Abstract
When Escherichia coli K-12 is grown in media containing limiting amounts of K, growth continues normally until all the extracellular K has been consumed. Thereafter the rates of growth, glucose consumption, and oxygen consumption decrease progressively, and the cell contents of K and P fall. These changes, referred to as K limitation, are all reversed by the addition of K. By specifically altering the ionic composition of the cells it was shown that these metabolic disturbances are not due to changes in the cell content of K or Na, but are directly related to the absence of K from the extracellular medium. The cell pool of inorganic P and the uptake of PO(4) from the medium are low in K-limited cells and are immediately stimulated by the addition of K, suggesting that the primary effect of K limitation is to inhibit PO(4) uptake. All the metabolic effects of K limitation can be attributed to inhibition of PO(4) uptake. The requirement of extracellular K for PO(4) uptake may be due to a coupling between the uptake of K and PO(4).
MeSH Terms
Escherichia coli/growth & development,metabolism
Glucose/metabolism
Oxygen Consumption
Phosphates/metabolism
Phosphorus/metabolism
Potassium/metabolism
Sodium/metabolism
Chemicals
Phosphates
Phosphorus
Sodium
Glucose
Potassium
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Weiden P L
Epstein W
Schultz S G
References (15)
15 references, click to expand
-
Cation transport in Escherichia coli. II. Intracellular chloride concentration.
J Gen Physiol. 1962 Sep;46:159-66
PMID: 13909522
-
BACTERIAL MUTANT WITH IMPAIRED POTASSIUM TRANSPORT AND METHIONINE BIOSYNTHESIS.
Science. 1964 Sep 18;145(3638):1327-8
PMID: 14173428
-
Studies on the relationship of potassium to metabolism and purine biocynthesis in Escherichia coli.
J Bacteriol. 1954 Aug;68(2):186-93
PMID: 13183927
-
An improved method for the colorimetric determination of phosphate.
Biochem J. 1938 Feb;32(2):295-8
PMID: 16746620
-
Cation transport in Escherichia coli. I. Intracellular Na and K concentrations and net cation movement.
J Gen Physiol. 1961 Nov;45:355-69
PMID: 13909521
-
Paths of phosphate transfer in Micrococcus pyogenes: phosphate turnover in nucleic acids and other fractions.
J Gen Microbiol. 1953 Oct;9(2):257-72
PMID: 13096708
-
ON THE ROLE OF INTRACELLULAR POTASSIUM IN PROTEIN SYNTHESIS.
Biochim Biophys Acta. 1964 Apr 27;80:614-31
PMID: 14156733
-
STUDIES ON THE ENDOGENOUS METABOLISM OF ESCHERICHIA COLI.
Biochem J. 1965 May;95:332-43
PMID: 14340081
-
The active transport of phosphate into the yeast cell.
J Gen Physiol. 1957 Jul 20;40(6):915-23
PMID: 13439168
-
Potassium metabolism in Escherichia coli. III. Interrelationship of potassium and phosphorus metabolism.
J Cell Physiol. 1950 Aug;36(1):15-39
PMID: 14803507
-
The "high energy phosphate bond" concept.
Prog Biophys Mol Biol. 1960;10:1-53
PMID: 13704459
-
Regulatory mechanisms in carbohydrate metabolism. IV. Pasteur effect and Crabtree effect in ascites tumor cells.
J Biol Chem. 1959 May;234(5):1036-41
PMID: 13654314
-
Regulatory mechanisms in carbohydrate metabolism. 8. The regulatory function of phosphate in glycolysis.
J Biol Chem. 1965 Dec;240(12):4689-93
PMID: 4221249
-
Cation transport in Escherichia coli. VI. K exchange.
J Gen Physiol. 1966 Jan;49(3):469-81
PMID: 5328217
-
Cation transport in Escherichia coli. III. Potassium fluxes in the steadystate.
J Gen Physiol. 1962 Nov;46:343-53
PMID: 13987237