Sodium‐selective micro‐electrode study of apical permeability in frog skin: effects of sodium, amiloride and ouabain.
- 1 November 1984
- journal article
- research article
- Published by Wiley in The Journal of Physiology
- Vol. 356 (1) , 359-374
- https://doi.org/10.1113/jphysiol.1984.sp015470
Abstract
The intracellular sodium ion activity (aiNa), apical membrane potential (psi ac) and apical sodium electrochemical driving force (delta mu Na) in Rana temporaria skin were measured using double‐barrelled sodium‐sensitive micro‐electrodes, in the presence of various apical sodium activities (aoNa), amiloride, ouabain, and during voltage clamp of psi ac. The permeability and specific conductance of the apical cell membrane to sodium entry (PaNa and GaNa respectively) were calculated from the Goldman‐Hodgkin‐Katz equation and the Nernst‐Planck (electrodiffusion) permeability equations respectively. The roles of aoNa and aiNa in the control of apical sodium entry were studied. PaNa increased linearly with log decrease in aoNa between 79 and 0.01 mM. Under short‐circuit conditions, aiNa remained constant over the aoNa range of 10‐79 mM, but decreased when aoNa was lower than 10 mM, due to a fall in delta mu Na and GaNa. Amiloride decreased PaNa, GaNa and aiNa, a result analogous to that observed in spontaneous low‐transporting skins. Ouabain inhibited sodium transport and increased aiNa before any changes in PaNa occurred. The latter decreased only when aiNa rose above 15 mM. Increasing delta mu Na by hyperpolarizing voltage clamp of the apical cell membrane elicited a saturable increase in aiNa. The opposite effect was elicited by depolarizing psi ac. Electrodiffusion appears to be the sole mode of apical sodium entry.This publication has 36 references indexed in Scilit:
- Current—voltage curve of sodium channels and concentration dependence of sodium permeability in frog skinThe Journal of Physiology, 1977
- An equivalent electrical circuit model for “sodium-transporting” epithelia in the steady-stateJournal of Theoretical Biology, 1977
- Sodium-Specific Membrane Channels of Frog Skin Are Pores: Current Fluctuations Reveal High TurnoverScience, 1977
- The mechanism of Na+ transport by rabbit urinary bladderThe Journal of Membrane Biology, 1976
- Influence of vasopressin and amiloride on shunt pathways of frog skinAmerican Journal of Physiology-Legacy Content, 1976
- The interrelationship between sodium and calcium fluxes across cell membranesPublished by Springer Nature ,1973
- Sodium uptake by frog skin and its modification by inhibitors of transepithelial sodium transportThe Journal of Physiology, 1973
- Current-Voltage Curves of Porous Membranes in the Presence of Pore-Blocking Ions: I. Narrow Pores Containing No More Than One Moving IonBiophysical Journal, 1972
- Effect of insulin on short-circuit current and sodium transport across toad urinary bladderAmerican Journal of Physiology-Legacy Content, 1965
- The effect of sodium ions on the electrical activity of the giant axon of the squidThe Journal of Physiology, 1949