The neuronal-specific SGK1.1 kinase regulates δ-epithelial Na+ channel independently of PY motifs and couples it to phospholipase C signaling

Author:

Wesch Diana12,Miranda Pablo12,Afonso-Oramas Domingo3,Althaus Mike4,Castro-Hernández Javier3,Dominguez Jaime5,Morty Rory E.6,Clauss Wolfgang4,González-Hernández Tomás3,Alvarez de la Rosa Diego2,Giraldez Teresa1

Affiliation:

1. Research Unit and

2. Department of Physiology and

3. Department of Anatomy, Instituto de Tecnologías Biomédicas, Universidad de La Laguna, Tenerife, Spain; and

4. Institute of Animal Physiology and

5. Neurosurgery Department, Hospital Universitario Nuestra Señora de Candelaria, Santa Cruz de Tenerife, Spain;

6. Department of Internal Medicine, University of Giessen Lung Center, Justus-Liebig-University, Giessen, Germany

Abstract

The δ-subunit of the epithelial Na+ channel (ENaC) is expressed in neurons of the human and monkey central nervous system and forms voltage-independent, amiloride-sensitive Na+ channels when expressed in heterologous systems. It has been proposed that δ-ENaC could affect neuronal excitability and participate in the transduction of ischemic signals during hypoxia or inflammation. The regulation of δ-ENaC activity is poorly understood. ENaC channels in kidney epithelial cells are regulated by the serum- and glucocorticoid-induced kinase 1 (SGK1). Recently, a new isoform of this kinase (SGK1.1) has been described in the central nervous system. Here we show that δ-ENaC isoforms and SGK1.1 are coexpressed in pyramidal neurons of the human and monkey ( Macaca fascicularis ) cerebral cortex. Coexpression of δβγ-ENaC and SGK1.1 in Xenopus oocytes increases amiloride-sensitive current and channel plasma membrane abundance. The kinase also exerts its effect when δ-subunits are expressed alone, indicating that the process is not dependent on accessory subunits or the presence of PY motifs in the channel. Furthermore, SGK1.1 action depends on its enzymatic activity and binding to phosphatidylinositol( 4 , 5 )-bisphosphate. Physiological or pharmacological activation of phospholipase C abrogates SGK1.1 interaction with the plasma membrane and modulation of δ-ENaC. Our data support a physiological role for SGK1.1 in the regulation of δ-ENaC through a pathway that differs from the classical one and suggest that the kinase could serve as an integrator of different signaling pathways converging on the channel.

Publisher

American Physiological Society

Subject

Cell Biology,Physiology

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