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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.
Abstract:
The P2X5 receptor, an ATP-gated cation channel, is believed to be involved in tumor development, inflammatory bone loss and inflammasome activation after bacterial infection. Therefore, it is a worthwhile pharmacological target to treat the corresponding diseases, especially in minority populations that have a gene variant coding for functional homotrimeric P2X5 channels. Here, we investigated the effects of dihydropyridines on the human full-length P2X5 receptor (hP2X5FL) heterologously expressed in Xenopus oocytes using the two-microelectrode voltage clamp method. Agonist dependency, kinetics and permeation behavior, including Cl- permeability, were similar to hP2X5FL expressed in HEK293 or 1321N1 cells. Additionally, 1,4-dihydropyridines have been shown to interact with various other purinergic receptors, and we have examined them as potential hP2X5 modulators. Of seven commercially available and four newly synthesized dihydropyridines tested at hP2X5FL, only amlodipine exerted an inhibitory effect, but only at a high concentration of 300 µM. Isradipine and-even more-nimodipine stimulated ATP-induced currents in the low micromolar range. We conclude that common dihydropyridines or four new derivatives of amlodipine are not suitable as hP2X5 antagonists, but amlodipine might serve as a lead for future synthesis to increase its affinity. Furthermore, a side effect of nimodipine therapy could be a stimulatory effect on inflammatory processes.
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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