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Updated: Aug 24, 2025

Proteomics to Identify Proteins Interacting with P2X2 Ligand-Gated Cation Channels
Published on: May 18, 2009
Rehabilitation of the P2X5 receptor: a re-evaluation of structure and function
1Research Department of Neuroscience, Pharmacology & Physiology (NPP), University College London (UCL), Gower Street, London, WC1E 6BT, UK. b.king@ucl.ac.uk.
Abstract:
Of the extended family of ATP-gated P2X ion-channels, the P2X5 receptor has received comparatively little attention since first cloned over 25 years ago. Disinterest in studying this P2X subtype stems from two commonly held beliefs: (i) canonical human P2X5 is non-functional because the P2X5 subunit is truncated (hP2X5A, 422 aa) and missing the critical peptide sequence (22 aa) encoded by exon 10; (ii) rat and mouse P2X5 subunits are fully formed (455 aa) but the receptor is only weakly functional, and successive ATP responses rapidly run down in amplitude. However, newer studies have re-evaluated these notions. First, a low proportion (around 10%) of humans possess full-length P2X5 subunits (444 aa) and can form competent P2X5 receptors. Full-length P2X5 has been identified only in black Americans, but may occur in a wider population as more ethnicities are screened. Second, replacement of one of three amino acids in rat P2X5 subunits with corresponding residues in human P2X5 subunits (V67I, S191F, or F195H) significantly improves the responsiveness of rat P2X5 to ATP. Replaced residues exert an allosteric action on the left flipper, allowing the docking jaw for ATP to flex the lower body of the subunit and fully open the ion pore. This proposed action may drive the search for naturally occurring modulators which act allosterically on wildtype rat P2X5. This review collates the available information on the structure and function of human and rat P2X5 receptors, with the view to rehabilitating the reputation of these ATP-gated ion channels and stimulating future lines of research.
Insights
Human P2X5 receptors are not entirely non-functional, as previously believed. Newer research reveals functional full-length human P2X5 subunits and improved rat P2X5 receptor responsiveness, opening new research avenues.
Area of Science:
- Molecular Biology
- Ion Channel Physiology
- Biochemistry
Background:
- The P2X5 receptor, an ATP-gated ion channel, has been understudied due to perceived non-functionality.
- Previous assumptions suggested truncated human P2X5 subunits (hP2X5A) and weak/transient functionality in rat/mouse P2X5.
Purpose of the Study:
- To re-evaluate the functionality of human and rat P2X5 receptors.
- To stimulate future research on P2X5 receptor structure, function, and modulation.
Main Methods:
- Review of existing literature on P2X5 receptor structure and function.
- Analysis of genetic variations in human P2X5 subunits.
- Investigating amino acid substitutions in rat P2X5 subunits to assess ATP responsiveness.
Main Results:
- A subset of humans (approx. 10%) possess full-length P2X5 subunits capable of forming functional receptors.
- Specific amino acid substitutions (V67I, S191F, F195H) in rat P2X5 subunits significantly enhance ATP-induced ion channel activity.
- These substitutions appear to exert allosteric effects, facilitating ion pore opening.
Conclusions:
- The P2X5 receptor is not inherently non-functional; functional variants exist in humans and can be engineered in rodents.
- Understanding the allosteric mechanisms of P2X5 receptor modulation is crucial for future therapeutic strategies.
- Further investigation into diverse populations and naturally occurring modulators is warranted.
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