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PMID: 38064481 Published · ppublish English Journal Article Research Support, N.I.H., Extramural

Tracheomalacia Reduces Aerosolized Drug Delivery to the Lung.

Journal of aerosol medicine and pulmonary drug delivery ·Vol. 37 ·No. 1 ·2024-00-00 ·Pages 19-29

Gunatilaka CC, McKenzie C, Hysinger EB, Xiao Q, Higano NS, Woods JC, Bates AJ

Abstract

Rationale: Neonates with respiratory issues are frequently treated with aerosolized medications to manage lung disease or facilitate airway clearance. Dynamic tracheal collapse (tracheomalacia [TM]) is a common comorbidity in these patients, but it is unknown whether the presence of TM alters the delivery of aerosolized drugs. Objectives: To quantify the effect of neonatal TM on the delivery of aerosolized drugs. Methods: Fourteen infant subjects with respiratory abnormalities were recruited; seven with TM and seven without TM. Respiratory-gated 3D ultrashort echo time magnetic resonance imaging (MRI) was acquired covering the central airway and lungs. For each subject, a computational fluid dynamics simulation modeled the airflow and particle transport in the central airway based on patient-specific airway anatomy, motion, and airflow rates derived from MRI. Results: Less aerosolized drug reached the distal airways in subjects with TM than in subjects without TM: of the total drug delivered, less particle mass passed through the main bronchi in subjects with TM compared with subjects without TM (33% vs. 47%, p = 0.013). In subjects with TM, more inhaled particles were deposited on the surface of the airway (48% vs. 25%, p = 0.003). This effect becomes greater with larger particle sizes and is significant for particles with a diameter >2 μm (2-5 μm, p ≤ 0.025 and 5-15 μm, p = 0.004). Conclusions: Neonatal patients with TM receive less aerosolized drug delivered to the lungs than subjects without TM. Currently, infants with lung disease and TM may not be receiving adequate and/or expected medication. Particles >2 μm in diameter are likely to deposit on the surface of the airway due to anatomical constrictions such as reduced tracheal and glottal cross-sectional area in neonates with TM. This problem could be alleviated by delivering smaller aerosolized particles.

