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Induction of severe hypoxemia and low lung recruitability for the evaluation of therapeutic ventilation strategies: a translational model of combined surfactant-depletion and ventilator-induced lung injury

BACKGROUND: Models of hypoxemic lung injury caused by lavage-induced pulmonary surfactant depletion are prone to prompt recovery of blood oxygenation following recruitment maneuvers and have limited translational validity. We hypothesized that addition of injurious ventilation following surfactant-d...

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Autores principales: Boerger, Emilia, Russ, Martin, von Platen, Philip, Taher, Mahdi, Hinken, Lea, Pomprapa, Anake, Koebrich, Rainer, Konietschke, Frank, Graw, Jan Adriaan, Lachmann, Burkhard, Braun, Wolfgang, Leonhardt, Steffen, Pickerodt, Philipp A., Francis, Roland C. E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Springer International Publishing 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9334469/
https://www.ncbi.nlm.nih.gov/pubmed/35902450
http://dx.doi.org/10.1186/s40635-022-00456-5
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author Boerger, Emilia
Russ, Martin
von Platen, Philip
Taher, Mahdi
Hinken, Lea
Pomprapa, Anake
Koebrich, Rainer
Konietschke, Frank
Graw, Jan Adriaan
Lachmann, Burkhard
Braun, Wolfgang
Leonhardt, Steffen
Pickerodt, Philipp A.
Francis, Roland C. E.
author_facet Boerger, Emilia
Russ, Martin
von Platen, Philip
Taher, Mahdi
Hinken, Lea
Pomprapa, Anake
Koebrich, Rainer
Konietschke, Frank
Graw, Jan Adriaan
Lachmann, Burkhard
Braun, Wolfgang
Leonhardt, Steffen
Pickerodt, Philipp A.
Francis, Roland C. E.
author_sort Boerger, Emilia
collection PubMed
description BACKGROUND: Models of hypoxemic lung injury caused by lavage-induced pulmonary surfactant depletion are prone to prompt recovery of blood oxygenation following recruitment maneuvers and have limited translational validity. We hypothesized that addition of injurious ventilation following surfactant-depletion creates a model of the acute respiratory distress syndrome (ARDS) with persistently low recruitability and higher levels of titrated “best” positive end-expiratory pressure (PEEP) during protective ventilation. METHODS: Two types of porcine lung injury were induced by lung lavage and 3 h of either protective or injurious ventilation, followed by 3 h of protective ventilation (N = 6 per group). Recruitment maneuvers (RM) and decremental PEEP trials comparing oxygenation versus dynamic compliance were performed after lavage and at 3 h intervals of ventilation. Pulmonary gas exchange function, respiratory mechanics, and ventilator-derived parameters were assessed after each RM to map the course of injury severity and recruitability. RESULTS: Lung lavage impaired respiratory system compliance (C(rs)) and produced arterial oxygen tensions (P(a)O(2)) of 84±13 and 80±15 (F(I)O(2) = 1.0) with prompt increase after RM to 270–395 mmHg in both groups. After subsequent 3 h of either protective or injurious ventilation, P(a)O(2)/F(I)O(2) was 104±26 vs. 154±123 and increased to 369±132 vs. 167±87 mmHg in response to RM, respectively. After additional 3 h of protective ventilation, P(a)O(2)/F(I)O(2) was 120±15 vs. 128±37 and increased to 470±68 vs. 185±129 mmHg in response to RM, respectively. Subsequently, decremental PEEP titration revealed that C(rs) peaked at 36 ± 10 vs. 25 ± 5 ml/cm H(2)O with PEEP of 12 vs. 16 cmH(2)O, and P(a)O(2)/F(I)O(2) peaked at 563 ± 83 vs. 334 ± 148 mm Hg with PEEP of 16 vs. 22 cmH(2)O in the protective vs. injurious ventilation groups, respectively. The large disparity of recruitability between groups was not reflected in the C(rs) nor the magnitude of mechanical power present after injurious ventilation, once protective ventilation was resumed. CONCLUSION: Addition of transitory injurious ventilation after lung lavage causes prolonged acute lung injury with diffuse alveolar damage and low recruitability yielding high titrated PEEP levels. Mimicking lung mechanical and functional characteristics of ARDS, this porcine model rectifies the constraints of single-hit lavage models and may enhance the translation of experimental research on mechanical ventilation strategies. SUPPLEMENTARY INFORMATION: The online version contains supplementary material available at 10.1186/s40635-022-00456-5.
