Hydrotropic Solubilization by Urea Derivatives: A Molecular Dynamics Simulation Study
Author(s) -
Yong Cui
Publication year - 2013
Publication title -
journal of pharmaceutics
Language(s) - English
Resource type - Journals
eISSN - 2090-7818
pISSN - 2090-9918
DOI - 10.1155/2013/791370
Subject(s) - urea , solubility , chemistry , solubilization , molecular dynamics , aqueous solution , hydrogen bond , phase (matter) , computational chemistry , molecule , organic chemistry , biochemistry
Hydrotropy is a phenomenon where the presence of a large quantity of one solute enhances the solubility of another solute. The mechanism of this phenomenon remains a topic of debate. This study employed molecular dynamics simulation to investigate the hydrotropic mechanism of a series of urea derivatives, that is, urea (UR), methylurea (MU), ethylurea (EU), and butylurea (BU). A poorly water-soluble compound, nifedipine (NF), was used as the model solute that was solubilized. Structural, dynamic, and energetic changes upon equilibration were analyzed to supply insights to the solubilization mechanism. The study demonstrated that NF and urea derivatives underwent significant nonstoichiometric molecular aggregation in the aqueous solution, a result consistent with the self-aggregation of urea derivatives under the same conditions. The analysis of hydrogen bonding and energy changes revealed that the aggregation was driven by the partial restoration of normal water structure. The energetic data also suggested that the promoted solubilization of NF is favored in the presence of urea derivatives. While the solutes aggregated to a varying degree, the systems were still in single-phase liquid state as attested by their active dynamics.
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