Cargando…

Physiological Regulation of Pulmonary Microcirculation under Mechanical Ventilation at Different Cardiac Outputs and Positive End-Expiratory Pressures in a Porcine Model

This study was performed to visualize the hemodynamic effects of pulmonary microcirculation and ventilation/perfusion (V/Q) matching after mechanical ventilation under different cardiac outputs and positive end-expiratory pressures (PEEPs). Ten experimental pigs were randomly divided into high and l...

Descripción completa

Detalles Bibliográficos
Autores principales: Pan, Pan, Li, Lina, Xie, Fei, Hu, Xingshuo, Guo, Yinghua, Xie, Lixin, Su, Longxiang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9861575/
https://www.ncbi.nlm.nih.gov/pubmed/36675768
http://dx.doi.org/10.3390/jpm13010107
_version_ 1784874875580579840
author Pan, Pan
Li, Lina
Xie, Fei
Hu, Xingshuo
Guo, Yinghua
Xie, Lixin
Su, Longxiang
author_facet Pan, Pan
Li, Lina
Xie, Fei
Hu, Xingshuo
Guo, Yinghua
Xie, Lixin
Su, Longxiang
author_sort Pan, Pan
collection PubMed
description This study was performed to visualize the hemodynamic effects of pulmonary microcirculation and ventilation/perfusion (V/Q) matching after mechanical ventilation under different cardiac outputs and positive end-expiratory pressures (PEEPs). Ten experimental pigs were randomly divided into high and low tidal volume groups, and ventilation/perfusion were measured by electrical impedance tomography (EIT) at different PEEPs. Then, all the pigs were redivided into high cardiac output (CO) and low CO groups and measured by EIT at different PEEP levels with a low tidal volume. Additionally, sidestream dark field (SDF) was used to measure pulmonary microcirculation. Hemodynamic parameters and respiratory mechanics parameters were recorded. As PEEP increased at high tidal volume, blood flow was impaired at a higher PEEP (20 cmH(2)O) compared with low tidal volume (shunt: 30.01 ± 0.69% vs. 17.95 ± 0.72%; V/Q ratio: 65.12 ± 1.97% vs. 76.57 ± 1.25%, p < 0.01). Low tidal volume combined with an appropriate PEEP is the best option from the match between ventilation and pulmonary blood flow. Increasing PEEP can solve the problem of excessive shunt at high CO, and the V/Q ratio tends to match. At low CO, the increased dead space can reach as high as 64.64 ± 7.13% when PEEP = 20 cmH(2)O. With increasing PEEP, the microcirculation index deteriorates, including total vessel density (TVD), proportion of perfused vessel (PPV), perfused vessel density (PVD), and microcirculatory flow index (MFI). The periodic collapse of pulmonary capillaries or interruption of blood flow obviously occurred with high PEEP. The hemodynamic parameters indicated that the transpulmonary capillary wall pressure (Pcap) of the low CO group was negative at PEEP = 5 cmH(2)O, which determines the opening and closing of the pulmonary microcirculation and controls lung perfusion and the production of extravascular lung water. Therefore, it is essential to couple macrocirculation and pulmonary microcirculation during mechanical ventilation by improving shunting and optimizing Pcap.
format Online
Article
Text
id pubmed-9861575
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-98615752023-01-22 Physiological Regulation of Pulmonary Microcirculation under Mechanical Ventilation at Different Cardiac Outputs and Positive End-Expiratory Pressures in a Porcine Model Pan, Pan Li, Lina Xie, Fei Hu, Xingshuo Guo, Yinghua Xie, Lixin Su, Longxiang J Pers Med Article This study was performed to visualize the hemodynamic effects of pulmonary microcirculation and ventilation/perfusion (V/Q) matching after mechanical ventilation under different cardiac outputs and positive end-expiratory pressures (PEEPs). Ten experimental pigs were randomly divided into high and low tidal volume groups, and ventilation/perfusion were measured by electrical impedance tomography (EIT) at different PEEPs. Then, all the pigs were redivided into high cardiac output (CO) and low CO groups and measured by EIT at different PEEP levels with a low tidal volume. Additionally, sidestream dark field (SDF) was used to measure pulmonary microcirculation. Hemodynamic