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PMID: 10210183 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Protein-protein recognition: an experimental and computational study of the R89K mutation in Raf and its effect on Ras binding.

Protein science : a publication of the Protein Society ·Vol. 8 ·No. 1 ·1999-01-00 ·Pages 50-64

Zeng J, Fridman M, Maruta H, Treutlein HR, Simonson T

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.

MeSH Terms
Amino Acid Sequence Models, Molecular Molecular Sequence Data Mutagenesis, Site-Directed Oncogene Protein p21(ras)/chemistry,metabolism Protein Binding Protein Conformation Proto-Oncogene Proteins c-raf/chemistry,genetics,metabolism Recombinant Fusion Proteins/chemistry,genetics,metabolism Sequence Homology, Amino Acid Thermodynamics
Chemicals
Recombinant Fusion Proteins Proto-Oncogene Proteins c-raf Oncogene Protein p21(ras)
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Zeng J
Laboratoire de Biologie Structurale (C.N.R.S), I.G.B.M.C, Illkirch (C.U. de Strasbourg), France.
Fridman M
Maruta H
Treutlein H R
Simonson T
References (42)
42 references, click to expand
  1. Intrinsic GTPase activity distinguishes normal and oncogenic ras p21 molecules.
    Proc Natl Acad Sci U S A. 1984 Sep;81(18):5704-8 PMID: 6148751
  2. Dynamic information from protein crystallography. An analysis of temperature factors from refinement of the hen egg-white lysozyme structure.
    J Mol Biol. 1979 May 25;130(3):231-52 PMID: 469942
  3. A general method of in vitro preparation and specific mutagenesis of DNA fragments: study of protein and DNA interactions.
    Nucleic Acids Res. 1988 Aug 11;16(15):7351-67 PMID: 3045756
  4. Surface, subunit interfaces and interior of oligomeric proteins.
    J Mol Biol. 1988 Nov 5;204(1):155-64 PMID: 3216390
  5. Hidden thermodynamics of mutant proteins: a molecular dynamics analysis.
    Science. 1989 Jun 2;244(4908):1069-72 PMID: 2727695
  6. Site-directed mutagenesis by overlap extension using the polymerase chain reaction.
    Gene. 1989 Apr 15;77(1):51-9 PMID: 2744487
  7. Structure of the guanine-nucleotide-binding domain of the Ha-ras oncogene product p21 in the triphosphate conformation.
    Nature. 1989 Sep 21;341(6239):209-14 PMID: 2476675
  8. Molecular switch for signal transduction: structural differences between active and inactive forms of protooncogenic ras proteins.
    Science. 1990 Feb 23;247(4945):939-45 PMID: 2406906
  9. On the use of normal modes in thermal parameter refinement: theory and application to the bovine pancreatic trypsin inhibitor.
    Acta Crystallogr A. 1990 Jun 1;46 ( Pt 6):425-35 PMID: 1694442
  10. The residues of Ras and Rap proteins that determine their GAP specificities.
    J Biol Chem. 1991 Jun 25;266(18):11661-8 PMID: 1828804
  11. The role of Raf-1 phosphorylation in signal transduction.
    Adv Cancer Res. 1992;58:53-73 PMID: 1312290
  12. Binding of an antiviral agent to a sensitive and a resistant human rhinovirus. Computer simulation studies with sampling of amino acid side-chain conformations. II. Calculation of free-energy differences by thermodynamic integration.
    J Mol Biol. 1992 Jun 5;225(3):697-712 PMID: 1318384
  13. Thermodynamics of protein-peptide interactions in the ribonuclease-S system studied by molecular dynamics and free energy calculations.
    Biochemistry. 1992 Sep 15;31(36):8661-74 PMID: 1390651
  14. Complexes of Ras.GTP with Raf-1 and mitogen-activated protein kinase kinase.
    Science. 1993 Jun 11;260(5114):1658-61 PMID: 8503013
  15. Normal and oncogenic p21ras proteins bind to the amino-terminal regulatory domain of c-Raf-1.
    Nature. 1993 Jul 22;364(6435):308-13 PMID: 8332187
  16. Mammalian Ras interacts directly with the serine/threonine kinase Raf.
    Cell. 1993 Jul 16;74(1):205-14 PMID: 8334704
  17. Molecular recognition in proteins. Simulation analysis of substrate binding by a tyrosyl-tRNA synthetase mutant.
    J Mol Biol. 1994 Mar 4;236(4):1049-66 PMID: 8120886
  18. Solution structure and dynamics of ras p21.GDP determined by heteronuclear three- and four-dimensional NMR spectroscopy.