Keywords
aerosol delivery computational fluid dynamics neonates pulmonary drug delivery tracheomalacia
MeSH Terms
Infant, Newborn Infant Humans Tracheomalacia Administration, Inhalation Lung Trachea Lung Diseases Particle Size Respiratory Aerosols and Droplets
Authors & Affiliations
7 authors, click to expand affiliations / ORCID
Gunatilaka Chamindu C ORCID
Center for Pulmonary Imaging Research, Cincinnati Children's Hospital Medical Center, Cincinnati, Ohio, USA. | Division of Pulmonary Medicine, Cincinnati Children's Hospital Medical Center, Cincinnati, Ohio, USA.
McKenzie Christopher
University of Cincinnati, College of Medicine, Cincinnati, Ohio, USA.
Hysinger Erik B ORCID
Division of Pulmonary Medicine, Cincinnati Children's Hospital Medical Center, Cincinnati, Ohio, USA. | Department of Pediatrics, College of Medicine, University of Cincinnati, Cincinnati, Ohio, USA.
Xiao Qiwei ORCID
Center for Pulmonary Imaging Research, Cincinnati Children's Hospital Medical Center, Cincinnati, Ohio, USA. | Division of Pulmonary Medicine, Cincinnati Children's Hospital Medical Center, Cincinnati, Ohio, USA.
Higano Nara S ORCID
Center for Pulmonary Imaging Research, Cincinnati Children's Hospital Medical Center, Cincinnati, Ohio, USA. | Division of Pulmonary Medicine, Cincinnati Children's Hospital Medical Center, Cincinnati, Ohio, USA. | Department of Pediatrics, College of Medicine, University of Cincinnati, Cincinnati, Ohio, USA. | Department of Radiology, Cincinnati Children's Hospital Medical Center, Cincinnati, Ohio, USA.
Woods Jason C ORCID
Center for Pulmonary Imaging Research, Cincinnati Children's Hospital Medical Center, Cincinnati, Ohio, USA. | Division of Pulmonary Medicine, Cincinnati Children's Hospital Medical Center, Cincinnati, Ohio, USA. | Department of Pediatrics, College of Medicine, University of Cincinnati, Cincinnati, Ohio, USA. | Department of Radiology, Cincinnati Children's Hospital Medical Center, Cincinnati, Ohio, USA.
Bates Alister J ORCID
Center for Pulmonary Imaging Research, Cincinnati Children's Hospital Medical Center, Cincinnati, Ohio, USA. | Division of Pulmonary Medicine, Cincinnati Children's Hospital Medical Center, Cincinnati, Ohio, USA. | Department of Pediatrics, College of Medicine, University of Cincinnati, Cincinnati, Ohio, USA. | Department of Radiology, Cincinnati Children's Hospital Medical Center, Cincinnati, Ohio, USA. | Department of Biomedical Engineering, University of Cincinnati, Cincinnati, Ohio, USA.
References (45)
45 references, click to expand
  1. Bronchoscopy in neonates with severe bronchopulmonary dysplasia in the NICU.
    J Perinatol. 2019 Feb;39(2):263-268 PMID: 30518799
  2. Inhaled hydrofluoalkane-beclomethasone dipropionate in bronchopulmonary dysplasia. A double-blind, randomized, controlled pilot study.
    J Perinatol. 2017 Feb;37(2):197-202 PMID: 27735931
  3. Droplet Size and Distribution of Nebulized 3% Sodium Chloride, Albuterol, and Epoprostenol by Phase Doppler Particle Analyzer.
    Curr Ther Res Clin Exp. 2021 Feb 18;94:100623 PMID: 34306263
  4. Orally Inhaled Drug Particle Transport in Computerized Models of Laryngotracheal Stenosis.
    Otolaryngol Head Neck Surg. 2021 Apr;164(4):829-840 PMID: 33045904
  5. Sampling density compensation in MRI: rationale and an iterative numerical solution.
    Magn Reson Med. 1999 Jan;41(1):179-86 PMID: 10025627
  6. Neonates With Tracheomalacia Generate Auto-Positive End-Expiratory Pressure via Glottis Closure.
    Chest. 2021 Dec;160(6):2168-2177 PMID: 34157310
  7. Early Inhaled Budesonide for the Prevention of Bronchopulmonary Dysplasia.
    N Engl J Med. 2015 Oct 15;373(16):1497-506 PMID: 26465983
  8. User-guided 3D active contour segmentation of anatomical structures: significantly improved efficiency and reliability.
    Neuroimage. 2006 Jul 1;31(3):1116-28 PMID: 16545965
  9. Improved airway targeting with the CFC-free HFA-beclomethasone metered-dose inhaler compared with CFC-beclomethasone.
    Eur Respir J. 1998 Dec;12(6):1346-53 PMID: 9877489
  10. Extra-fine particle inhaled corticosteroids, pharma-cokinetics and systemic activity in children with asthma.
    Pediatr Allergy Immunol. 2016 Feb;27(1):13-21 PMID: 26360937
  11. The importance of particle size in response to inhaled bronchodilators.
    Eur J Respir Dis Suppl. 1982;119:73-8 PMID: 6954090
  12. Tracheobronchomalacia Is Associated with Increased Morbidity in Bronchopulmonary Dysplasia.
    Ann Am Thorac Soc. 2017 Jun 16;14(9): PMID: 28622012
  13. A novel method to generate dynamic boundary conditions for airway CFD by mapping upper airway movement with non-rigid registration of dynamic and static MRI.
    Int J Numer Method Biomed Eng. 2018 Dec;34(12):e3144 PMID: 30133165
  14. Measurements of deposited aerosol dose in infants and small children.
    Ann Transl Med. 2021 Apr;9(7):595 PMID: 33987293
  15. Airway mucus function and dysfunction.
    N Engl J Med. 2010 Dec 2;363(23):2233-47 PMID: 21121836
  16. Selection of a convolution function for Fourier inversion using gridding [computerised tomography application].
    IEEE Trans Med Imaging. 1991;10(3):473-8 PMID: 18222850
