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Published on: January 16, 2015
Overcoming clinical resistance to EZH2 inhibition using rational epigenetic combination therapy
Abstract:
Essential epigenetic dependencies have become evident in many cancers. Based on the functional antagonism between BAF/SWI/SNF and PRC2 in SMARCB1-deficient sarcomas, we and colleagues recently completed the clinical trial of the EZH2 inhibitor tazemetostat. However, the principles of tumor response to epigenetic therapy in general, and tazemetostat in particular, remain unknown. Using functional genomics of patient tumors and diverse experimental models, we sought to define molecular mechanisms of tazemetostat resistance in SMARCB1-deficient sarcomas and rhabdoid tumors. We found distinct classes of acquired mutations that converge on the RB1/E2F axis and decouple EZH2-dependent differentiation and cell cycle control. This allows tumor cells to escape tazemetostat-induced G1 arrest despite EZH2 inhibition, and suggests a general mechanism for effective EZH2 therapy. This also enables us to develop combination strategies to circumvent tazemetostat resistance using cell cycle bypass targeting via AURKB, and synthetic lethal targeting of PGBD5-dependent DNA damage repair via ATR. This reveals prospective biomarkers for therapy stratification, including PRICKLE1 associated with tazemetostat resistance. In all, this work offers a paradigm for rational epigenetic combination therapy suitable for immediate translation to clinical trials for epithelioid sarcomas, rhabdoid tumors, and other epigenetically dysregulated cancers.
Insights
Epigenetic therapies like tazemetostat face resistance in certain cancers. Researchers identified mutations causing resistance by affecting cell cycle control, paving the way for combination therapies and biomarkers.
Area of Science:
- Oncology
- Epigenetics
- Cancer Biology
Background:
- Epigenetic alterations are crucial in cancer development.
- SMARCB1-deficient sarcomas and rhabdoid tumors exhibit dependencies on epigenetic regulators like PRC2.
- The EZH2 inhibitor tazemetostat has shown promise but resistance mechanisms are not fully understood.
Approach:
- Investigated molecular mechanisms of tazemetostat resistance in SMARCB1-deficient sarcomas and rhabdoid tumors.
- Utilized functional genomics on patient tumors and experimental models.
- Identified acquired mutations converging on the RB1/E2F axis.
Key Points:
- Mutations decouple EZH2-dependent differentiation and cell cycle control, enabling escape from tazemetostat-induced G1 arrest.
- Identified combination strategies targeting AURKB (cell cycle bypass) and ATR (DNA damage repair).
- Discovered PRICKLE1 as a potential biomarker for tazemetostat resistance.
Conclusions:
- Elucidated mechanisms of resistance to EZH2 inhibition in specific cancers.
- Developed rational combination strategies for epigenetic therapy.
- Proposed biomarkers for patient stratification in clinical trials for epithelioid sarcomas, rhabdoid tumors, and other cancers.
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