4.7 Article

Spray freeze drying of small nucleic acids as inhaled powder for pulmonary delivery

Journal

ASIAN JOURNAL OF PHARMACEUTICAL SCIENCES
Volume 13, Issue 2, Pages 163-172

Publisher

HONG KONG ASIAMED PUBLISH HOUSE
DOI: 10.1016/j.ajps.2017.10.002

Keywords

Inhalation; Pulmonary delivery; Small interfering RNA; Spray freeze drying

Funding

  1. Health and Medical Research Fund, Hong Kong [15140962]
  2. Research Grant Council, Hong Kong [17110414]

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The therapeutic potential of small nucleic acids such as small interfering RNA (siRNA) to treat lung diseases has been successfully demonstrated in many in vivo studies. A major barrier to their clinical application is the lack of a safe and efficient inhaled formulation. In this study, spray freeze drying was employed to prepare dry powder of small nucleic acids. Mannitol and herring sperm DNA were used as bulking agent and model of small nucleic acid therapeutics, respectively. Formulations containing different solute concentration and DNA concentration were produced. The scanning electron microscope (SEM) images showed that the porosity of the particles increased as the solute concentration decreased. Powders prepared with solute concentration of 5% w/v were found to maintain a balance between porosity and robustness. Increasing concentration of DNA improved the aerosol performance of the formulation. The dry powder formulation containing 2% w/w DNA had a median diameter of 12.5 mu m, and the aerosol performance study using next generation impactor (NGI) showed an emitted fraction (EF) and fine particle fraction (FPF) of 91% and 28% respectively. This formulation (5% w/v solute concentration and 2% w/w nucleic acid) was adopted subsequently to produce siRNA powder. The gel retardation and liquid chromatography assays showed that the siRNA remained intact after spray freeze drying even in the absence of delivery vector. The siRNA powder formulation exhibited a high EF of 92.4% and a modest FPF of around 20%. Further exploration of this technology to optimise inhaled siRNA powder formulation is warranted. (C) 2018 Shenyang Pharmaceutical University. Production and hosting by Elsevier B.V.

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