Literature DB >> 9144053

The pathophysiology of tension pneumothorax in ventilated swine.

E D Barton1, P Rhee, K C Hutton, P Rosen.   

Abstract

It remains unclear as to whether the cardiovascular collapse observed in tension pneumothorax (TP) is strictly a mechanical pressure-related phenomenon or secondary to hypoxemia. This study describes the pathophysiologic changes associated with a surgically induced progressive TP in a ventilated swine model. With a balloon occlusion catheter surgically placed into the pleural space, progressive volumes of pneumothorax were created in six anesthetized pigs on positive-pressure ventilation. Air was introduced into the right hemithorax in 100-mL increments every 4-5 min, with measurements of heart rate (HR), mean arterial pressure (MAP), central venous pressure (CVP), mean intrapleural pressure (MIP), oxygen saturation (O2%), arterial blood gas (ABG), and cardiac output (C.O.). With the induced progressive TP, results showed that O2% measures decreased immediately and continued to decline throughout the experiment to levels below 50% prior to cardiovascular collapse. The MAP and HR remained relatively stable until approximately 57% total lung capacity progressive TP (600 mL) was reached. At this point, a significant decline in MAP and increase in HR was noted, indicating tension physiology. The C.O. showed a small but significant decrease after 200 mL of air was injected, with a progressive decline after this point. At > 97% total lung capacity TP, lethal cardiovascular collapse occurred in all animals and was associated with an abrupt drop in C.O., HR, and MAP. There was a concurrent equalization of MIP with CVP at the point of collapse. Arterial blood gas measures correlated with O2% trends during the trials. We conclude that the findings of this study support the alternative hypothesis that significant hypoxemia occurs early and precedes hypotension in ventilated animals with TP. Occlusive mechanical compression, suggested by equalization of MIP and CVP, is probably a late event.

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Year:  1997        PMID: 9144053     DOI: 10.1016/s0736-4679(96)00312-5

Source DB:  PubMed          Journal:  J Emerg Med        ISSN: 0736-4679            Impact factor:   1.484


  8 in total

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3.  Principles of diagnosis and management of traumatic pneumothorax.

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Journal:  J Emerg Trauma Shock       Date:  2008-01

4.  Using thoracic ultrasonography to accurately assess pneumothorax progression during positive pressure ventilation: a comparison with CT scanning.

Authors:  Nils Petter Oveland; Hans Morten Lossius; Kristian Wemmelund; Paal Johan Stokkeland; Lars Knudsen; Erik Sloth
Journal:  Chest       Date:  2013-02-01       Impact factor: 9.410

5.  A porcine pneumothorax model for teaching ultrasound diagnostics.

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6.  High-pressure intrapleural chemotherapy: feasibility in the pig model.

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7.  Clinical manifestations of tension pneumothorax: protocol for a systematic review and meta-analysis.

Authors:  Derek J Roberts; Simon Leigh-Smith; Peter D Faris; Chad G Ball; Helen Lee Robertson; Christopher Blackmore; Elijah Dixon; Andrew W Kirkpatrick; John B Kortbeek; Henry Thomas Stelfox
Journal:  Syst Rev       Date:  2014-01-04

8.  The intrapleural volume threshold for ultrasound detection of pneumothoraces: an experimental study on porcine models.

Authors:  Nils Petter Oveland; Eldar Søreide; Hans Morten Lossius; Frode Johannessen; Kristian Borup Wemmelund; Rasmus Aagaard; Erik Sloth
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  8 in total

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