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  2. Molecular dynamics characterization of n-octyl-beta-D-glucopyranoside micelle structure in aqueous solution

Molecular dynamics characterization of n-octyl-beta-D-glucopyranoside micelle structure in aqueous solution

  • J Mol Graph Model. 2006 Sep;25(1):77-86. doi: 10.1016/j.jmgm.2005.11.008.
Praveen Konidala 1 Lizhong He Bernd Niemeyer
Affiliations

Affiliation

  • 1 Institute of Thermodynamics, Helmut-Schmidt-University/University of the Federal Armed Forces Hamburg, Holstenhofweg 85, D-22043 Hamburg, Germany.
Abstract

n-Octyl-beta-D-glucopyranoside (OG) is a non-ionic glycolipid, which is used widely in biotechnical and biochemical applications. All-atom molecular dynamics simulations from two different initial coordinates and velocities in explicit solvent have been performed to characterize the structural behaviour of an OG aggregate at equilibrium conditions. Geometric packing properties determined from the simulations and small angle neutron scattering experiment state that OG micelles are more likely to exist in a non-spherical shape, even at the concentration range near to the critical micelle concentration (0.025 M). Despite few large deviations in the principal moment of inertia ratios, the average micelle shape calculated from both simulations is a prolate ellipsoid. The deviations at these time scales are presumably the temporary shape change of a micelle. However, the size of the micelle and the accessible surface areas were constant during the simulations with the micelle surface being rough and partially elongated. Radial distribution functions computed for the hydroxyl oxygen atoms of an OG show sharper peaks at a minimum van der Waals contact distance than the acetal oxygen, ring oxygen, and anomeric carbon atoms. This result indicates that these atoms are pointed outwards at the hydrophilic/hydrophobic interface, form hydrogen bonds with the water molecules, and thus hydrate the micelle surface effectively.

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