Biological reprogramming in acquired resistance to endocrine therapy of breast cancer
H Aguilar1, X Solé, N Bonifaci
1Translational Research Laboratory, Catalan Institute of Oncology, Bellvitge Institute for Biomedical Research (IDIBELL), L'Hospitalet, Barcelona, Spain.
Abstract:
Endocrine therapies targeting the proliferative effect of 17β-estradiol through estrogen receptor α (ERα) are the most effective systemic treatment of ERα-positive breast cancer. However, most breast tumors initially responsive to these therapies develop resistance through molecular mechanisms that are not yet fully understood. The long-term estrogen-deprived (LTED) MCF7 cell model has been proposed to recapitulate acquired resistance to aromatase inhibitors in postmenopausal women. To elucidate this resistance, genomic, transcriptomic and molecular data were integrated into the time course of MCF7-LTED adaptation. Dynamic and widespread genomic changes were observed, including amplification of the ESR1 locus consequently linked to an increase in ERα. Dynamic transcriptomic profiles were also observed that correlated significantly with genomic changes and were predicted to be influenced by transcription factors known to be involved in acquired resistance or cell proliferation (for example, interferon regulatory transcription factor 1 and E2F1, respectively) but, notably, not by canonical ERα transcriptional function. Consistently, at the molecular level, activation of growth factor signaling pathways by EGFR/ERBB/AKT and a switch from phospho-Ser118 (pS118)- to pS167-ERα were observed during MCF7-LTED adaptation. Evaluation of relevant clinical settings identified significant associations between MCF7-LTED and breast tumor transcriptome profiles that characterize ERα-negative status, early response to letrozole and tamoxifen, and recurrence after tamoxifen treatment. In accordance with these profiles, MCF7-LTED cells showed increased sensitivity to inhibition of FGFR-mediated signaling with PD173074. This study provides mechanistic insight into acquired resistance to endocrine therapies of breast cancer and highlights a potential therapeutic strategy.
Insights
Acquired resistance to estrogen receptor alpha (ERα)-targeted breast cancer therapies involves genomic and transcriptomic changes, not canonical ERα function. This study reveals potential therapeutic strategies targeting FGFR signaling.
Area of Science:
- Oncology
- Molecular Biology
- Genomics
Background:
- Endocrine therapies targeting estrogen receptor alpha (ERα) are standard for ERα-positive breast cancer.
- Acquired resistance to these therapies is a significant clinical challenge with incompletely understood mechanisms.
Purpose of the Study:
- To investigate the genomic, transcriptomic, and molecular changes underlying acquired resistance to endocrine therapies using a long-term estrogen-deprived (LTED) MCF7 cell model.
- To identify potential therapeutic strategies for overcoming endocrine resistance in breast cancer.
Main Methods:
- Integrated analysis of genomic, transcriptomic, and molecular data from MCF7-LTED cells during adaptation.
- Utilized cell line models and evaluated clinical tumor transcriptome profiles.
- Assessed sensitivity to FGFR signaling inhibition.
Main Results:
- Observed dynamic genomic alterations, including ESR1 locus amplification and increased ERα levels.
- Transcriptomic profiles correlated with genomic changes and were influenced by non-canonical transcription factors.
- Identified activation of growth factor signaling pathways (EGFR/ERBB/AKT) and a switch in ERα phosphorylation.
- MCF7-LTED profiles associated with ERα-negative status, early treatment response, and recurrence.
- MCF7-LTED cells demonstrated sensitivity to FGFR signaling inhibition.
Conclusions:
- Acquired resistance to endocrine therapy involves widespread genomic and transcriptomic reprogramming, independent of canonical ERα signaling.
- Growth factor signaling pathways and altered ERα phosphorylation play key roles in resistance development.
- Targeting FGFR-mediated signaling presents a promising therapeutic strategy for endocrine-resistant breast cancer.
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