European Journal of Biochemistry · 1978 · 189 citations · 35 references
Cardiac MuscleRedox BiologyCellular PhysiologyOxidative StressInner MembraneCa2+ TransportMembrane TransportCardiologyBiophysicsCell PhysiologyCa2+ InfluxMolecular PhysiologyBiochemistryIon ChannelsNet Charge TransferSignal TransductionMitochondrial FunctionPhysiologyCardiac MitochondriaElectrophysiologyCardiovascular PhysiologyMetabolismMedicine
A method is described that permits simultaneous determination of the net charge transfer associated with Ca2+ transport by the ruthenium-red-sensitive carrier and the ionized internal [Ca2+] in heart mitochondria. The data indicate that this carrier catalyses a charge-uncompensated flux of Ca2+. Full charge compensation for Ca2+ influx is provided by the respiration-dependent efflux of H+. The net efflux of Ca2+ induced by Na+ is analysed in terms of two other carriers, a Na+-Ca2+ antiporter and a Na+-H+ antiporter. Evidence is presented that these two carriers are separate and that the Na+-H+ exchange is the more rapid. The fluxes of Ca2+, Na+ and H+ during the Na+-induced efflux of Ca2+ support a series of events in which the Na+-H+ exchange enables unidirectional Ca2+ fluxes via the uniport and antiport systems to be integrated into a cycle.
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David G. Nicholls · European Journal of Biochemistry · 1974 · 715 citations · Full text
Bioelectrochemistry, Ion Distribution, Mitochondrial Biology +21
Lech Wojtczak, Zbigniew Kaniuga · Nature · 1966 · 691 citations
Mitochondrial Disease, Mitochondrial Biogenesis, Mitochondrial Function +9
William J. Waddell, Thomas Butler · Journal of Clinical Investigation · 1959 · 684 citations · Full text