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βENaC is required for whole cell mechanically gated currents in renal vascular smooth muscle cells
Wen-Shuo Chung1, Jennifer L Weissman, Jerry Farley
1Department of Physiology and Biophysics, University of Mississippi Medical Center, Jackson, MS 39216, USA.
Abstract:
Myogenic constrictor responses in small renal arteries and afferent arterioles are suppressed in mice with reduced levels of β-epithelial Na⁺ channel (βENaC(m/m)). The underlying mechanism is unclear. Decreased activity of voltage-gated calcium channels (VGCC) or mechanically gated ion channels and increased activity of large conductance calcium-activated potassium (BK) channels are a few possible mechanisms. The purpose of this study was to determine if VGCC, BK, or mechanically gated ion channel activity was altered in renal vascular smooth muscle cell (VSMC) from βENaC(m/m) mice. To address this, we used whole cell patch-clamp electrophysiological approaches in freshly isolated renal VSMCs. Compared with βENaC(+/+) controls, the current-voltage relationships for VGCC and BK activity are similar in βENaC(m/m) mice. These findings suggest neither VGCC nor BK channel dysfunction accounts for reduced myogenic constriction in βENaC(m/m) mice. We then examined mechanically gated currents using a novel in vitro assay where VSMCs are mechanically activated by stretching an underlying elastomer. We found the mechanically gated currents, predominantly carried by Na⁺, are observed with less frequency (87 vs. 43%) and have smaller magnitude (-54.1 ± 12.5 vs. -20.9 ± 4.9 pA) in renal VSMCs from βENaC(m/m) mice. Residual currents are expected in this model since VSMC βENaC expression is reduced by 50%. These findings suggest βENaC is required for normal mechanically gated currents in renal VSMCs and their disruption may account for the reduced myogenic constriction in the βENaC(m/m) model. Our findings are consistent with the role of βENaC as a VSMC mechanosensor and function of evolutionarily related nematode degenerin proteins.
Insights
Reduced β-epithelial Na⁺ channel (βENaC) levels impair renal artery constriction by disrupting mechanically gated ion channels in vascular smooth muscle cells. This suggests βENaC is crucial for sensing mechanical forces in these cells.
Area of Science:
- Physiology
- Nephrology
- Ion Channel Biology
Background:
- Myogenic constriction in renal arteries is vital for blood pressure regulation.
- Reduced β-epithelial Na⁺ channel (βENaC) levels in mice (βENaC(m/m)) are associated with suppressed myogenic responses.
- The precise mechanism behind this suppression, potentially involving ion channels, remains unclear.
Purpose of the Study:
- To investigate the role of voltage-gated calcium channels (VGCC), large conductance calcium-activated potassium (BK) channels, and mechanically gated ion channels in renal vascular smooth muscle cells (VSMCs) of βENaC(m/m) mice.
Main Methods:
- Whole-cell patch-clamp electrophysiology was employed on freshly isolated renal VSMCs.
- VGCC and BK channel activity was assessed by current-voltage relationships.
- Mechanically gated currents were evaluated using an in vitro assay involving mechanical stretching of VSMCs.
Main Results:
- No significant differences in VGCC or BK channel activity were observed between βENaC(m/m) and control mice.
- Mechanically gated currents, primarily carried by Na⁺, were significantly less frequent and smaller in magnitude in VSMCs from βENaC(m/m) mice compared to controls.
- These findings suggest a critical role for βENaC in the function of mechanically gated currents.
Conclusions:
- β-epithelial Na⁺ channel (βENaC) is essential for normal mechanically gated currents in renal VSMCs.
- Disruption of βENaC function likely underlies the reduced myogenic constriction observed in βENaC(m/m) mice.
- These results support the role of βENaC as a VSMC mechanosensor.
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