Contributions of higher-order proximal distribution functions to solvent structure around proteins

被引:1
作者
Yousefi, Razie [1 ]
Lynch, Gillian C. [1 ]
Galbraith, Madeline [1 ]
Pettitt, B. Montgomery [1 ]
机构
[1] Univ Texas Med Branch, Dept Biochem & Mol Biol, 301 Univ Blvd, Galveston, TX 77555 USA
基金
美国国家科学基金会;
关键词
PERIODIC BOUNDARY-CONDITIONS; SOLVATION FREE-ENERGY; MOLECULAR-DYNAMICS; COMPUTER-SIMULATION; ELECTROSTATIC SYSTEMS; WATER INTERACTIONS; CRYSTAL-STRUCTURES; HYDRATION; FLUIDS; MODEL;
D O I
10.1063/5.0062580
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The proximal distribution function (pDF) quantifies the probability of finding a solvent molecule in the vicinity of solutes. The approach constitutes a hierarchically organized theory for constructing approximate solvation structures around solutes. Given the assumption of universality of atom cluster-specific solvation, reconstruction of the solvent distribution around arbitrary molecules provides a computationally convenient route to solvation thermodynamics. Previously, such solvent reconstructions usually considered the contribution of the nearest-neighbor distribution only. We extend the pDF reconstruction algorithm to terms including next-nearest-neighbor contribution. As a test, small molecules (alanine and butane) are examined. The analysis is then extended to include the protein myoglobin in the P6 crystal unit cell. Molecular dynamics simulations are performed, and solvent density distributions around the solute molecules are compared with the results from different pDF reconstruction models. It is shown that the next-nearest-neighbor modification significantly improves the reconstruction of the solvent number density distribution in concave regions and between solute molecules. The probability densities are then used to calculate the solute-solvent non-bonded interaction energies including van der Waals and electrostatic, which are found to be in good agreement with the simulated values.
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页数:10
相关论文
共 55 条
  • [41] Free Energy Calculations Based on Coupling Proximal Distribution Functions and Thermodynamic Cycles
    Ou, Shu-Ching
    Pettitt, B. Montgomery
    [J]. JOURNAL OF CHEMICAL THEORY AND COMPUTATION, 2019, 15 (04) : 2649 - 2658
  • [42] Nonpolar Solvation Free Energy from Proximal Distribution Functions
    Ou, Shu-Ching
    Drake, Justin A.
    Pettitt, B. Montgomery
    [J]. JOURNAL OF PHYSICAL CHEMISTRY B, 2017, 121 (15) : 3555 - 3564
  • [43] Solute-Solvent Energetics Based on Proximal Distribution Functions
    Ou, Shu-Ching
    Pettitt, B. Montgomery
    [J]. JOURNAL OF PHYSICAL CHEMISTRY B, 2016, 120 (33) : 8230 - 8237
  • [44] Protein solvation from theory and simulation: Exact treatment of Coulomb interactions in three-dimensional theories
    Perkyns, John S.
    Lynch, Gillian C.
    Howard, Jesse J.
    Pettitt, B. Montgomery
    [J]. JOURNAL OF CHEMICAL PHYSICS, 2010, 132 (06)
  • [45] Absorption and Emission Spectral Shapes of a Prototype Dye in Water by Combining Classical/Dynamical and Quantum/Static Approaches
    Petrone, Alessio
    Cerezo, Javier
    Avila Ferrer, Francisco J.
    Donati, Greta
    Improta, Roberto
    Rega, Nadia
    Santoro, Fabrizio
    [J]. JOURNAL OF PHYSICAL CHEMISTRY A, 2015, 119 (21) : 5426 - 5438
  • [46] PHILLIPS GN, 1995, PROTEIN SCI, V4, P149
  • [47] Scalable molecular dynamics with NAMD
    Phillips, JC
    Braun, R
    Wang, W
    Gumbart, J
    Tajkhorshid, E
    Villa, E
    Chipot, C
    Skeel, RD
    Kalé, L
    Schulten, K
    [J]. JOURNAL OF COMPUTATIONAL CHEMISTRY, 2005, 26 (16) : 1781 - 1802
  • [48] HIGH-RESOLUTION CRYSTAL-STRUCTURES OF DISTAL HISTIDINE MUTANTS OF SPERM WHALE MYOGLOBIN
    QUILLIN, ML
    ARDUINI, RM
    OLSON, JS
    PHILLIPS, GN
    [J]. JOURNAL OF MOLECULAR BIOLOGY, 1993, 234 (01) : 140 - 155
  • [49] Ab-initio molecular dynamics and hybrid explicit-implicit solvation model for aqueous and nonaqueous solvents:GFPchromophore in water and methanol solution as case study
    Raucci, Umberto
    Perrella, Fulvio
    Donati, Greta
    Zoppi, Maria
    Petrone, Alessio
    Rega, Nadia
    [J]. JOURNAL OF COMPUTATIONAL CHEMISTRY, 2020, 41 (26) : 2228 - 2239
  • [50] Rudnicki WR, 1997, BIOPOLYMERS, V41, P107