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Periodic Breathing in Heart Failure Explained by Dynamic and Static Properties of Respiratory Control

OBJECTIVE: The respiratory operating point is determined by the interplay between the controller and plant subsystem elements within the respiratory chemoreflex feedback system. This study aimed to establish the methodological basis for quantitative analysis of the open-loop dynamic properties of th...

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Autores principales: Miyamoto, Tadayoshi, Nakahara, Hidehiro, Ueda, Shinya, Manabe, Kou, Kawai, Eriko, Inagaki, Masashi, Kawada, Toru, Sugimachi, Masaru
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Libertas Academica 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4629632/
https://www.ncbi.nlm.nih.gov/pubmed/26561001
http://dx.doi.org/10.4137/CMC.S18761
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author Miyamoto, Tadayoshi
Nakahara, Hidehiro
Ueda, Shinya
Manabe, Kou
Kawai, Eriko
Inagaki, Masashi
Kawada, Toru
Sugimachi, Masaru
author_facet Miyamoto, Tadayoshi
Nakahara, Hidehiro
Ueda, Shinya
Manabe, Kou
Kawai, Eriko
Inagaki, Masashi
Kawada, Toru
Sugimachi, Masaru
author_sort Miyamoto, Tadayoshi
collection PubMed
description OBJECTIVE: The respiratory operating point is determined by the interplay between the controller and plant subsystem elements within the respiratory chemoreflex feedback system. This study aimed to establish the methodological basis for quantitative analysis of the open-loop dynamic properties of the human respiratory control system and to apply the results to explore detailed mechanisms of the regulation of respiration and the possible mechanism of periodic breathing in chronic heart failure. METHODS AND RESULTS: In healthy volunteers, we measured arterial CO(2) partial pressure (Pa(CO2)) and minute ventilation [Formula: see text] to estimate the dynamic properties of the controller ( [Formula: see text] relation) and plant ( [Formula: see text] relation). The dynamic properties of the controller and plant approximated first- and second-order exponential models, respectively, and were described using parameters including gain, time constant, and lag time. We then used the open-loop transfer functions to simulate the closed-loop respiratory response to an exogenous disturbance, while manipulating the parameter values to deviate from normal values but within physiological ranges. By increasing both the product of gains of the two subsystem elements (total loop gain) and the lag time, the condition of system oscillation (onset of periodic breathing) was satisfied. CONCLUSION: When abnormality occurs in a part of the respiratory chemoreflex system, instability of the control system is amplified and may result in the manifestation of respiratory abnormalities such as periodic breathing.
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spelling pubmed-46296322015-11-11 Periodic Breathing in Heart Failure Explained by Dynamic and Static Properties of Respiratory Control Miyamoto, Tadayoshi Nakahara, Hidehiro Ueda, Shinya Manabe, Kou Kawai, Eriko Inagaki, Masashi Kawada, Toru Sugimachi, Masaru Clin Med Insights Cardiol Original Research OBJECTIVE: The respiratory operating point is determined by the interplay between the controller and plant subsystem elements within the respiratory chemoreflex feedback system. This study aimed to establish the methodological basis for quantitative analysis of the open-loop dynamic properties of the human respiratory control system and to apply the results to explore detailed mechanisms of the regulation of respiration and the possible mechanism of periodic breathing in chronic heart failure. METHODS AND RESULTS: In healthy volunteers, we measured arterial CO(2) partial pressure (Pa(CO2)) and minute ventilation [Formula: see text] to estimate the dynamic properties of the controller ( [Formula: see text] relation) and plant ( [Formula: see text] relation). The dynamic properties of the controller and plant approximated first- and second-order exponential models, respectively, and were described using parameters including gain, time constant, and lag time. We then used the open-loop transfer functions to simulate the closed-loop respiratory response to an exogenous disturbance, while manipulating the parameter values to deviate from normal values but within physiological ranges. By increasing both the product of gains of the two subsystem elements (total loop gain) and the lag time, the condition of system oscillation (onset of periodic breathing) was satisfied. CONCLUSION: When abnormality occurs in a part of the respiratory chemoreflex system, instability of the control system is amplified and may result in the manifestation of respiratory abnormalities such as periodic breathing. Libertas Academica 2015-10-29 /pmc/articles/PMC4629632/ /pubmed/26561001 http://dx.doi.org/10.4137/CMC.S18761 Text en © 2015 the author(s), publisher and licensee Libertas Academica Ltd. This is an open-access article distributed under the terms of the Creative Commons CC-BY-NC 3.0 License.
spellingShingle Original Research
Miyamoto, Tadayoshi
Nakahara, Hidehiro
Ueda, Shinya
Manabe, Kou
Kawai, Eriko
Inagaki, Masashi
Kawada, Toru
Sugimachi, Masaru
Periodic Breathing in Heart Failure Explained by Dynamic and Static Properties of Respiratory Control
title Periodic Breathing in Heart Failure Explained by Dynamic and Static Properties of Respiratory Control
title_full Periodic Breathing in Heart Failure Explained by Dynamic and Static Properties of Respiratory Control
title_fullStr Periodic Breathing in Heart Failure Explained by Dynamic and Static Properties of Respiratory Control
title_full_unstemmed Periodic Breathing in Heart Failure Explained by Dynamic and Static Properties of Respiratory Control
title_short Periodic Breathing in Heart Failure Explained by Dynamic and Static Properties of Respiratory Control
title_sort periodic breathing in heart failure explained by dynamic and static properties of respiratory control
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4629632/
https://www.ncbi.nlm.nih.gov/pubmed/26561001
http://dx.doi.org/10.4137/CMC.S18761
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