Rab proteins regulate epithelial sodium channel activity in colonic epithelial HT-29 cells
Medical Sciences
ENaC
Medical Physiology
Sodium Channels
protein-protein interaction
Amiloride
Rab3
03 medical and health sciences
Rab6
HT-29 cells
Medicine and Health Sciences
Cell Biology & Physiology
Humans
Protein Isoforms
Biotinylation
RNA, Small Interfering
Epithelial Sodium Channels
Colonic epithelial cells
0303 health sciences
Trafficking
Neurosciences
Medical Cell Biology
Gene Expression Regulation
Medical Neurobiology
rab GTP-Binding Proteins
Colonic Neoplasms
Rab27a
Physiological Processes
HT29 Cells
Ion Channel Gating
Regulation
Neuroscience
Protein Binding
DOI:
10.1016/j.bbrc.2005.09.186
Publication Date:
2005-10-20T14:20:30Z
AUTHORS (5)
ABSTRACT
ENaC, the sodium-selective amiloride-sensitive epithelial channel, mediates electrogenic sodium re-absorption in tight epithelia and is deeply associated with human hypertension. The ENaC expression at plasma membrane requires the regulated transport, processing, and macromolecular assembly in a defined and highly compartmentalized manner. Ras-related Rab GTPases regulate intracellular trafficking during endocytosis, regulated exocytosis, and secretion. To evaluate the role of these proteins in regulating amiloride-sensitive sodium channel activity, multiple Rab isoforms 3, 5, 6, and Rab27a were expressed in HT-29 cells. Rab3 and Rab27a inhibited ENaC currents, while the expression of other Rab isoforms failed to elicit any statistically significant effect on amiloride-sensitive currents. The immunoprecipitation experiments suggest protein-protein interaction of Rab3 and Rab27a with epithelial sodium channel. Biotinylation studies revealed that modulation of ENaC function is due to the reduced apical expression of channel proteins. Study also indicates that Rabs do not appear to affect the steady-state level of total cellular ENaC. Alternatively, introduction of isoform-specific small inhibitory RNA (SiRNA) reversed the Rab-dependent inhibition of amiloride-sensitive currents. These observations point to the involvement of multiple Rab proteins in ENaC transport through intracellular routes like exocytosis, recycling from ER to plasma membrane or degradation and thus serve as potential target for human hypertension.
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