Dr MARIANNA LAVIOLA Marianna.Laviola@nottingham.ac.uk
ASSISTANT PROFESSOR
Dr MARIANNA LAVIOLA Marianna.Laviola@nottingham.ac.uk
ASSISTANT PROFESSOR
Christian Niklas
Anup Das
Declan G. Bates
Professor JONATHAN HARDMAN J.HARDMAN@NOTTINGHAM.AC.UK
PROFESSOR OF ANAESTHESIA
© 2020 British Journal of Anaesthesia Background: During induction of general anaesthesia, patients frequently experience apnoea, which can lead to dangerous hypoxaemia. An obstructed upper airway can impede attempts to provide ventilation. Although unrelieved apnoea is rare, it continues to cause deaths. Clinical investigation of management strategies for such scenarios is effectively impossible because of ethical and practical considerations. Methods: A population-representative cohort of 100 virtual (in silico) subjects was configured using a high-fidelity computational model of the pulmonary and cardiovascular systems. Each subject breathed 100% oxygen for 3 min and then became apnoeic, with an obstructed upper airway, during induction of general anaesthesia. Apnoea continued throughout the protocol. When arterial oxygen saturation (SaO2) reached 20%, 40%, or 60%, airway obstruction was relieved. We examined the effect of varying supraglottic oxygen fraction (FO2) on the degree of passive re-oxygenation occurring without tidal ventilation. Results: Relief of airway obstruction during apnoea produced a single, passive inhalation (caused by intrathoracic hypobaric pressure) in all cases. The degree of re-oxygenation after airway opening was markedly influenced by the supraglottic FO2, with a supraglottic FO2 of 100% providing significant and sustained re-oxygenation (post-rescue PaO2 42.3 [4.4] kPa, when the airway rescue occurred after desaturation to SaO2 60%). Conclusions: Supraglottic oxygen supplementation before relieving upper airway obstruction improves the effectiveness of simulated airway rescue. Management strategies should be implemented to assure a substantially increased pharyngeal FO2 during difficult airway management.
Laviola, M., Niklas, C., Das, A., Bates, D. G., & Hardman, J. G. (2020). Effect of oxygen fraction on airway rescue: a computational modelling study. British Journal of Anaesthesia, 125(1), e69-e74. https://doi.org/10.1016/j.bja.2020.01.004
Journal Article Type | Article |
---|---|
Acceptance Date | Jan 4, 2020 |
Online Publication Date | Jan 31, 2020 |
Publication Date | 2020-07 |
Deposit Date | Feb 18, 2020 |
Publicly Available Date | Feb 1, 2021 |
Journal | British Journal of Anaesthesia |
Print ISSN | 0007-0912 |
Electronic ISSN | 1471-6771 |
Publisher | Elsevier |
Peer Reviewed | Peer Reviewed |
Volume | 125 |
Issue | 1 |
Pages | e69-e74 |
DOI | https://doi.org/10.1016/j.bja.2020.01.004 |
Keywords | Anesthesiology and Pain Medicine |
Public URL | https://nottingham-repository.worktribe.com/output/3839955 |
Publisher URL | https://www.sciencedirect.com/science/article/pii/S000709122030009X |
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