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Mechanical Stimulation-induced Calcium Wave Propagation in Cell Monolayers: The Example of Bovine Corneal Endothelial Cells
Published on: July 16, 2013
cANF causes endothelial cell hyperpolarization by activation of chloride channels
Aaron Simon1, Gong Xin Liu, Gideon Koren
1Vascular Research Laboratory, Providence VA Medical Center, Providence, RI 02908, USA.
Objectives:
Natriuretic peptides bind with natriuretic peptide receptor (NPR)-C, which can alter cellular function through its interaction with the G(i) protein complex. NPR-C has been found to mediate the activation of K(+) channels and non-selective cation channels in vascular smooth muscle and cardiac fibroblast cells, respectively. However, the electrophysiological effect of NPR-C activation on endothelial cells (EC) has not been previously examined. In this study we sought to elucidate the effect of cANF(4-23), a selective NPR-C ligand, on EC membrane potential (E(m)).
Methods/Results:
Changes in EC E(m) was measured through non-invasive fluorescence imaging. EC were preincubated in the potentiometric dye, DiBAC(4)(3) and subsequently exposed to cANF(4-23), in the presence of selective inhibitors of ion-channels or second messengers. NPR-C expression in rat lung microvascular endothelial cells was assessed by RT-PCR. cANF(4-23) induced a sustained decrease in EC cellular fluorescence, indicating endothelial cell hyperpolarization. The cANF-induced hyperpolarization could not be attenuated by TEA, barium, ouabain or by the reduction of extracellular Ca(2+). Further, the cANF-induced hyperpolarization was insensitive to inhibition of G(i) and protein kinase G (PKG), downstream messengers of NPRs. However, the Cl(-) channel inhibitors, 4,4'-diisothiocyanatostilbene-2,2'-disulfonic acid, niflumic acid, and hypertonic saline attenuated the cANF-induced hyperpolarization. Perforated patch clamp recordings confirmed the cANF-induced current was carried by Cl(-) and could be inhibited by niflumic acid. RT-PCR confirmed expression of NPR-C in vascular smooth muscle cells but not in EC.
Conclusions:
cANF causes hyperpolarization that is most likely mediated via activation of Cl(-) channels by a PKG and G(i) independent mechanism.
Insights
Natriuretic peptide receptor-C (NPR-C) activation by cANF(4-23) causes endothelial cell hyperpolarization. This effect is mediated by chloride channels, independent of G(i) protein and PKG signaling pathways.
Area of Science:
- Cardiovascular Physiology
- Cellular Electrophysiology
- Endothelial Cell Biology
Background:
- Natriuretic peptides bind to NPR-C, influencing cellular function via G(i) protein complexes.
- NPR-C activates K(+) and non-selective cation channels in vascular smooth muscle and cardiac fibroblasts.
- The electrophysiological impact of NPR-C on endothelial cells (EC) remains unexamined.
Purpose of the Study:
- To investigate the effect of cANF(4-23), a selective NPR-C ligand, on endothelial cell membrane potential (E(m)).
Main Methods:
- Endothelial cell membrane potential changes were measured using non-invasive fluorescence imaging with DiBAC(4)(3).
- Cells were exposed to cANF(4-23) with various ion channel and second messenger inhibitors.
- NPR-C expression in rat lung microvascular endothelial cells was analyzed via RT-PCR.
- Perforated patch clamp recordings were used to confirm ion current mechanisms.
Main Results:
- cANF(4-23) induced significant endothelial cell hyperpolarization, indicated by decreased cellular fluorescence.
- Hyperpolarization was not affected by inhibitors of K(+) channels, Ca(2+) channels, G(i) protein, or PKG.
- Chloride (Cl(-)) channel inhibitors (4,4'-diisothiocyanatostilbene-2,2'-disulfonic acid, niflumic acid) and hypertonic saline attenuated the hyperpolarization.
- Patch clamp confirmed a Cl(-) current mediated by cANF(4-23), inhibited by niflumic acid.
- RT-PCR confirmed NPR-C expression in vascular smooth muscle cells but not in EC.
Conclusions:
- cANF(4-23) induces endothelial cell hyperpolarization.
- This hyperpolarization is primarily mediated by the activation of Cl(-) channels.
- The mechanism is independent of G(i) protein and protein kinase G (PKG) signaling.
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