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Updated: Jul 6, 2025

Characterize Disease-related Mutants of RAF Family Kinases by Using a Set of Practical and Feasible Methods
Published on: July 17, 2019
Mechanism of Dimer Selectivity and Binding Cooperativity of BRAF Inhibitors
Joseph Clayton1,2, Aarion Romany1, Evangelia Matenoglou3
1Department of Pharmaceutical Sciences, University of Maryland School of Pharmacy, Baltimore, MD 21201, United States.
Abstract:
Aberrant signaling of BRAFV600E is a major cancer driver. Current FDA-approved RAF inhibitors selectively inhibit the monomeric BRAFV600E and suffer from tumor resistance. Recently, dimer-selective and equipotent RAF inhibitors have been developed; however, the mechanism of dimer selectivity is poorly understood. Here, we report extensive molecular dynamics (MD) simulations of the monomeric and dimeric BRAFV600E in the apo form or in complex with one or two dimer-selective (PHI1) or equipotent (LY3009120) inhibitor(s). The simulations uncovered the unprecedented details of the remarkable allostery in BRAFV600E dimerization and inhibitor binding. Specifically, dimerization retrains and shifts the αC helix inward and increases the flexibility of the DFG motif; dimer compatibility is due to the promotion of the αC-in conformation, which is stabilized by a hydrogen bond formation between the inhibitor and the αC Glu501. A more stable hydrogen bond further restrains and shifts the αC helix inward, which incurs a larger entropic penalty that disfavors monomer binding. This mechanism led us to propose an empirical way based on the co-crystal structure to assess the dimer selectivity of a BRAFV600E inhibitor. Simulations also revealed that the positive cooperativity of PHI1 is due to its ability to preorganize the αC and DFG conformation in the opposite protomer, priming it for binding the second inhibitor. The atomically detailed view of the interplay between BRAF dimerization and inhibitor allostery as well as cooperativity has implications for understanding kinase signaling and contributes to the design of protomer selective RAF inhibitors.
Insights
New research reveals how BRAFV600E inhibitors bind to cancer-driving dimers. Understanding this mechanism, involving the alphaC helix and DFG motif, aids in designing more effective cancer therapies.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Aberrant BRAFV600E signaling drives cancer, but current inhibitors face resistance.
- Dimer-selective RAF inhibitors offer new therapeutic potential, yet their binding mechanisms remain unclear.
Purpose of the Study:
- To elucidate the molecular mechanisms underlying BRAFV600E dimerization and the selectivity of RAF inhibitors.
- To investigate the allosteric effects of dimerization and inhibitor binding on BRAFV600E conformation.
Main Methods:
- Extensive molecular dynamics (MD) simulations were performed on monomeric and dimeric BRAFV600E.
- Simulations included apo forms and complexes with dimer-selective (PHI1) and equipotent (LY3009120) inhibitors.
- Analysis focused on conformational changes, hydrogen bonding, and allosteric communication.
Main Results:
- Dimerization induces inward shifts of the alphaC helix and increases DFG motif flexibility.
- Inhibitor binding, particularly via a hydrogen bond to alphaC Glu501, stabilizes the dimer-compatible conformation.
- PHI1 exhibits positive cooperativity by preorganizing the adjacent protomer for secondary inhibitor binding.
Conclusions:
- A novel mechanism for BRAFV600E dimer selectivity involving allosteric conformational changes was uncovered.
- An empirical method to predict inhibitor dimer selectivity based on co-crystal structures was proposed.
- Detailed insights into BRAF dimerization, allostery, and inhibitor cooperativity inform the design of next-generation RAF inhibitors.
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