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Transition paths of Met-enkephalin from Markov state modeling of a molecular dynamics trajectory
Rahul Banerjee1, Robert I Cukier
1Department of Chemistry, Michigan State University , East Lansing, Michigan 48824, United States.
Abstract:
Conformational states and their interconversion pathways of the zwitterionic form of the pentapeptide Met-enkephalin (MetEnk) are identified. An explicit solvent molecular dynamics (MD) trajectory is used to construct a Markov state model (MSM) based on dihedral space clustering of the trajectory, and transition path theory (TPT) is applied to identify pathways between open and closed conformers. In the MD trajectory, only four of the eight backbone dihedrals exhibit bistable behavior. Defining a conformer as the string XXXX with X = "+" or "-" denoting, respectively, positive or negative values of a given dihedral angle and obtaining the populations of these conformers shows that only four conformers are highly populated, implying a strong correlation among these dihedrals. Clustering in dihedral space to construct the MSM finds the same four bistable dihedral angles. These state populations are very similar to those found directly from the MD trajectory. TPT is used to obtain pathways, parametrized by committor values, in dihedral state space that are followed in transitioning from closed to open states. Pathway costs are estimated by introducing a kinetics-based procedure that orders pathways from least (shortest) to greater cost paths. The least costly pathways in dihedral space are found to only involve the same XXXX set of dihedral angles, and the conformers accessed in the closed to open transition pathways are identified. For these major pathways, a correlation between reaction path progress (committors) and the end-to-end distance is identified. A dihedral space principal component analysis of the MD trajectory shows that the first three modes capture most of the overall fluctuation, and pick out the same four dihedrals having essentially all the weight in those modes. A MSM based on root-mean-square backbone clustering was also carried out, with good agreement found with dihedral clustering for the static information, but with results that differ significantly for the pathway analysis.
Insights
This study identifies key conformational states and pathways for Met-enkephalin using molecular dynamics and Markov state models. The research reveals that only four specific dihedral angles govern the peptide's transitions between open and closed forms.
Area of Science:
- Computational chemistry
- Molecular dynamics simulations
- Biophysics
Background:
- Understanding peptide conformational dynamics is crucial for drug design and protein folding.
- Met-enkephalin, a pentapeptide, serves as a model system for studying peptide behavior.
- Previous studies have explored Met-enkephalin's structure, but detailed pathways between states remain elusive.
Purpose of the Study:
- To identify and characterize the conformational states of zwitterionic Met-enkephalin.
- To elucidate the interconversion pathways between these states using advanced computational methods.
- To correlate conformational changes with physical properties like end-to-end distance.
Main Methods:
- Employed explicit solvent molecular dynamics (MD) simulations.
- Constructed a Markov state model (MSM) based on dihedral angle clustering.
- Applied Transition Path Theory (TPT) to analyze pathways between open and closed conformers.
- Utilized dihedral space principal component analysis (PCA) to identify key dynamic modes.
Main Results:
- Identified four highly populated conformers of Met-enkephalin, strongly correlated by four specific backbone dihedral angles.
- MSM and TPT analyses revealed the dominant pathways governing transitions between closed and open states.
- A kinetics-based procedure ranked pathways by cost, highlighting the least costly routes involving the identified key dihedrals.
- Correlated reaction path progress (committors) with the peptide's end-to-end distance along major pathways.
Conclusions:
- The conformational landscape of Met-enkephalin is largely dictated by a subset of four bistable dihedral angles.
- TPT effectively maps the lowest-energy pathways for Met-enkephalin's conformational transitions.
- Dihedral space analysis provides a robust framework for understanding peptide dynamics, complementing RMSD-based approaches.
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