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An in vitro lung model to assess true shunt fraction by multiple inert gas elimination

The Multiple Inert Gas Elimination Technique, based on Micropore Membrane Inlet Mass Spectrometry, (MMIMS-MIGET) has been designed as a rapid and direct method to assess the full range of ventilation-to-perfusion (V/Q) ratios. MMIMS-MIGET distributions have not been assessed in an experimental setup...

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Autores principales: Varadarajan, Balamurugan, Vogt, Andreas, Hartwich, Volker, Vasireddy, Rakesh, Consiglio, Jolanda, Hugi-Mayr, Beate, Eberle, Balthasar
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5587330/
https://www.ncbi.nlm.nih.gov/pubmed/28877216
http://dx.doi.org/10.1371/journal.pone.0184212
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author Varadarajan, Balamurugan
Vogt, Andreas
Hartwich, Volker
Vasireddy, Rakesh
Consiglio, Jolanda
Hugi-Mayr, Beate
Eberle, Balthasar
author_facet Varadarajan, Balamurugan
Vogt, Andreas
Hartwich, Volker
Vasireddy, Rakesh
Consiglio, Jolanda
Hugi-Mayr, Beate
Eberle, Balthasar
author_sort Varadarajan, Balamurugan
collection PubMed
description The Multiple Inert Gas Elimination Technique, based on Micropore Membrane Inlet Mass Spectrometry, (MMIMS-MIGET) has been designed as a rapid and direct method to assess the full range of ventilation-to-perfusion (V/Q) ratios. MMIMS-MIGET distributions have not been assessed in an experimental setup with predefined V/Q-distributions. We aimed (I) to construct a novel in vitro lung model (IVLM) for the simulation of predefined V/Q distributions with five gas exchange compartments and (II) to correlate shunt fractions derived from MMIMS-MIGET with preset reference shunt values of the IVLM. Five hollow-fiber membrane oxygenators switched in parallel within a closed extracorporeal oxygenation circuit were ventilated with sweep gas (V) and perfused with human red cell suspension or saline (Q). Inert gas solution was infused into the perfusion circuit of the gas exchange assembly. Sweep gas flow (V) was kept constant and reference shunt fractions (IVLM-S) were established by bypassing one or more oxygenators with perfusate flow (Q). The derived shunt fractions (MM-S) were determined using MIGET by MMIMS from the retention data. Shunt derived by MMIMS-MIGET correlated well with preset reference shunt fractions. The in vitro lung model is a convenient system for the setup of predefined true shunt fractions in validation of MMIMS-MIGET.
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spelling pubmed-55873302017-09-15 An in vitro lung model to assess true shunt fraction by multiple inert gas elimination Varadarajan, Balamurugan Vogt, Andreas Hartwich, Volker Vasireddy, Rakesh Consiglio, Jolanda Hugi-Mayr, Beate Eberle, Balthasar PLoS One Research Article The Multiple Inert Gas Elimination Technique, based on Micropore Membrane Inlet Mass Spectrometry, (MMIMS-MIGET) has been designed as a rapid and direct method to assess the full range of ventilation-to-perfusion (V/Q) ratios. MMIMS-MIGET distributions have not been assessed in an experimental setup with predefined V/Q-distributions. We aimed (I) to construct a novel in vitro lung model (IVLM) for the simulation of predefined V/Q distributions with five gas exchange compartments and (II) to correlate shunt fractions derived from MMIMS-MIGET with preset reference shunt values of the IVLM. Five hollow-fiber membrane oxygenators switched in parallel within a closed extracorporeal oxygenation circuit were ventilated with sweep gas (V) and perfused with human red cell suspension or saline (Q). Inert gas solution was infused into the perfusion circuit of the gas exchange assembly. Sweep gas flow (V) was kept constant and reference shunt fractions (IVLM-S) were established by bypassing one or more oxygenators with perfusate flow (Q). The derived shunt fractions (MM-S) were determined using MIGET by MMIMS from the retention data. Shunt derived by MMIMS-MIGET correlated well with preset reference shunt fractions. The in vitro lung model is a convenient system for the setup of predefined true shunt fractions in validation of MMIMS-MIGET. Public Library of Science 2017-09-06 /pmc/articles/PMC5587330/ /pubmed/28877216 http://dx.doi.org/10.1371/journal.pone.0184212 Text en © 2017 Varadarajan et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Varadarajan, Balamurugan
Vogt, Andreas
Hartwich, Volker
Vasireddy, Rakesh
Consiglio, Jolanda
Hugi-Mayr, Beate
Eberle, Balthasar
An in vitro lung model to assess true shunt fraction by multiple inert gas elimination
title An in vitro lung model to assess true shunt fraction by multiple inert gas elimination
title_full An in vitro lung model to assess true shunt fraction by multiple inert gas elimination
title_fullStr An in vitro lung model to assess true shunt fraction by multiple inert gas elimination
title_full_unstemmed An in vitro lung model to assess true shunt fraction by multiple inert gas elimination
title_short An in vitro lung model to assess true shunt fraction by multiple inert gas elimination
title_sort in vitro lung model to assess true shunt fraction by multiple inert gas elimination
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5587330/
https://www.ncbi.nlm.nih.gov/pubmed/28877216
http://dx.doi.org/10.1371/journal.pone.0184212
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