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Ventilation Induces Changes in Pulse Wave Transit Time in the Pulmonary Artery

Pulse wave transit time (PWTT) shortens as pulmonary artery pressure (PAP) increases and was therefore suggested as a surrogate parameter for PAP. The aim of this analysis was to reveal patterns and potential mechanisms of ventilation-induced periodic changes in PWTT under resting conditions. To mea...

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Autores principales: Mueller-Graf, Fabian, Frenkel, Paul, Albus, Chiara Felicitas, Henkel, Maike, Reuter, Susanne, Vollmar, Brigitte, Tusman, Gerardo, Adler, Andy, Pulletz, Sven, Böhm, Stephan H., Zitzmann, Amelie, Reuter, Daniel A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9855784/
https://www.ncbi.nlm.nih.gov/pubmed/36672690
http://dx.doi.org/10.3390/biomedicines11010182
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author Mueller-Graf, Fabian
Frenkel, Paul
Albus, Chiara Felicitas
Henkel, Maike
Reuter, Susanne
Vollmar, Brigitte
Tusman, Gerardo
Adler, Andy
Pulletz, Sven
Böhm, Stephan H.
Zitzmann, Amelie
Reuter, Daniel A.
author_facet Mueller-Graf, Fabian
Frenkel, Paul
Albus, Chiara Felicitas
Henkel, Maike
Reuter, Susanne
Vollmar, Brigitte
Tusman, Gerardo
Adler, Andy
Pulletz, Sven
Böhm, Stephan H.
Zitzmann, Amelie
Reuter, Daniel A.
author_sort Mueller-Graf, Fabian
collection PubMed
description Pulse wave transit time (PWTT) shortens as pulmonary artery pressure (PAP) increases and was therefore suggested as a surrogate parameter for PAP. The aim of this analysis was to reveal patterns and potential mechanisms of ventilation-induced periodic changes in PWTT under resting conditions. To measure both PWTT and PAP in five healthy pigs, two pulmonary artery Mikro-Tip™ catheters were inserted into the pulmonary vasculature: one with the tip placed in the pulmonary artery trunk, and a second one placed in a distal segment of the pulmonary artery. Animals received pressure-controlled mechanical ventilation. Ventilation-dependent changes were seen in both variables, PWTT and mean PAP; however, changes in PWTT were not synchronous with changes in PAP. Thus, plotting the value of PWTT for each heartbeat over the respective PAP revealed a characteristic hysteresis. At the beginning of inspiration, PAP rose while PWTT remained constant. During further inspiration, PWTT started to decrease rapidly as mPAP was about to reach its plateau. The same time course was observed during expiration: while mPAP approached its minimum, PWTT increased rapidly. During apnea this hysteresis disappeared. Thus, non-synchronous ventilation-induced changes in PWTT and PAP were found with inspiration causing a significant shortening of PWTT. Therefore, it is suggested that the respiratory cycle should be considered when using PWTT as a surrogate for PAP.
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spelling pubmed-98557842023-01-21 Ventilation Induces Changes in Pulse Wave Transit Time in the Pulmonary Artery Mueller-Graf, Fabian Frenkel, Paul Albus, Chiara Felicitas Henkel, Maike Reuter, Susanne Vollmar, Brigitte Tusman, Gerardo Adler, Andy Pulletz, Sven Böhm, Stephan H. Zitzmann, Amelie Reuter, Daniel A. Biomedicines Article Pulse wave transit time (PWTT) shortens as pulmonary artery pressure (PAP) increases and was therefore suggested as a surrogate parameter for PAP. The aim of this analysis was to reveal patterns and potential mechanisms of ventilation-induced periodic changes in PWTT under resting conditions. To measure both PWTT and PAP in five healthy pigs, two pulmonary artery Mikro-Tip™ catheters were inserted into the pulmonary vasculature: one with the tip placed in the pulmonary artery trunk, and a second one placed in a distal segment of the pulmonary artery. Animals received pressure-controlled mechanical ventilation. Ventilation-dependent changes were seen in both variables, PWTT and mean PAP; however, changes in PWTT were not synchronous with changes in PAP. Thus, plotting the value of PWTT for each heartbeat over the respective PAP revealed a characteristic hysteresis. At the beginning of inspiration, PAP rose while PWTT remained constant. During further inspiration, PWTT started to decrease rapidly as mPAP was about to reach its plateau. The same time course was observed during expiration: while mPAP approached its minimum, PWTT increased rapidly. During apnea this hysteresis disappeared. Thus, non-synchronous ventilation-induced changes in PWTT and PAP were found with inspiration causing a significant shortening of PWTT. Therefore, it is suggested that the respiratory cycle should be considered when using PWTT as a surrogate for PAP. MDPI 2023-01-11 /pmc/articles/PMC9855784/ /pubmed/36672690 http://dx.doi.org/10.3390/biomedicines11010182 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Mueller-Graf, Fabian
Frenkel, Paul
Albus, Chiara Felicitas
Henkel, Maike
Reuter, Susanne
Vollmar, Brigitte
Tusman, Gerardo
Adler, Andy
Pulletz, Sven
Böhm, Stephan H.
Zitzmann, Amelie
Reuter, Daniel A.
Ventilation Induces Changes in Pulse Wave Transit Time in the Pulmonary Artery
title Ventilation Induces Changes in Pulse Wave Transit Time in the Pulmonary Artery
title_full Ventilation Induces Changes in Pulse Wave Transit Time in the Pulmonary Artery
title_fullStr Ventilation Induces Changes in Pulse Wave Transit Time in the Pulmonary Artery
title_full_unstemmed Ventilation Induces Changes in Pulse Wave Transit Time in the Pulmonary Artery
title_short Ventilation Induces Changes in Pulse Wave Transit Time in the Pulmonary Artery
title_sort ventilation induces changes in pulse wave transit time in the pulmonary artery
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9855784/
https://www.ncbi.nlm.nih.gov/pubmed/36672690
http://dx.doi.org/10.3390/biomedicines11010182
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