Abstract
1. The concentrations of the oxidized and reduced substrates of the ;malic' enzyme (EC 1.1.1.40) and isocitrate dehydrogenase (EC 1.1.1.42) were measured in freeze-clamped rat livers. By assuming that the reactants of these dehydrogenase systems are at equilibrium in the cytoplasm the [free NADP(+)]/[free NADPH] ratio was calculated. The justification of the assumption is discussed. 2. The values of this ratio obtained under different nutritional conditions (well-fed, 48hr.-starved, fed with a low-carbohydrate diet, fed with a high-sucrose diet) were all of the same order of magnitude although characteristic changes occurred on varying the diet. The value of the ratio fell on starvation and on feeding with the low-carbohydrate diet and rose slightly on feeding with the high-sucrose diet. 3. The mean values of the ratio were calculated to be between 0.001 and 0.015, which is about 100000 times lower than the values of the cytoplasmic [free NAD(+)]/[free NADH] ratio. 4. The differences in the redox state of the two nicotinamide-adenine dinucleotide couples can be explained on a simple physicochemical basis. The differences are the result of equilibria that are determined by the equilibrium constants of a number of highly active readily reversible dehydrogenases and transaminases and the concentrations of the substrates and products of these enzymes. 5. The decisive feature is the fact that the NAD and NADP couples share substrates. This sharing provides a link between the redox states of the two couples. 6. The application of the method of calculation to data published by Kraupp, Adler-Kastner, Niessner & Plank (1967), Goldberg, Passonneau & Lowry (1966) and Kauffman, Brown, Passonneau & Lowry (1968) shows that the redox states of the NAD and NADP couples in cardiac-muscle cytoplasm and in mouse-brain cytoplasm are of the same order as those in rat liver. 7. The determination of the equilibrium constant at 38 degrees , pH7.0 and I 0.25 (required for the calculation of the [free NADP(+)]/[free NADPH] ratio), gave a value of 3.44x10(-2)m for the ;malic' enzyme (with CO(2) rather than HCO(3) (-) as the reactant) and a value of 1.98x10(-2)m(-1) for glutathione reductase.
MeSH Terms
Animals
Cytoplasm/metabolism
Dietary Carbohydrates
Isocitrate Dehydrogenase/metabolism
Kinetics
Liver/enzymology,metabolism
Malate Dehydrogenase/metabolism
NAD/metabolism
NADP/metabolism
Oxidation-Reduction
Rats
Starvation
Sucrose
Chemicals
Dietary Carbohydrates
NAD
NADP
Sucrose
Malate Dehydrogenase
Isocitrate Dehydrogenase
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Veech R L
Eggleston L V
Krebs H A
References (18)
18 references, click to expand
-
Concentrations of free glucogenic amino acids in livers of rats subjected to various metabolic stresses.
Biochem J. 1967 Aug;104(2):497-502
PMID: 6048791
-
Regulation of glucose uptake by muscles. 10. Effects of alloxan-diabetes, starvation, hypophysectomy and adrenalectomy, and of fatty acids, ketone bodies and pyruvate, on the glycerol output and concentrations of free fatty acids, long-chain fatty acyl-coenzyme A, glycerol phosphate and citrate-cycle intermediates in rat heart and diaphragm muscles.
Biochem J. 1964 Dec;93(3):678-87
PMID: 5839199
-
The equilibrium constants of the glutamate dehydrogenase systems.
Biochem J. 1967 Nov;105(2):691-5
PMID: 4384597
-
Mechanism for the stimulation of gluconeogenesis by fatty acids in perfused rat liver.
Proc Natl Acad Sci U S A. 1966 Jul;56(1):247-54
PMID: 4381783
-
The redox state of free nicotinamide-adenine dinucleotide in the cytoplasm and mitochondria of rat liver.
Biochem J. 1967 May;103(2):514-27
PMID: 4291787
-
ENZYME PATTERNS IN HUMAN TISSUES. I. METHODS FOR THE DETERMINATION OF GLYCOLYTIC ENZYMES.
Cancer Res. 1964 May;24:709-21
PMID: 14188477
-
[ON THE MECHANISM OF INCREASED KETONE BODY FORMATION. I. REDOX STATUS OF LIVER DPN UNDER CONDITIONS OF KETOSIS IN VIVO].
Biochem Z. 1963 Dec 3;339:204-11
PMID: 14206229
-
The nature of the carbon dioxide substrate and equilibrium constant of the 6-phosphogluconate dehydrogenase reaction.
Biochem J. 1969 Dec;115(4):633-8
PMID: 4391041
-
The study of steady-state concentrations of internal solutes of mitochondria by rapid centrifugal transfer to a fixation medium.
Biochem J. 1957 May;66(1):79-91
PMID: 13426112
-
Glutathione reductase of animal tissues.
J Biol Chem. 1952 Jan;194(1):119-30
PMID: 14927599
-
Effects of changes in brain metabolism on the levels of citric acid cycle intermediates.
J Biol Chem. 1966 Sep 10;241(17):3997-4003
PMID: 5922095
-
The effects of starvation and of acute and chronic alloxan diabetes on myocardial substrate levels and on liver glycogen in the rat in vivo.
Eur J Biochem. 1967 Sep;2(2):197-214
PMID: 6078532
-
[Determination of diphosphopyridine nucleotide/reduced diphosphopyridine nucleotide quotient in living yeast cells by analysis of constant alcohol and acetaldehyde concentrations].
Biochem Z. 1956;328(4):252-63
PMID: 13373833
-
Extent and patterns of adaptation of enzyme activities in livers of normal rats fed diets high in glucose and fructose.
J Biol Chem. 1960 Mar;235:554-7
PMID: 13823292
-
PURIFICATION AND PROPERTIES OF GLUTATHIONE REDUCTASE OF HUMAN ERYTHROCYTES.
J Biol Chem. 1963 Dec;238:3928-33
PMID: 14086726
-
The sub-mitochondrial localization of monoamine oxidase in rat liver and brain.
Biochim Biophys Acta. 1967;135(5):910-20
PMID: 4294369
-
The equilibrium constant of the isocitrate dehydrogenase reaction.
Biochem J. 1968 Nov;110(2):217-22
PMID: 4387224
-
Equilibria in transamination systems.
Biochem J. 1953 Apr;54(1):82-6
PMID: 13058836