Journal article
Increased Work of Breathing due to Tracheomalacia in Neonates
ANNALS OF THE AMERICAN THORACIC SOCIETY, Vol.17(10), pp.1247-1256
10/01/2020
DOI: 10.1513/AnnalsATS.202002-162OC
PMCID: PMC7640633
PMID: 32579852
Abstract
Rationale: Dynamic collapse of the tracheal lumen (tracheomalacia) occurs frequently in premature neonates, particularly in those with common comorbidities such as bronchopulmonary dysplasia. The tracheal collapse increases the effort necessary to breathe (work of breathing [WOB]). However, quantifying the increased WOB related to tracheomalacia has previously not been possible. Therefore, it is also not currently possible to separate the impact of tracheomalacia on patient symptoms from parenchymal abnormalities.
Objectives: To measure the increase in WOB due to airway motion in individual subjects with and without tracheomalacia and with different types of respiratory support.
Methods: Fourteen neonatal intensive care unit subjects not using invasive mechanical ventilation were recruited. In eight, tracheomalacia was diagnosed via clinical bronchoscopy, and six did not have tracheomalacia. Self-gated three-dimensional ultrashort-echo-time magnetic resonance imaging (MRI) was performed on each subject with clinically indicated respiratory support to obtain cine images of tracheal anatomy and motion during the respiratory cycle. The component of WOB due to resistance within the trachea was then calculated via computational fluid dynamics (CFD) simulations of airflow on the basis of the subject's anatomy, motion, and respiratory airflow rates. A second CFD simulation was performed for each subject with the airway held static at its largest (i.e., most open) position to determine the increase in WOB due to airway motion and collapse.
Results: The tracheal-resistive component of WOB was increased because of airway motion by an average of 337% +/- 295% in subjects with tracheomalacia and 24% +/- 14% in subjects without tracheomalacia (P < 0.02). In the tracheomalacia group, subjects who were treated with continuous positive airway pressure (CPAP) using a RAM cannula expended less energy for breathing compared with the subjects who were breathing room air or on a high-flow nasal cannula.
Conclusions: Neonatal subjects with tracheomalacia have increased energy expenditure compared with neonates with normal airways, and CPAP may be able to attenuate the increase in respiratory work. Subjects with tracheomalacia expend more energy on the tracheal-resistive component of WOB alone than nontracheomalacia patients expend on the resistive WOB for the entire respiratory system, according to previously reported values. CFD may be able to provide an objective measure of treatment response for children with tracheomalacia.
Details
- Title: Subtitle
- Increased Work of Breathing due to Tracheomalacia in Neonates
- Creators
- Chamindu C. Gunatilaka - University of CincinnatiNara S. Higano - Cincinnati Children's Hospital Medical CenterErik B. Hysinger - Division of Pulmonary Medicine, and.Deep B. Gandhi - Cincinnati Children's Hospital Medical CenterRobert J. Fleck - Cincinnati Children's Hospital Medical CenterAndrew D. Hahn - Department of Medical Physics.Sean B. Fain - University of Wisconsin–MadisonJason C. Woods - University of CincinnatiAlister J. Bates - University of Cincinnati
- Resource Type
- Journal article
- Publication Details
- ANNALS OF THE AMERICAN THORACIC SOCIETY, Vol.17(10), pp.1247-1256
- DOI
- 10.1513/AnnalsATS.202002-162OC
- PMID
- 32579852
- PMCID
- PMC7640633
- NLM abbreviation
- Proc Am Thorac Soc
- ISSN
- 1546-3222
- eISSN
- 2325-6621
- Publisher
- Amer Thoracic Soc
- Number of pages
- 10
- Grant note
- R01 HL146689; K99 HL144822; T32 HL007752 / NIH; United States Department of Health & Human Services; National Institutes of Health (NIH) - USA National Institute of Biomedical Imaging and Bioengineering of the U.S. National Institutes of Health (NIH) Cincinnati Children's research foundation
- Language
- English
- Date published
- 10/01/2020
- Academic Unit
- Roy J. Carver Department of Biomedical Engineering; Radiology; Electrical and Computer Engineering; Health, Sport, and Human Physiology
- Record Identifier
- 9984274959602771
Metrics
14 Record Views