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Calcium, ATP, and ROS: a mitochondrial love-hate triangle

American Journal of Physiology-Cell Physiology · 2004 · Vol. 287(4) · pp. C817–C833
Paul S. BrookesYisang YoonJames L. RobothamM.W. AndersShey‐Shing Sheu

Abstract

The mitochondrion is at the core of cellular energy metabolism, being the site of most ATP generation. Calcium is a key regulator of mitochondrial function and acts at several levels within the organelle to stimulate ATP synthesis. However, the dysregulation of mitochondrial Ca(2+) homeostasis is now recognized to play a key role in several pathologies. For example, mitochondrial matrix Ca(2+) overload can lead to enhanced generation of reactive oxygen species, triggering of the permeability transition pore, and cytochrome c release, leading to apoptosis. Despite progress regarding the independent roles of both Ca(2+) and mitochondrial dysfunction in disease, the molecular mechanisms by which Ca(2+) can elicit mitochondrial dysfunction remain elusive. This review highlights the delicate balance between the positive and negative effects of Ca(2+) and the signaling events that perturb this balance. Overall, a "two-hit" hypothesis is developed, in which Ca(2+) plus another pathological stimulus can bring about mitochondrial dysfunction.

MeSH terms

Adenosine TriphosphateCalciumEnergy MetabolismIon ChannelsMitochondriaSignal TransductionReactive Oxygen Species

Funding

  • Medical Center, University of Rochester
Citations
2,551
FWCI
26.78
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References
233
Percentile
100%
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References
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Dynamics of mitochondrial morphology in healthy cells and during apoptosis
Cell Death and Differentiation · 2003 · 763 citations
Mitochondria and calcium: from cell signalling to cell death
The Journal of Physiology · 2000 · 1,262 citations
Mitochondrial formation of reactive oxygen species
The Journal of Physiology · 2003 · 3,946 citations
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