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Genomic modelling of the ESR1 Y537S mutation for evaluating function and new therapeutic approaches for metastatic
A Harrod1, J Fulton1, V T M Nguyen1
1Department of Surgery & Cancer, Imperial College London, Hammersmith Hospital Campus, London, UK.
Abstract:
Drugs that inhibit estrogen receptor-α (ER) activity have been highly successful in treating and reducing breast cancer progression in ER-positive disease. However, resistance to these therapies presents a major clinical problem. Recent genetic studies have shown that mutations in the ER gene are found in >20% of tumours that progress on endocrine therapies. Remarkably, the great majority of these mutations localize to just a few amino acids within or near the critical helix 12 region of the ER hormone binding domain, where they are likely to be single allele mutations. Understanding how these mutations impact on ER function is a prerequisite for identifying methods to treat breast cancer patients featuring such mutations. Towards this end, we used CRISPR-Cas9 genome editing to make a single allele knock-in of the most commonly mutated amino acid residue, tyrosine 537, in the estrogen-responsive MCF7 breast cancer cell line. Genomic analyses using RNA-seq and ER ChIP-seq demonstrated that the Y537S mutation promotes constitutive ER activity globally, resulting in estrogen-independent growth. MCF7-Y537S cells were resistant to the anti-estrogen tamoxifen and fulvestrant. Further, we show that the basal transcription factor TFIIH is constitutively recruited by ER-Y537S, resulting in ligand-independent phosphorylation of Serine 118 (Ser118) by the TFIIH kinase, cyclin-dependent kinase (CDK)7. The CDK7 inhibitor, THZ1 prevented Ser118 phosphorylation and inhibited growth of MCF7-Y537S cells. These studies confirm the functional importance of ER mutations in endocrine resistance, demonstrate the utility of knock-in mutational models for investigating alternative therapeutic approaches and highlight CDK7 inhibition as a potential therapy for endocrine-resistant breast cancer mediated by ER mutations.
Insights
Estrogen receptor-alpha (ER) mutations drive endocrine therapy resistance in breast cancer. Targeting cyclin-dependent kinase (CDK)7 with THZ1 offers a potential treatment for ER-mutated, resistant breast cancers.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Estrogen receptor-alpha (ER) targeted therapies are crucial for ER-positive breast cancer.
- Therapy resistance, often linked to ER gene mutations, is a significant clinical challenge.
- Mutations in ER, particularly near helix 12, are common in progressing tumors.
Purpose of the Study:
- To investigate the functional impact of common ER mutations on breast cancer growth and endocrine therapy response.
- To explore novel therapeutic strategies for ER-mutated, endocrine-resistant breast cancer.
- To validate the use of CRISPR-Cas9 knock-in models for studying ER mutations.
Main Methods:
- CRISPR-Cas9 genome editing to create a Y537S ER mutation knock-in in MCF7 cells.
- RNA-sequencing (RNA-seq) and ER Chromatin Immunoprecipitation sequencing (ChIP-seq) for genomic analysis.
- Assessment of cell growth, response to anti-estrogens (tamoxifen, fulvestrant), and TFIIH/CDK7 activity.
Main Results:
- The Y537S ER mutation confers constitutive ER activity, leading to estrogen-independent growth.
- MCF7-Y537S cells exhibited resistance to tamoxifen and fulvestrant.
- ER-Y537S constitutively recruits TFIIH, causing ligand-independent Serine 118 phosphorylation by CDK7.
- The CDK7 inhibitor THZ1 blocked Ser118 phosphorylation and inhibited MCF7-Y537S cell growth.
Conclusions:
- ER mutations are functionally significant drivers of endocrine resistance in breast cancer.
- CRISPR-Cas9 knock-in models are valuable tools for studying ER mutations and resistance mechanisms.
- CDK7 inhibition represents a promising therapeutic avenue for ER-mutated, endocrine-resistant breast cancer.
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