    Biochemistry. 1994 Mar 29;33(12):3515-31 PMID: 8142349
  19. A single amino acid change in Raf-1 inhibits Ras binding and alters Raf-1 function.
    Proc Natl Acad Sci U S A. 1994 Jun 21;91(13):5982-6 PMID: 8016101
  20. Decomposition of the free energy of a system in terms of specific interactions. Implications for theoretical and experimental studies.
    J Mol Biol. 1994 Jul 8;240(2):167-76 PMID: 8028000
  21. Free energy simulations of the HyHEL-10/HEL antibody-antigen complex.
    Protein Eng. 1995 Jul;8(7):663-75 PMID: 8577695
  22. Quantitative structure-activity analysis correlating Ras/Raf interaction in vitro to Raf activation in vivo.
    Nat Struct Biol. 1996 Mar;3(3):244-51 PMID: 8605626
  23. Ras/Rap effector specificity determined by charge reversal.
    Nat Struct Biol. 1996 Aug;3(8):723-9 PMID: 8756332
  24. Interactions between Ras proteins and their effectors.
    Curr Opin Biotechnol. 1996 Aug;7(4):449-56 PMID: 8768906
  25. Free energy calculations of the mutation of Ile96-->Ala in barnase: contributions to the difference in stability.
    Protein Eng. 1996 Mar;9(3):273-81 PMID: 8736494
  26. On the decomposition of free energies.
    J Mol Biol. 1996 Oct 25;263(2):123-5 PMID: 8913295
  27. Protein-protein recognition.
    Prog Biophys Mol Biol. 1995;64(2-3):145-66 PMID: 8987382
  28. The statistical-thermodynamic basis for computation of binding affinities: a critical review.
    Biophys J. 1997 Mar;72(3):1047-69 PMID: 9138555
  29. Three-dimensional structure of the Ras-interacting domain of RalGDS.
    Nat Struct Biol. 1997 Aug;4(8):609-15 PMID: 9253406
  30. Structure of the Ras-binding domain of RalGEF and implications for Ras binding and signalling.
    Nat Struct Biol. 1997 Sep;4(9):694-9 PMID: 9302994
  31. Specific amino acid recognition by aspartyl-tRNA synthetase studied by free energy simulations.
    J Mol Biol. 1998 Feb 6;275(5):823-46 PMID: 9480772
  32. Conformation of the Ras-binding domain of Raf studied by molecular dynamics and free energy simulations.
    Proteins. 1998 May 1;31(2):186-200 PMID: 9593192
  33. Absolute and relative binding free energy calculations of the interaction of biotin and its analogs with streptavidin using molecular dynamics/free energy perturbation approaches.
    Proteins. 1993 Jul;16(3):226-45 PMID: 8346190
  34. Mutations that abolish the ability of Ha-Ras to associate with Raf-1.
    Oncogene. 1994 Aug;9(8):2153-7 PMID: 8036000
  35. The minimal fragments of c-Raf-1 and NF1 that can suppress v-Ha-Ras-induced malignant phenotype.
    J Biol Chem. 1994 Dec 2;269(48):30105-8 PMID: 7982912
  36. Free energy simulations: the meaning of the individual contributions from a component analysis.
    Proteins. 1994 Sep;20(1):25-33 PMID: 7824520
  37. Protein-protein interactions: a review of protein dimer structures.
    Prog Biophys Mol Biol. 1995;63(1):31-65 PMID: 7746868
  38. Solution structure of the Ras-binding domain of c-Raf-1 and identification of its Ras interaction surface.
    Biochemistry. 1995 May 30;34(21):6911-8 PMID: 7766599
  39. The 2.2 A crystal structure of the Ras-binding domain of the serine/threonine kinase c-Raf1 in complex with Rap1A and a GTP analogue.
    Nature. 1995 Jun 15;375(6532):554-60 PMID: 7791872
  40. Proline cis-trans isomerization in staphylococcal nuclease: multi-substrate free energy perturbation calculations.
    Protein Sci. 1995 Apr;4(4):636-54 PMID: 7613463
  41. The meaning of component analysis: decomposition of the free energy in terms of specific interactions.
    J Mol Biol. 1995 Dec 15;254(5):801-7 PMID: 7500351
  42. Active site dynamics in protein molecules: a stochastic boundary molecular-dynamics approach.
    Biopolymers. 1985 May;24(5):843-65 PMID: 2410050
Article Info
Journal
Protein science : a publication of the Protein Society
Abbr.
Protein Sci
ISSN
0961-8368
Published
1999-01-00
Pages
50-64
Language
English
Region
United States
NLM ID
9211750
PMCID
PMC2144096
Subset
IM
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