Effects of insulin and phosphatase on a Ca2(+)-dependent Cl- channel in a distal nephron cell line (A6).
Open Access
- 1 May 1990
- journal article
- research article
- Published by Rockefeller University Press in The Journal of general physiology
- Vol. 95 (5) , 773-789
- https://doi.org/10.1085/jgp.95.5.773
Abstract
A Cl- channel with a small-single-channel conductance (3 pS) was observed in cell-attached patches formed on the apical membrane of cells from the distal nephron cell line (A6) cultured on permeable supports. The current-voltage (I-V) relationship from cell-attached patches or inside-out patches with 1 .mu.M cytosolic Ca2+ strongly rectified with no inward current at potentials more negative than ECl. However, the rectification decreased (i.e., inward current increased) when the cytosolic Ca2+ concentration ([Ca2+]i) was increased above 1 .mu.M. If [Ca2+]i is increased to 800 .mu.M, the I-V relationship became linear. Besides the change in the I-V relationship, an increase in [Ca2+]i also increases the open probability of the channel. Regardless of the recording condition, the channel has one open and one closed state. Both closing and opening rates were dependent on [Ca2+]i; an increase of [Ca2+]i decreased the closing rate and increased the opening rate. The Ca2+ dependence of transition rates at positive membrane potentials (cell interior with respect to external surface) were much larger than the dependence at negative intracellular potentials. The I-V relationship of chloride channels in inside-out patches from cells pretreated with insulin was linear even with 1 .mu.M [Ca2+]i, while channel currents from cells under similar conditions but without insulin still strongly rectified. Alkaline phosphatase applied to the intracellular surface of inside-out patches altered the outward rectification of single channels in a manner qualitatively similar to that of insulin pretreatment. These observations suggest that phosphorylation/dephosphorylation of the channel modulates the sensitivity of the Cl- channel to cytosolic Ca2+ and that insulin produces its effect by promoting dephosphorylation of the channel.This publication has 30 references indexed in Scilit:
- Chelation of Intracellular Calcium Prevents Stimulation of Glucose Transport by Insulin and Insulinomimetic Agents in the Adipocyte. Evidence for a Common Mechanism*Endocrinology, 1987
- Chloride transport by the cortical and outer medullary collecting ductAmerican Journal of Physiology-Renal Physiology, 1987
- Insulin action on electrophysiological properties of apical and basolateral membranes of frog skinAmerican Journal of Physiology-Cell Physiology, 1987
- Cyclic adenosine monophosphate-stimulated anion transport in rabbit cortical collecting duct. Kinetics, stoichiometry, and conductive pathways.Journal of Clinical Investigation, 1986
- Regulation of single sodium channels in renal tissue: a role in sodium homeostasis.1986
- Epithelial sodium channels: characterization by using the patch-clamp technique.1986
- Altered Regulation of Airway Epithelial Cell Chloride Channels in Cystic FibrosisScience, 1986
- An Apical-Membrane Chloride Channel in Human Tracheal EpitheliumScience, 1986
- Effects of calcium on vasopressin-mediated cyclic adenosine monophosphate formation in cultured rat inner medullary collecting tubule cells. Evidence for the role of intracellular calcium.Journal of Clinical Investigation, 1986
- Electrophysiological properties of cellular and paracellular conductive pathways of the rabbit cortical collecting ductThe Journal of Membrane Biology, 1984