Literature DB >> 11726884

An artificial lung reduces pulmonary impedance and improves right ventricular efficiency in pulmonary hypertension.

J W Haft1, P Montoya, O Alnajjar, S R Posner, J L Bull, M D Iannettoni, R H Bartlett, R B Hirschl.   

Abstract

OBJECTIVE: Artificial lungs may have a role in supporting patients with end-stage lung disease as a bridge or alternative to lung transplantation. This investigation was performed to determine the effect of an artificial lung, perfused by the right ventricle in parallel with the pulmonary circulation, on indices of right ventricular load in a model of pulmonary hypertension.
METHODS: Seven adult male sheep were connected to a low-resistance membrane oxygenator through conduits anastomosed end to side to the pulmonary artery and left atrium. Banding of the distal pulmonary artery generated acute pulmonary hypertension. Data were obtained with and without flow through the device conduits. Outcome measures of right ventricular load included hemodynamic parameters, as well as analysis of impedance, power consumption, wave reflections, cardiac efficiency, and the tension-time index.
RESULTS: The model of pulmonary hypertension increased all indices of right ventricular load and decreased ventricular efficiency. Allowing flow through the artificial lung significantly reduced mean pulmonary artery pressure, zero harmonic impedance, right ventricular power consumption, amplitude of reflected waves, and the tension-time index. Cardiac efficiency was significantly increased.
CONCLUSIONS: An artificial lung perfused by the right ventricle and applied in parallel with the pulmonary circulation reduces ventricular load and improves cardiac efficiency in the setting of pulmonary hypertension. These data suggest that an artificial lung in this configuration may benefit patients with end-stage lung disease and pulmonary hypertension with right ventricular strain.

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Year:  2001        PMID: 11726884     DOI: 10.1067/mtc.2001.118049

Source DB:  PubMed          Journal:  J Thorac Cardiovasc Surg        ISSN: 0022-5223            Impact factor:   5.209


  3 in total

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Journal:  Int J Heat Mass Transf       Date:  2011-07       Impact factor: 5.584

2.  Hemodynamic effects of pumpless extracorporeal membrane oxygenation (ECMO) support for chronically pressure-overloaded right heart failure in a canine experimental model.

Authors:  Kiyokazu Tamesue; Sugato Nawa; Shingo Ichiba; Motoi Aoe; Hiroshi Date; Nobuyoshi Shimizu
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3.  Interactive simulator for e-Learning environments: a teaching software for health care professionals.

Authors:  Claudio De Lazzari; Igino Genuini; Domenico M Pisanelli; Alessandra D'Ambrosi; Francesco Fedele
Journal:  Biomed Eng Online       Date:  2014-12-18       Impact factor: 2.819

  3 in total

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