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Updated: Oct 26, 2025

Preparation of Pancreatic Acinar Cells for the Purpose of Calcium Imaging, Cell Injury Measurements, and Adenoviral Infection
Published on: July 5, 2013
TRPM4 links calcium signaling to membrane potential in pancreatic acinar cells
Gyula Diszházi1, Zsuzsanna É Magyar1, Erika Lisztes1
1Department of Physiology, Faculty of Medicine, University of Debrecen, Debrecen, Hungary.
Abstract:
Transient receptor potential cation channel subfamily M member 4 (TRPM4) is a Ca2+-activated nonselective cation channel that mediates membrane depolarization. Although, a current with the hallmarks of a TRPM4-mediated current has been previously reported in pancreatic acinar cells (PACs), the role of TRPM4 in the regulation of acinar cell function has not yet been explored. In the present study, we identify this TRPM4 current and describe its role in context of Ca2+ signaling of PACs using pharmacological tools and TRPM4-deficient mice. We found a significant Ca2+-activated cation current in PACs that was sensitive to the TRPM4 inhibitors 9-phenanthrol and 4-chloro-2-[[2-(2-chlorophenoxy)acetyl]amino]benzoic acid (CBA). We demonstrated that the CBA-sensitive current was responsible for a Ca2+-dependent depolarization of PACs from a resting membrane potential of -44.4 ± 2.9 to -27.7 ± 3 mV. Furthermore, we showed that Ca2+ influx was higher in the TRPM4 KO- and CBA-treated PACs than in control cells. As hormone-induced repetitive Ca2+ transients partially rely on Ca2+ influx in PACs, the role of TRPM4 was also assessed on Ca2+ oscillations elicited by physiologically relevant concentrations of the cholecystokinin analog cerulein. These data show that the amplitude of Ca2+ signals was significantly higher in TRPM4 KO than in control PACs. Our results suggest that PACs are depolarized by TRPM4 currents to an extent that results in a significant reduction of the inward driving force for Ca2+. In conclusion, TRPM4 links intracellular Ca2+ signaling to membrane potential as a negative feedback regulator of Ca2+ entry in PACs.
Insights
Transient receptor potential cation channel subfamily M member 4 (TRPM4) regulates calcium signaling in pancreatic acinar cells. TRPM4 channels reduce calcium influx by depolarizing cells, acting as a negative feedback mechanism.
Area of Science:
- Physiology
- Molecular Biology
- Cell Biology
Background:
- Transient receptor potential cation channel subfamily M member 4 (TRPM4) is a Ca2+-activated nonselective cation channel.
- TRPM4's role in pancreatic acinar cells (PACs) and their function remains unexplored.
- PACs are crucial for digestive enzyme secretion and rely on precise calcium signaling.
Purpose of the Study:
- To identify and characterize the TRPM4 current in PACs.
- To elucidate the role of TRPM4 in regulating Ca2+ signaling and membrane potential in PACs.
- To investigate TRPM4's function as a negative feedback regulator of Ca2+ entry.
Main Methods:
- Utilized pharmacological inhibitors (9-phenanthrol, CBA) to block TRPM4.
- Employed TRPM4-deficient (KO) mice to study channel function.
- Measured Ca2+-activated cation currents and membrane potential using electrophysiology.
- Assessed Ca2+ transients and influx in response to cerulein stimulation.
Main Results:
- Identified a Ca2+-activated cation current in PACs sensitive to TRPM4 inhibitors.
- Demonstrated that TRPM4 mediates Ca2+-dependent depolarization of PACs.
- Observed increased Ca2+ influx in TRPM4 KO and CBA-treated PACs.
- Found significantly higher Ca2+ signal amplitudes in TRPM4 KO PACs during cerulein stimulation.
Conclusions:
- TRPM4 channels are present and functional in PACs.
- TRPM4 activation leads to PAC depolarization, reducing the driving force for Ca2+ entry.
- TRPM4 acts as a negative feedback regulator, limiting Ca2+ influx and shaping Ca2+ signaling dynamics in PACs.
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