Issue 21, 2018

Entropy connects water structure and dynamics in protein hydration layer

Abstract

The enzyme Candida Antarctica lipase B (CALB) serves here as a model for understanding connections among hydration layer dynamics, solvation shell structure, and protein surface structure. The structure and dynamics of water molecules in the hydration layer were characterized for regions of the CALB surface, divided around each α-helix, β-sheet, and loop structure. Heterogeneous hydration dynamics were observed around the surface of the enzyme, in line with spectroscopic observations of other proteins. Regional differences in the structure of the biomolecular hydration layer were found to be concomitant with variations in dynamics. In particular, it was seen that regions of higher density exhibit faster water dynamics. This is analogous to the behavior of bulk water, where dynamics (diffusion coefficients) are connected to water structure (density and tetrahedrality) by excess (or pair) entropy, detailed in the Rosenfeld scaling relationship. Additionally, effects of protein surface topology and hydrophobicity on water structure and dynamics were evaluated using multiregression analysis, showing that topology has a somewhat larger effect on hydration layer structure–dynamics. Concave and hydrophobic protein surfaces favor a less dense and more tetrahedral solvation layer, akin to a more ice-like structure, with slower dynamics. Results show that pairwise entropies of local hydration layers, calculated from regional radial distribution functions, scale logarithmically with local hydration dynamics. Thus, the Rosenfeld relationship describes the heterogeneous structure–dynamics of the hydration layer around the enzyme CALB. These findings raise the question of whether this may be a general principle for understanding the structure–dynamics of biomolecular solvation.

Graphical abstract: Entropy connects water structure and dynamics in protein hydration layer

Supplementary files

Article information

Article type
Paper
Submitted
14 Mar 2018
Accepted
10 May 2018
First published
11 May 2018

Phys. Chem. Chem. Phys., 2018,20, 14765-14777

Author version available

Entropy connects water structure and dynamics in protein hydration layer

J. N. Dahanayake and K. R. Mitchell-Koch, Phys. Chem. Chem. Phys., 2018, 20, 14765 DOI: 10.1039/C8CP01674G

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