Literature DB >> 29172251

On computational fluid dynamics models for sinonasal drug transport: Relevance of nozzle subtraction and nasal vestibular dilation.

Saikat Basu1, Dennis O Frank-Ito2,3,4, Julia S Kimbell1.   

Abstract

Generating anatomically realistic 3-dimensional (3D) models of the human sinonasal cavity for numerical investigations of sprayed drug transport presents a host of methodological ambiguities. For example, subject-specific radiographic images used for 3D reconstructions typically exclude spray bottles. Subtracting a bottle contour from the 3D airspace and dilating the anterior nasal vestibule for nozzle placement augment the complexity of model building. So we explored the question: how essential are these steps to adequately simulate nasal airflow and identify the optimal delivery conditions for intranasal sprays? In particular, we focused on particle deposition patterns in the maxillary sinus, a critical target site for chronic rhinosinusitis. The models were reconstructed from postsurgery computed tomography scans for a 39-year-old Caucasian male, with chronic rhinosinusitis history. Inspiratory airflow patterns during resting breathing are reliably tracked through computational fluid dynamics-based steady-state laminar-viscous modeling, and such regimes portray relative lack of sensitivity to inlet perturbations. Consequently, we hypothesized that the posterior airflow transport and the particle deposition trends should not be radically affected by the nozzle subtraction and vestibular dilation. The study involved 1 base model and 2 derived models; the latter 2 with nozzle contours (2 different orientations) subtracted from the dilated anterior segment of the left vestibule. We analyzed spray transport in the left maxillary sinus for multiple release conditions. Similar release points, localized on an approximately 2 mm × 4.5 mm contour, facilitated improved maxillary deposition in all 3 test cases. This suggests functional redundancy of nozzle insertion in a 3D numerical model for identifying the optimal spray release locations.
Copyright © 2017 John Wiley & Sons, Ltd.

Entities:  

Keywords:  chronic rhinosinusitis; clinical engineering; computational fluid dynamics (CFD); nasal sprays; sinonasal modeling; topical drug delivery

Mesh:

Substances:

Year:  2018        PMID: 29172251      PMCID: PMC5893392          DOI: 10.1002/cnm.2946

Source DB:  PubMed          Journal:  Int J Numer Method Biomed Eng        ISSN: 2040-7939            Impact factor:   2.747


  21 in total

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Review 2.  Adult chronic rhinosinusitis: definitions, diagnosis, epidemiology, and pathophysiology.

Authors:  Michael S Benninger; Berrylin J Ferguson; James A Hadley; Daniel L Hamilos; Michael Jacobs; David W Kennedy; Donald C Lanza; Bradley F Marple; J David Osguthorpe; James A Stankiewicz; Jack Anon; James Denneny; Ivor Emanuel; Howard Levine
Journal:  Otolaryngol Head Neck Surg       Date:  2003-09       Impact factor: 3.497

3.  Characterization of deposition from nasal spray devices using a computational fluid dynamics model of the human nasal passages.

Authors:  Julia S Kimbell; Rebecca A Segal; Bahman Asgharian; Brian A Wong; Jeffry D Schroeter; Jeremy P Southall; Colin J Dickens; Geoff Brace; Frederick J Miller
Journal:  J Aerosol Med       Date:  2007

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5.  Experimental measurements and computational predictions of regional particle deposition in a sectional nasal model.

Authors:  Jeffry D Schroeter; Earl W Tewksbury; Brian A Wong; Julia S Kimbell
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7.  Clinical practice guideline: adult sinusitis.

Authors:  Richard M Rosenfeld; David Andes; Neil Bhattacharyya; Dickson Cheung; Steven Eisenberg; Theodore G Ganiats; Andrea Gelzer; Daniel Hamilos; Richard C Haydon; Patricia A Hudgins; Stacie Jones; Helene J Krouse; Lawrence H Lee; Martin C Mahoney; Bradley F Marple; Col John P Mitchell; Robert Nathan; Richard N Shiffman; Timothy L Smith; David L Witsell
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Authors:  Azadeh A T Borojeni; Dennis O Frank-Ito; Julia S Kimbell; John S Rhee; Guilherme J M Garcia
Journal:  Int J Numer Method Biomed Eng       Date:  2016-09-21       Impact factor: 2.747

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10.  Techniques of intranasal steroid use.

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4.  Role of nasal vestibule morphological variations on olfactory airflow dynamics.

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5.  Numerical evaluation of spray position for improved nasal drug delivery.

Authors:  Saikat Basu; Landon T Holbrook; Kathryn Kudlaty; Olulade Fasanmade; Jihong Wu; Alyssa Burke; Benjamin W Langworthy; Zainab Farzal; Mohammed Mamdani; William D Bennett; Jason P Fine; Brent A Senior; Adam M Zanation; Charles S Ebert; Adam J Kimple; Brian D Thorp; Dennis O Frank-Ito; Guilherme J M Garcia; Julia S Kimbell
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6.  Prediction of nasal spray drug absorption influenced by mucociliary clearance.

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8.  Orally Inhaled Drug Particle Transport in Computerized Models of Laryngotracheal Stenosis.

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9.  Nasal sprayed particle deposition in a human nasal cavity under different inhalation conditions.

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