AbstractDespite extensive research, the regulation of mitochondrial function is still not understood completely. Ample evidence shows that cytosolic Ca2+ has a strategic task in co-ordinating the cellular work load and the regeneration of ATP by mitochondria. Currently, the paradigmatic view is that Cacyt2+ taken up by the Ca2+ uniporter activates the matrix enzymes pyruvate dehydrogenase, α-ketoglutarate dehydrogenase and isocitrate dehydrogenase. However, we have recently found that Ca2+ regulates the glutamate-dependent state 3 respiration by the supply of glutamate to mitochondria via aralar, a mitochondrial glutamate/aspartate carrier. Since this activation is not affected by ruthenium red, glutamate transport into mitochondria is cont...
AbstractMitochondria are strategically localized at sites of Ca2+ release, such that increases in cy...
AbstractIn the Fifties, electron microscopy studies on neuronal cells showed that mitochondria typic...
SummaryMitochondrial Ca2+ signals have been proposed to accelerate oxidative metabolism and ATP prod...
AbstractDespite extensive research, the regulation of mitochondrial function is still not understood...
We present unexpected and novel results revealing that glutamate-dependent oxidative phosphorylation...
Mitochondrial oxidative phosphorylation (OXPHOS) and cellular workload are tightly balanced by the k...
Neuronal respiration is controlled by ATP demand and Ca2 but the roles played by each are unknown, ...
AbstractThe literature suggests that the physiological functions for which mitochondria sequester Ca...
AbstractCalcium is thought to regulate respiration but it is unclear whether this is dependent on th...
AbstractMitochondrial Ca2+ transport was initially considered important only in buffering of cytosol...
AbstractMitochondria are essential for ensuring numerous fundamental physiological processes such as...
Mitochondria are crucial in different intracellular pathways of signal transduction. Mitochondria ar...
AbstractMitochondria promptly respond to Ca2+-mediated cell stimulations with a rapid accumulation o...
The high efficiency of the neuronal calcium signaling depends on the calcium distribution in intrace...
AbstractBoth the contribution of mitochondria to intracellular calcium (Ca2+) signalling and the rol...
AbstractMitochondria are strategically localized at sites of Ca2+ release, such that increases in cy...
AbstractIn the Fifties, electron microscopy studies on neuronal cells showed that mitochondria typic...
SummaryMitochondrial Ca2+ signals have been proposed to accelerate oxidative metabolism and ATP prod...
AbstractDespite extensive research, the regulation of mitochondrial function is still not understood...
We present unexpected and novel results revealing that glutamate-dependent oxidative phosphorylation...
Mitochondrial oxidative phosphorylation (OXPHOS) and cellular workload are tightly balanced by the k...
Neuronal respiration is controlled by ATP demand and Ca2 but the roles played by each are unknown, ...
AbstractThe literature suggests that the physiological functions for which mitochondria sequester Ca...
AbstractCalcium is thought to regulate respiration but it is unclear whether this is dependent on th...
AbstractMitochondrial Ca2+ transport was initially considered important only in buffering of cytosol...
AbstractMitochondria are essential for ensuring numerous fundamental physiological processes such as...
Mitochondria are crucial in different intracellular pathways of signal transduction. Mitochondria ar...
AbstractMitochondria promptly respond to Ca2+-mediated cell stimulations with a rapid accumulation o...
The high efficiency of the neuronal calcium signaling depends on the calcium distribution in intrace...
AbstractBoth the contribution of mitochondria to intracellular calcium (Ca2+) signalling and the rol...
AbstractMitochondria are strategically localized at sites of Ca2+ release, such that increases in cy...
AbstractIn the Fifties, electron microscopy studies on neuronal cells showed that mitochondria typic...
SummaryMitochondrial Ca2+ signals have been proposed to accelerate oxidative metabolism and ATP prod...