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Characterizing hydrophobicity of interfaces by using cavity formation, solute binding, and water correlations
被引:309
作者:
Godawat, Rahul
Jamadagni, Sumanth N.
Garde, Shekhar
[1
]
机构:
[1] Rensselaer Polytech Inst, Howard P Isermann Dept Chem Biol Engn, Troy, NY 12180 USA
来源:
基金:
美国国家科学基金会;
关键词:
hydration;
hydrophilic;
hydrophobic;
wetting;
fluctuations;
SELF-ASSEMBLED MONOLAYERS;
SCALED-PARTICLE THEORY;
TEMPERATURE-DEPENDENCE;
COMPUTER-SIMULATION;
MOLECULAR-DYNAMICS;
LENGTH SCALES;
HYDRATION;
SURFACES;
COLLAPSE;
THERMODYNAMICS;
D O I:
10.1073/pnas.0902778106
中图分类号:
O [数理科学和化学];
P [天文学、地球科学];
Q [生物科学];
N [自然科学总论];
学科分类号:
07 ;
0710 ;
09 ;
摘要:
Hydrophobicity is often characterized macroscopically by the droplet contact angle. Molecular signatures of hydrophobicity have, however, remained elusive. Successful theories predict a drying transition leading to a vapor-like region near large hard-sphere solutes and interfaces. Adding attractions wets the interface with local density increasing with attractions. Here we present extensive molecular simulation studies of hydration of realistic surfaces with a wide range of chemistries from hydrophobic (-CF3, -CH3) to hydrophilic (-OH, -CONH2). We show that the water density near weakly attractive hydrophobic surfaces (e. g., -CF3) can be bulk-like or larger, and provides a poor quantification of surface hydrophobicity. In contrast, the probability of cavity formation or the free energy of binding of hydrophobic solutes to interfaces correlates quantitatively with the macroscopic wetting properties and serves as an excellent signature of hydrophobicity. Specifically, the probability of cavity formation is enhanced in the vicinity of hydrophobic surfaces, and water-water correlations correspondingly display characteristics similar to those near a vapor-liquid interface. Hydrophilic surfaces suppress cavity formation and reduce the water-water correlation length. Our results suggest a potentially robust approach for characterizing hydrophobicity of more complex and heterogeneous surfaces of proteins and biomolecules, and other nanoscopic objects.
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页码:15119 / 15124
页数:6
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