Abstract
Studies have been conducted on the movements of sodium and potassium into and out of the Ehrlich ascites tumor cell. Under steady state conditions, at 22 degrees C., in the absence of an exogenous source of glucose, the cell flux for both potassium and sodium averaged 0.8 microM10(7) cells/hr, or 3.0 pM/cm.(2)/sec. The cell can accumulate potassium and extrude sodium against electrochemical gradients for both ions. It is possible under the experimental conditions reported to separate the transport systems for these two ions. Thus, it has been shown that under conditions of low temperature with a diminished metabolism, net fluxes for the two ions are different. Also, following periods of 24 hours at 2 degrees C., an exogenous source of glucose enhances the accumulation of potassium sevenfold while sodium extrusion is uninfluenced by the presence of glucose. Similarly potassium exchange rates are temperature-dependent, with Q(10) values as high as 5, while exchange rates for sodium are temperature-insensitive, with Q(10) values of 1.2 to 1.6. Glycolysis has been eliminated as an energy source for the transport processes since these processes go on in the absence of an exogenous source of glucose. It is estimated that a maximum of 0.3 per cent of the energy derived from the total oxidative metabolism of glucose would be required to support independent transport of potassium and sodium.
Keywords
NEOPLASMS/metabolism
POTASSIUM/metabolism
SODIUM/metabolism
MeSH Terms
Animals
Ascites
Biological Transport
Ions
Mice
Neoplasms/metabolism
Potassium/metabolism
Sodium/metabolism
Temperature
Chemicals
Ions
Sodium
Potassium
Authors & Affiliations
1 authors, click to expand affiliations / ORCID
HEMPLING H G
References (14)
14 references, click to expand
-
The nature of the cation exchanges during yeast fermentation, with formation of 0.02n-H ion.
Biochem J. 1946;40(1):59-67
PMID: 16747974
-
Accumulation of potassium by human red cells.
J Gen Physiol. 1950 Jul 20;33(6):745-57
PMID: 15428615
-
Intense concentration of alpha, gamma-diaminobutyric acid by cells.
J Biol Chem. 1952 Sep;198(1):17-22
PMID: 12999713
-
The permeability of rabbit leucocytes to sodium, potassium and chloride.
J Cell Physiol. 1949 Dec;34(3):493-519
PMID: 15406364
-
Concentrative uptake of amino acids by free-cell neoplasms.
Ann N Y Acad Sci. 1956 Mar 14;63(5):983-7
PMID: 13314447
-
Substrate utilization by Ehrlich mouse ascites carcinoma cells.
Cancer Res. 1953 Jul;13(7:1):537-41
PMID: 13067073
-
On the control of metabolism in ascites tumor cell suspensions.
Ann N Y Acad Sci. 1956 Mar 14;63(5):1008-16
PMID: 13314450
-
Potassium and sodium movements in rabbit polymorphonuclear leukocytes.
J Cell Physiol. 1954 Aug;44(1):87-104
PMID: 13211755
-
Carbohydrate metabolism in ascites tumor cells.
Ann N Y Acad Sci. 1956 Mar 14;63(5):1017-21
PMID: 13314451
-
Concentrative uptake of amino acids by the Ehrlich mouse ascites carcinoma cell.
J Biol Chem. 1952 Jan;194(1):57-68
PMID: 14927593
-
Cation exchange between cells and plasma of mammalian blood; methods and application to potassium exchange in human blood.
J Gen Physiol. 1950 Jul 20;33(6):703-22
PMID: 15428612
-
The permeability of the human erythrocyte to sodium and potassium.
J Gen Physiol. 1952 May;36(1):57-110
PMID: 12981235
-
Studies on the Ehrlich ascites tumor. I. The enzymic and metabolic activities of the ascitic cells and the ascitic plasma.
Cancer Res. 1951 Nov;11(11):855-63
PMID: 14886935
-
Some Patterns of the Respiratory Pigments of Ascites Tumors of Mice.
Science. 1952 Aug 22;116(3008):200-2
PMID: 17792313