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Published on: September 13, 2018
Inhibition of amiloride-sensitive Na(+) absorption by activation of CFTR in mouse endometrial epithelium
L N Chan1, X F Wang, L L Tsang
1Epithelial Cell Biology Research Centre, Department of Physiology, The Chinese University of Hong Kong, Shatin, Hong Kong.
Abstract:
Previous studies have demonstrated amiloride-sensitive Na(+) absorption under basal conditions and cystic fibrosis transmembrane conductance regulator (CFTR)-mediated Cl(-) secretion following neurohormonal stimulation in the mouse endometrial epithelium. The present study investigated the inhibition of amiloride-sensitive Na(+) absorption accompanying activation of CFTR in the mouse endometrium using the short-circuit current ( I(sc)) technique. RT-PCR demonstrated the co-expression of CFTR and epithelial Na(+) channels (ENaC) in primary cultured mouse endometrial epithelia and cultured endometrial monolayers exhibited a basal amiloride-sensitive I(sc) of 5.4 +/- 0.6 microA/cm(2). The amiloride-sensitive current fell to 3.1 +/- 0.5 microA/cm(2) after stimulation with forskolin. When the possible contribution of Na(+) absorption to the I(sc) was eliminated by amiloride (1 microM) or Na(+) replacement, the forskolin-induced I(sc) was not reduced, but rather increased significantly compared with that in the absence of amiloride or in Na(+)-containing solutions ( P < 0.02), indicating that the forskolin-induced I(sc) was mediated by Cl(-) secretion, portion of which may be masked by concurrent inhibition of basal Na(+) absorption if the contribution of Na(+) is not eliminated. When the contribution of Cl(-) to the I(sc) was eliminated by diphenylamine 2,2'-dicarboxylic acid (DPC, 2 mM) or Cl(-) replacement, forskolin now decreased, rather than increased the I(sc), demonstrating the inhibition of Na(+) absorption upon stimulation. Our data suggest an interaction between CFTR and ENaC, which may be the underlying mechanism for balancing Na(+) absorption and Cl(-) secretion across the mouse endometrial epithelium.
Insights
The study reveals that activating cystic fibrosis transmembrane conductance regulator (CFTR) in mouse endometrium inhibits sodium (Na+) absorption while promoting chloride (Cl-) secretion. This interaction balances ion transport in the endometrial epithelium.
Area of Science:
- Reproductive Biology
- Ion Transport Physiology
- Epithelial Cell Biology
Background:
- Mouse endometrial epithelium exhibits basal amiloride-sensitive Na+ absorption.
- Neurohormonal stimulation activates CFTR-mediated Cl- secretion in this tissue.
Purpose of the Study:
- Investigate the interplay between Na+ absorption and CFTR-mediated Cl- secretion in the mouse endometrium.
- Determine if CFTR activation influences Na+ absorption.
Main Methods:
- Utilized short-circuit current (Isc) technique on cultured mouse endometrial epithelia.
- Employed RT-PCR to confirm co-expression of CFTR and epithelial Na+ channels (ENaC).
- Used amiloride, Na+ replacement, DPC, and Cl- replacement to modulate ion transport.
Main Results:
- Basal amiloride-sensitive Isc indicated Na+ absorption.
- Forskolin stimulation increased Isc when Na+ absorption was inhibited, confirming Cl- secretion.
- Forskolin decreased Isc when Cl- transport was blocked, demonstrating inhibition of Na+ absorption.
Conclusions:
- CFTR activation inhibits amiloride-sensitive Na+ absorption in the mouse endometrium.
- An interaction between CFTR and ENaC likely balances Na+ absorption and Cl- secretion.
- This mechanism is crucial for regulating ion homeostasis in the endometrial epithelium.

