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.

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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