Integrated computational model of the bioenergetics of isolated lung mitochondria.

Integrated computational modeling provides a mechanistic and quantitative framework for describing lung mitochondrial bioenergetics. Thus, the objective of this study was to develop and validate a thermodynamically-constrained integrated computational model of the bioenergetics of isolated lung mito...

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Main Authors: Xiao Zhang, Ranjan K Dash, Elizabeth R Jacobs, Amadou K S Camara, Anne V Clough, Said H Audi
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2018-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC5995348?pdf=render
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spelling doaj-52e96fc597f94de885e989ff0b92d33d2020-11-25T01:46:09ZengPublic Library of Science (PLoS)PLoS ONE1932-62032018-01-01136e019792110.1371/journal.pone.0197921Integrated computational model of the bioenergetics of isolated lung mitochondria.Xiao ZhangRanjan K DashElizabeth R JacobsAmadou K S CamaraAnne V CloughSaid H AudiIntegrated computational modeling provides a mechanistic and quantitative framework for describing lung mitochondrial bioenergetics. Thus, the objective of this study was to develop and validate a thermodynamically-constrained integrated computational model of the bioenergetics of isolated lung mitochondria. The model incorporates the major biochemical reactions and transport processes in lung mitochondria. A general framework was developed to model those biochemical reactions and transport processes. Intrinsic model parameters such as binding constants were estimated using previously published isolated enzymes and transporters kinetic data. Extrinsic model parameters such as maximal reaction and transport velocities were estimated by fitting the integrated bioenergetics model to published and new tricarboxylic acid cycle and respirometry data measured in isolated rat lung mitochondria. The integrated model was then validated by assessing its ability to predict experimental data not used for the estimation of the extrinsic model parameters. For example, the model was able to predict reasonably well the substrate and temperature dependency of mitochondrial oxygen consumption, kinetics of NADH redox status, and the kinetics of mitochondrial accumulation of the cationic dye rhodamine 123, driven by mitochondrial membrane potential, under different respiratory states. The latter required the coupling of the integrated bioenergetics model to a pharmacokinetic model for the mitochondrial uptake of rhodamine 123 from buffer. The integrated bioenergetics model provides a mechanistic and quantitative framework for 1) integrating experimental data from isolated lung mitochondria under diverse experimental conditions, and 2) assessing the impact of a change in one or more mitochondrial processes on overall lung mitochondrial bioenergetics. In addition, the model provides important insights into the bioenergetics and respiration of lung mitochondria and how they differ from those of mitochondria from other organs. To the best of our knowledge, this model is the first for the bioenergetics of isolated lung mitochondria.http://europepmc.org/articles/PMC5995348?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Xiao Zhang
Ranjan K Dash
Elizabeth R Jacobs
Amadou K S Camara
Anne V Clough
Said H Audi
spellingShingle Xiao Zhang
Ranjan K Dash
Elizabeth R Jacobs
Amadou K S Camara
Anne V Clough
Said H Audi
Integrated computational model of the bioenergetics of isolated lung mitochondria.
PLoS ONE
author_facet Xiao Zhang
Ranjan K Dash
Elizabeth R Jacobs
Amadou K S Camara
Anne V Clough
Said H Audi
author_sort Xiao Zhang
title Integrated computational model of the bioenergetics of isolated lung mitochondria.
title_short Integrated computational model of the bioenergetics of isolated lung mitochondria.
title_full Integrated computational model of the bioenergetics of isolated lung mitochondria.
title_fullStr Integrated computational model of the bioenergetics of isolated lung mitochondria.
title_full_unstemmed Integrated computational model of the bioenergetics of isolated lung mitochondria.
title_sort integrated computational model of the bioenergetics of isolated lung mitochondria.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2018-01-01
description Integrated computational modeling provides a mechanistic and quantitative framework for describing lung mitochondrial bioenergetics. Thus, the objective of this study was to develop and validate a thermodynamically-constrained integrated computational model of the bioenergetics of isolated lung mitochondria. The model incorporates the major biochemical reactions and transport processes in lung mitochondria. A general framework was developed to model those biochemical reactions and transport processes. Intrinsic model parameters such as binding constants were estimated using previously published isolated enzymes and transporters kinetic data. Extrinsic model parameters such as maximal reaction and transport velocities were estimated by fitting the integrated bioenergetics model to published and new tricarboxylic acid cycle and respirometry data measured in isolated rat lung mitochondria. The integrated model was then validated by assessing its ability to predict experimental data not used for the estimation of the extrinsic model parameters. For example, the model was able to predict reasonably well the substrate and temperature dependency of mitochondrial oxygen consumption, kinetics of NADH redox status, and the kinetics of mitochondrial accumulation of the cationic dye rhodamine 123, driven by mitochondrial membrane potential, under different respiratory states. The latter required the coupling of the integrated bioenergetics model to a pharmacokinetic model for the mitochondrial uptake of rhodamine 123 from buffer. The integrated bioenergetics model provides a mechanistic and quantitative framework for 1) integrating experimental data from isolated lung mitochondria under diverse experimental conditions, and 2) assessing the impact of a change in one or more mitochondrial processes on overall lung mitochondrial bioenergetics. In addition, the model provides important insights into the bioenergetics and respiration of lung mitochondria and how they differ from those of mitochondria from other organs. To the best of our knowledge, this model is the first for the bioenergetics of isolated lung mitochondria.
url http://europepmc.org/articles/PMC5995348?pdf=render
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