AbstractThe heart is capable of balancing the rate of mitochondrial ATP production with utilization continuously over a wide range of activity. This results in a constant phosphorylation potential despite a large change in metabolite turnover. The molecular mechanisms responsible for generating this energy homeostasis are poorly understood. The best candidate for a cytosolic signaling molecule reflecting ATP hydrolysis is Ca2+. Since Ca2+ initiates and powers muscle contraction as well as serves as the primary substrate for SERCA, Ca2+ is an ideal feed-forward signal for priming ATP production. With the sarcoplasmic reticulum to cytosolic Ca2+ gradient near equilibrium with the free energy of ATP, cytosolic Ca2+ release is exquisitely sensi...
AbstractMitochondrial involvement in the regulation of cytosolic calcium concentration ([Ca2+]i) in ...
Mitochondria match ATP supply to fluctuations in cellular energy requirements. Cellular energy requi...
AbstractMitochondrial free Ca2+ may regulate mitochondrial ATP production during cardiac exercise. H...
AbstractThe heart is capable of balancing the rate of mitochondrial ATP production with utilization ...
AbstractStimulation of mitochondrial oxidative metabolism by Ca2+ is now generally recognised as imp...
AbstractMitochondrial Ca2+ transport was initially considered important only in buffering of cytosol...
The regulation of cardiac cellular bioenergetics is critical for maintaining normal cell function, y...
AbstractCardiac oxidative ATP generation is finely tuned to match several-fold increases in energy d...
AbstractThe literature suggests that the physiological functions for which mitochondria sequester Ca...
AbstractMitochondrial Ca2+ transport was initially considered important only in buffering of cytosol...
doi:10.1152/ajpcell.00208.2006.—This review focuses on the different mechanisms involved in the adju...
AbstractRegulation of intramitochondrial free calcium ([Ca2+]m) is critical in both physiological an...
SummaryMitochondrial Ca2+ signals have been proposed to accelerate oxidative metabolism and ATP prod...
AbstractMitochondria are strategically localized at sites of Ca2+ release, such that increases in cy...
AbstractBoth the contribution of mitochondria to intracellular calcium (Ca2+) signalling and the rol...
AbstractMitochondrial involvement in the regulation of cytosolic calcium concentration ([Ca2+]i) in ...
Mitochondria match ATP supply to fluctuations in cellular energy requirements. Cellular energy requi...
AbstractMitochondrial free Ca2+ may regulate mitochondrial ATP production during cardiac exercise. H...
AbstractThe heart is capable of balancing the rate of mitochondrial ATP production with utilization ...
AbstractStimulation of mitochondrial oxidative metabolism by Ca2+ is now generally recognised as imp...
AbstractMitochondrial Ca2+ transport was initially considered important only in buffering of cytosol...
The regulation of cardiac cellular bioenergetics is critical for maintaining normal cell function, y...
AbstractCardiac oxidative ATP generation is finely tuned to match several-fold increases in energy d...
AbstractThe literature suggests that the physiological functions for which mitochondria sequester Ca...
AbstractMitochondrial Ca2+ transport was initially considered important only in buffering of cytosol...
doi:10.1152/ajpcell.00208.2006.—This review focuses on the different mechanisms involved in the adju...
AbstractRegulation of intramitochondrial free calcium ([Ca2+]m) is critical in both physiological an...
SummaryMitochondrial Ca2+ signals have been proposed to accelerate oxidative metabolism and ATP prod...
AbstractMitochondria are strategically localized at sites of Ca2+ release, such that increases in cy...
AbstractBoth the contribution of mitochondria to intracellular calcium (Ca2+) signalling and the rol...
AbstractMitochondrial involvement in the regulation of cytosolic calcium concentration ([Ca2+]i) in ...
Mitochondria match ATP supply to fluctuations in cellular energy requirements. Cellular energy requi...
AbstractMitochondrial free Ca2+ may regulate mitochondrial ATP production during cardiac exercise. H...