of the more aggressive MM361 LTED model system identified exonic mutations in genes encoding transcription factors and chromatin modifiers. Single-cell RNA sequencing demonstrated a shift towards non-luminal phenotypes, and revealed metabolic remodeling of MM361 LTEDs, with upregulated lipid metabolism and antioxidant genes associated with ferroptosis, including GPX4. Combining the GPX4 inhibitor RSL3 with anti-HER2 agents induced significant cell death in both the MM361 and BT474 LTEDs.
Conclusions:
The BT474 and MM361 AI-resistant models capture distinct phenotypes of HER2+/ER+ BCa and identify altered lipid metabolism and ferroptosis remodeling as vulnerabilities of this type of ETR BCa.
Insights
This study developed models of endocrine therapy-resistant HER2+/ER+ breast cancer. These models reveal that targeting lipid metabolism and ferroptosis, particularly GPX4, offers a potential therapeutic vulnerability for this challenging cancer subtype.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Research
Background:
- Human epidermal growth factor receptor 2 (HER2)-positive breast cancer (BCa) often exhibits resistance to endocrine therapy (ET).
- HER2-positive/estrogen receptor-positive (HER2+/ER+) BCa patients are less responsive to ET, posing a clinical challenge, especially when ET is used as monotherapy.
- This study aimed to develop and characterize *in vitro* models of ET-resistant (ETR) HER2+/ER+ BCa to identify therapeutic vulnerabilities.
Approach:
- Developed two distinct long-term estrogen-deprived (LTED) cell lines from BT-474 and MDA-MB-361 BCa cell lines to mimic AI resistance.
- Utilized growth assays, PAM50 subtyping, genomic, transcriptomic, and single-cell RNA sequencing analyses.
- Performed validation and functional studies to identify targetable differences between ET-responsive and ETR cells.
Key Points:
- MM361 LTED cells showed increased growth, ER loss, and HER2 overexpression, while BT474 LTED cells grew slower with maintained ER and HER2 expression.
- Both LTED models exhibited reduced responsiveness to fulvestrant, a common ET drug.
- Genomic analysis of MM361 LTEDs revealed mutations in transcription factors and chromatin modifiers, alongside metabolic remodeling, upregulated lipid metabolism, and ferroptosis-associated genes like GPX4.
Conclusions:
- The developed BT474 and MM361 AI-resistant models represent distinct phenotypes of HER2+/ER+ BCa.
- Altered lipid metabolism and ferroptosis remodeling were identified as key vulnerabilities in this ETR BCa subtype.
- Combined inhibition of GPX4 and HER2 significantly induced cell death in both ETR models, suggesting a potential therapeutic strategy.
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