Conformational and Dynamical Effects of Tyr32 Phosphorylation in K-Ras: Molecular Dynamics Simulation and Markov

Mohammed Khaled1, Alemayehu Gorfe2, Abdallah Sayyed-Ahmad1

  • 1Department of Physics , Birzeit University , PO Box 14, Birzeit , Palestine.

Insights

Phosphorylation of tyrosine 32 in K-Ras disrupts its GTPase cycle. This study reveals distinct conformational states and dynamics between wild-type and phosphorylated K-Ras mutants.

Area of Science:

  • Molecular Biology
  • Biochemistry
  • Computational Biology

Background:

  • Tyrosine 32 phosphorylation in K-Ras impacts GTPase cycle function.
  • Understanding the atomic basis of this modification is crucial for K-Ras research.

Purpose of the Study:

  • To investigate the mechanism and atomic basis of K-Ras phosphorylation at tyrosine 32.
  • To compare the conformational states and dynamics of oncogenic G12D K-Ras and its phosphorylated variant (pTyr32-G12D K-Ras).

Main Methods:

  • All-atom molecular dynamics simulations.
  • Markov state models.
  • Time-lagged independent component analysis and k-means clustering.
  • Transition path theory.

Main Results:

  • G12D K-Ras and pTyr32-G12D K-Ras exhibit distinct conformational states and fluctuations.
  • Phosphorylation alters dynamics of residues around the GTP binding site and affects loop flexibility (Switch I vs. Switch II).
  • Five metastable states identified for each system, with differing transition probabilities.

Conclusions:

  • Phosphorylation of K-Ras at Tyr32 significantly impacts protein dynamics and active site conformation.
  • These changes are particularly evident in the canonical switch conformations and dynamics.
  • The findings provide atomic-level insights into K-Ras regulation by phosphorylation.

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