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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
Protein-protein recognition: an experimental and computational study of the R89K mutation in Raf and its effect on
1Laboratoire de Biologie Structurale (C.N.R.S), I.G.B.M.C, Illkirch (C.U. de Strasbourg), France.
Abstract:
Binding of the protein Raf to the active form of Ras promotes activation of the MAP kinase signaling pathway, triggering cell growth and differentiation. Raf/Arg89 in the center of the binding interface plays an important role determining Ras-Raf binding affinity. We have investigated experimentally and computationally the Raf-R89K mutation, which abolishes signaling in vivo. The binding to [gamma-35S]GTP-Ras of a fusion protein between the Raf-binding domain (RBD) of Raf and GST was reduced at least 175-fold by the mutation, corresponding to a standard binding free energy decrease of at least 3.0 kcal/mol. To compute this free energy and obtain insights into the microscopic interactions favoring binding, we performed alchemical simulations of the RBD, both complexed to Ras and free in solution, in which residue 89 is gradually mutated from Arg into Lys. The simulations give a standard binding free energy decrease of 2.9+/-1.9 kcal/mol, in agreement with experiment. The use of numerous runs with three different force fields allows insights into the sources of uncertainty in the free energy and its components. The binding decreases partly because of a 7 kcal/mol higher cost to desolvate Lys upon binding, compared to Arg, due to better solvent interactions with the more concentrated Lys charge in the unbound state. This effect is expected to be general, contributing to the lower propensity of Lys to participate in protein-protein interfaces. Large contributions to the free energy change also arise from electrostatic interactions with groups up to 8 A away, namely residues 37-41 in the conserved effector domain of Ras (including 4 kcal/mol from Ser39 which loses a bifurcated hydrogen bond to Arg89), the conserved Lys84 and Lys87 of Raf, and 2-3 specific water molecules. This analysis will provide insights into the large experimental database of Ras-Raf mutations.
Insights
The Raf-R89K mutation significantly reduces Ras-Raf binding affinity, disrupting the MAP kinase pathway. Computational simulations reveal desolvation and electrostatic interactions as key factors influencing binding energy changes.
Area of Science:
- Molecular biology
- Biophysics
- Computational chemistry
Background:
- The Ras-Raf interaction is crucial for the MAP kinase signaling pathway, regulating cell growth and differentiation.
- Residue 89 in Raf (Raf/Arg89) is central to the Ras-Raf binding interface and influences binding affinity.
- The Raf-R89K mutation abolishes in vivo signaling, indicating a critical role for Arg89.
Purpose of the Study:
- To experimentally and computationally investigate the impact of the Raf-R89K mutation on Ras-Raf binding.
- To determine the binding free energy change associated with the mutation.
- To elucidate the microscopic interactions responsible for the altered binding affinity.
Main Methods:
- Experimental measurement of Ras-Raf binding affinity using a fusion protein and radiolabeled GTP-Ras.
- Computational alchemical free energy simulations to model the Arg to Lys mutation at residue 89.
- Analysis of electrostatic interactions and solvation free energy contributions using multiple force fields.
Main Results:
- The Raf-R89K mutation reduced Ras-Raf binding affinity by at least 175-fold (ΔΔG ≥ 3.0 kcal/mol).
- Alchemical simulations yielded a binding free energy decrease of 2.9 ± 1.9 kcal/mol, consistent with experimental data.
- Increased desolvation cost for Lys compared to Arg (7 kcal/mol) and electrostatic interactions with Ras residues (Ser39) and other Raf residues contributed significantly to the binding energy change.
Conclusions:
- The Raf-R89K mutation severely impairs Ras-Raf binding due to unfavorable desolvation and altered electrostatic interactions.
- The findings highlight the general principle of Lys's lower propensity to participate in protein-protein interfaces compared to Arg.
- This study provides atomic-level insights into Ras-Raf interactions, valuable for understanding mutation effects in signaling pathways.
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