AbstractRecent studies have revealed that Ca2+ not only regulates the contraction of cardiomyocytes, but can also function as a signaling agent to stimulate ATP production by the mitochondria. However, the spatiotemporal resolution of current experimental techniques limits our investigative capacity to understand this phenomenon. Here, we created a detailed three-dimensional (3D) cardiomyocyte model to study the subcellular regulatory mechanisms of myocardial energetics. The 3D cardiomyocyte model was based on the finite-element method, with detailed subcellular structures reproduced, and it included all elementary processes involved in cardiomyocyte electrophysiology, contraction, and ATP metabolism localized to specific loci. The simulati...
AbstractExisting theory suggests that mitochondria act as significant, dynamic buffers of cytosolic ...
International audienceIt is known that mitochondria play a crucial role in the handling of calcium b...
Recent electron microscopy data have revealed that cardiac mitochondria are not arranged in crystall...
AbstractIn cardiomyocyte subcellular structures, colocalization of mitochondria with Ca2+ release si...
AbstractAn intricate network of reactions is involved in matching energy supply with demand in the h...
The heart consumes large amounts of energy with each beat. Mitochondria are the source of over 95% o...
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...
AbstractWe present an integrated thermokinetic model describing control of cardiac mitochondrial bio...
AbstractThe heart is capable of balancing the rate of mitochondrial ATP production with utilization ...
The mathematical model of the compartmentalized energy transfer system in cardiac myocytes presented...
AbstractStimulation of mitochondrial oxidative metabolism by Ca2+ is now generally recognised as imp...
AbstractMitochondrial free Ca2+ may regulate mitochondrial ATP production during cardiac exercise. H...
International audienceThe mathematical model of the compartmentalized energy transfer system in card...
Intracellular calcium (Ca2+) cycling dynamics in cardiac myocytes are spatiotemporally generated by ...
AbstractExisting theory suggests that mitochondria act as significant, dynamic buffers of cytosolic ...
International audienceIt is known that mitochondria play a crucial role in the handling of calcium b...
Recent electron microscopy data have revealed that cardiac mitochondria are not arranged in crystall...
AbstractIn cardiomyocyte subcellular structures, colocalization of mitochondria with Ca2+ release si...
AbstractAn intricate network of reactions is involved in matching energy supply with demand in the h...
The heart consumes large amounts of energy with each beat. Mitochondria are the source of over 95% o...
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...
AbstractWe present an integrated thermokinetic model describing control of cardiac mitochondrial bio...
AbstractThe heart is capable of balancing the rate of mitochondrial ATP production with utilization ...
The mathematical model of the compartmentalized energy transfer system in cardiac myocytes presented...
AbstractStimulation of mitochondrial oxidative metabolism by Ca2+ is now generally recognised as imp...
AbstractMitochondrial free Ca2+ may regulate mitochondrial ATP production during cardiac exercise. H...
International audienceThe mathematical model of the compartmentalized energy transfer system in card...
Intracellular calcium (Ca2+) cycling dynamics in cardiac myocytes are spatiotemporally generated by ...
AbstractExisting theory suggests that mitochondria act as significant, dynamic buffers of cytosolic ...
International audienceIt is known that mitochondria play a crucial role in the handling of calcium b...
Recent electron microscopy data have revealed that cardiac mitochondria are not arranged in crystall...