OBJECTIVES/HYPOTHESIS: The epithelial sodium channel (ENaC) is a Na(+) transport channel located in the apical membrane of the human middle ear epithelium. Although ENaC-mediated sodium transport has been reported to be upregulated by dexamethasone in human middle ear epithelium, there has been no study of the downstream pathways for increased ENaC expression mediated by glucocorticoids in this tissue. We investigated the effect of dexamethasone on the expression of ENaC and glucocorticoid regulatory genes for ENaC expression in human middle ear epithelial cells (HMEECs). STUDY DESIGN: In vitro investigation. METHODS: Real-time RT-PCR and Western blot analysis were used to determine the expression level of ENaC and its regulatory genes in H...
The epithelial sodium channel (ENaC) is the rate-limiting step for sodium reabsorption across tight ...
The role of Epithelial Na+ Channel (ENaC) proteins in cardiovascular regulation and blood pressure c...
Recent reports have shown that cytokines inhibit fluid absorption by suppressing Na+ channel activit...
The middle ear epithelium functions to maintain a fluid-free middle ear cavity. Dysfunction of the m...
HYPOTHESIS: Epithelial sodium channels are expressed in cultured human endolymphatic sac (ES) epithe...
The Epithelial Na <sup>+</sup> Channel, ENaC, comprised of 3 subunits (αβγ, or sometimes...
BACKGROUND AND PURPOSE Glucocorticoids appear to control control Na+ absorption in pulmonary epithel...
Regulation of the epithelial Na+ channel by aldosterone: Open questions and emerging answers. Aldost...
<div><p>The epithelial sodium channel (ENaC) is the rate-limiting step for sodium reabsorption acros...
The epithelial Na channel (ENaC), located in the apical membrane of renal aldosterone-responsive ep...
BACKGROUND AND PURPOSE Glucocorticoids appear to control control Na+ absorption in pulmonary epithel...
The epithelial sodium channel (ENaC) is the rate-limiting step for sodium reabsorption across tight ...
The proper homeostasis of the liquid lining the surface of the middle ear cavity is vitally importan...
nels (ENaC) can be regulated by both mineralocorticoid and gluco-corticoid hormones. In the mammalia...
We report the transcriptomes associated with acute corticosteroid regulation of ENaC activity in pol...
The epithelial sodium channel (ENaC) is the rate-limiting step for sodium reabsorption across tight ...
The role of Epithelial Na+ Channel (ENaC) proteins in cardiovascular regulation and blood pressure c...
Recent reports have shown that cytokines inhibit fluid absorption by suppressing Na+ channel activit...
The middle ear epithelium functions to maintain a fluid-free middle ear cavity. Dysfunction of the m...
HYPOTHESIS: Epithelial sodium channels are expressed in cultured human endolymphatic sac (ES) epithe...
The Epithelial Na <sup>+</sup> Channel, ENaC, comprised of 3 subunits (αβγ, or sometimes...
BACKGROUND AND PURPOSE Glucocorticoids appear to control control Na+ absorption in pulmonary epithel...
Regulation of the epithelial Na+ channel by aldosterone: Open questions and emerging answers. Aldost...
<div><p>The epithelial sodium channel (ENaC) is the rate-limiting step for sodium reabsorption acros...
The epithelial Na channel (ENaC), located in the apical membrane of renal aldosterone-responsive ep...
BACKGROUND AND PURPOSE Glucocorticoids appear to control control Na+ absorption in pulmonary epithel...
The epithelial sodium channel (ENaC) is the rate-limiting step for sodium reabsorption across tight ...
The proper homeostasis of the liquid lining the surface of the middle ear cavity is vitally importan...
nels (ENaC) can be regulated by both mineralocorticoid and gluco-corticoid hormones. In the mammalia...
We report the transcriptomes associated with acute corticosteroid regulation of ENaC activity in pol...
The epithelial sodium channel (ENaC) is the rate-limiting step for sodium reabsorption across tight ...
The role of Epithelial Na+ Channel (ENaC) proteins in cardiovascular regulation and blood pressure c...
Recent reports have shown that cytokines inhibit fluid absorption by suppressing Na+ channel activit...