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Published on: July 14, 2018
Vasoconstriction resulting from dynamic membrane trafficking of TRPM4 in vascular smooth muscle cells
Rachael Crnich1, Gregory C Amberg, M Dennis Leo
1Vascular Physiology Research Group, Department of Biomedical Sciences, Colorado State University, Fort Collins, Colorado, USA.
Abstract:
The melastatin (M) transient receptor potential (TRP) channel TRPM4 mediates pressure and protein kinase C (PKC)-induced smooth muscle cell depolarization and vasoconstriction of cerebral arteries. We hypothesized that PKC causes vasoconstriction by stimulating translocation of TRPM4 to the plasma membrane. Live-cell confocal imaging and fluorescence recovery after photobleaching (FRAP) analysis was performed using a green fluorescent protein (GFP)-tagged TRPM4 (TRPM4-GFP) construct expressed in A7r5 cells. The surface channel was mobile, demonstrating a FRAP time constant of 168 +/- 19 s. In addition, mobile intracellular trafficking vesicles were readily detected. Using a cell surface biotinylation assay, we showed that PKC activation with phorbol 12-myristate 13-acetate (PMA) increased (approximately 3-fold) cell surface levels of TRPM4-GFP protein in <10 min. Similarly, total internal reflection fluorescence microscopy demonstrated that stimulation of PKC activity increased (approximately 3-fold) the surface fluorescence of TRPM4-GFP in A7r5 cells and primary cerebral artery smooth muscle cells. PMA also caused an elevation of cell surface TRPM4 protein levels in intact arteries. PMA-induced translocation of TRPM4 to the plasma membrane was independent of PKCalpha and PKCbeta activity but was inhibited by blockade of PKCdelta with rottlerin. Pressure-myograph studies of intact, small interfering RNA (siRNA)-treated cerebral arteries demonstrate that PKC-induced constriction of cerebral arteries requires expression of both TRPM4 and PKCdelta. In addition, pressure-induced arterial myocyte depolarization and vasoconstriction was attenuated in arteries treated with siRNA against PKCdelta. We conclude that PKCdelta activity causes smooth muscle depolarization and vasoconstriction by increasing the number of TRPM4 channels in the sarcolemma.
Insights
Protein kinase C (PKC) activation causes vasoconstriction by moving TRPM4 channels to the cell surface, requiring PKCdelta. This finding is crucial for understanding cerebral artery regulation.
Area of Science:
- Physiology
- Molecular Biology
- Cardiovascular Research
Background:
- Transient receptor potential melastatin 4 (TRPM4) channels are key in smooth muscle cell depolarization and vasoconstriction.
- Protein kinase C (PKC) signaling is implicated in regulating TRPM4 activity and vascular tone.
Purpose of the Study:
- To investigate the role of PKC in TRPM4 channel translocation to the plasma membrane.
- To determine the specific PKC isoforms involved in TRPM4-mediated vasoconstriction of cerebral arteries.
Main Methods:
- Live-cell confocal imaging and fluorescence recovery after photobleaching (FRAP) using TRPM4-GFP.
- Cell surface biotinylation assays and total internal reflection fluorescence microscopy.
- Pressure-myograph studies with siRNA knockdown of TRPM4 and PKCdelta in cerebral arteries.
Main Results:
- PKC activation significantly increased TRPM4-GFP levels on the cell surface in A7r5 cells and primary cerebral artery smooth muscle cells.
- TRPM4 translocation was dependent on PKCdelta but independent of PKCalpha and PKCbeta.
- PKC-induced cerebral artery constriction and pressure-induced depolarization/vasoconstriction required TRPM4 and PKCdelta expression.
Conclusions:
- PKCdelta activation promotes smooth muscle depolarization and vasoconstriction by increasing sarcolemmal TRPM4 channel density.
- TRPM4 channel trafficking is a critical mechanism in PKC-mediated regulation of cerebral artery tone.
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