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Characterize Disease-related Mutants of RAF Family Kinases by Using a Set of Practical and Feasible Methods
Published on: July 17, 2019
Vertical Inhibition of the RAF-MEK-ERK Cascade Induces Myogenic Differentiation, Apoptosis, and Tumor Regression in
Natalia Garcia1,2, Vanessa Del Pozo1, Marielle E Yohe3
1Greehey Children's Cancer Research Institute, The University of Texas Health Science Center, San Antonio, Texas.
Abstract:
Oncogenic RAS signaling is an attractive target for fusion-negative rhabdomyosarcoma (FN-RMS). Our study validates the role of the ERK MAPK effector pathway in mediating RAS dependency in a panel of H/NRAS mutant RMS cells and correlates in vivo efficacy of the MEK inhibitor trametinib with pharmacodynamics of ERK activity. A screen is used to identify trametinib-sensitizing targets, and combinations are evaluated in cells and tumor xenografts. We find that the ERK MAPK pathway is central to H/NRAS dependency in RMS cells; however, there is poor in vivo response to clinically relevant exposures with trametinib, which correlates with inefficient suppression of ERK activity. CRISPR screening points to vertical inhibition of the RAF-MEK-ERK cascade by cosuppression of MEK and either CRAF or ERK. CRAF is central to rebound pathway activation following MEK or ERK inhibition. Concurrent CRAF suppression and MEK or ERK inhibition, or concurrent pan-RAF and MEK/ERK inhibition (pan-RAFi + MEKi/ERKi), or concurrent MEK and ERK inhibition (MEKi + ERKi) all synergistically block ERK activity and induce myogenic differentiation and apoptosis. In vivo assessment of pan-RAFi + ERKi or MEKi + ERKi potently suppress growth of H/NRAS RMS tumor xenografts, with pan-RAFi + ERKi being more effective and better tolerated. We conclude that CRAF reactivation limits the activity of single-agent MEK/ERK inhibitors in FN-RMS. Vertical targeting of the RAF-MEK-ERK cascade and particularly cotargeting of CRAF and MEK or ERK, or the combination of pan-RAF inhibitors with MEK or ERK inhibitors, have synergistic activity and potently suppress H/NRAS mutant RMS tumor growth.
Insights
Targeting the ERK MAPK pathway is crucial for H/NRAS mutant rhabdomyosarcoma. Combining RAF and MEK/ERK inhibitors shows synergistic effects, potently suppressing tumor growth in vivo.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Signaling Pathways
Background:
- Oncogenic RAS signaling is a key driver in fusion-negative rhabdomyosarcoma (FN-RMS).
- The ERK MAPK effector pathway plays a critical role in RAS-driven tumor growth.
- Single-agent MEK inhibitors show limited efficacy in vivo due to pathway reactivation.
Purpose of the Study:
- To validate the role of the ERK MAPK pathway in H/NRAS mutant FN-RMS.
- To identify strategies to overcome resistance to MEK inhibitors.
- To evaluate combination therapies targeting the RAF-MEK-ERK cascade in FN-RMS.
Main Methods:
- Utilized CRISPR screening to identify trametinib-sensitizing targets.
- Evaluated combination therapies in cell lines and tumor xenografts.
- Assessed pharmacodynamic markers of ERK activity and tumor growth inhibition.
Main Results:
- The ERK MAPK pathway is central to H/NRAS dependency in FN-RMS.
- Trametinib monotherapy showed poor in vivo efficacy due to inefficient ERK suppression.
- Vertical inhibition of the RAF-MEK-ERK cascade, particularly cotargeting CRAF with MEK/ERK inhibitors, synergistically suppressed tumor growth and induced apoptosis.
- Pan-RAF inhibitors combined with MEK/ERK inhibitors demonstrated potent and well-tolerated in vivo efficacy.
Conclusions:
- CRAF reactivation limits the efficacy of single-agent MEK/ERK inhibitors in FN-RMS.
- Vertical targeting of the RAF-MEK-ERK cascade offers a promising therapeutic strategy for H/NRAS mutant FN-RMS.
- Combination therapies, especially pan-RAF inhibitors with MEK/ERK inhibitors, show significant potential for treating this aggressive cancer.
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