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Comparison of Inspiratory Effort, Workload and Cycling Synchronization Between Non-Invasive Proportional-Assist Ventilation and Pressure-Support Ventilation Using Different Models of Respiratory Mechanics

BACKGROUND: This study assessed lung models for the influence of respiratory mechanics and inspiratory effort on breathing pattern and simulator-ventilator cycling synchronization in non-invasive ventilation. MATERIAL/METHODS: A Respironics V60 ventilator was connected to an active lung simulator mo...

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Autores principales: Chen, Yuqing, Yuan, Yueyang, Zhang, Hai, Li, Feng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: International Scientific Literature, Inc. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6900923/
https://www.ncbi.nlm.nih.gov/pubmed/31778366
http://dx.doi.org/10.12659/MSM.914629
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author Chen, Yuqing
Yuan, Yueyang
Zhang, Hai
Li, Feng
author_facet Chen, Yuqing
Yuan, Yueyang
Zhang, Hai
Li, Feng
author_sort Chen, Yuqing
collection PubMed
description BACKGROUND: This study assessed lung models for the influence of respiratory mechanics and inspiratory effort on breathing pattern and simulator-ventilator cycling synchronization in non-invasive ventilation. MATERIAL/METHODS: A Respironics V60 ventilator was connected to an active lung simulator modeling mildly restrictive, severely restrictive, obstructive and mixed obstructive/restrictive profiles. Pressure-support ventilation (PSV) and proportional-assist ventilation (PAV) were set to obtain similar tidal volume (V(T)). PAV was applied at flow assist (FA) 40–90% of resistance (Rrs) and volume assist (VA) 40–90% of elastance (Ers). Measurements were performed with system air leak of 25–28 L/minute. Ventilator performance and simulator-ventilator asynchrony were evaluated. RESULTS: At comparable V(T), PAV had slightly lower peak inspiratory flow and higher driving pressure compared with PSV. Premature cycling occurred in the obstructive, severely restrictive and mildly restrictive models. During PAV, time for airway pressure to achieve 90% of maximum during inspiration (T90) in the severely restrictive model was shorter than those of the obstructive and mixed obstructive/restrictive models and close to that measured in the PSV mode. Increasing FA level reduced inspiratory trigger workload (PTP(300)) in obstructive and mixed obstructive/restrictive models. Increasing FA level decreased inspiratory time (T(I)) and tended to aggravate premature cycling, whereas increasing VA level attenuated this effect. CONCLUSIONS: PAV with an appropriate combination of FA and VA decreases work of breathing during the inspiratory phase and improves simulator-ventilator cycling synchrony. FA has greater impact than VA in the adaptation to inspiratory effort demand. High VA level might help improve cycling synchrony.
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spelling pubmed-69009232019-12-16 Comparison of Inspiratory Effort, Workload and Cycling Synchronization Between Non-Invasive Proportional-Assist Ventilation and Pressure-Support Ventilation Using Different Models of Respiratory Mechanics Chen, Yuqing Yuan, Yueyang Zhang, Hai Li, Feng Med Sci Monit Clinical Research BACKGROUND: This study assessed lung models for the influence of respiratory mechanics and inspiratory effort on breathing pattern and simulator-ventilator cycling synchronization in non-invasive ventilation. MATERIAL/METHODS: A Respironics V60 ventilator was connected to an active lung simulator modeling mildly restrictive, severely restrictive, obstructive and mixed obstructive/restrictive profiles. Pressure-support ventilation (PSV) and proportional-assist ventilation (PAV) were set to obtain similar tidal volume (V(T)). PAV was applied at flow assist (FA) 40–90% of resistance (Rrs) and volume assist (VA) 40–90% of elastance (Ers). Measurements were performed with system air leak of 25–28 L/minute. Ventilator performance and simulator-ventilator asynchrony were evaluated. RESULTS: At comparable V(T), PAV had slightly lower peak inspiratory flow and higher driving pressure compared with PSV. Premature cycling occurred in the obstructive, severely restrictive and mildly restrictive models. During PAV, time for airway pressure to achieve 90% of maximum during inspiration (T90) in the severely restrictive model was shorter than those of the obstructive and mixed obstructive/restrictive models and close to that measured in the PSV mode. Increasing FA level reduced inspiratory trigger workload (PTP(300)) in obstructive and mixed obstructive/restrictive models. Increasing FA level decreased inspiratory time (T(I)) and tended to aggravate premature cycling, whereas increasing VA level attenuated this effect. CONCLUSIONS: PAV with an appropriate combination of FA and VA decreases work of breathing during the inspiratory phase and improves simulator-ventilator cycling synchrony. FA has greater impact than VA in the adaptation to inspiratory effort demand. High VA level might help improve cycling synchrony. International Scientific Literature, Inc. 2019-11-28 /pmc/articles/PMC6900923/ /pubmed/31778366 http://dx.doi.org/10.12659/MSM.914629 Text en © Med Sci Monit, 2019 This work is licensed under Creative Common Attribution-NonCommercial-NoDerivatives 4.0 International (CC BY-NC-ND 4.0 (https://creativecommons.org/licenses/by-nc-nd/4.0/) )
spellingShingle Clinical Research
Chen, Yuqing
Yuan, Yueyang
Zhang, Hai
Li, Feng
Comparison of Inspiratory Effort, Workload and Cycling Synchronization Between Non-Invasive Proportional-Assist Ventilation and Pressure-Support Ventilation Using Different Models of Respiratory Mechanics
title Comparison of Inspiratory Effort, Workload and Cycling Synchronization Between Non-Invasive Proportional-Assist Ventilation and Pressure-Support Ventilation Using Different Models of Respiratory Mechanics
title_full Comparison of Inspiratory Effort, Workload and Cycling Synchronization Between Non-Invasive Proportional-Assist Ventilation and Pressure-Support Ventilation Using Different Models of Respiratory Mechanics
title_fullStr Comparison of Inspiratory Effort, Workload and Cycling Synchronization Between Non-Invasive Proportional-Assist Ventilation and Pressure-Support Ventilation Using Different Models of Respiratory Mechanics
title_full_unstemmed Comparison of Inspiratory Effort, Workload and Cycling Synchronization Between Non-Invasive Proportional-Assist Ventilation and Pressure-Support Ventilation Using Different Models of Respiratory Mechanics
title_short Comparison of Inspiratory Effort, Workload and Cycling Synchronization Between Non-Invasive Proportional-Assist Ventilation and Pressure-Support Ventilation Using Different Models of Respiratory Mechanics
title_sort comparison of inspiratory effort, workload and cycling synchronization between non-invasive proportional-assist ventilation and pressure-support ventilation using different models of respiratory mechanics
topic Clinical Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6900923/
https://www.ncbi.nlm.nih.gov/pubmed/31778366
http://dx.doi.org/10.12659/MSM.914629
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