The distinct conformational dynamics of K-Ras and H-Ras A59G

Suryani Lukman1, Barry J Grant, Alemayehu A Gorfe

  • 1Department of Chemistry, University of Cambridge, Cambridge, United Kingdom. sl471@cam.ac.uk

Plos Computational Biology
|September 15, 2010
PubMed

Insights

Ras proteins

Area of Science:

  • Molecular biology
  • Biochemistry
  • Structural biology

Background:

  • Ras proteins are key regulators of cell signaling, controlling proliferation and differentiation.
  • Distinct Ras isoforms have unique functions and are implicated in various cancers and developmental diseases.
  • Subtle structural differences among Ras isoforms and mutants lead to unclear functional variations.

Purpose of the Study:

  • To investigate if subtle differences in Ras isoforms and mutants correlate with detectable dynamical differences.
  • To understand the molecular basis of functional divergence and aberrant properties in Ras proteins.

Main Methods:

  • Extensive molecular dynamics (MD) simulations were employed.
  • Principal component analysis (PCA) was used on available Ras crystallographic structures.
  • Simulations analyzed wild-type K-Ras, wild-type H-Ras, and mutant H-Ras A59G.

Main Results:

  • Wild-type K-Ras and mutant H-Ras A59G exhibit greater intrinsic dynamics than wild-type H-Ras.
  • Enhanced flexibility in switch 1, switch 2, loop 3, helix 3, and loop 7 regions observed.
  • Mutant H-Ras A59G showed spontaneous GTP-to-GDP transition with enhanced flexibility and correlated motion in switch regions.

Conclusions:

  • Dynamical differences among Ras isoforms and mutants are linked to their distinct functional properties.
  • Mutant Ras proteins may possess a lower energetic barrier between GTP and GDP states.
  • MD simulations and PCA can differentiate dynamic perturbations, aiding in targeted therapeutic strategies for Ras-related diseases.

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