๐”– Bobbio Scriptorium
โœฆ   LIBER   โœฆ

Conformation of the Ras-binding domain of Raf studied by molecular dynamics and free energy simulations

โœ Scribed by Jun Zeng; Herbert R. Treutlein; Thomas Simonson


Publisher
John Wiley and Sons
Year
1998
Tongue
English
Weight
693 KB
Volume
31
Category
Article
ISSN
0887-3585

No coin nor oath required. For personal study only.

โœฆ Synopsis


Recognition of Ras by its downstream target Raf is mediated by a Rasrecognition region in the Ras-binding domain (RBD) of Raf. Residues 78-89 in this region occupy two different conformations in the ensemble of NMR solution structures of the RBD: a fully โฃ-helical one, and one where 87-90 form a type IV ฮฒ-turn. Molecular dynamics simulations of the RBD in solution were performed to explore the stability of these and other possible conformations of both the wild-type RBD and the R89K mutant, which does not bind Ras. The simulations sample a fully helical conformation for residues 78-89 similar to the NMR helical structures, a conformation where 85-89 form a 3 10 -helical turn, and a conformation where 87-90 form a type I ฮฒ-turn, whose free energies are all within 0.3 kcal/mol of each other. NOE patterns and H โฃ chemical shifts from the simulations are in reasonable agreement with experiment. The NMR turn structure is calculated to be 3 kcal/mol higher than the three above conformations. In a simulation with the same implicit solvent model used in the NMR structure generation, the turn conformation relaxes into the fully helical conformation, illustrating possible structural artifacts introduced by the implicit solvent model. With the Raf R89K mutant, simulations sample a fully helical and a turn conformation, the turn being 0.9 kcal/mol more stable. Thus, the mutation affects the population of RBD conformations, and this is expected to affect Ras binding. For example, if the fully helical conformation of residues 78-89 is required for binding, its free energy increase in R89K will increase the binding free energy by about 0.6 kcal/mol. Proteins 31:186-200, 1998.


๐Ÿ“œ SIMILAR VOLUMES


Molecular dynamics simulations of the Ra
โœ Jun Zeng; Herbert R. Treutlein; Thomas Simonson ๐Ÿ“‚ Article ๐Ÿ“… 1999 ๐Ÿ› John Wiley and Sons ๐ŸŒ English โš– 471 KB ๐Ÿ‘ 3 views

The protein Raf is an immediate downstream target of Ras in the MAP kinase signalling pathway. The complex of Ras with the Ras-binding domain (RBD) of Raf has been modelled by homology to the (E30D,K31E)-Rap1A:RBD complex, and both have been subjected to multiple molecular dynamics simulations in so

Absolute free energies of binding of pep
โœ Christian Bartels; Armin Widmer; Claus Ehrhardt ๐Ÿ“‚ Article ๐Ÿ“… 2005 ๐Ÿ› John Wiley and Sons ๐ŸŒ English โš– 447 KB

## Abstract The constants of binding of five peptide analogs to the active site of the HIVโ€1 asparticโ€protease are calculated based on a novel sampling scheme that is efficient and does not introduce any approximations in addition to the energy function used to describe the system. The results agre

Recognition of LXXLL by Ligand Binding D
โœ Tao Zhang; Xi-Cheng Dong; Min-Bo Chen ๐Ÿ“‚ Article ๐Ÿ“… 2007 ๐Ÿ› John Wiley and Sons โš– 11 KB ๐Ÿ‘ 1 views

## Abstract ChemInform is a weekly Abstracting Service, delivering concise information at a glance that was extracted from about 200 leading journals. To access a ChemInform Abstract, please click on HTML or PDF.

Conformational changes of the p53-bindin
โœ L. M. Espinoza-Fonseca; Josรฉ G. Trujillo-Ferrara ๐Ÿ“‚ Article ๐Ÿ“… 2006 ๐Ÿ› Wiley (John Wiley & Sons) ๐ŸŒ English โš– 310 KB

## Abstract Two 35โ€ns molecular dynamics simulations of both ligated [mouse double minute protein 2 (MDM2^p53^)] and unligated (MDM2^apo^) structures of human MDM2 bound to the Nโ€terminal domain of the tumor suppressor p53 have been performed. Analysis of the dynamics revealed that the most flexibl

Interfacial Excess Free Energies of Soli
โœ Frรฉdรฉric Leroy; Daniel J. V. A. dos Santos; Florian Mรผller-Plathe ๐Ÿ“‚ Article ๐Ÿ“… 2009 ๐Ÿ› John Wiley and Sons ๐ŸŒ English โš– 244 KB

## Abstract A method to compute the interfacial excess free energy of systems where a liquid phase is interacting with a solid phase is presented. The calculations are carried out by means of molecular dynamics simulations. The algorithm is based on a thermodynamic integration scheme that reversibl