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Development of other microtubule-stabilizer families: the epothilones and their derivatives
Cynthia F Brogdon1, Francis Y Lee, Renzo M Canetta
1aBristol-Myers Squibb, Plainsboro bBristol-Myers Squibb, Princeton, New Jersey cBristol-Myers Squibb, Wallingford, Connecticut, USA.
Abstract:
Chemotherapy is the mainstay of treatment for numerous cancer types, but resistance to chemotherapy remains a major clinical issue and is one of the driving influences underlying the development of new anticancer medications. One of the most important classes of chemotherapy agents is the taxanes, which target the cytoskeleton and spindle apparatus of tumor cells by binding to the microtubules, thereby disrupting key cellular mechanisms, including mitosis. Taxane resistance, however, limits treatment options and creates a major challenge for clinicians. Ongoing research has identified several newer classes of microtubule-targeting chemotherapies that may retain activity despite clinical resistance to taxanes. Among these classes, the epothilones have been studied most extensively in the clinical setting. Like taxanes, epothilones stabilize microtubulin turnover, and they have properties favoring their development as anticancer agents. The most clinically advanced epothilone analog is ixabepilone, which is currently the only approved epothilone derivative. Ixabepilone is indicated for the treatment of metastatic or locally advanced breast cancer in combination with capecitabine after failure of an anthracycline and a taxane, or as monotherapy after failure of an anthracycline, a taxane, and capecitabine. In phase II and III trials, ixabepilone showed efficacy in several patient subgroups and in various stages of breast cancer. Common adverse reactions include peripheral sensory neuropathy and asthenia. This paper will discuss the preclinical and clinical development of epothilones and their derivatives across a variety of cancer types.
Insights
Chemotherapy resistance is a major challenge. Epothilones, like ixabepilone, are new microtubule-targeting agents showing efficacy in breast cancer, even after taxane resistance.
Area of Science:
- Oncology
- Pharmacology
Background:
- Chemotherapy resistance, particularly to taxanes, limits treatment options for many cancers.
- Microtubule-targeting agents are crucial, but resistance necessitates novel therapeutic strategies.
Purpose of the Study:
- To review the preclinical and clinical development of epothilones and their derivatives.
- To highlight ixabepilone as a promising agent for overcoming taxane resistance.
Main Methods:
- Review of preclinical data on epothilone mechanism of action.
- Analysis of clinical trial results for epothilones, focusing on ixabepilone in breast cancer.
Main Results:
- Epothilones, like taxanes, stabilize microtubule turnover and show anticancer properties.
- Ixabepilone demonstrated efficacy in metastatic or locally advanced breast cancer, including in patients resistant to prior therapies.
Conclusions:
- Epothilones represent a valuable class of microtubule-targeting agents for overcoming chemotherapy resistance.
- Ixabepilone offers a treatment option for specific breast cancer scenarios, warranting further investigation across various cancer types.
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