Literature DB >> 22349427

Relative effects of negative versus positive pressure ventilation depend on applied conditions.

Doreen Engelberts1, Atul Malhotra, James P Butler, George P Topulos, Stephen H Loring, Brian P Kavanagh.   

Abstract

PURPOSE: Comparisons of negative versus positive pressure ventilation have imperfectly matched the pressure-time profile or the lung volume history, or have incompletely applied in vivo negative pressure to include the complete thoracic wall and abdomen. HYPOTHESIS: Negative pressure exerts the same pattern of lung distension as positive pressure when the pressure-time and volume history profiles are identical and the application of negative pressure is over the whole lung.
METHODS: (1) In isolated (ex vivo) and (2) intact (in vivo) mouse lungs (n = 4/group) (sealed chamber enclosing either the whole lung or whole mouse except for external airway opening), identical and inverse-tidal, square-wave pressure-time profiles were obtained with positive and negative pressure ventilation. (3) Following an identical volume history, surfactant-depleted rabbits (n = 7) were randomly assigned to sustained, static equivalent positive versus negative pressures. (4) Surfactant-depleted anesthetized rabbits (n = 10) with identical volume histories were randomized to positive versus negative ventilation with identical pressure-time characteristics.
RESULTS: Matched positive and negative pressure time profiles in ex vivo and in vivo mice resulted in identical tidal volumes. Identical (negative vs. positive) sustained static pressures resulted in similar PaO(2) and end expiratory lung volumes. Positive and negative ventilation with identical volume histories and pressure time characteristics showed no difference in oxygenation or lung volumes. Historical comparisons suggested better oxygenation with negative pressure when the volume history was not identical.
CONCLUSIONS: These data do not support major biological differences between negative and positive pressure ventilation when waveforms and lung volume history are matched.

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Year:  2012        PMID: 22349427      PMCID: PMC3463870          DOI: 10.1007/s00134-012-2512-5

Source DB:  PubMed          Journal:  Intensive Care Med        ISSN: 0342-4642            Impact factor:   17.440


  19 in total

1.  Hemodynamic differences between continual positive and two types of negative pressure ventilation.

Authors:  D Lockhat; D Langleben; A Zidulka
Journal:  Am Rev Respir Dis       Date:  1992-09

2.  Effects of continuous negative extra-abdominal pressure on cardiorespiratory function during abdominal hypertension: an experimental study.

Authors:  Franco Valenza; Manuela Irace; Massimiliano Guglielmi; Stefano Gatti; Nicola Bottino; Cecilia Tedesco; Micol Maffioletti; Patrizia Maccagni; Tommaso Fossali; Gabriele Aletti; Luciano Gattinoni
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3.  Time dependence of flow-volume curves.

Authors:  M Green; J Mead
Journal:  J Appl Physiol       Date:  1974-12       Impact factor: 3.531

4.  Effect of parenchymal shear modulus and lung volume on bronchial pressure-diameter behavior.

Authors:  S J Lai-Fook; R E Hyatt; J R Rodarte
Journal:  J Appl Physiol Respir Environ Exerc Physiol       Date:  1978-06

5.  Hemodynamic effects of external continuous negative pressure ventilation compared with those of continuous positive pressure ventilation in dogs with acute lung injury.

Authors:  M Skaburskis; R Helal; A Zidulka
Journal:  Am Rev Respir Dis       Date:  1987-10

6.  Continuous negative extrathoracic pressure versus positive end-expiratory pressure in piglets after saline lung lavage.

Authors:  D Easa; T G Mundie; K C Finn; G Hashiro; V Balaraman
Journal:  Pediatr Pulmonol       Date:  1994-03

7.  Role of tidal volume, FRC, and end-inspiratory volume in the development of pulmonary edema following mechanical ventilation.

Authors:  D Dreyfuss; G Saumon
Journal:  Am Rev Respir Dis       Date:  1993-11

Review 8.  Negative pressure ventilation in the treatment of acute respiratory failure: an old noninvasive technique reconsidered.

Authors:  A Corrado; M Gorini; G Villella; E De Paola
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Authors:  M Borelli; A Benini; T Denkewitz; C Acciaro; G Foti; A Pesenti
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Review 10.  The effects of five years of nocturnal cuirass-assisted ventilation in chest wall disease.

Authors:  M Jackson; W Kinnear; M King; S Hockley; J Shneerson
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