Literature DB >> 25635004

Predicting the response of the injured lung to the mechanical breath profile.

Bradford J Smith1, Lennart K A Lundblad1, Michaela Kollisch-Singule2, Joshua Satalin2, Gary Nieman2, Nader Habashi3, Jason H T Bates4.   

Abstract

Mechanical ventilation is a crucial component of the supportive care provided to patients with acute respiratory distress syndrome. Current practice stipulates the use of a low tidal volume (VT) of 6 ml/kg ideal body weight, the presumptive notion being that this limits overdistension of the tissues and thus reduces volutrauma. We have recently found, however, that airway pressure release ventilation (APRV) is efficacious at preventing ventilator-induced lung injury, yet APRV has a very different mechanical breath profile compared with conventional low-VT ventilation. To gain insight into the relative merits of these two ventilation modes, we measured lung mechanics and derecruitability in rats before and following Tween lavage. We fit to these lung mechanics measurements a computational model of the lung that accounts for both the degree of tissue distension of the open lung and the amount of lung derecruitment that takes place as a function of time. Using this model, we predicted how tissue distension, open lung fraction, and intratidal recruitment vary as a function of ventilator settings both for conventional low-VT ventilation and for APRV. Our predictions indicate that APRV is more effective at recruiting the lung than low-VT ventilation, but without causing more overdistension of the tissues. On the other hand, low-VT ventilation generally produces less intratidal recruitment than APRV. Predictions such as these may be useful for deciding on the relative benefits of different ventilation modes and thus may serve as a means for determining how to ventilate a given lung in the least injurious fashion.
Copyright © 2015 the American Physiological Society.

Entities:  

Keywords:  ARDS; lung injury; mechanical ventilation; predictive computational model

Mesh:

Year:  2015        PMID: 25635004      PMCID: PMC4385881          DOI: 10.1152/japplphysiol.00902.2014

Source DB:  PubMed          Journal:  J Appl Physiol (1985)        ISSN: 0161-7567


  48 in total

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Journal:  Cochrane Database Syst Rev       Date:  2013-06-06

Review 5.  Pressure-volume curves of the respiratory system.

Authors:  R Scott Harris
Journal:  Respir Care       Date:  2005-01       Impact factor: 2.258

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7.  Surviving Sepsis Campaign: international guidelines for management of severe sepsis and septic shock: 2008.

Authors:  R Phillip Dellinger; Mitchell M Levy; Jean M Carlet; Julian Bion; Margaret M Parker; Roman Jaeschke; Konrad Reinhart; Derek C Angus; Christian Brun-Buisson; Richard Beale; Thierry Calandra; Jean-Francois Dhainaut; Herwig Gerlach; Maurene Harvey; John J Marini; John Marshall; Marco Ranieri; Graham Ramsay; Jonathan Sevransky; B Taylor Thompson; Sean Townsend; Jeffrey S Vender; Janice L Zimmerman; Jean-Louis Vincent
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8.  Ventilation strategy using low tidal volumes, recruitment maneuvers, and high positive end-expiratory pressure for acute lung injury and acute respiratory distress syndrome: a randomized controlled trial.

Authors:  Maureen O Meade; Deborah J Cook; Gordon H Guyatt; Arthur S Slutsky; Yaseen M Arabi; D James Cooper; Andrew R Davies; Lori E Hand; Qi Zhou; Lehana Thabane; Peggy Austin; Stephen Lapinsky; Alan Baxter; James Russell; Yoanna Skrobik; Juan J Ronco; Thomas E Stewart
Journal:  JAMA       Date:  2008-02-13       Impact factor: 56.272

9.  Spontaneous breathing with airway pressure release ventilation favors ventilation in dependent lung regions and counters cyclic alveolar collapse in oleic-acid-induced lung injury: a randomized controlled computed tomography trial.

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10.  Variable Ventilation as a Diagnostic Tool for the Injured Lung.

Authors:  Bradford J Smith; Jason H T Bates
Journal:  IEEE Trans Biomed Eng       Date:  2014-04-07       Impact factor: 4.538

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1.  Computational Modeling of Primary Blast Lung Injury: Implications for Ventilator Management.

Authors:  Jacob Herrmann; Merryn H Tawhai; David W Kaczka
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2.  Alveolar Micromechanics in Bleomycin-induced Lung Injury.

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3.  Airway pressure release ventilation during ex vivo lung perfusion attenuates injury.

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Review 4.  Ventilator-induced lung injury and lung mechanics.

Authors:  Jason H T Bates; Bradford J Smith
Journal:  Ann Transl Med       Date:  2018-10

5.  Using injury cost functions from a predictive single-compartment model to assess the severity of mechanical ventilator-induced lung injuries.

Authors:  Michelle M Mellenthin; Siyeon A Seong; Gregory S Roy; Elizabeth Bartolák-Suki; Katharine L Hamlington; Jason H T Bates; Bradford J Smith
Journal:  J Appl Physiol (1985)       Date:  2019-05-02

6.  Dynamic Mechanical Interactions Between Neighboring Airspaces Determine Cyclic Opening and Closure in Injured Lung.

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Journal:  Crit Care Med       Date:  2017-04       Impact factor: 7.598

7.  Mechanical Ventilation as a Therapeutic Tool to Reduce ARDS Incidence.

Authors:  Gary F Nieman; Louis A Gatto; Jason H T Bates; Nader M Habashi
Journal:  Chest       Date:  2015-12       Impact factor: 9.410

8.  Predicting ventilator-induced lung injury using a lung injury cost function.

Authors:  Katharine L Hamlington; Bradford J Smith; Gilman B Allen; Jason H T Bates
Journal:  J Appl Physiol (1985)       Date:  2016-05-12

Review 9.  The POOR Get POORer: A Hypothesis for the Pathogenesis of Ventilator-induced Lung Injury.

Authors:  Donald P Gaver; Gary F Nieman; Louis A Gatto; Maurizio Cereda; Nader M Habashi; Jason H T Bates
Journal:  Am J Respir Crit Care Med       Date:  2020-10-15       Impact factor: 21.405

10.  Linking lung function to structural damage of alveolar epithelium in ventilator-induced lung injury.

Authors:  Katharine L Hamlington; Bradford J Smith; Celia M Dunn; Chantel M Charlebois; Gregory S Roy; Jason H T Bates
Journal:  Respir Physiol Neurobiol       Date:  2018-05-06       Impact factor: 1.931

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