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Proteomics to Identify Proteins Interacting with P2X2 Ligand-Gated Cation Channels
Published on: May 18, 2009
Interaction of Purinergic P2X4 and P2X7 Receptor Subunits
Markus Schneider1, Kirsten Prudic1, Anja Pippel1
1Julius-Bernstein-Institute for Physiology, Martin-Luther-University, Halle, Germany.
Abstract:
P2X4 and P2X7 are members of the P2X receptor family, comprising seven isoforms (P2X1-P2X7) that form homo- and heterotrimeric non-specific cation channels gated by extracellular ATP. P2X4 and P2X7 are widely coexpressed, particularly in secretory epithelial cells and immune and inflammatory cells, and regulate inflammation and nociception. Although functional heteromerization has been established for P2X2 and P2X3 subunits expressed in sensory neurons, there are contradictory reports regarding a functional interaction between P2X4 and P2X7 subunits. To resolve this issue, we coexpressed P2X4 and P2X7 receptor subunits labeled with green (EGFP) and red (TagRFP) fluorescent proteins in Xenopus laevis oocytes and investigated a putative physical interaction between the fusion proteins by Förster resonance energy transfer (FRET). Coexpression of P2X4 and P2X7 subunits with EGFP and TagRFP located in the extracellular receptor domains led to significant FRET signals. Significant FRET signals were also measured between C-terminally fluorophore-labeled full-length P2X41-384 and C-terminally truncated fluorescent P2X71-408 subunits. We furthermore used the two-electrode voltage clamp technique to investigate whether human P2X4 and P2X7 receptors (hP2X4, hP2X7) functionally interact at the level of ATP-induced whole-cell currents. Concentration-response curves and effects of ivermectin (P2X4-potentiating drug) or BzATP (P2X7-specific agonist) were consistent with a model in which coexpressed hP2X4 and hP2X7 do not interact. Similarly, the effect of adding specific inhibitors of P2X4 (PSB-15417) or P2X7 (oATP, A438079) could be explained by a model in which only homomers exist, and that these are blocked by the respective antagonist. In conclusion, we show that P2X4 and P2X7 subunits can form heterotrimeric P2X4/P2X7 receptors. However, unlike observations for P2X2 and P2X3, coexpression of P2X4 and P2X7 subunits does not result in a novel electrophysiologically discriminable P2X receptor phenotype.
Insights
P2X4 and P2X7 receptor subunits can physically interact to form heterotrimeric receptors. However, this coexpression does not create a new, distinct electrophysiological receptor phenotype, unlike other P2X subtypes.
Area of Science:
- Molecular biology
- Neuroscience
- Cell biology
Background:
- P2X4 and P2X7 receptors are ATP-gated cation channels involved in inflammation and nociception.
- While functional heteromerization is known for P2X2/P2X3, the interaction between P2X4 and P2X7 remains controversial.
- These receptors are often coexpressed in immune and secretory epithelial cells.
Purpose of the Study:
- To investigate the physical and functional interaction between P2X4 and P2X7 receptor subunits.
- To determine if coexpression of P2X4 and P2X7 leads to a novel electrophysiological phenotype.
Main Methods:
- Coexpression of fluorescently labeled P2X4 and P2X7 subunits in Xenopus laevis oocytes.
- Förster resonance energy transfer (FRET) assay to detect physical interaction.
- Two-electrode voltage clamp electrophysiology to study ATP-induced currents.
Main Results:
- Significant FRET signals indicated physical interaction between P2X4 and P2X7 subunits.
- Electrophysiological analysis showed no novel functional phenotype upon coexpression.
- Drug effects and antagonist actions were consistent with the existence of homomeric receptors only.
Conclusions:
- P2X4 and P2X7 subunits can form heterotrimeric receptors.
- Coexpression of P2X4 and P2X7 does not yield an electrophysiologically distinct receptor type.
- The findings resolve contradictory reports on P2X4/P2X7 interactions.
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