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A Central Role for TRPM4 in Ca2+-Signal Amplification and Vasoconstriction
Tamás Csípő1,2, Ágnes Czikora1, Gábor Á Fülöp1,2
1Division of Clinical Physiology, Department of Cardiology, Faculty of Medicine, University of Debrecen, 4032 Debrecen, Hungary.
Abstract:
Transient receptor potential melastatin-4 (TRPM4) is activated by an increase in intracellular Ca2+ concentration and is expressed on smooth muscle cells (SMCs). It is implicated in the myogenic constriction of cerebral arteries. We hypothesized that TRPM4 has a general role in intracellular Ca2+ signal amplification in a wide range of blood vessels. TRPM4 function was tested with the TRPM4 antagonist 9-phenanthrol and the TRPM4 activator A23187 on the cardiovascular responses of the rat, in vivo and in isolated basilar, mesenteric, and skeletal muscle arteries. TRPM4 inhibition by 9-phenanthrol resulted in hypotension and a decreased heart rate in the rat. TRPM4 inhibition completely antagonized myogenic tone development and norepinephrine-evoked vasoconstriction, and depolarization (high extracellular KCl concentration) evoked vasoconstriction in a wide range of peripheral arteries. Vasorelaxation caused by TRPM4 inhibition was accompanied by a significant decrease in intracellular Ca2+ concentration, suggesting an inhibition of Ca2+ signal amplification. Immunohistochemistry confirmed TRPM4 expression in the smooth muscle cells of the peripheral arteries. Finally, TRPM4 activation by the Ca2+ ionophore A23187 was competitively inhibited by 9-phenanthrol. In summary, TRPM4 was identified as an essential Ca2+-amplifying channel in peripheral arteries, contributing to both myogenic tone and agonist responses. These results suggest an important role for TRPM4 in the circulation. The modulation of TRPM4 activity may be a therapeutic target for hypertension. Furthermore, the Ca2+ ionophore A23187 was identified as the first high-affinity (nanomolar) direct activator of TRPM4, acting on the 9-phenanthrol binding site.
Insights
Transient receptor potential melastatin-4 (TRPM4) channels amplify calcium signals in peripheral arteries, influencing blood pressure and heart rate. Inhibiting TRPM4 reduces vasoconstriction, suggesting it
Area of Science:
- Cardiovascular Physiology
- Ion Channel Function
- Smooth Muscle Biology
Background:
- Transient receptor potential melastatin-4 (TRPM4) channels are activated by intracellular calcium and expressed in smooth muscle cells.
- TRPM4 is known to play a role in the myogenic constriction of cerebral arteries.
Purpose of the Study:
- To investigate the broader role of TRPM4 in intracellular calcium signal amplification across various blood vessels.
- To assess the impact of TRPM4 modulation on cardiovascular responses in rats.
Main Methods:
- Utilized the TRPM4 antagonist 9-phenanthrol and activator A23187 in vivo and in isolated rat arteries (basilar, mesenteric, skeletal muscle).
- Measured cardiovascular responses, including blood pressure, heart rate, and vasoconstriction.
- Confirmed TRPM4 expression in smooth muscle cells via immunohistochemistry.
Main Results:
- TRPM4 inhibition with 9-phenanthrol caused hypotension and decreased heart rate.
- Inhibition of TRPM4 abolished myogenic tone, norepinephrine-evoked vasoconstriction, and KCl-induced vasoconstriction.
- TRPM4 inhibition led to reduced intracellular calcium, indicating inhibited signal amplification.
- TRPM4 activation by A23187 was competitively inhibited by 9-phenanthrol.
Conclusions:
- TRPM4 acts as a crucial calcium-amplifying channel in peripheral arteries, contributing to myogenic tone and responses to agonists.
- TRPM4 plays a significant role in regulating circulation.
- TRPM4 modulation presents a potential therapeutic target for hypertension.
- A23187 is identified as the first high-affinity direct activator of TRPM4.
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