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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.
Abstract:
Phosphorylation of tyrosine 32 in K-Ras has been shown to influence function by disrupting the GTPase cycle. To shed light on the underlying mechanism and atomic basis of this process, we carried out a comparative investigation of the oncogenic G12D K-Ras mutant and its phosphorylated variant (pTyr32) using all-atom molecular dynamics simulations and Markov state models. We show that, despite sharing a number of common features, G12D and pTyr32-G12D K-Ras exhibit some distinct conformational states and fluctuations. In addition to notable differences in conformation and dynamics of residues surrounding the GTP binding site, nonlocal changes were observed at a number of loops. Switch I is more flexible in pTyr32-G12D K-Ras while switch II is more flexible in G12D K-Ras. We also used time-lagged independent component analysis and k-means clustering to identify five metastable states for each system. We utilized transition path theory to calculate the transition probabilities for each state to build a Markov state model for each system. These models and other close inspections suggest that the phosphorylation of Tyr32 strongly affects protein dynamics and the active site conformation, especially with regards to the canonical switch conformations and dynamics.
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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