» Articles » PMID: 17591785

Computer Modeling of Mitochondrial Tricarboxylic Acid Cycle, Oxidative Phosphorylation, Metabolite Transport, and Electrophysiology

Overview
Journal J Biol Chem
Specialty Biochemistry
Date 2007 Jun 27
PMID 17591785
Citations 102
Authors
Affiliations
Soon will be listed here.
Abstract

A computational model of mitochondrial metabolism and electrophysiology is introduced and applied to analysis of data from isolated cardiac mitochondria and data on phosphate metabolites in striated muscle in vivo. This model is constructed based on detailed kinetics and thermodynamically balanced reaction mechanisms and a strict accounting of rapidly equilibrating biochemical species. Since building such a model requires introducing a large number of adjustable kinetic parameters, a correspondingly large amount of independent data from isolated mitochondria respiring on different substrates and subject to a variety of protocols is used to parameterize the model and ensure that it is challenged by a wide range of data corresponding to diverse conditions. The developed model is further validated by both in vitro data on isolated cardiac mitochondria and in vivo experimental measurements on human skeletal muscle. The validated model is used to predict the roles of NAD and ADP in regulating the tricarboxylic acid cycle dehydrogenase fluxes, demonstrating that NAD is the more important regulator. Further model predictions reveal that a decrease of cytosolic pH value results in decreases in mitochondrial membrane potential and a corresponding drop in the ability of the mitochondria to synthesize ATP at the hydrolysis potential required for cellular function.

Citing Articles

Calcium oscillations optimize the energetic efficiency of mitochondrial metabolism.

Voorsluijs V, Avanzini F, Falasco G, Esposito M, Skupin A iScience. 2024; 27(3):109078.

PMID: 38375217 PMC: 10875125. DOI: 10.1016/j.isci.2024.109078.


Computational Modeling of Substrate-Dependent Mitochondrial Respiration and Bioenergetics in the Heart and Kidney Cortex and Outer Medulla.

Sadri S, Zhang X, Audi S, Cowley Jr A, Dash R Function (Oxf). 2023; 4(5):zqad038.

PMID: 37575476 PMC: 10413947. DOI: 10.1093/function/zqad038.


How does exercise affect energy metabolism? An approach for cardiac muscle.

Yalcinkaya B, Genc S, Yilmaz B, Ozilgen M Heliyon. 2023; 9(6):e17164.

PMID: 37389084 PMC: 10300317. DOI: 10.1016/j.heliyon.2023.e17164.


Multi-omics Investigation of Freeze Tolerance in the Amur Sleeper, an Aquatic Ectothermic Vertebrate.

Jiang H, Lv W, Wang Y, Qian Y, Wang C, Sun N Mol Biol Evol. 2023; 40(3).

PMID: 36805964 PMC: 10036996. DOI: 10.1093/molbev/msad040.


Kinetics of the ancestral carbon metabolism pathways in deep-branching bacteria and archaea.

Sumi T, Harada K Commun Chem. 2023; 4(1):149.

PMID: 36697601 PMC: 9814661. DOI: 10.1038/s42004-021-00585-0.