  17. Pediatric inhalation therapy and the aerodynamic rationale for age-based aerosol sizes.
    Expert Opin Drug Deliv. 2023 Jul-Dec;20(8):1037-1040 PMID: 37127917
  18. Glottis motion effects on the particle transport and deposition in a subject-specific mouth-to-trachea model: A CFPD study.
    Comput Biol Med. 2020 Jan;116:103532 PMID: 31751812
  19. Infant Pulmonary Function Testing and Phenotypes in Severe Bronchopulmonary Dysplasia.
    Pediatrics. 2018 May;141(5): PMID: 29622720
  20. Pulmonary drug delivery. Part I: physiological factors affecting therapeutic effectiveness of aerosolized medications.
    Br J Clin Pharmacol. 2003 Dec;56(6):588-99 PMID: 14616418
  21. Pulmonary MRI of neonates in the intensive care unit using 3D ultrashort echo time and a small footprint MRI system.
    J Magn Reson Imaging. 2017 Feb;45(2):463-471 PMID: 27458992
  22. Quantitative Assessment of Regional Dynamic Airway Collapse in Neonates via Retrospectively Respiratory-Gated 1 H Ultrashort Echo Time MRI.
    J Magn Reson Imaging. 2019 Mar;49(3):659-667 PMID: 30252988
  23. Characterization of acoustic noise in a neonatal intensive care unit MRI system.
    Pediatr Radiol. 2014 Aug;44(8):1011-9 PMID: 24595878
  24. Human upper-airway respiratory airflow: In vivo comparison of computational fluid dynamics simulations and hyperpolarized 129Xe phase contrast MRI velocimetry.
    PLoS One. 2021 Aug 19;16(8):e0256460 PMID: 34411195
  25. Elevated lung volumes in neonates with bronchopulmonary dysplasia measured via MRI.
    Pediatr Pulmonol. 2019 Aug;54(8):1311-1318 PMID: 31134768
  26. Regional aerosol deposition in the human airways: The SimInhale benchmark case and a critical assessment of in silico methods.
    Eur J Pharm Sci. 2018 Feb 15;113:77-94 PMID: 28890203
  27. Inhaled corticosteroids for adult asthma: impact of formulation and delivery device on relative pharmacokinetics, efficacy and safety.
    Respir Med. 1999 Mar;93(3):149-60 PMID: 10464870
  28. Predicting tracheal work of breathing in neonates based on radiological and pulmonary measurements.
    J Appl Physiol (1985). 2022 Oct 1;133(4):893-901 PMID: 36049059
  29. Nanotoxicology: an emerging discipline evolving from studies of ultrafine particles.
    Environ Health Perspect. 2005 Jul;113(7):823-39 PMID: 16002369
  30. The effect of airway motion and breathing phase during imaging on CFD simulations of respiratory airflow.
    Comput Biol Med. 2020 Dec;127:104099 PMID: 33152667
  31. Retrospective respiratory self-gating and removal of bulk motion in pulmonary UTE MRI of neonates and adults.
    Magn Reson Med. 2017 Mar;77(3):1284-1295 PMID: 26972576
  32. MRI in the neonatal ICU: initial experience using a small-footprint 1.5-T system.
    AJR Am J Roentgenol. 2014 Jan;202(1):W95-W105 PMID: 24370170
  33. Effects of Inhaled Corticosteroids and Particle Size on Risk of Obstructive Sleep Apnea: A Large Retrospective Cohort Study.
    Int J Environ Res Public Health. 2020 Oct 06;17(19): PMID: 33036169
  34. Increased Work of Breathing due to Tracheomalacia in Neonates.
    Ann Am Thorac Soc. 2020 Oct;17(10):1247-1256 PMID: 32579852
  35. Effect of altering smooth muscle tone on maximal expiratory flows in patients with tracheomalacia.
    Pediatr Pulmonol. 1990;9(3):170-6 PMID: 1980538
  36. Dosage regimens for inhaled therapy in children should be reconsidered.
    J Paediatr Child Health. 2002 Apr;38(2):115-6 PMID: 12030988
  37. In vitro/in vivo comparisons in pulmonary drug delivery.
    J Aerosol Med Pulm Drug Deliv. 2008 Mar;21(1):77-84 PMID: 18518834
  38. Assessing Changes in Airflow and Energy Loss in a Progressive Tracheal Compression Before and After Surgical Correction.
    Ann Biomed Eng. 2020 Feb;48(2):822-833 PMID: 31792705
  39. An MRI system for imaging neonates in the NICU: initial feasibility study.
    Pediatr Radiol. 2012 Nov;42(11):1347-56 PMID: 22735927
  40. Bronchopulmonary dysplasia from chest radiographs to magnetic resonance imaging and computed tomography: adding value.
    Pediatr Radiol. 2022 Apr;52(4):643-660 PMID: 35122130
  41. In vitro-in silico correlation of three-dimensional turbulent flows in an idealized mouth-throat model.
    PLoS Comput Biol. 2023 Mar 23;19(3):e1010537 PMID: 36952557
  42. Targeting inhaled aerosol delivery to upper airways in children: Insight from computational fluid dynamics (CFD).
    PLoS One. 2018 Nov 20;13(11):e0207711 PMID: 30458054
  43. Formulations for children: problems and solutions.
    Br J Clin Pharmacol. 2015 Mar;79(3):405-18 PMID: 25855822
  44. Paediatric Tracheomalacia.
    Paediatr Respir Rev. 2016 Jan;17:9-15 PMID: 25962857
  45. Ultrashort Echo-Time MRI for the Assessment of Tracheomalacia in Neonates.
    Chest. 2020 Mar;157(3):595-602 PMID: 31862439
Article Info
Journal
Journal of aerosol medicine and pulmonary drug delivery
Abbr.
J Aerosol Med Pulm Drug Deliv
ISSN
1941-2703
Published
2024-00-00
Epub
2023-00-08
Pages
19-29
Language
English
Region
United States
NLM ID
101475057
PMCID
PMC10877398
Grants
NHLBI NIH HHS · R00 HL144822 · United States
NHLBI NIH HHS · R01 HL146689 · United States
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