Abstract
Measurements of extra oxygen consumption, (45)Ca(2+) uptake, and the osmotic expansion of the matrix compartment show that not all permeant anions are capable of supporting and accompanying the energy-dependent transport of Ca(2+) from the medium into the matrix in respiring rat-liver mitochondria. Phosphate, arsenate, acetate, butyrate, beta-hydroxybutyrate, lactate, and bicarbonate + CO(2) supported Ca(2+) uptake, whereas the permeant anions, nitrate, thiocyanate, chlorate, and perchlorate, did not. The active anions share a common denominator, the potential ability to donate a proton to the mitochondrial matrix; the inactive anions lack this capacity. Phosphate and the other active permeant anions move into the matrix in response to the alkaline-inside electrochemical gradient of protons generated across the mitochondrial membrane by electron transport, thus forming a negative-inside anion gradient. It is postulated that the latter gradient is the immediate "pulling" force for the influx of Ca(2+) on the electrogenic Ca(2+) carrier in respiring mitochondria under intracellular conditions. Since mitochondria in the cell are normally exposed to an excess of phosphate (and the bicarbonate-CO(2) system), particularly in state 4, inward transport of these proton-yielding anions probably precedes and is necessary for inward transport of Ca(2+) and other cations under biological conditions. These observations indicate that a negative-inside gradient of phosphate generated by electron transport is a common step and provides the immediate motive power not only for (a) the inward transport of dicarboxylates and tricarboxylates and (b) the energy-dependent exchange of external ADP(3-) for internal ATP(4-) during oxidative phosphorylation, as has already been established, but also for (c) the inward transport of Ca(2+), K(+), and other cations.
MeSH Terms
Acetates/pharmacology
Animals
Anions
Arsenic/pharmacology
Bicarbonates/pharmacology
Biological Transport, Active/drug effects
Butyrates/pharmacology
Calcium/metabolism
Chlorates/pharmacology
Electron Transport
Hydroxybutyrates/pharmacology
Lactates/pharmacology
Mitochondria, Liver/metabolism
Mitochondrial Swelling
Nitrates/pharmacology
Oxidative Phosphorylation
Oxygen Consumption
Perchlorates/pharmacology
Phosphates/pharmacology
Rats
Thiocyanates/pharmacology
Chemicals
Acetates
Anions
Bicarbonates
Butyrates
Chlorates
Hydroxybutyrates
Lactates
Nitrates
Perchlorates
Phosphates
Thiocyanates
Arsenic
Calcium
Authors & Affiliations
1 authors, click to expand affiliations / ORCID
Lehninger A L
References (23)
23 references, click to expand
-
Hydrogen ion concentration changes in mitochondrial membranes.
J Biol Chem. 1966 Oct 25;241(20):4588-99
PMID: 5926170
-
Respiration-dependent transport of carbon dioxide into rat liver mitochondria.
Biochemistry. 1973 Feb 27;12(5):976-82
PMID: 4631372
-
Energy-linked ion movements in mitochondrial systems.
Adv Enzymol Relat Areas Mol Biol. 1967;29:259-320
PMID: 4881885
-
CALCIUM ION ACCUMULATION AND VOLUME CHANGES OF ISOLATED LIVER MITOCHONDRIA. CALCIUM ION-INDUCED SWELLING.
Biochem J. 1965 May;95:378-86
PMID: 14340088
-
DEPENDENCE OF RESPIRATION ON PHOSPHATE AND PHOSPHATE ACCEPTOR IN SUBMITOCHONDRIAL SYSTEMS. I. DIGITONIN FRAGMENTS.
Biochim Biophys Acta. 1963 Oct 8;78:12-26
PMID: 14098166
-
STOICHIOMETRY OF RESPIRATORY STIMULATION, ACCUMULATION OF CA++ AND PHOSPHATE, AND OXIDATIVE PHOSPHORYLATION IN RAT LIVER MITOCHONDRIA.
J Biol Chem. 1964 Nov;239:3971-80
PMID: 14257633
-
Translocation of some anions cations and acids in rat liver mitochondria.
Eur J Biochem. 1969 Jun;9(2):149-55
PMID: 5804494
-
Calcium transport in mitochondria.
FEBS Lett. 1970 Sep 18;10(1):1-5
PMID: 11945343
-
Correlation between H+ and anion movement in mitochondria and the key role of the phosphate carrier.
Eur J Biochem. 1971 Jun 11;20(3):392-9
PMID: 5581324
-
STOICHIOMETRIC RELATIONSHIPS BETWEEN ACCUMULATION OF IONS BY MITOCHONDRIA AND THE ENERGY-COUPLING SITES IN THE RESPIRATORY CHAIN.
Biochem Z. 1963;338:698-713
PMID: 14087335
-
Transport of ornithine and citrulline across the mitochondrial membrane.
J Biol Chem. 1973 Jan 25;248(2):610-8
PMID: 4684694
-
A mechanism for the reactions of calcium with mitochondria.
Proc Natl Acad Sci U S A. 1965 May;53(5):1069-76
PMID: 5222550
-
Estimation of membrane potential and pH difference across the cristae membrane of rat liver mitochondria.
Eur J Biochem. 1969 Feb;7(4):471-84
PMID: 5776240
-
DEPENDENCE OF RESPIRATION OF PHOSPHATE AND PHOSPHATE ACCEPTOR IN SUBMITOCHONDRIAL SYSTEMS. II. SONIC FRAGMENTS.
Biochim Biophys Acta. 1963 Oct 8;78:27-44
PMID: 14098181
-
Differences between the ATP-ADP ratios in the mitochondrial matrix and in the extramitochondrial space.
Eur J Biochem. 1972 Nov 7;30(3):434-40
PMID: 4674294
-
Reaction of inorganic phosphate with mitochondrial respiratory chain.
Biochemistry. 1970 Apr 14;9(8):1706-15
PMID: 4314700
-
Ion transport by heart mitochondria. XXII. Spontaneous, energy-linked accumulation of acetate and phosphate salts of monovalent cations.
Arch Biochem Biophys. 1971 Dec;147(2):545-56
PMID: 5136102
-
Systems used for the transport of substrates into mitochondria.
Br Med Bull. 1968 May;24(2):150-7
PMID: 5649935
-
THE ENERGY-LINKED REACTION OF CALCIUM WITH MITOCHONDRIA.
J Biol Chem. 1965 Jun;240:2729-48
PMID: 14304892
-
Mitochondria and calcium ion transport.
Biochem J. 1970 Sep;119(2):129-38
PMID: 4922961
-
Respiration-driven proton translocation in rat liver mitochondria.
Biochem J. 1967 Dec;105(3):1147-62
PMID: 16742541
-
Ion transport by heart mitochondria. XX. Factors affecting passive osmotic swelling of isolated mitochondria.
J Biol Chem. 1970 Oct 25;245(20):5404-11
PMID: 5469174
-
Coupling mechanisms in anionic substrate transport across the inner membrane of rat-liver mitochondria.
J Bioenerg. 1971 Sep;1(3):287-307
PMID: 4109246