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The influence of initial atomized droplet size on residual particle size from pressurized metered dose inhalers
Poonam Sheth1, Stephen W Stein, Paul B Myrdal
1University of Arizona, College of Pharmacy, 1703 E. Mabel St., PO Box 210202, Tucson, AZ, 85721, USA. sheth@email.arizona.edu
Abstract:
Pressurized metered dose inhalers (pMDIs) are widely used for the treatment of diseases of the lung, including asthma and chronic obstructive pulmonary disease. The mass median aerodynamic diameter of the residual particles (MMADR) delivered from a pMDI plays a key role in determining the amount and location of drug deposition in the lung and thereby the efficacy of the inhaler. The mass median diameter of the initial droplets (MMDI), upon atomization of a formulation, is a significant factor influencing the final particle size. The purpose of this study was to evaluate the extent that MMDI and initial droplet geometric standard deviation (GSD) influence the residual aerodynamic particle size distribution (APSDR) of solution and suspension formulations. From 48 solution pMDI configurations with varying ethanol concentrations, valve sizes and actuator orifice diameters, it was experimentally found that the effective MMDI ranged from 7.8 to 13.3 μm. Subsequently, computational methods were utilized to determine the influence of MMDI on MMADR, by modulating the MMDI for solution and suspension pMDIs. For solution HFA-134a formulations of 0.5% drug in 10% ethanol, varying the MMDI from 7.5 to 13.5 μm increased the MMADR from 1.4 to 2.5 μm. For a suspension formulation with a representative particle size distribution of micronized drug (MMAD=2.5 μm, GSD=1.8), the same increase in MMDI resulted in an increase in the MMADR from 2.7 to only 3.3 μm. Hence, the same increase in MMDI resulted in a 79% increase in MMADR for the solution formulation compared to only a 22% increase for the suspension formulation. Similar trends were obtained for a range of drug concentrations and input micronized drug sizes. Thus, APSDR is more sensitive to changes in MMDI for solution formulations than suspension formulations; however, there are situations in which hypothetically small micronized drug in suspension (e.g. 500 nm MMAD) could resemble trends observed for solution formulations. Furthermore, the relationship between APSDR and drug concentration and MMDI is predictable for solution pMDIs, but this is not as straightforward for suspension formulations. In addition, the MMADR was relatively insensitive to changes in initial droplet GSD (from 1.6 to 2.0) and the solution and suspension pMDI residual particle GSDs were essentially identical to the initial droplet GSDs.
Insights
The initial droplet size significantly impacts pressurized metered dose inhaler (pMDI) particle size, with solution formulations being more sensitive than suspensions. This understanding is crucial for optimizing pMDI drug delivery and efficacy.
Area of Science:
- Pharmaceutical Sciences
- Drug Delivery Systems
- Aerosol Science
Background:
- Pressurized metered dose inhalers (pMDIs) are vital for treating respiratory conditions like asthma and COPD.
- The aerodynamic particle size distribution (APSDR) of delivered drug particles critically influences lung deposition and pMDI efficacy.
- Initial droplet size, specifically the mass median diameter of the initial droplets (MMDI), is a key determinant of the final particle size.
Purpose of the Study:
- To investigate how MMDI and initial droplet geometric standard deviation (GSD) affect the APSDR of pMDIs.
- To compare the influence of MMDI on MMADR for both solution and suspension pMDI formulations.
Main Methods:
- Experimentally determined effective MMDI for 48 solution pMDI configurations by varying ethanol concentration, valve size, and actuator orifice diameter.
- Employed computational methods to simulate the influence of MMDI on the mass median aerodynamic diameter of the residual particles (MMADR) for solution and suspension formulations.
- Analyzed the impact of varying MMDI across a range of drug concentrations and micronized drug sizes.
Main Results:
- For solution formulations, increasing MMDI from 7.5 to 13.5 μm resulted in a 79% increase in MMADR (1.4 to 2.5 μm).
- For suspension formulations, the same MMDI increase led to only a 22% rise in MMADR (2.7 to 3.3 μm).
- APSDR demonstrated higher sensitivity to MMDI changes in solution formulations compared to suspensions, though exceptions exist for very small micronized drug particles.
Conclusions:
- The aerodynamic particle size distribution of pMDIs is significantly more sensitive to initial droplet size variations in solution formulations than in suspension formulations.
- Initial droplet GSD showed minimal impact on the residual particle GSD for both solution and suspension pMDIs.
- Predicting APSDR is more straightforward for solution pMDIs concerning drug concentration and MMDI, unlike suspension formulations.
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