Abstract
The flows of sodium, potassium, and chloride under electrical and chemical gradients and of salt and water in the presence of osmotic pressure gradients are described by phenomenological equations based on the thermodynamics of irreversible processes. The aim was to give the simplest possible description, that is to postulate the least number of active transport processes and the least number of separate pathways across the intestine. On this basis, the results were consistent with the following picture of the intestine: Two channels exist across this tissue, one allowing only passive transport of ions and the other only active. In the passive channel, the predominant resistance to ion flow is friction with the water in the channel. The electroosmotic flow indicates that the passive channel is lined with negative fixed charged groups having a surface charge density of 3000 esu cm-2. The values of the ion-water frictional coefficients, and the relationship between ionic concentrations and flows indicate that the passive channel is extracellular. The active channel behaves as two membranes in series, the first membrane being semipermeable but allowing active transport of sodium, and the second membrane being similar to the passive channel. Friction with the ions in the second "membrane" is the predominant resistance to water flow.
MeSH Terms
Animals
Biological Transport, Active/physiology
Chlorides/pharmacokinetics
Electric Stimulation
Ileum/metabolism
Intestinal Absorption/physiology
Intestinal Mucosa/metabolism
Models, Biological
Osmosis/physiology
Osmotic Pressure
Potassium/pharmacokinetics
Rats
Salts/pharmacokinetics
Sodium/pharmacokinetics
Water/metabolism
Chemicals
Chlorides
Salts
Water
Sodium
Potassium
Authors & Affiliations
1 authors, click to expand affiliations / ORCID
Clarkson T W
Department of Radiation Biology and Biophysics, University of Rochester School of Medicine, Rochester, New York, USA.
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