Integrated Computational Model of Lung Tissue Bioenergetics.
cellular metabolism
glycolysis
isolated rat lungs
mitochondrial bioenergetics
thermodynamically-constrained modeling
Journal
Frontiers in physiology
ISSN: 1664-042X
Titre abrégé: Front Physiol
Pays: Switzerland
ID NLM: 101549006
Informations de publication
Date de publication:
2019
2019
Historique:
received:
04
10
2018
accepted:
15
02
2019
entrez:
26
3
2019
pubmed:
25
3
2019
medline:
25
3
2019
Statut:
epublish
Résumé
Altered lung tissue bioenergetics plays a key role in the pathogenesis of lung diseases. A wealth of information exists regarding the bioenergetic processes in mitochondria isolated from rat lungs, cultured pulmonary endothelial cells, and intact rat lungs under physiological and pathophysiological conditions. However, the interdependence of those processes makes it difficult to quantify the impact of a change in a single or multiple process(es) on overall lung tissue bioenergetics. Integrated computational modeling provides a mechanistic and quantitative framework for the bioenergetic data at different levels of biological organization. The objective of this study was to develop and validate an integrated computational model of lung bioenergetics using existing experimental data from isolated perfused rat lungs. The model expands our recently developed computational model of the bioenergetics of mitochondria isolated from rat lungs by accounting for glucose uptake and phosphorylation, glycolysis, and the pentose phosphate pathway. For the mitochondrial region of the model, values of kinetic parameters were fixed at those estimated in our recent model of the bioenergetics of mitochondria isolated from rat lungs. For the cytosolic region of the model, intrinsic parameters such as apparent Michaelis constants were determined based on previously published enzyme kinetics data, whereas extrinsic parameters such as maximal reaction and transport velocities were estimated by fitting the model solution to published data from isolated rat lungs. The model was then validated by assessing its ability to predict existing experimental data not used for parameter estimation, including relationships between lung nucleotides content, lung lactate production rate, and lung energy charge under different experimental conditions. In addition, the model was used to gain novel insights on how lung tissue glycolytic rate is regulated by exogenous substrates such as glucose and lactate, and assess differences in the bioenergetics of mitochondria isolated from lung tissue and those of mitochondria in intact lungs. To the best of our knowledge, this is the first model of lung tissue bioenergetics. The model provides a mechanistic and quantitative framework for integrating available lung tissue bioenergetics data, and for testing novel hypotheses regarding the role of different cytosolic and mitochondrial processes in lung tissue bioenergetics.
Identifiants
pubmed: 30906264
doi: 10.3389/fphys.2019.00191
pmc: PMC6418344
doi:
Types de publication
Journal Article
Langues
eng
Pagination
191Subventions
Organisme : NHLBI NIH HHS
ID : R01 HL116530
Pays : United States
Organisme : BLRD VA
ID : I01 BX003833
Pays : United States
Organisme : NHLBI NIH HHS
ID : U01 HL122199
Pays : United States
Organisme : NHLBI NIH HHS
ID : R15 HL129209
Pays : United States
Organisme : NIGMS NIH HHS
ID : P01 GM066730
Pays : United States
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