Voltage dependence of the basolateral membrane conductance in the Amphiuma collecting tubule

Details

Serval ID
serval:BIB_19632A3C37CB
Type
Article: article from journal or magazin.
Collection
Publications
Institution
Title
Voltage dependence of the basolateral membrane conductance in the Amphiuma collecting tubule
Journal
Journal of Membrane Biology
Author(s)
Horisberger  J. D., Giebisch  G.
ISSN
0022-2631 (Print)
Publication state
Published
Issued date
11/1988
Volume
105
Number
3
Pages
257-63
Notes
Journal Article
Research Support, U.S. Gov't, P.H.S. --- Old month value: Nov
Abstract
The basolateral potassium conductance of cells of most epithelial cells plays an important role in the transcellular sodium transport inasmuch as the large negative equilibrium potential of potassium across this membrane contributes to the electrical driving force for Na+ across the apical membrane. In the present study, we have attempted to establish the I-V curve of the basolateral membrane of the Amphiuma collecting tubule, a membrane shown to be K+ selective. Transepithelial I-V curves were obtained in short, isolated perfused collecting tubule segments. The "shunt" conductance was determined using amiloride to block the apical membrane Na+ conductance. In symmetrical solutions, the "shunt" I-V curve was linear (conductance: 2.2 +/- 0.3 mS.cm-2). Transcellular current was calculated by subtracting the "shunt" current from the transepithelial current in the absence of amiloride. Using intracellular microelectrodes, it was then possible to measure the basolateral membrane potential simultaneously with the transcellular current. The basolateral conductance was found to be voltage dependent, being activated by hyperpolarization: conductance values at -30 and -80 mV were 3.6 +/- 1.0 and 6.6 +/- 1.0 mS.cm-2, respectively. Basolateral I-V curves were thus clearly different from that predicted by the "constant field" model. These results indicate that the K+-selective basolateral conductance of an amphibian collecting tubule shows inward ("anomalous") rectification. Considering the electrogenic nature basolateral Na-K-pump, this may account for coupling between pump-generated potential and basolateral K+ conductance.
Keywords
Animals Barium/pharmacology Basement Membrane/*physiology Electric Conductivity Epithelium/physiology/ultrastructure Female Kidney Tubules/*physiology Kidney Tubules, Collecting/cytology/*physiology/ultrastructure Male *Membrane Potentials Sodium/metabolism Urodela/*physiology
Pubmed
Web of science
Create date
24/01/2008 13:38
Last modification date
20/08/2019 13:50
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