Hybrid QM/MM vs Pure MM Molecular Dynamics for Evaluating Water Distribution within p21N-ras and the Resulting GTP

Ruth H Tichauer1, Gilles Favre2, Stéphanie Cabantous2

  • 1LAAS-CNRS , Université de Toulouse , CNRS, UPS, Toulouse , France.

Insights

Understanding p21ras protein function is key for cancer therapy. Simulations show that a hybrid QM/MM approach accurately models GTP hydrolysis, revealing mutations disrupt this crucial cancer-related process.

Area of Science:

  • Computational chemistry and structural biology
  • Molecular modeling of protein function

Background:

  • p21ras protein activity is regulated by GTP hydrolysis and is a target for cancer therapies, as mutations are linked to ~30% of human tumors.
  • The precise catalytic mechanisms of GTP hydrolysis and how mutations affect them require further elucidation.

Purpose of the Study:

  • To investigate the role of protein environment and mutations in p21ras GTP hydrolysis using computational methods.
  • To compare different simulation approaches (MM, QM/MM) for modeling the p21ras active site and GTP hydrolysis.

Main Methods:

  • Molecular mechanics (MM) and molecular dynamics (MD) simulations of wild-type p21N-ras.
  • Quantum mechanics/molecular mechanics (QM/MM) MD simulations to assess active site water distribution.
  • Density functional theory (DFT) calculations to determine GTP ligand electronic distribution in various active site configurations.

Main Results:

  • Significant differences in active site water distribution were observed between MM MD and QM/MM MD, highlighting the importance of electrostatic coupling.
  • QM/MM-based simulations showed GTP electronic density similar to an experimentally observed GDP-like state, suggesting catalytic efficiency.
  • Mutations at Gln 61 in p21ras were found to abolish the protein's ability to stabilize a GDP-like state.

Conclusions:

  • The QM/MM MD approach provides a more accurate representation of the wild-type p21ras active site conformation for efficient GTP hydrolysis compared to MM MD.
  • Optimal solvent placement in the active site is crucial for catalysis, as indicated by the hybrid QM/MM approach.
  • Gln 61 mutations in p21ras disrupt the catalytic mechanism, leading to a loss of stabilization of the GDP-like state.

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