4.6 Article

Developing end-point methods for absolute binding free energy calculation using the Boltzmann-quasiharmonic model

Journal

PHYSICAL CHEMISTRY CHEMICAL PHYSICS
Volume 24, Issue 10, Pages 6037-6052

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d1cp05075c

Keywords

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Funding

  1. Pace University
  2. National Institutes of Health [1R01-GM100946]

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Understanding the physical forces underlying receptor-ligand binding requires robust methods for analyzing the binding thermodynamics. This study presents a new end-point method called EE-BQH, which combines the Boltzmann-Quasiharmonic model with different solvation free energy methods to estimate the absolute binding free energy. Compared with other treatments of configurational entropy, EE-BQH shows higher accuracy in calculating the absolute binding free energy and demonstrates potential for providing insights in more complex protein-ligand systems.
Understanding the physical forces underlying receptor-ligand binding requires robust methods for analyzing the binding thermodynamics. In end-point binding free energy methods the binding free energy is naturally decomposable into physically intuitive contributions such as the solvation free energy and configurational entropy that can provide insights. Here we present a new end-point method called EE-BQH (Effective Energy-Boltzmann-Quasiharmonic) which combines the Boltzmann-Quasiharmonic model for configurational entropy with different solvation free energy methods, such as the continuum solvent PBSA model and the integral equation-based 3D-RISM, to estimate the absolute binding free energy. We compare EE-BQH with other treatments of configurational entropy such as Quasiharmonic models in internal coordinates (QHIC) and in Cartesian coordinates (QHCC), and Normal Mode analysis (NMA), by testing them on the octa acids host-guest complexes from the SAMPL8 blind challenge. The accuracies in the calculated absolute binding free energies strongly depend on the configurational entropy and solvation free energy methods used. QHIC and BQH yield the best agreements with the established potential of mean force (PMF) estimates, with R-2 of similar to 0.7 and mean unsigned error of similar to 1.7 kcal mol(-1). These results from the end-point calculations are also in similar agreement with experiments. While 3D-RISM in combination with QHIC or BQH lead to reasonable correlations with the PMF results and experiments, the calculated absolute binding free energies are underestimated by similar to 5 kcal mol(-1). While the binding is accompanied by a significant reduction in the ligand translational/rotational entropy, the change in the torsional entropy in these host-guest systems is slightly positive. Compared with BQH, QHIC underestimates the reduction of configurational entropy because of the non-Gaussian probability distributions in the ligand rotation and a small number of torsions. The study highlights the crucial role of configurational entropy in determining binding and demonstrates the potential of using the new end-point method to provide insights in more complex protein-ligand systems.

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