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PMID: 29054499 Published · ppublish English Journal Article

Coupled in silico platform: Computational fluid dynamics (CFD) and physiologically-based pharmacokinetic (PBPK) modelling.

Vulović A, Šušteršič T, Cvijić S, Ibrić S, Filipović N

Abstract

One of the critical components of the respiratory drug delivery is the manner in which the inhaled aerosol is deposited in respiratory tract compartments. Depending on formulation properties, device characteristics and breathing pattern, only a certain fraction of the dose will reach the target site in the lungs, while the rest of the drug will deposit in the inhalation device or in the mouth-throat region. The aim of this study was to link the Computational fluid dynamics (CFD) with physiologically-based pharmacokinetic (PBPK) modelling in order to predict aerolisolization of different dry powder formulations, and estimate concomitant in vivo deposition and absorption of amiloride hydrochloride. Drug physicochemical properties were experimentally determined and used as inputs for the CFD simulations of particle flow in the generated 3D geometric model of Aerolizer® dry powder inhaler (DPI). CFD simulations were used to simulate air flow through Aerolizer® inhaler and Discrete Phase Method (DPM) was used to simulate aerosol particles deposition within the fluid domain. The simulated values for the percent emitted dose were comparable to the values obtained using Andersen cascade impactor (ACI). However, CFD predictions indicated that aerosolized DPI have smaller particle size and narrower size distribution than assumed based on ACI measurements. Comparison with the literature in vivo data revealed that the constructed drug-specific PBPK model was able to capture amiloride absorption pattern following oral and inhalation administration. The PBPK simulation results, based on the CFD generated particle distribution data as input, illustrated the influence of formulation properties on the expected drug plasma concentration profiles. The model also predicted the influence of potential changes in physiological parameters on the extent of inhaled amiloride absorption. Overall, this study demonstrated the potential of the combined CFD-PBPK approach to model inhaled drug bioperformance, and suggested that CFD generated results might serve as input for the prediction of drug deposition pattern in vivo.

Keywords
Amiloride Computational fluid dynamics Discrete phase modelling Dry powder inhaler Particle size distribution Physiologically-based pharmacokinetic modelling
MeSH 主题词
Administration, Inhalation Aerosols/chemistry Chemistry, Pharmaceutical/methods Computer Simulation Drug Delivery Systems/methods Dry Powder Inhalers Equipment Design/methods Humans Hydrodynamics Lung Models, Biological Particle Size Pharmacokinetics Powders/chemistry Surface Properties Tissue Distribution
化学物质
Aerosols Powders
作者与单位
共 5 位作者,点击展开单位 / ORCID
Vulović Aleksandra
Faculty of Engineering, University of Kragujevac, Sestre Janjić 6, Kragujevac, Serbia; BioIRC, Bioengineering Research and Development Center, Prvoslava Stojanovica 6, Kragujevac, Serbia. Electronic address: [email protected].
Šušteršič Tijana
Faculty of Engineering, University of Kragujevac, Sestre Janjić 6, Kragujevac, Serbia; BioIRC, Bioengineering Research and Development Center, Prvoslava Stojanovica 6, Kragujevac, Serbia. Electronic address: [email protected].
Cvijić Sandra
Department of Pharmaceutical Technology and Cosmetology, University of Belgrade-Faculty of Pharmacy, Vojvode Stepe 450, Belgrade, Serbia. Electronic address: [email protected].
Ibrić Svetlana
Department of Pharmaceutical Technology and Cosmetology, University of Belgrade-Faculty of Pharmacy, Vojvode Stepe 450, Belgrade, Serbia. Electronic address: [email protected].
Filipović Nenad
Faculty of Engineering, University of Kragujevac, Sestre Janjić 6, Kragujevac, Serbia; BioIRC, Bioengineering Research and Development Center, Prvoslava Stojanovica 6, Kragujevac, Serbia. Electronic address: [email protected].
Article Info
Journal
European journal of pharmaceutical sciences : official journal of the European Federation for Pharmaceutical Sciences
Abbr.
Eur J Pharm Sci
ISSN
1879-0720
Published
2018-02-15
电子出版
2017-00-17
页码
171-184
Language
English
Country/Region
Netherlands
NLM ID
9317982
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