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Extending the Solvation-Layer Interface Condition Continum Electrostatic Model to a Linearized Poisson-Boltzmann Solvent

  • Amirhossein Molavi Tabrizi
  • , Spencer Goossens
  • , Ali Mehdizadeh Rahimi
  • , Christopher D. Cooper
  • , Matthew G. Knepley
  • , Jaydeep P. Bardhan
  • Northeastern University
  • Universidad Técnica Federico Santa Maria

Research output: Contribution to journalArticlepeer-review

9 Scopus citations

Abstract

We extend the linearized Poisson-Boltzmann (LPB) continuum electrostatic model for molecular solvation to address charge-hydration asymmetry. Our new solvation-layer interface condition (SLIC)/LPB corrects for first-shell response by perturbing the traditional continuum-Theory interface conditions at the protein-solvent and the Stern-layer interfaces. We also present a GPU-Accelerated treecode implementation capable of simulating large proteins, and our results demonstrate that the new model exhibits significant accuracy improvements over traditional LPB models, while reducing the number of fitting parameters from dozens (atomic radii) to just five parameters, which have physical meanings related to first-shell water behavior at an uncharged interface. In particular, atom radii in the SLIC model are not optimized but uniformly scaled from their Lennard-Jones radii. Compared to explicit-solvent free-energy calculations of individual atoms in small molecules, SLIC/LPB is significantly more accurate than standard parametrizations (RMS error 0.55 kcal/mol for SLIC, compared to RMS error of 3.05 kcal/mol for standard LPB). On parametrizing the electrostatic model with a simple nonpolar component for total molecular solvation free energies, our model predicts octanol/water transfer free energies with an RMS error 1.07 kcal/mol. A more detailed assessment illustrates that standard continuum electrostatic models reproduce total charging free energies via a compensation of significant errors in atomic self-energies; this finding offers a window into improving the accuracy of Generalized-Born theories and other coarse-grained models. Most remarkably, the SLIC model also reproduces positive charging free energies for atoms in hydrophobic groups, whereas standard PB models are unable to generate positive charging free energies regardless of the parametrized radii. The GPU-Accelerated solver is freely available online, as is a MATLAB implementation.

Original languageEnglish
Pages (from-to)2897-2914
Number of pages18
JournalJournal of Chemical Theory and Computation
Volume13
Issue number6
DOIs
StatePublished - Jun 13 2017

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