A hydration study of (1-4) and (1-6) linked a-glucans by comparative 10 ns molecular dynamics simulations and 500 MHz NMR
- Corzana, F. 3
- Motawia, M.S. 3
- Hervé du Penhoat, C. 12
- Perez, S. 1
- Tschampel, S.M. 4
- Woods, R.J. 4
- Engelsen, S.B. 3
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1
Centre National de la Recherche Scientifique
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2
University at Buffalo, State University of New York
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University at Buffalo, State University of New York
Búfalo, Estados Unidos
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3
University of Copenhagen
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4
University of Georgia
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ISSN: 0192-8651
Año de publicación: 2004
Volumen: 25
Número: 4
Páginas: 573-586
Tipo: Artículo
beta Ver similares en nube de resultadosOtras publicaciones en: Journal of Computational Chemistry
Resumen
The hydration behavior of two model disaccharides, methyl-α-D-maltoside (1) and methyl-α-D-isomaltoside (2), has been investigated by a comparative 10 ns molecular dynamics study. The detailed hydration of the two disaccharides was described using three force fields especially developed for modeling of carbohydrates in explicit solvent. To validate the theoretical results the two compounds were synthesized and subjected to 500 MHz NMR spectroscopy, including pulsed field gradient diffusion measurements (1: 4.0·10 -6 cm 2·s -1; 2: 4.2· 10 -6 cm 2·s -1). In short, the older CHARMM-based force field exhibited a more structured carbohydrate-water interaction leading to better agreement with the diffusional properties of the two compounds, whereas especially the α-(1→6) linkage and the primary hydroxyl groups were inaccurately modeled. In contrast, the new generation of the CHARMM-based force field (CSFF) and the most recent version of the AMBER-based force field (GLYCAM-2000a) exhibited less structured carbohydrate-water interactions with the result that the diffusional properties of the two disaccharides were underestimated, whereas the simulations of the α-(1→6) linkage and the primary hydroxyl groups were significantly improved and in excellent agreement with homo- and heteronuclear coupling constants. The difference between the two classes of force field (more structured and less structured carbohydrate-water interaction) was underlined by calculation of the Isotropic hydration as calculated by radial pair distributions. At one extreme, the radial O. . .O pair distribution function yielded a peak density of 2.3 times the bulk density in the first hydration shell when using the older CHARMM force field, whereas the maximum density observed in the GLYCAM force field was calculated to be 1.0, at the other extreme. © 2004 Wiley Periodicals, Inc.