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Updated: May 10, 2026

Voltage and Calcium Dual Channel Optical Mapping of Cultured HL-1 Atrial Myocyte Monolayer
Published on: March 23, 2015
9-Phenanthrol and flufenamic acid inhibit calcium oscillations in HL-1 mouse cardiomyocytes
Rees Burt1, Bridget M Graves, Ming Gao
1Department of Biomedical Sciences, James H. Quillen College of Medicine, East Tennessee State University, Johnson City, TN 37614, USA.
Abstract:
It is well established that intracellular calcium ([Ca2+]i) controls the inotropic state of the myocardium, and evidence mounts that a "Ca2+ clock" controls the chronotropic state of the heart. Recent findings describe a calcium-activated nonselective cation channel (NSCCa) in various cardiac preparations sharing hallmark characteristics of the transient receptor potential melastatin 4 (TRPM4). TRPM4 is functionally expressed throughout the heart and has been implicated as a NSCCa that mediates membrane depolarization. However, the functional significance of TRPM4 in regards to Ca2+ signaling and its effects on cellular excitability and pacemaker function remains inconclusive. Here, we show by Fura2 Ca-imaging that pharmacological inhibition of TRPM4 in HL-1 mouse cardiac myocytes by 9-phenanthrol (10 μM) and flufenamic acid (10 and 100 μM) decreases Ca2+ oscillations followed by an overall increase in [Ca2+]i. The latter occurs also in HL-1 cells in Ca(2+)-free solution and after depletion of sarcoplasmic reticulum Ca2+ with thapsigargin (10 μM). These pharmacologic agents also depolarize HL-1 cell mitochondrial membrane potential. Furthermore, by on-cell voltage clamp we show that 9-phenanthrol reversibly inhibits membrane current; by fluorescence immunohistochemistry we demonstrate that HL-1 cells display punctate surface labeling with TRPM4 antibody; and by immunoblotting using this antibody we show these cells express a 130-150 kDa protein, as expected for TRPM4. We conclude that 9-phenanthrol inhibits TRPM4 ion channels in HL-1 cells, which in turn decreases Ca2+ oscillations followed by a compensatory increase in [Ca2+]i from an intracellular store other than the sarcoplasmic reticulum. We speculate that the most likely source is the mitochondrion.
Insights
Inhibition of TRPM4 channels in cardiac cells reduces calcium oscillations and increases intracellular calcium, potentially from mitochondria. This finding impacts understanding of cardiac excitability and pacemaker function.
Area of Science:
- Cardiovascular Physiology
- Molecular Cardiology
- Ion Channel Function
Background:
- Intracellular calcium ([Ca2+]i) regulates cardiac contractility and rhythm.
- A calcium-activated nonselective cation channel (NSCCa), TRPM4, is implicated in cardiac depolarization.
- The precise role of TRPM4 in cardiac Ca2+ signaling and excitability is unclear.
Purpose of the Study:
- To investigate the functional significance of TRPM4 in cardiac Ca2+ signaling and cellular excitability.
- To determine the effects of TRPM4 inhibition on Ca2+ oscillations and intracellular Ca2+ levels in HL-1 cells.
- To explore the source of increased intracellular Ca2+ following TRPM4 blockade.
Main Methods:
- Fura2 Ca-imaging to monitor intracellular calcium dynamics.
- Pharmacological inhibition of TRPM4 using 9-phenanthrol and flufenamic acid.
- On-cell voltage clamp, fluorescence immunohistochemistry, and immunoblotting to confirm TRPM4 expression and function.
Main Results:
- TRPM4 inhibition decreased Ca2+ oscillations and increased overall [Ca2+]i in HL-1 cells.
- The increase in [Ca2+]i occurred independently of sarcoplasmic reticulum Ca2+ stores.
- TRPM4 inhibitors depolarized mitochondrial membrane potential, suggesting mitochondrial Ca2+ involvement.
Conclusions:
- 9-phenanthrol inhibits TRPM4 ion channels in HL-1 cells, reducing Ca2+ oscillations.
- A compensatory increase in [Ca2+]i arises from an intracellular store other than the sarcoplasmic reticulum.
- Mitochondria are speculated as the primary source for the compensatory [Ca2+]i increase.
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