4.7 Article

A Dry Powder Platform for Nose-to-Brain Delivery of Dexamethasone: Formulation Development and Nasal Deposition Studies

Journal

PHARMACEUTICS
Volume 13, Issue 6, Pages -

Publisher

MDPI
DOI: 10.3390/pharmaceutics13060795

Keywords

dexamethasone sodium phosphate; nose-to-brain delivery; spray-dried microspheres; pectin; hypromellose; mannitol; 3D nasal cavity model; in vitro nasal deposition

Funding

  1. Croatian Science Foundation [UIP-2017-05-4592]
  2. European Social Fund under the Croatian Science Foundation [DOK-2020-01-2473]
  3. Strengthening the scientific research and innovation capacities of the Faculty of Pharmacy and Biochemistry, University of Zagreb (FarmInova) from the European Regional Development Fund, Operational Program Competitiveness and Cohesion [KK.01.1.1.02.0021]

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The nasal route of administration provides a unique opportunity for brain-targeted drug delivery through the olfactory and trigeminal pathways, showing potential as a preferred route for glucocorticoids in controlling neuroinflammation. However, appropriate delivery systems tailored to enhance efficacy are still needed.
Nasal route of administration offers a unique opportunity of brain targeted drug delivery via olfactory and trigeminal pathway, providing effective CNS concentrations at lower doses and lower risk for adverse reactions compared to systemic drug administration. Therefore, it has been recently proposed as a route of choice for glucocorticoids to control neuroinflammation processes in patients with severe Covid-19. However, appropriate delivery systems tailored to enhance their efficacy yet need to emerge. In this work we present the development of sprayable brain targeting powder delivery platform of dexamethasone sodium phosphate (DSP). DSP-loaded microspheres, optimised employing Quality-by-Design approach, were blended with soluble inert carriers (mannitol or lactose monohydrate). Powder blends were characterized in terms of homogeneity, flow properties, sprayability, in vitro biocompatibility, permeability and mucoadhesion. Nasal deposition studies were performed using 3D printed nasal cavity model. Mannitol provided better powder blend flow properties compared to lactose. Microspheres blended with mannitol retained or enlarged their mucoadhesive properties and enhanced DSP permeability across epithelial model barrier. DSP dose fraction deposited in the olfactory region reached 17.0% revealing the potential of developed powder platform for targeted olfactory delivery. The observed impact of nasal cavity asymmetry highlighted the importance of individual approach when aiming olfactory region.

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