Real-time three-dimensional imaging of lipid signal transduction: apical membrane insertion of epithelial Na+ channels
- 1 December 2004
- journal article
- Published by American Physiological Society in American Journal of Physiology-Cell Physiology
- Vol. 287 (6) , C1569-C1576
- https://doi.org/10.1152/ajpcell.00226.2004
Abstract
In the distal tubule, Na+ resorption is mediated by epithelial Na+ channels (ENaC). Hormones such as aldosterone, vasopressin, and insulin modulate ENaC membrane targeting, assembly, and/or kinetic activity, thereby regulating salt and water homeostasis. Insulin binds to a receptor on the basal membrane to initiate a signal transduction cascade that rapidly results in an increase in apical membrane ENaC. Current models of this signaling pathway envision diffusion of signaling intermediates from the basal to the apical membrane. This necessitates diffusion of several high-molecular-weight signaling elements across a three-dimensional space. Transduction of the insulin signal involves the phosphoinositide pathway, but how and where this lipid-based signaling pathway controls ENaC activity is not known. We used tagged channels, biosensor lipid probes, and intravital imaging to investigate the role of lipids in insulin-stimulated Na+ flux. Insulin-stimulated delivery of intracellular ENaC to apical membranes was concurrent with plasma membrane-limited changes in lipid composition. Notably, in response to insulin, phosphatidylinositol 3,4,5-trisphosphate (PIP3) formed in the basolateral membrane, rapidly diffused within the bilayer, and crossed the tight junction to enter the apical membrane. This novel signaling pathway takes advantage of the fact that the lipids of the plasma membrane's inner leaflet are not constrained by the tight junction. Therefore, diffusion of PIP3 as a signal transduction intermediate occurs within a planar surface, thus facilitating swift responses and confining and controlling the signaling pathway.Keywords
This publication has 41 references indexed in Scilit:
- Phosphatidylinositol 3,4,5-trisphosphate: an early mediator of insulin-stimulated sodium transport in A6 cellsAmerican Journal of Physiology-Renal Physiology, 2004
- The Phosphoinositide 3-Kinase PathwayScience, 2002
- Epithelial Sodium Channel and the Control of Sodium Balance: Interaction Between Genetic and Environmental FactorsAnnual Review of Physiology, 2002
- Calmodulin Antagonists Inhibit Insulin-Stimulated GLUT4 (Glucose Transporter 4) Translocation by Preventing the Formation of Phosphatidylinositol 3,4,5-Trisphosphate in 3T3L1 AdipocytesMolecular Endocrinology, 2000
- Confocal imaging of the subcellular distribution of phosphatidylinositol 3,4,5-trisphosphate in insulin- and PDGF-stimulated 3T3-L1 adipocytesBiochemical Journal, 1999
- Hypertension caused by a truncated epithelial sodium channel γ subunit: genetic heterogeneity of Liddle syndromeNature Genetics, 1995
- Insulin sensitivity and the effects of insulin on renal sodium handling and pressor systems in essential hypertensive patients.Hypertension, 1994
- Hyperinsulinemia in normotensive offspring of hypertensive parents.Hypertension, 1994
- Insulin resistance in young salt-sensitive normotensive subjects.Hypertension, 1993
- The Effect of Weight Loss on the Sensitivity of Blood Pressure to Sodium in Obese AdolescentsNew England Journal of Medicine, 1989