Validating Whole-Airway CFD Predictions of DPI Aerosol Deposition at Multiple Flow Rates

被引:64
作者
Longest, P. Worth [1 ,2 ]
Tian, Geng [1 ]
Khajeh-Hosseini-Dalasm, Navvab [1 ]
Hindle, Michael [2 ]
机构
[1] Virginia Commonwealth Univ, Dept Mech & Nucl Engn, 401 West Main St,POB 843015, Richmond, VA 23284 USA
[2] Virginia Commonwealth Univ, Dept Pharmaceut, Richmond, VA USA
关键词
computational fluid dynamics (CFD); pharmaceutical aerosols; predictions of aerosol deposition; respiratory drug delivery; stochastic individual pathway model; DRY POWDER INHALERS; PATH SIP MODEL; IN-VITRO TESTS; COMPUTATIONAL FLUID-DYNAMICS; RESPIRATORY-TRACT DEPOSITION; EXCIPIENT ENHANCED GROWTH; MOUTH-THROAT GEOMETRY; PARTICLE DEPOSITION; HUMAN-LUNG; PHARMACEUTICAL AEROSOLS;
D O I
10.1089/jamp.2015.1281
中图分类号
R56 [呼吸系及胸部疾病];
学科分类号
摘要
Background: The objective of this study was to compare aerosol deposition predictions of a new whole-airway CFD model with available in vivo data for a dry powder inhaler (DPI) considered across multiple inhalation waveforms, which affect both the particle size distribution (PSD) and particle deposition. Methods: The Novolizer DPI with a budesonide formulation was selected based on the availability of 2D gamma scintigraphy data in humans for three different well-defined inhalation waveforms. Initial in vitro cascade impaction experiments were conducted at multiple constant (square-wave) particle sizing flow rates to characterize PSDs. The whole-airway CFD modeling approach implemented the experimentally determined PSDs at the point of aerosol formation in the inhaler. Complete characteristic airway geometries for an adult were evaluated through the lobar bronchi, followed by stochastic individual pathway (SIP) approximations through the tracheobronchial region and new acinar moving wall models of the alveolar region. Results: It was determined that the PSD used for each inhalation waveform should be based on a constant particle sizing flow rate equal to the average of the inhalation waveform's peak inspiratory flow rate (PIFR) and mean flow rate [i.e., AVG(PIFR, Mean)]. Using this technique, agreement with the in vivo data was acceptable with <15% relative differences averaged across the three regions considered for all inhalation waveforms. Defining a peripheral to central deposition ratio (P/C) based on alveolar and tracheobronchial compartments, respectively, large flow-rate-dependent differences were observed, which were not evident in the original 2D in vivo data. Conclusions: The agreement between the CFD predictions and in vivo data was dependent on accurate initial estimates of the PSD, emphasizing the need for a combination in vitro-in silico approach. Furthermore, use of the AVG(PIFR, Mean) value was identified as a potentially useful method for characterizing a DPI aerosol at a constant flow rate.
引用
收藏
页码:461 / 481
页数:21
相关论文
共 103 条
[1]   Airflow distribution in the human lung and its influence on particle deposition [J].
Asgharian, B. ;
Price, O. T. .
INHALATION TOXICOLOGY, 2006, 18 (10) :795-801
[2]   Particle deposition in a multiple-path model of the human lung [J].
Asgharian, B ;
Hofman, W ;
Bergmann, R .
AEROSOL SCIENCE AND TECHNOLOGY, 2001, 34 (04) :332-339
[3]   Development and Comparison of New High-Efficiency Dry Powder Inhalers for Carrier-Free Formulations [J].
Behara, Srinivas R. B. ;
Longest, P. Worth ;
Farkas, Dale R. ;
Hindle, Michael .
JOURNAL OF PHARMACEUTICAL SCIENCES, 2014, 103 (02) :465-477
[4]   Assessing the performance of two dry powder inhalers in preschool children using an idealized pediatric upper airway model [J].
Below, Antje ;
Bickmann, Deborah ;
Breitkreutz, Joerg .
INTERNATIONAL JOURNAL OF PHARMACEUTICS, 2013, 444 (1-2) :169-174
[5]   HUMAN VARIATION IN THE PERIPHERAL AIR-SPACE DEPOSITION OF INHALED PARTICLES [J].
BENNETT, WD ;
SMALDONE, GC .
JOURNAL OF APPLIED PHYSIOLOGY, 1987, 62 (04) :1603-1610
[6]   Comparing Lung Regions of Interest in Gamma Scintigraphy for Assessing Inhaled Therapeutic Aerosol Deposition [J].
Biddiscombe, Martyn F. ;
Meah, Sally N. ;
Underwood, S. Richard ;
Usmani, Omar S. .
JOURNAL OF AEROSOL MEDICINE AND PULMONARY DRUG DELIVERY, 2011, 24 (03) :165-173
[7]   In Vivo-In Vitro Correlations: Predicting Pulmonary Drug Deposition from Pharmaceutical Aerosols [J].
Byron, Peter R. ;
Hindle, Michael ;
Lange, Carlos F. ;
Longest, P. Worth ;
McRobbie, Donald ;
Oldham, Michael J. ;
Olsson, Bo ;
Thiel, Charles G. ;
Wachtel, Herbert ;
Finlay, Warren H. .
JOURNAL OF AEROSOL MEDICINE AND PULMONARY DRUG DELIVERY, 2010, 23 :S59-S69
[8]   Measurements of airway dimensions and calculation of mass transfer characteristics of the human oral passage [J].
Cheng, KH ;
Cheng, YS ;
Yeh, HC ;
Swift, DL .
JOURNAL OF BIOMECHANICAL ENGINEERING-TRANSACTIONS OF THE ASME, 1997, 119 (04) :476-482
[9]   Mathematical analysis of particle deposition in human lungs: An improved single path transport model [J].
Choi, Jung-Il ;
Kim, Chong S. .
INHALATION TOXICOLOGY, 2007, 19 (11) :925-939
[10]   Controlled, parametric, individualized, 2-D and 3-D imaging measurements of aerosol deposition in the respiratory tract of healthy human subjects for model validation [J].
Conway, Joy ;
Fleming, John ;
Majoral, Caroline ;
Katz, Ira ;
Perchet, Diane ;
Peebles, Charles ;
Tossici-Bolt, Livia ;
Collier, Lesley ;
Caillibotte, Georges ;
Pichelin, Marine ;
Sauret-Jackson, Veronique ;
Martonen, Ted ;
Apiou-Sbirlea, Gabriela ;
Muellinger, Bernhard ;
Kroneberg, Philipp ;
Gleske, Juliane ;
Scheuch, Gerhard ;
Texereau, Joelle ;
Martin, Andrew ;
Montesantos, Spyridon ;
Bennett, Michael .
JOURNAL OF AEROSOL SCIENCE, 2012, 52 :1-17