Cargando…
Optimizing positive end-expiratory pressure by oscillatory mechanics minimizes tidal recruitment and distension: an experimental study in a lavage model of lung injury
INTRODUCTION: It is well established that during mechanical ventilation of patients with acute respiratory distress syndrome cyclic recruitment/derecruitment and overdistension are potentially injurious for lung tissues. We evaluated whether the forced oscillation technique (FOT) could be used to gu...
Autores principales: | , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
BioMed Central
2012
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3672594/ https://www.ncbi.nlm.nih.gov/pubmed/23134702 http://dx.doi.org/10.1186/cc11858 |
_version_ | 1782272133262475264 |
---|---|
author | Zannin, Emanuela Dellaca, Raffaele L Kostic, Peter Pompilio, Pasquale P Larsson, Anders Pedotti, Antonio Hedenstierna, Goran Frykholm, Peter |
author_facet | Zannin, Emanuela Dellaca, Raffaele L Kostic, Peter Pompilio, Pasquale P Larsson, Anders Pedotti, Antonio Hedenstierna, Goran Frykholm, Peter |
author_sort | Zannin, Emanuela |
collection | PubMed |
description | INTRODUCTION: It is well established that during mechanical ventilation of patients with acute respiratory distress syndrome cyclic recruitment/derecruitment and overdistension are potentially injurious for lung tissues. We evaluated whether the forced oscillation technique (FOT) could be used to guide the ventilator settings in order to minimize cyclic lung recruitment/derecruitment and cyclic mechanical stress in an experimental model of acute lung injury. METHODS: We studied six pigs in which lung injury was induced by bronchoalveolar lavage. The animals were ventilated with a tidal volume of 6 ml/kg. Forced oscillations at 5 Hz were superimposed on the ventilation waveform. Pressure and flow were measured at the tip and at the inlet of the endotracheal tube respectively. Respiratory system reactance (Xrs) was computed from the pressure and flow signals and expressed in terms of oscillatory elastance (E(X5)). Positive end-expiratory pressure (PEEP) was increased from 0 to 24 cm H(2)O in steps of 4 cm H(2)O and subsequently decreased from 24 to 0 in steps of 2 cm H(2)O. At each PEEP step CT scans and E(X5 )were assessed at end-expiration and end-inspiration. RESULTS: During deflation the relationship between both end-expiratory and end-inspiratory E(X5 )and PEEP was a U-shaped curve with minimum values at PEEP = 13.4 ± 1.0 cm H(2)O (mean ± SD) and 13.0 ± 1.0 cm H(2)O respectively. E(X5 )was always higher at end-inspiration than at end-expiration, the difference between the average curves being minimal at 12 cm H(2)O. At this PEEP level, CT did not show any substantial sign of intra-tidal recruitment/derecruitment or expiratory lung collapse. CONCLUSIONS: Using FOT it was possible to measure E(X5 )both at end-expiration and at end-inspiration. The optimal PEEP strategy based on end-expiratory E(X5 )minimized intra-tidal recruitment/derecruitment as assessed by CT, and the concurrent attenuation of intra-tidal variations of E(X5 )suggests that it may also minimize tidal mechanical stress. |
format | Online Article Text |
id | pubmed-3672594 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2012 |
publisher | BioMed Central |
record_format | MEDLINE/PubMed |
spelling | pubmed-36725942013-06-10 Optimizing positive end-expiratory pressure by oscillatory mechanics minimizes tidal recruitment and distension: an experimental study in a lavage model of lung injury Zannin, Emanuela Dellaca, Raffaele L Kostic, Peter Pompilio, Pasquale P Larsson, Anders Pedotti, Antonio Hedenstierna, Goran Frykholm, Peter Crit Care Research INTRODUCTION: It is well established that during mechanical ventilation of patients with acute respiratory distress syndrome cyclic recruitment/derecruitment and overdistension are potentially injurious for lung tissues. We evaluated whether the forced oscillation technique (FOT) could be used to guide the ventilator settings in order to minimize cyclic lung recruitment/derecruitment and cyclic mechanical stress in an experimental model of acute lung injury. METHODS: We studied six pigs in which lung injury was induced by bronchoalveolar lavage. The animals were ventilated with a tidal volume of 6 ml/kg. Forced oscillations at 5 Hz were superimposed on the ventilation waveform. Pressure and flow were measured at the tip and at the inlet of the