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An Investigation into the Dispersion Mechanisms of Ternary Dry Powder Inhaler Formulations by the Quantification of Interparticulate Forces
Authors:Matthew D Jones  Jennifer C Hooton  Michelle L Dawson  Alan R Ferrie  Robert Price
Institution:(1) Pharmaceutical Surface Science Research Group, Department of Pharmacy and Pharmacology, University of Bath, Bath, BA2 7AY, UK;(2) GlaxoSmithKline Research and Development, Park Road, Ware, Herts, SG12 0DP, UK;(3) Present address: Department of Pharmaceutics, The School of Pharmacy, University of London, 29/39 Brunswick Square, London, WC1N 1AX, UK;(4) Present address: AstraZeneca R&D, Silk Road Business Park, Charter Way, Macclesfield, Cheshire, SK10 2NA, UK
Abstract:Purpose To investigate the dispersion mechanism(s) of ternary dry powder inhaler (DPI) formulations by comparison of the interparticulate adhesions and in vitro performance of a number of carrier–drug–fines combinations. Materials and Methods The relative levels of adhesion and cohesion between a lactose carrier and a number of drugs and fine excipients were quantified using the cohesion–adhesion balance (CAB) approach to atomic force microscopy. The in vitro performance of formulations produced using these materials was quantified and the particle size distribution of the aerosol clouds produced from these formulations determined by laser diffraction. Results Comparison between CAB ratios and formulation performance suggested that the improvement in performance brought about by the addition of fines to which the drug was more adhesive than cohesive might have been due to the formation of agglomerates of drug and fines particles. This was supported by aerosol cloud particle size data. The mechanism(s) underlying the improved performance of ternary formulations where the drug was more cohesive than adhesive to the fines was unclear. Conclusions The performance of ternary DPI formulations might be increased by the preferential formation of drug–fines agglomerates, which might be subject to greater deagglomeration forces during aerosolisation than smaller agglomerates, thus producing better formulation performance.
Keywords:adhesion  agglomeration  atomic force microscope  fines  ternary interactive mixture
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