Calculating distribution coefficients based on multi-scale free energy simulations: an evaluation of MM and QM/MM explicit solvent simulations of water-cyclohexane transfer in the SAMPL5 challenge
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作者:
Gerhard König
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机构:National Heart,Laboratory of Computational Biology
Gerhard König
Frank C. Pickard
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机构:National Heart,Laboratory of Computational Biology
Frank C. Pickard
Jing Huang
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机构:National Heart,Laboratory of Computational Biology
Jing Huang
Andrew C. Simmonett
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机构:National Heart,Laboratory of Computational Biology
Andrew C. Simmonett
Florentina Tofoleanu
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机构:National Heart,Laboratory of Computational Biology
Florentina Tofoleanu
Juyong Lee
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机构:National Heart,Laboratory of Computational Biology
Juyong Lee
Pavlo O. Dral
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机构:National Heart,Laboratory of Computational Biology
Pavlo O. Dral
Samarjeet Prasad
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机构:National Heart,Laboratory of Computational Biology
Samarjeet Prasad
Michael Jones
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机构:National Heart,Laboratory of Computational Biology
Michael Jones
Yihan Shao
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机构:National Heart,Laboratory of Computational Biology
Yihan Shao
Walter Thiel
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机构:National Heart,Laboratory of Computational Biology
Walter Thiel
Bernard R. Brooks
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机构:National Heart,Laboratory of Computational Biology
Bernard R. Brooks
机构:
[1] National Heart,Laboratory of Computational Biology
[2] Lung and Blood Institute,undefined
[3] National Institutes of Health,undefined
[4] Max-Planck-Institut für Kohlenforschung,undefined
Distribution coefficient;
Partition coefficient;
Water;
Cyclohexane;
Multi-scale free energy simulations;
Explicit solvent;
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摘要:
One of the central aspects of biomolecular recognition is the hydrophobic effect, which is experimentally evaluated by measuring the distribution coefficients of compounds between polar and apolar phases. We use our predictions of the distribution coefficients between water and cyclohexane from the SAMPL5 challenge to estimate the hydrophobicity of different explicit solvent simulation techniques. Based on molecular dynamics trajectories with the CHARMM General Force Field, we compare pure molecular mechanics (MM) with quantum-mechanical (QM) calculations based on QM/MM schemes that treat the solvent at the MM level. We perform QM/MM with both density functional theory (BLYP) and semi-empirical methods (OM1, OM2, OM3, PM3). The calculations also serve to test the sensitivity of partition coefficients to solute polarizability as well as the interplay of the quantum-mechanical region with the fixed-charge molecular mechanics environment. Our results indicate that QM/MM with both BLYP and OM2 outperforms pure MM. However, this observation is limited to a subset of cases where convergence of the free energy can be achieved.