endotracheal tube respectively. Respiratory system reactance (Xrs) was computed from the pressure and flow signals and expressed in terms of oscillatory elastance (E(X5)). Positive end-expiratory pressure (PEEP) was increased from 0 to 24 cm H(2)O in steps of 4 cm H(2)O and subsequently decreased from 24 to 0 in steps of 2 cm H(2)O. At each PEEP step CT scans and E(X5 )were assessed at end-expiration and end-inspiration. RESULTS: During deflation the relationship between both end-expiratory and end-inspiratory E(X5 )and PEEP was a U-shaped curve with minimum values at PEEP = 13.4 ± 1.0 cm H(2)O (mean ± SD) and 13.0 ± 1.0 cm H(2)O respectively. E(X5 )was always higher at end-inspiration than at end-expiration, the difference between the average curves being minimal at 12 cm H(2)O. At this PEEP level, CT did not show any substantial sign of intra-tidal recruitment/derecruitment or expiratory lung collapse. CONCLUSIONS: Using FOT it was possible to measure E(X5 )both at end-expiration and at end-inspiration. The optimal PEEP strategy based on end-expiratory E(X5 )minimized intra-tidal recruitment/derecruitment as assessed by CT, and the concurrent attenuation of intra-tidal variations of E(X5 )suggests that it may also minimize tidal mechanical stress. BioMed Central 2012 2012-11-07 /pmc/articles/PMC3672594/ /pubmed/23134702 http://dx.doi.org/10.1186/cc11858 Text en Copyright ©2012 Zannin et al.; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/2.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited. |
spellingShingle | Research Zannin, Emanuela Dellaca, Raffaele L Kostic, Peter Pompilio, Pasquale P Larsson, Anders Pedotti, Antonio Hedenstierna, Goran Frykholm, Peter Optimizing positive end-expiratory pressure by oscillatory mechanics minimizes tidal recruitment and distension: an experimental study in a lavage model of lung injury |
title | Optimizing positive end-expiratory pressure by oscillatory mechanics minimizes tidal recruitment and distension: an experimental study in a lavage model of lung injury |
title_full | Optimizing positive end-expiratory pressure by oscillatory mechanics minimizes tidal recruitment and distension: an experimental study in a lavage model of lung injury |
title_fullStr | Optimizing positive end-expiratory pressure by oscillatory mechanics minimizes tidal recruitment and distension: an experimental study in a lavage model of lung injury |
title_full_unstemmed | Optimizing positive end-expiratory pressure by oscillatory mechanics minimizes tidal recruitment and distension: an experimental study in a lavage model of lung injury |
title_short | Optimizing positive end-expiratory pressure by oscillatory mechanics minimizes tidal recruitment and distension: an experimental study in a lavage model of lung injury |
title_sort | optimizing positive end-expiratory pressure by oscillatory mechanics minimizes tidal recruitment and distension: an experimental study in a lavage model of lung injury |
topic | Research |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3672594/ https://www.ncbi.nlm.nih.gov/pubmed/23134702 http://dx.doi.org/10.1186/cc11858 |
work_keys_str_mv | AT zanninemanuela optimizingpositiveendexpiratorypressurebyoscillatorymechanicsminimizestidalrecruitmentanddistensionanexperimentalstudyinalavagemodeloflunginjury AT dellacaraffaelel optimizingpositiveendexpiratorypressurebyoscillatorymechanicsminimizestidalrecruitmentanddistensionanexperimentalstudyinalavagemodeloflunginjury AT kosticpeter optimizingpositiveendexpiratorypressurebyoscillatorymechanicsminimizestidalrecruitmentanddistensionanexperimentalstudyinalavagemodeloflunginjury AT pompiliopasqualep optimizingpositiveendexpiratorypressurebyoscillatorymechanicsminimizestidalrecruitmentanddistensionanexperimentalstudyinalavagemodeloflunginjury AT larssonanders optimizingpositiveendexpiratorypressurebyoscillatorymechanicsminimizestidalrecruitmentanddistensionanexperimentalstudyinalavagemodeloflunginjury AT pedottiantonio optimizingpositiveendexpiratorypressurebyoscillatorymechanicsminimizestidalrecruitmentanddistensionanexperimentalstudyinalavagemodeloflunginjury AT hedenstiernagoran optimizingpositiveendexpiratorypressurebyoscillatorymechanicsminimizestidalrecruitmentanddistensionanexperimentalstudyinalavagemodeloflunginjury AT frykholmpeter optimizingpositiveendexpiratorypressurebyoscillatorymechanicsminimizestidalrecruitmentanddistensionanexperimentalstudyinalavagemodeloflunginjury |