In Vitro and In Silico Investigations on Drug Delivery in the Mouth-Throat Models with Handihaler®

Pharm Res. 2022 Nov;39(11):3005-3019. doi: 10.1007/s11095-022-03386-9. Epub 2022 Sep 7.

Abstract

This work aimed to evaluate the relative inhalation parameters that affect the deposition of inhaled aerosols, including mouth-throat morphology, airflow rate, and initial condition of emitted particles. In vitro experiments were conducted using the US Pharmacopeia (USP) throat and a realistic mouth-throat (RMT) with Handihaler®. Then, in silico study of the gas-solid flow was performed by computational fluid dynamics and discrete phase method. Results indicated that aerosol deposition in RMT was higher compared to that in USP throat at an airflow rate of 30 L/min, with 33.16 ± 7.84% and 21.11 ± 7.1% lung deposition in USP throat and RMT models, respectively, which showed a better correlation with in vivo data from the literature. Increasing airflow rate resulted in better drug aerosolization, while the fine particle dose trend ascended before declining, with the peak value obtained at a flow rate of 40 L/min. Overall, the effect of geometrical variation was more significant. Additionally, in silico results demonstrated clearly that the initial conditions of the emitted particles from inhalers affected the subsequent deposition. Larger momentum possessed by the central aerosol jet entering the mouth directly led to stronger impaction, which resulted in the deposition in the front region of mouth-throat models. This study is beneficial to develop an in silico method to understand the underlying mechanisms of in vivo mouth-throat deposition.

Keywords: computational fluid dynamics; discrete phase method; dry powder inhaler; particle deposition; realistic mouth-throat.

MeSH terms

  • Administration, Inhalation
  • Aerosols
  • Dry Powder Inhalers* / methods
  • Equipment Design
  • Lung
  • Mouth / anatomy & histology
  • Particle Size
  • Pharynx* / anatomy & histology

Substances

  • Aerosols