AbstractWe present an integrated thermokinetic model describing control of cardiac mitochondrial bioenergetics. The model describes the tricarboxylic acid (TCA) cycle, oxidative phosphorylation, and mitochondrial Ca2+ handling. The kinetic component of the model includes effectors of the TCA cycle enzymes regulating production of NADH and FADH2, which in turn are used by the electron transport chain to establish a proton motive force (ΔμH), driving the F1F0-ATPase. In addition, mitochondrial matrix Ca2+, determined by Ca2+ uniporter and Na+/Ca2+ exchanger activities, regulates activity of the TCA cycle enzymes isocitrate dehydrogenase and α-ketoglutarate dehydrogenase. The model is described by twelve ordinary differential equations for the...
The mathematical model of the compartmentalized energy transfer system in cardiac myocytes presented...
This project is in the area of “Computational Biology” or “Systems Biology”. Mathe-matical modelling...
AbstractThe heart is capable of balancing the rate of mitochondrial ATP production with utilization ...
ABSTRACT We present an integrated thermokinetic model describing control of cardiac mitochondrial bi...
AbstractWe present an integrated thermokinetic model describing control of cardiac mitochondrial bio...
AbstractAn intricate network of reactions is involved in matching energy supply with demand in the h...
AbstractUnderstanding the regulation and control of complex networks of reactions requires analytica...
The regulation of cardiac cellular bioenergetics is critical for maintaining normal cell function, y...
International audienceIt is known that mitochondria play a crucial role in the handling of calcium b...
AbstractIt has been observed experimentally that cells from failing hearts exhibit elevated levels o...
AbstractRecent studies have revealed that Ca2+ not only regulates the contraction of cardiomyocytes,...
Cardiac mitochondria are intracellular organelles that play an important role in energy metabolism a...
Cardiac mitochondria are intracellular organelles that have many crucial roles, including energy met...
AbstractIn cardiomyocyte subcellular structures, colocalization of mitochondria with Ca2+ release si...
The response of the steady-state level of mitochondrial NAD(P)H of individual cardiac myocytes to su...
The mathematical model of the compartmentalized energy transfer system in cardiac myocytes presented...
This project is in the area of “Computational Biology” or “Systems Biology”. Mathe-matical modelling...
AbstractThe heart is capable of balancing the rate of mitochondrial ATP production with utilization ...
ABSTRACT We present an integrated thermokinetic model describing control of cardiac mitochondrial bi...
AbstractWe present an integrated thermokinetic model describing control of cardiac mitochondrial bio...
AbstractAn intricate network of reactions is involved in matching energy supply with demand in the h...
AbstractUnderstanding the regulation and control of complex networks of reactions requires analytica...
The regulation of cardiac cellular bioenergetics is critical for maintaining normal cell function, y...
International audienceIt is known that mitochondria play a crucial role in the handling of calcium b...
AbstractIt has been observed experimentally that cells from failing hearts exhibit elevated levels o...
AbstractRecent studies have revealed that Ca2+ not only regulates the contraction of cardiomyocytes,...
Cardiac mitochondria are intracellular organelles that play an important role in energy metabolism a...
Cardiac mitochondria are intracellular organelles that have many crucial roles, including energy met...
AbstractIn cardiomyocyte subcellular structures, colocalization of mitochondria with Ca2+ release si...
The response of the steady-state level of mitochondrial NAD(P)H of individual cardiac myocytes to su...
The mathematical model of the compartmentalized energy transfer system in cardiac myocytes presented...
This project is in the area of “Computational Biology” or “Systems Biology”. Mathe-matical modelling...
AbstractThe heart is capable of balancing the rate of mitochondrial ATP production with utilization ...