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Published on: April 12, 2019
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.
Abstract:
p21ras protein activity, regulated by GTP hydrolysis, constitutes an active field of research for the development of cancer targeted therapies that would concern ∼30% of human tumors to which specific mutations have been associated. Indeed, the catalyzing mechanisms provided by the protein environment during GTP hydrolysis and how they are impaired by specific mutations remain to be fully elucidated. In this article, we present results from molecular mechanics (MM) molecular dynamics (MD) simulations and density functional theory (DFT) calculations carried out for wild-type p21 N-ras and six Gln 61 mutants. In the first part, we present the water distribution within the active site of the wild-type protein according to MM MD. Significant differences are observed when comparing the results to the previous distribution assessed through quantum mechanics/molecular mechanics (QM/MM) MD. Such method-dependent results highlight the importance of accounting for the electrostatic coupling between the protein complex and the solvent molecules in identifying hydration sites. In the second part, we present the results from DFT calculations performed to determine the electronic distribution of the GTP ligand, considering the wild-type active site arrangement according to both classical and hybrid approaches. Only in the QM/MM-based configuration is the ligand electronic density similar to that of a GDP-like state observed experimentally. For this reason, in the last set of calculations carried out for p21 N-ras Gln 61 mutants, only the active site structural conformations obtained through hybrid MD are considered. Through the analysis of the GTP electronic density, we conclude that the wild-type active site arrangement according to QM/MM MD is closer to a catalytically efficient conformation of the protein than the arrangement according to MM MD. Hence, water distribution according to the hybrid approach must correspond to the optimal placement of solvent in the active site. Within all of the studied Gln 61 substituted proteins, p21ras major catalyzing effect, which consists of stabilizing a more GDP-like state, is lost.
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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