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Published on: June 9, 2023
Identification of an Imidazopyridine-based Compound as an Oral Selective Estrogen Receptor Degrader for Breast Cancer
Mengwu Pan1, Valeria Solozobova1, Nane C Kuznik1
1Institute of Biological and Chemical Systems - Biological Information Processing, Karlsruhe Institute of Technology, Eggenstein-Leopoldshafen, Germany.
Abstract:
The pro-oncogenic activities of estrogen receptor alpha (ERα) drive breast cancer pathogenesis. Endocrine therapies that impair the production of estrogen or the action of the ERα are therefore used to prevent primary disease metastasis. Although recent successes with ERα degraders have been reported, there is still the need to develop further ERα antagonists with additional properties for breast cancer therapy. We have previously described a benzothiazole compound A4B17 that inhibits the proliferation of androgen receptor-positive prostate cancer cells by disrupting the interaction of the cochaperone BAG1 with the AR. A4B17 was also found to inhibit the proliferation of estrogen receptor-positive (ER+) breast cancer cells. Using a scaffold hopping approach, we report here a group of small molecules with imidazopyridine scaffolds that are more potent and efficacious than A4B17. The prototype molecule X15695 efficiently degraded ERα and attenuated estrogen-mediated target gene expression as well as transactivation by the AR. X15695 also disrupted key cellular protein-protein interactions such as BAG1-mortalin (GRP75) interaction as well as wild-type p53-mortalin or mutant p53-BAG2 interactions. These activities together reactivated p53 and resulted in cell-cycle block and the induction of apoptosis. When administered orally to in vivo tumor xenograft models, X15695 potently inhibited the growth of breast tumor cells but less efficiently the growth of prostate tumor cells. We therefore identify X15695 as an oral selective ER degrader and propose further development of this compound for therapy of ER+ breast cancers.
Significance:
An imidazopyridine that selectively degrades ERα and is orally bioavailable has been identified for the development of ER+ breast cancer therapeutics. This compound also activates wild-type p53 and disrupts the gain-of-function tumorigenic activity of mutant p53, resulting in cell-cycle arrest and the induction of apoptosis.
Insights
A novel imidazopyridine compound, X15695, effectively degrades estrogen receptor alpha (ERα) and inhibits ER-positive breast cancer growth. This orally available drug also reactivates p53, leading to apoptosis and potential new breast cancer therapies.
Area of Science:
- Oncology
- Molecular Biology
- Medicinal Chemistry
Background:
- Estrogen receptor alpha (ERα) drives breast cancer pathogenesis.
- Current endocrine therapies targeting ERα have limitations.
- Novel ERα antagonists with enhanced properties are needed for breast cancer treatment.
Purpose of the Study:
- To develop novel, potent ERα antagonists.
- To identify small molecules with improved efficacy over existing compounds.
- To investigate the therapeutic potential of new imidazopyridine-based compounds for ER-positive breast cancer.
Main Methods:
- Scaffold hopping approach to design new molecules.
- In vitro assays to assess ERα degradation and gene expression.
- Protein-protein interaction disruption studies.
- In vivo tumor xenograft models to evaluate anti-tumor efficacy.
Main Results:
- Identified imidazopyridine X15695 as a potent ERα degrader.
- X15695 attenuated estrogen-mediated gene expression and AR transactivation.
- X15695 disrupted key protein interactions, reactivated p53, induced apoptosis, and cell-cycle arrest.
- Oral administration of X15695 potently inhibited ER-positive breast tumor growth in vivo.
Conclusions:
- X15695 is an orally selective ERα degrader with potent anti-cancer activity.
- The compound shows promise for the therapy of ER-positive breast cancers.
- Further development of X15695 is warranted for clinical application.
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