Dihydropyridines Potentiate ATP-Induced Currents Mediated by the Full-Length Human P2X5 Receptor

Ida C Schiller1, Kenneth A Jacobson2, Zhiwei Wen2

  • 1Julius-Bernstein-Institute for Physiology, Martin-Luther-University Halle-Wittenberg, Magdeburger Str. 6, 06097 Halle, Germany.

Insights

Dihydropyridines were tested as modulators of the P2X5 receptor, a target for inflammatory diseases. Nimodipine and isradipine showed stimulatory effects, while amlodipine had weak inhibition, suggesting limited potential as P2X5 antagonists.

Area of Science:

  • Pharmacology
  • Molecular Biology
  • Ion Channel Research

Background:

  • The P2X5 receptor is an ATP-gated cation channel implicated in tumor development, inflammatory bone loss, and inflammasome activation.
  • Targeting P2X5 offers therapeutic potential, particularly for populations with specific gene variants leading to functional homotrimeric P2X5 channels.

Purpose of the Study:

  • To investigate the modulatory effects of dihydropyridines on the human full-length P2X5 receptor (hP2X5FL).
  • To evaluate dihydropyridines as potential pharmacological agents for treating P2X5-related diseases.

Main Methods:

  • Heterologous expression of hP2X5FL in *Xenopus* oocytes.
  • Two-microelectrode voltage clamp technique to record ionic currents.
  • Testing of commercially available and newly synthesized dihydropyridines for their effects on hP2X5FL activity.

Main Results:

  • Amlodipine showed weak inhibitory effects on hP2X5FL at high concentrations (300 µM).
  • Isradipine and nimodipine demonstrated stimulatory effects on ATP-induced currents in the low micromolar range.
  • Agonist dependency, kinetics, and permeation of hP2X5FL were consistent across different expression systems.

Conclusions:

  • Common dihydropyridines and new amlodipine derivatives are not suitable as hP2X5 antagonists.
  • Amlodipine may serve as a starting point for developing more potent hP2X5 inhibitors.
  • Nimodipine's stimulatory effect on P2X5 could potentially exacerbate inflammatory processes as a side effect.

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