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Molecular and pharmacological aspects of antiestrogen resistance
R Clarke1, T C Skaar, K B Bouker
1Department of Oncology and Lombardi Cancer Center, The Research Building W405A, Georgetown University School of Medicine, 3970 Reservoir Road NW, Washington, DC 20007, USA. clarker@gunet.georgetown.edu
Abstract:
Endocrine therapy is effective in approximately one-third of all breast cancers and up to 80% of tumors that express both estrogen and progesterone receptors. Despite the low toxicity, good overall response rates, and additional benefits associated with its partial agonist activity, most Tamoxifen-responsive breast cancers acquire resistance. The development of new antiestrogens, both steroidal and non-steroidal, provides the opportunity for the development of non-cross-resistant therapies and the identification of additional mechanisms of action and resistance. Drug-specific pharmacologic mechanisms may confer a resistance phenotype, reflecting the complexities of both tumor biology/pharmacology and the molecular endocrinology of steroid hormone action. However, since all antiestrogens will be effective only in cells that express estrogen receptors (ER), many mechanisms will likely be directly related to ER expression and signaling. For example, loss of ER expression/function is likely to confer a cross-resistance phenotype across all structural classes of antiestrogens. Altered expression of ERalpha and ERbeta, and/or signaling from transcription complexes driven by these receptors, may produce drug-specific resistance phenotypes. We have begun to study the possible changes in gene expression that may occur as cells acquire resistance to steroidal and non-steroidal antiestrogens. Our preliminary studies implicate the altered expression of several estrogen-regulated genes. However, resistance to antiestrogens is likely to be a multigene phenomenon, involving a network of interrelated signaling pathways. The way in which this network is adapted by cells may vary among tumors, consistent with the existence of a highly plastic and adaptable genotype within breast cancer cells.
Insights
Most Tamoxifen-resistant breast cancers develop resistance through complex genetic changes affecting estrogen receptor signaling. Understanding these mechanisms is key to developing new antiestrogen therapies.
Area of Science:
- Oncology
- Endocrinology
- Molecular Biology
Background:
- Endocrine therapy is effective for many breast cancers, particularly those expressing estrogen and progesterone receptors.
- Tamoxifen is a widely used antiestrogen, but many Tamoxifen-responsive breast cancers develop resistance.
- New antiestrogens offer potential for non-cross-resistant therapies and understanding resistance mechanisms.
Purpose of the Study:
- To investigate the molecular mechanisms underlying acquired resistance to steroidal and non-steroidal antiestrogens in breast cancer.
- To identify changes in gene expression and signaling pathways involved in antiestrogen resistance.
- To explore the role of estrogen receptor (ER) expression and signaling in resistance phenotypes.
Main Methods:
- Studying gene expression changes in breast cancer cells as they acquire resistance to antiestrogens.
- Analyzing alterations in estrogen receptor alpha (ERalpha) and estrogen receptor beta (ERbeta) expression and signaling.
- Investigating the role of estrogen-regulated genes in the development of resistance.
Main Results:
- Preliminary studies indicate altered expression of several estrogen-regulated genes in resistant cells.
- Resistance to antiestrogens appears to be a multigene phenomenon involving interconnected signaling pathways.
- Mechanisms of resistance can be drug-specific or involve cross-resistance, often related to ER expression.
Conclusions:
- Acquired resistance to antiestrogens is a complex, multifactorial process involving alterations in gene expression and signaling networks.
- Changes in estrogen receptor expression and signaling are critical determinants of resistance phenotypes.
- Breast cancer cells exhibit a plastic genotype, allowing adaptation and development of diverse resistance mechanisms.