AI Article Synopsis

  • The study discusses an innovative computer-based model that predicts how well 18 selected compounds disperse when combined with a specific polymer copolymer (polyvinylpyrrolidone-vinyl acetate).
  • A key finding is that the R3m molecular descriptor effectively predicts the formation of solid dispersions at different drug concentrations and preparation methods, showing over 90% accuracy in testing.
  • The research suggests that the success of dispersion is influenced by the presence and positioning of heavy atoms in the compounds, which may affect how these compounds interact with the polymer.

Article Abstract

The expansion of a novel in silico model for the prediction of the dispersability of 18 model compounds with polyvinylpyrrolidone-vinyl acetate copolymer is described. The molecular descriptor R3m (atomic mass weighted 3rd-order autocorrelation index) is shown to be predictive of the formation of amorphous solid dispersions at 2 drug loadings (15% and 75% w/w) using 2 preparation methods (melt quenching and solvent evaporation using a rotary evaporator). Cosolidified samples were characterized using a suite of analytical techniques, which included differential scanning calorimetry, powder X-ray diffraction, pair distribution function analysis, polarized light microscopy, and hot stage microscopy. Logistic regression was applied, where appropriate, to model the success and failure of compound dispersability in polyvinylpyrrolidone-vinyl acetate copolymer. R3m had combined prediction accuracy greater than 90% for tested samples. The usefulness of this descriptor appears to be associated with the presence of heavy atoms in the molecular structure of the active pharmaceutical ingredient, and their location with respect to the geometric center of the molecule. Given the higher electronegativity and atomic volume of these types of atoms, it is hypothesized that they may impact the molecular mobility of the active pharmaceutical ingredient, or increase the likelihood of forming nonbonding interactions with the carrier polymer.

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Source
http://dx.doi.org/10.1016/j.xphs.2017.10.003DOI Listing

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