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Lessons Learned from a Ligand-Unbinding Stress Test for Weighted Ensemble Simulations.

Anthony T Bogetti1, Darian T Yang1, Hannah E Piston1

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Summary

The weighted ensemble (WE) method was enhanced for molecular simulations by developing the minimal adaptive binless (MABL) approach. This new strategy improves efficiency for studying protein-ligand unbinding, like ADP from Eg5 motor protein.

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Area of Science:

  • Computational chemistry
  • Biophysics
  • Molecular dynamics

Background:

  • The weighted ensemble (WE) path sampling strategy enables molecular simulations of biological processes beyond millisecond timescales.
  • Further optimization of WE is needed to fully realize its potential, particularly through rigorous stress testing.

Purpose of the Study:

  • To stress test the WE method by simulating the seconds-timescale unbinding of ADP from the Eg5 motor protein.
  • To identify improvements for the WE resampling procedure and progress coordinate selection.
  • To develop a novel, more efficient WE method.

Main Methods:

  • Exploration of a seconds-timescale ligand-protein unbinding event using WE path sampling.
  • Development of the minimal adaptive binless (MABL) WE method, inspired by minimal adaptive binning.
  • Comparison of MABL's efficiency against binned WE approaches.

Main Results:

  • The stress test provided insights into optimizing progress coordinates and WE resampling.
  • The minimal adaptive binless (MABL) method was developed, offering a binless alternative to rectilinear binning.
  • MABL demonstrated >50% greater efficiency compared to its binned counterpart.

Conclusions:

  • The MABL method represents a significant advancement in WE path sampling, enhancing efficiency for complex molecular simulations.
  • This binless approach provides a foundation for developing more sophisticated WE methods.
  • The study highlights the value of stress testing in advancing computational simulation strategies.