Abstract
The interactions between ion and water fluxes have an important bearing on osmoregulation and transepithelial water transport in epithelial cells. Some of these interactions were investigated using ion-selective microelectrodes in the Necturus gallbladder. The intracellular activities of K+ and Cl- in epithelial cells change when the epithelium is adapted to transport in solutions of a low osmolarity. In order to achieve new steady states at low osmolarities, cells lost K+, Cl- and some unidentified anions. Surprisingly, the apparent K+ concentration remained high: at an external osmolarity of 64 mOsm the intracellular K+ concentration averaged 95 mM. This imbalance was sensitive to anoxia and ouabain. The effects of abrupt changes in the external osmolarities on the intracellular activities of Na+, K+ and Cl- were also investigated. The gradients were effectuated by mannitol. The initial relative rates of change of the intracellular activities of Na+ and Cl- were equal. The data were consistent with Na+ and Cl- ions initially remaining inside the cell and a cell membrane Lp of 10(-3) cm sec-1 osm-1, which is close to the values determined by Spring and co-workers (K.R. Spring, A. Hope & B.E. Persson, 1981. In: Water Transport Across Epithelia. Alfred Benzon Symposium 15. pp. 190-200. Munskgaard, Copenhagen). The initial rate of change of the intracellular activity of K+ was only 0.1-0.2 times the change observed in Na+ and Cl- activities, and suggests that K+ ions leave the cell during the osmotically induced H2O efflux and enter with an induced H2O influx. The coupling is between 98 and 102 mmoles liter-1. Various explanations for the anomalous behavior of intracellular K+ ions are considered. A discussion of the apparent coupling between K+ and H2O, observed in nonsteady states, and its effects on the distribution of K+ and H2O across the cell membrane in the steady states, is presented.
MeSH Terms
Animals
Biological Transport, Active
Chlorides/metabolism
Epithelium/physiology
Gallbladder/physiology
Kinetics
Microelectrodes
Mucous Membrane/physiology
Necturus
Osmolar Concentration
Perfusion
Potassium/metabolism
Sodium/metabolism
Chemicals
Chlorides
Sodium
Potassium
Authors & Affiliations
1 authors, click to expand affiliations / ORCID
Zeuthen T
References (21)
21 references, click to expand
-
The route of passive ion movement through the epithelium of Necturus gallbladder.
J Membr Biol. 1972;8(3):259-301
PMID: 5084117
-
Volume changes and potential artifacts of epithelial cells of frog skin following impalement with microelectrodes filled with 3 m KCl.
J Membr Biol. 1978;40 Spec No:91-119
PMID: 731680
-
Intracellular potassium activities in Amphiuma small intestine.
Am J Physiol. 1976 Oct;231(4):1214-9
PMID: 984207
-
Intracellular bicarbonate in single cells of Necturus kidney proximal tubule.
Pflugers Arch. 1974;349(4):295-9
PMID: 4472158
-
Effects of luminal hyperosmolality on electrical pathways of Necturas gallbladder.
Am J Physiol. 1977 Mar;232(3):C99-108
PMID: 842659
-
Intracellular gradients of ion activities in the epithelial cells of the Necturus gallbladder recorded with ion-selective microelectrodes.
J Membr Biol. 1978 Mar 10;39(2-3):185-218
PMID: 641976
-
The nature of the frog skin potential.
Acta Physiol Scand. 1958 Jun 2;42(3-4):298-308
PMID: 13544986
-
THE MECHANISM OF ISOTONIC WATER TRANSPORT.
J Gen Physiol. 1964 Sep;48:15-42
PMID: 14212146
-
Electrical properties of the cellular transepithelial pathway in Necturus gallbladder: III. Ionic permeability of the basolateral cell membrane.
J Membr Biol. 1979 May 25;47(3):239-59
PMID: 480334
-
The steady-state relationship between sodium and chloride transmembrane electrochemical potential differences in Necturus gallbladder.
J Membr Biol. 1980 Aug 7;55(3):213-22
PMID: 7411593
-
Intracellular sodium activity and sodium transport in necturus gallbladder epithelium.
J Membr Biol. 1979 Jun 7;47(4):327-55
PMID: 469933
-
Epithelial potassium transport: tracer and electrophysiological studies in choroid plexus.
J Membr Biol. 1981;60(2):105-28
PMID: 6973025
-
Regulation of cellular volume.
Physiol Rev. 1977 Jul;57(3):510-73
PMID: 142257
-
Fluid transfer by Necturus gall bladder epithelium as a function of osmolarity.
Proc R Soc Lond B Biol Sci. 1978 Feb 23;200(1139):151-62
PMID: 24849
-
Water and electrolyte secretion by the perfused pancreas of the cat.
J Physiol. 1968 May;196(1):133-49
PMID: 5653882
-
Intracellular ionic activities and transmembrane electrochemical potential differences in gallbladder epithelium.
J Membr Biol. 1979 Sep 14;49(4):345-62
PMID: 480341
-
Electrical properties of the cellular transepithelial pathway in Necturus gallbladder. I. Circuit analysis and steady-state effects of mucosal solution ionic substitutions.
J Membr Biol. 1975 Dec 4;25(1-2):115-39
PMID: 1214283
-
Water flow induced by osmotic and hydrostatic pressure in the stomach.
Am J Physiol. 1969 Jul;217(1):255-61
PMID: 5785888
-
Fluid transport and the dimensions of cells and interspaces of living Necturus gallbladder.
J Gen Physiol. 1979 Mar;73(3):287-305
PMID: 438773
-
Energetics of coupled Na+ and Cl- entry into epithelial cells of bullfrog small intestine.
Biochim Biophys Acta. 1979 Feb 20;551(1):207-19
PMID: 311657
-
On the effects of amphotericin B and ouabain on the electrical potentials of Necturus gallbladder.
J Membr Biol. 1981;60(2):167-70
PMID: 7253008