Characterization of solid polymer dispersions of active pharmaceutical ingredients by 19F MAS NMR and factor analysis
Jazyk angličtina Země Velká Británie, Anglie Médium print-electronic
Typ dokumentu časopisecké články, práce podpořená grantem
    PubMed
          
           22421443
           
          
          
    DOI
          
           10.1016/j.saa.2012.02.057
           
          
          
      PII:  S1386-1425(12)00174-6
  
    Knihovny.cz E-zdroje
    
  
              
      
- MeSH
- atorvastatin MeSH
- časové faktory MeSH
- faktorová analýza statistická MeSH
- fluor chemie MeSH
- krystalizace MeSH
- kyseliny heptylové chemie MeSH
- léčivé přípravky chemie MeSH
- magnetická rezonanční spektroskopie MeSH
- povidon chemie MeSH
- pyrroly chemie MeSH
- Publikační typ
- časopisecké články MeSH
- práce podpořená grantem MeSH
- Názvy látek
- atorvastatin MeSH
- fluor MeSH
- kyseliny heptylové MeSH
- léčivé přípravky MeSH
- povidon MeSH
- pyrroly MeSH
In this contribution the ability of (19)F MAS NMR spectroscopy to probe structural variability of poorly water-soluble drugs formulated as solid dispersions in polymer matrices is discussed. The application potentiality of the proposed approach is demonstrated on a moderately sized active pharmaceutical ingredient (API, Atorvastatin) exhibiting extensive polymorphism. In this respect, a range of model systems with the API incorporated in the matrix of polvinylpyrrolidone (PVP) was prepared. The extent of mixing of both components was determined by T(1)((1)H) and T(1ρ)((1)H) relaxation experiments, and it was found that the API forms nanosized domains. Subsequently it was found out that the polymer matrix induces two kinds of changes in (19)F MAS NMR spectra. At first, this is a high-frequency shift reaching 2-3 ppm which is independent on molecular structure of the API and which results from the long-range polarization of the electron cloud around (19)F nucleus induced by electrostatic fields of the polymer matrix. At second, this is broadening of the signals and formation of shoulders reflecting changes in molecular arrangement of the API. To avoid misleading in the interpretation of the recorded (19)F MAS NMR spectra, because both the contributions act simultaneously, we applied chemometric approach based on multivariate analysis. It is demonstrated that factor analysis of the recorded spectra can separate both these spectral contributions, and the subtle structural differences in the molecular arrangement of the API in the nanosized domains can be traced. In this way (19)F MAS NMR spectra of both pure APIs and APIs in solid dispersions can be directly compared. The proposed strategy thus provides a powerful tool for the analysis of new formulations of fluorinated pharmaceutical substances in polymer matrices.
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