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spelling pubmed-93344692022-07-30 Induction of severe hypoxemia and low lung recruitability for the evaluation of therapeutic ventilation strategies: a translational model of combined surfactant-depletion and ventilator-induced lung injury Boerger, Emilia Russ, Martin von Platen, Philip Taher, Mahdi Hinken, Lea Pomprapa, Anake Koebrich, Rainer Konietschke, Frank Graw, Jan Adriaan Lachmann, Burkhard Braun, Wolfgang Leonhardt, Steffen Pickerodt, Philipp A. Francis, Roland C. E. Intensive Care Med Exp Research Articles BACKGROUND: Models of hypoxemic lung injury caused by lavage-induced pulmonary surfactant depletion are prone to prompt recovery of blood oxygenation following recruitment maneuvers and have limited translational validity. We hypothesized that addition of injurious ventilation following surfactant-depletion creates a model of the acute respiratory distress syndrome (ARDS) with persistently low recruitability and higher levels of titrated “best” positive end-expiratory pressure (PEEP) during protective ventilation. METHODS: Two types of porcine lung injury were induced by lung lavage and 3 h of either protective or injurious ventilation, followed by 3 h of protective ventilation (N = 6 per group). Recruitment maneuvers (RM) and decremental PEEP trials comparing oxygenation versus dynamic compliance were performed after lavage and at 3 h intervals of ventilation. Pulmonary gas exchange function, respiratory mechanics, and ventilator-derived parameters were assessed after each RM to map the course of injury severity and recruitability. RESULTS: Lung lavage impaired respiratory system compliance (C(rs)) and produced arterial oxygen tensions (P(a)O(2)) of 84±13 and 80±15 (F(I)O(2) = 1.0) with prompt increase after RM to 270–395 mmHg in both groups. After subsequent 3 h of either protective or injurious ventilation, P(a)O(2)/F(I)O(2) was 104±26 vs. 154±123 and increased to 369±132 vs. 167±87 mmHg in response to RM, respectively. After additional 3 h of protective ventilation, P(a)O(2)/F(I)O(2) was 120±15 vs. 128±37 and increased to 470±68 vs. 185±129 mmHg in response to RM, respectively. Subsequently, decremental PEEP titration revealed that C(rs) peaked at 36 ± 10 vs. 25 ± 5 ml/cm H(2)O with PEEP of 12 vs. 16 cmH(2)O, and P(a)O(2)/F(I)O(2) peaked at 563 ± 83 vs. 334 ± 148 mm Hg with PEEP of 16 vs. 22 cmH(2)O in the protective vs. injurious ventilation groups, respectively. The large disparity of recruitability between groups was not reflected in the C(rs) nor the magnitude of mechanical power present after injurious ventilation, once protective ventilation was resumed. CONCLUSION: Addition of transitory injurious ventilation after lung lavage causes prolonged acute lung injury with diffuse alveolar damage and low recruitability yielding high titrated PEEP levels. Mimicking lung mechanical and functional characteristics of ARDS, this porcine model rectifies the constraints of single-hit lavage models and may enhance the translation of experimental research on mechanical ventilation strategies. SUPPLEMENTARY INFORMATION: The online version contains supplementary material available at 10.1186/s40635-022-00456-5. Springer International Publishing 2022-07-29 /pmc/articles/PMC9334469/ /pubmed/35902450 http://dx.doi.org/10.1186/s40635-022-00456-5 Text en © The Author(s) 2022 https://creativecommons.org/licenses/by/4.0/Open AccessThis article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons licence, and indicate if changes were made. The images or other third party material in this article are included in the article's Creative Commons licence, unless indicated otherwise in a credit line to the material. If material is not included in the article's Creative Commons licence and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this licence, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Articles
Boerger, Emilia
Russ, Martin
von Platen, Philip
Taher, Mahdi
Hinken, Lea
Pomprapa, Anake
Koebrich, Rainer
Konietschke, Frank
Graw, Jan Adriaan
Lachmann, Burkhard
Braun, Wolfgang
Leonhardt, Steffen
Pickerodt, Philipp A.
Francis, Roland C. E.
Induction of severe hypoxemia and low lung recruitability for the evaluation of therapeutic ventilation strategies: a translational model of combined surfactant-depletion and ventilator-induced lung injury
title Induction of severe hypoxemia and low lung recruitability for the evaluation of therapeutic ventilation strategies: a translational model of combined surfactant-depletion and ventilator-induced lung injury
title_full Induction of severe hypoxemia and low lung recruitability for the evaluation of therapeutic ventilation strategies: a translational model of combined surfactant-depletion and ventilator-induced lung injury
title_fullStr Induction of severe hypoxemia and low lung recruitability for the evaluation of therapeutic ventilation strategies: a translational model of combined surfactant-depletion and ventilator-induced lung injury
title_full_unstemmed Induction of severe hypoxemia and low lung recruitability for the evaluation of therapeutic ventilation strategies: a translational model of combined surfactant-depletion and ventilator-induced lung injury
title_short Induction of severe hypoxemia and low lung recruitability for the evaluation of therapeutic ventilation strategies: a translational model of combined surfactant-depletion and ventilator-induced lung injury
title_sort induction of severe hypoxemia and low lung recruitability for the evaluation of therapeutic ventilation strategies: a translational model of combined surfactant-depletion and ventilator-induced lung injury
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9334469/
https://www.ncbi.nlm.nih.gov/pubmed/35902450
http://dx.doi.org/10.1186/s40635-022-00456-5
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