Literature DB >> 17201082

The contribution of arterio-venous extracorporeal lung assist to gas exchange in a porcine model of lavage-induced acute lung injury.

Jörg Brederlau1, Ralf Muellenbach, Markus Kredel, Ulrich Schwemmer, Martin Anetseder, Clemens Greim, Norbert Roewer.   

Abstract

This prospective large-animal study was performed to evaluate the contribution of arterio-venous extracorporeal lung assist (AV-ECLA) to pulmonary gas exchange in a porcine lavage-induced acute lung injury model. Fifteen healthy female pigs, weighing 50.3 +/- 3.8 kg (mean +/- SD), were included. After induction of general anaesthesia and controlled ventilation, an arterial line and a pulmonary artery catheter were inserted. Saline lung lavage was performed until the PaO2 decreased to 51 +/- 16 mmHg. After a stabilization period of 60 min, the femoral artery and vein were cannulated and a low-resistance membrane lung was interposed. Under apnoeic oxygenation, variations of sweep-gas flow were performed every 20 min in order to evaluate the membrane lung's efficacy, in terms of carbon dioxide (CO2) removal and oxygen (O2) uptake. Although AV-ECLA is highly effective in eliminating CO2, if combined with apnoeic oxygenation, normocapnia was not achievable. AV-ECLA's contribution to oxygenation during severe hypoxemia was antagonized by a significant increase in the pulmonary shunt fraction.

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Year:  2006        PMID: 17201082     DOI: 10.1177/0267659106074769

Source DB:  PubMed          Journal:  Perfusion        ISSN: 0267-6591            Impact factor:   1.972


  2 in total

1.  Hepatic effects of lung-protective pressure-controlled ventilation and a combination of high-frequency oscillatory ventilation and extracorporeal lung assist in experimental lung injury.

Authors:  Markus Kredel; Ralf M Muellenbach; Amélie Johannes; Joerg Brederlau; Norbert Roewer; Christian Wunder
Journal:  Med Sci Monit       Date:  2011-10

2.  Arteriovenous Extracorporeal Lung Assist Allows For Maximization Of Oscillatory Frequencies: A Large-animal Model Of Respiratory Distress.

Authors:  Ralf M Muellenbach; Julian Kuestermann; Markus Kredel; Amélie Johannes; Ulrike Wolfsteiner; Frank Schuster; Christian Wunder; Peter Kranke; Norbert Roewer; Jörg Brederlau
Journal:  BMC Anesthesiol       Date:  2008-11-14       Impact factor: 2.217

  2 in total

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