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PMID: 39262335 Published · ppublish English Journal Article

Application of computational fluid dynamics to investigate pathophysiological mechanisms in exercise-induced laryngeal obstruction.

Journal of applied physiology (Bethesda, Md. : 1985) ·Vol. 137 ·No. 4 ·2024-10-01 ·页码 984-994

Reid L, Thougaard J, Price OJ, Hayatdavoodi M, Pedersen L, Walsted E

Abstract

The underlying pathophysiological mechanisms of exercise-induced laryngeal obstruction (EILO) remain to be fully established. It is hypothesized that high inspiratory flow rates can exert a force on laryngeal airway walls that contribute to its inward collapse causing obstruction. Computational fluid dynamics (CFD) presents an opportunity to explore the distribution of forces in a patient-specific upper airway geometry. The current study combined exercise physiological data and CFD simulation to explore differences in airflow and force distribution between a patient with EILO and a healthy matched control. Participants underwent incremental exercise testing with continuous recording of respiratory airflow and laryngoscopic video, followed by an MRI scan. The respiratory and MRI data were used to generate a subject-specific CFD model of upper respiratory airflow. In patient with EILO, the posterior supraglottis experiences an inwardly directed net force, whose magnitude increases nonlinearly with larger flow rates, with slight changes in the direction toward the center of the airway. The control demonstrated an outwardly directed force at all regions of the wall, with a magnitude that increases linearly with larger flow rates. A comparison is made between the CFD results and endoscopic visualization of supraglottic collapse, and a very good agreement is found. The current study presents the first hybrid physiological and computational approach to investigate the pathophysiological mechanisms of EILO, with preliminary findings showing great potential, but should be used in larger sample sizes to confirm findings.NEW & NOTEWORTHY The current study is the first to use a hybrid combined computational fluid dynamics (CFD) and exercise physiology approach to investigate pathophysiology in exercise-induced laryngeal obstruction (EILO). The hybrid methodology is a promising approach to explore the pathophysiological mechanisms underlying the condition. Notable differences occur in the distribution of airflow and wall forces between the EILO and control participants, which align with symptoms and visual observations.

Keywords
CFD EILO computational fluid dynamics dyspnea exercise-induced laryngeal obstruction
MeSH 主题词
Humans Hydrodynamics Exercise/physiology Male Larynx/physiopathology,diagnostic imaging Airway Obstruction/physiopathology Computer Simulation Adult Exercise Test/methods
作者与单位
共 6 位作者,点击展开单位 / ORCID
Reid Luke
Brighton and Sussex Medical School, University of Sussex, Brighton, United Kingdom. | School of Science and Engineering, University of Dundee, Dundee, United Kingdom.
Thougaard Jens
Department of Respiratory and Infectious Diseases, Bispebjerg Hospital, Copenhagen, Denmark.
Price Oliver J
School of Biomedical Sciences, Faculty of Biological Sciences, University of Leeds, Leeds, United Kingdom. | Department of Respiratory Medicine, Leeds Teaching Hospitals NHS Trust, Leeds, United Kingdom.
Hayatdavoodi Masoud
School of Science and Engineering, University of Dundee, Dundee, United Kingdom.
Pedersen Lars
Department of Respiratory and Infectious Diseases, Bispebjerg Hospital, Copenhagen, Denmark.
Walsted Emil ORCID
Department of Respiratory and Infectious Diseases, Bispebjerg Hospital, Copenhagen, Denmark.
Article Info
Journal
Journal of applied physiology (Bethesda, Md. : 1985)
Abbr.
J Appl Physiol (1985)
ISSN
1522-1601
Published
2024-10-01
电子出版
2024-00-12
页码
984-994
Language
English
Country/Region
United States
NLM ID
8502536
基金资助
Team Danmark / Novo Nordisk Foundation · n/a
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