parameters and respiratory mechanics parameters were recorded. As PEEP increased at high tidal volume, blood flow was impaired at a higher PEEP (20 cmH(2)O) compared with low tidal volume (shunt: 30.01 ± 0.69% vs. 17.95 ± 0.72%; V/Q ratio: 65.12 ± 1.97% vs. 76.57 ± 1.25%, p < 0.01). Low tidal volume combined with an appropriate PEEP is the best option from the match between ventilation and pulmonary blood flow. Increasing PEEP can solve the problem of excessive shunt at high CO, and the V/Q ratio tends to match. At low CO, the increased dead space can reach as high as 64.64 ± 7.13% when PEEP = 20 cmH(2)O. With increasing PEEP, the microcirculation index deteriorates, including total vessel density (TVD), proportion of perfused vessel (PPV), perfused vessel density (PVD), and microcirculatory flow index (MFI). The periodic collapse of pulmonary capillaries or interruption of blood flow obviously occurred with high PEEP. The hemodynamic parameters indicated that the transpulmonary capillary wall pressure (Pcap) of the low CO group was negative at PEEP = 5 cmH(2)O, which determines the opening and closing of the pulmonary microcirculation and controls lung perfusion and the production of extravascular lung water. Therefore, it is essential to couple macrocirculation and pulmonary microcirculation during mechanical ventilation by improving shunting and optimizing Pcap. MDPI 2023-01-03 /pmc/articles/PMC9861575/ /pubmed/36675768 http://dx.doi.org/10.3390/jpm13010107 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
Pan, Pan
Li, Lina
Xie, Fei
Hu, Xingshuo
Guo, Yinghua
Xie, Lixin
Su, Longxiang
Physiological Regulation of Pulmonary Microcirculation under Mechanical Ventilation at Different Cardiac Outputs and Positive End-Expiratory Pressures in a Porcine Model
title Physiological Regulation of Pulmonary Microcirculation under Mechanical Ventilation at Different Cardiac Outputs and Positive End-Expiratory Pressures in a Porcine Model
title_full Physiological Regulation of Pulmonary Microcirculation under Mechanical Ventilation at Different Cardiac Outputs and Positive End-Expiratory Pressures in a Porcine Model
title_fullStr Physiological Regulation of Pulmonary Microcirculation under Mechanical Ventilation at Different Cardiac Outputs and Positive End-Expiratory Pressures in a Porcine Model
title_full_unstemmed Physiological Regulation of Pulmonary Microcirculation under Mechanical Ventilation at Different Cardiac Outputs and Positive End-Expiratory Pressures in a Porcine Model
title_short Physiological Regulation of Pulmonary Microcirculation under Mechanical Ventilation at Different Cardiac Outputs and Positive End-Expiratory Pressures in a Porcine Model
title_sort physiological regulation of pulmonary microcirculation under mechanical ventilation at different cardiac outputs and positive end-expiratory pressures in a porcine model
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9861575/
https://www.ncbi.nlm.nih.gov/pubmed/36675768
http://dx.doi.org/10.3390/jpm13010107
work_keys_str_mv AT panpan physiologicalregulationofpulmonarymicrocirculationundermechanicalventilationatdifferentcardiacoutputsandpositiveendexpiratorypressuresinaporcinemodel
AT lilina physiologicalregulationofpulmonarymicrocirculationundermechanicalventilationatdifferentcardiacoutputsandpositiveendexpiratorypressuresinaporcinemodel
AT xiefei physiologicalregulationofpulmonarymicrocirculationundermechanicalventilationatdifferentcardiacoutputsandpositiveendexpiratorypressuresinaporcinemodel
AT huxingshuo physiologicalregulationofpulmonarymicrocirculationundermechanicalventilationatdifferentcardiacoutputsandpositiveendexpiratorypressuresinaporcinemodel
AT guoyinghua physiologicalregulationofpulmonarymicrocirculationundermechanicalventilationatdifferentcardiacoutputsandpositiveendexpiratorypressuresinaporcinemodel
AT xielixin physiologicalregulationofpulmonarymicrocirculationundermechanicalventilationatdifferentcardiacoutputsandpositiveendexpiratorypressuresinaporcinemodel
AT sulongxiang physiologicalregulationofpulmonarymicrocirculationundermechanicalventilationatdifferentcardiacoutputsandpositiveendexpiratorypressuresinaporcinemodel