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.

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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