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Mechanisms by which mitochondria transport calcium

American Journal of Physiology-Cell Physiology · 1990 · Vol. 258(5) · pp. C755–C786
Thomas E. GunterDouglas R. Pfeiffer

Abstract

It has been firmly established that the rapid uptake of Ca2+ by mitochondria from a wide range of sources is mediated by a uniporter which permits transport of the ion down its electrochemical gradient. Several mechanisms of Ca2+ efflux from mitochondria have also been extensively discussed in the literature. Energized mitochondria must expend a significant amount of energy to transport Ca2+ against its electrochemical gradient from the matrix space to the external space. Two separate mechanisms have been found to mediate this outward transport: a Ca2+/nNa+ exchanger and a Na(+)-independent efflux mechanism. These efflux mechanisms are considered from the perspective of available energy. In addition, a reversible Ca2(+)-induced increase in inner membrane permeability can also occur. The induction of this permeability transition is characterized by swelling of the mitochondria, leakiness to small ions such as K+, Mg2+, and Ca2+, and loss of the mitochondrial membrane potential. It has been suggested that the permeability transition and its reversal may also function as a mitochondrial Ca2+ efflux mechanism under some conditions. The characteristics of each of these mechanisms are discussed, as well as their possible physiological functions.

Mitochondrial Function and PathologyATP Synthase and ATPases ResearchPhotoreceptor and optogenetics researchUniporterEffluxMitochondrionBiophysicsIon transporterElectrochemical gradientChemistryPermeability (electromagnetism)Inner mitochondrial membraneMembrane

MeSH terms

AnimalsBiological Transport, ActiveCalciumKineticsMitochondriaModels, Biological
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References
The Ca2+-induced membrane transition in mitochondria
Archives of Biochemistry and Biophysics · 1979 · 772 citations
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