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A Joint Computational Respiratory Neural Network-Biomechanical Model for Breathing and Airway Defensive Behaviors

Data-driven computational neural network models have been used to study mechanisms for generating the motor patterns for breathing and breathing related behaviors such as coughing. These models have commonly been evaluated in open loop conditions or with feedback of lung volume simply represented as...

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Autores principales: O’Connor, Russell, Segers, Lauren S., Morris, Kendall F., Nuding, Sarah C., Pitts, Teresa, Bolser, Donald C., Davenport, Paul W., Lindsey, Bruce G.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Research Foundation 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3429040/
https://www.ncbi.nlm.nih.gov/pubmed/22934020
http://dx.doi.org/10.3389/fphys.2012.00264
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author O’Connor, Russell
Segers, Lauren S.
Morris, Kendall F.
Nuding, Sarah C.
Pitts, Teresa
Bolser, Donald C.
Davenport, Paul W.
Lindsey, Bruce G.
author_facet O’Connor, Russell
Segers, Lauren S.
Morris, Kendall F.
Nuding, Sarah C.
Pitts, Teresa
Bolser, Donald C.
Davenport, Paul W.
Lindsey, Bruce G.
author_sort O’Connor, Russell
collection PubMed
description Data-driven computational neural network models have been used to study mechanisms for generating the motor patterns for breathing and breathing related behaviors such as coughing. These models have commonly been evaluated in open loop conditions or with feedback of lung volume simply represented as a filtered version of phrenic motor output. Limitations of these approaches preclude assessment of the influence of mechanical properties of the musculoskeletal system and motivated development of a biomechanical model of the respiratory muscles, airway, and lungs using published measures from human subjects. Here we describe the model and some aspects of its behavior when linked to a computational brainstem respiratory network model for breathing and airway defensive behavior composed of discrete “integrate and fire” populations. The network incorporated multiple circuit paths and operations for tuning inspiratory drive suggested by prior work. Results from neuromechanical system simulations included generation of a eupneic-like breathing pattern and the observation that increased respiratory drive and operating volume result in higher peak flow rates during cough, even when the expiratory drive is unchanged, or when the expiratory abdominal pressure is unchanged. Sequential elimination of the model’s sources of inspiratory drive during cough also suggested a role for disinhibitory regulation via tonic expiratory neurons, a result that was subsequently supported by an analysis of in vivo data. Comparisons with antecedent models, discrepancies with experimental results, and some model limitations are noted.
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spelling pubmed-34290402012-08-29 A Joint Computational Respiratory Neural Network-Biomechanical Model for Breathing and Airway Defensive Behaviors O’Connor, Russell Segers, Lauren S. Morris, Kendall F. Nuding, Sarah C. Pitts, Teresa Bolser, Donald C. Davenport, Paul W. Lindsey, Bruce G. Front Physiol Physiology Data-driven computational neural network models have been used to study mechanisms for generating the motor patterns for breathing and breathing related behaviors such as coughing. These models have commonly been evaluated in open loop conditions or with feedback of lung volume simply represented as a filtered version of phrenic motor output. Limitations of these approaches preclude assessment of the influence of mechanical properties of the musculoskeletal system and motivated development of a biomechanical model of the respiratory muscles, airway, and lungs using published measures from human subjects. Here we describe the model and some aspects of its behavior when linked to a computational brainstem respiratory network model for breathing and airway defensive behavior composed of discrete “integrate and fire” populations. The network incorporated multiple circuit paths and operations for tuning inspiratory drive suggested by prior work. Results from neuromechanical system simulations included generation of a eupneic-like breathing pattern and the observation that increased respiratory drive and operating volume result in higher peak flow rates during cough, even when the expiratory drive is unchanged, or when the expiratory abdominal pressure is unchanged. Sequential elimination of the model’s sources of inspiratory drive during cough also suggested a role for disinhibitory regulation via tonic expiratory neurons, a result that was subsequently supported by an analysis of in vivo data. Comparisons with antecedent models, discrepancies with experimental results, and some model limitations are noted. Frontiers Research Foundation 2012-07-23 /pmc/articles/PMC3429040/ /pubmed/22934020 http://dx.doi.org/10.3389/fphys.2012.00264 Text en Copyright © 2012 O’Connor, Segers, Morris, Nuding, Pitts, Bolser, Davenport and Lindsey. http://www.frontiersin.org/licenseagreement This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in other forums, provided the original authors and source are credited and subject to any copyright notices concerning any third-party graphics etc.
spellingShingle Physiology
O’Connor, Russell
Segers, Lauren S.
Morris, Kendall F.
Nuding, Sarah C.
Pitts, Teresa
Bolser, Donald C.
Davenport, Paul W.
Lindsey, Bruce G.
A Joint Computational Respiratory Neural Network-Biomechanical Model for Breathing and Airway Defensive Behaviors
title A Joint Computational Respiratory Neural Network-Biomechanical Model for Breathing and Airway Defensive Behaviors
title_full A Joint Computational Respiratory Neural Network-Biomechanical Model for Breathing and Airway Defensive Behaviors
title_fullStr A Joint Computational Respiratory Neural Network-Biomechanical Model for Breathing and Airway Defensive Behaviors
title_full_unstemmed A Joint Computational Respiratory Neural Network-Biomechanical Model for Breathing and Airway Defensive Behaviors
title_short A Joint Computational Respiratory Neural Network-Biomechanical Model for Breathing and Airway Defensive Behaviors
title_sort joint computational respiratory neural network-biomechanical model for breathing and airway defensive behaviors
topic Physiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3429040/
https://www.ncbi.nlm.nih.gov/pubmed/22934020
http://dx.doi.org/10.3389/fphys.2012.00264
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