Abstract
Utilizing Escherichia coli as the prototype of an ion-accumulating cell, the ion exchange isotherm is introduced as a concise method of characterizing biological ion exchange events. The ion exchange isotherm for the alkali cation exchange, K <--> Na, is described. The total charge profile of this bacterium is compiled and compared for bacteria in the Na form and in the K form. Macromolecule fixed charge was found to provide 80% of the counter ions that pair with potassium. Therefore, in its physiological state, 80% of the cell potassium in E. coli is associated with an ion exchange site on a macromolecule. The primary cation exchange sites are found to be about equally divided between carboxylate and phosphate sites indicating that E. coli is a bifunctional resin with respect to cation exchange. During substrate-dependent cation accumulation ("active transport"), phosphate esters and organic acids were shown to accumulate. One may conclude that the role of intermediate metabolism in "active transport" is to increase the ion exchange capacity of the biological resin by the production of charged metabolites that sorb to the framework of the resin.
MeSH Terms
Amines/metabolism
Bacterial Proteins/metabolism
Binding Sites
Biological Transport/drug effects
Biological Transport, Active
Carboxylic Acids/metabolism
Chlorides/metabolism
Chromatography
Escherichia coli/cytology,drug effects,metabolism
Fluorides/pharmacology
Hydrogen-Ion Concentration
Ion Exchange
Ion Exchange Resins
Kinetics
Mathematics
Nucleic Acids/metabolism
Organophosphorus Compounds/metabolism
Phosphates/metabolism
Phosphorus Isotopes
Potassium Chloride/metabolism
Spectrum Analysis
Subcellular Fractions/metabolism
Thermodynamics
Chemicals
Amines
Bacterial Proteins
Carboxylic Acids
Chlorides
Ion Exchange Resins
Nucleic Acids
Organophosphorus Compounds
Phosphates
Phosphorus Isotopes
Potassium Chloride
Fluorides
Authors & Affiliations
1 authors, click to expand affiliations / ORCID
Damadian R
References (10)
10 references, click to expand
-
Modified reagents for determination of urea and ammonia.
Clin Chem. 1962 Apr;8:130-2
PMID: 13878063
-
Biological ion exchanger resins. 3. Molecular interpretation of cellular ion exchange.
Biophys J. 1971 Sep;11(9):773-85
PMID: 4943654
-
Biological ion exchanger resins. II. QUERP water and ion exchange selectivity.
Biophys J. 1971 Sep;11(9):761-72
PMID: 4943653
-
Potassium-adenosine triphosphate complex: formation constant measured with ion-selective electrodes.
Science. 1970 Jun 19;168(3938):1460
PMID: 5445933
-
The binding of small cations to deoxyribonucleic acid. Nucleotide specificity.
Biochemistry. 1969 Aug;8(8):3233-41
PMID: 4897330
-
Leucostoma peptidase A. Isolation and physical properties.
J Biol Chem. 1968 Sep 10;243(17):4486-93
PMID: 5684005
-
Ion metabolism in a potassium accumulation mutant of Escherichia coli B. I. Potassium metabolism.
J Bacteriol. 1968 Jan;95(1):113-22
PMID: 4866095
-
Automatic determination of weak organic acids by partition column chromatography and indicator titration.
Anal Chem. 1966 Aug;38(9):1164-8
PMID: 5939125
-
Binding of sodium ions to beta-lactoglobulin.
Biochemistry. 1965 Aug;4(8):1670-7
PMID: 5863332
-
THE EFFECT OF AMMONIA ADMINISTRATION ON OROTIC ACID EXCRETION IN RATS.
J Biol Chem. 1965 Apr;240:1722-4
PMID: 14285514