Rehabilitation of the P2X5 receptor: a re-evaluation of structure and function

Brian F King1

  • 1Research Department of Neuroscience, Pharmacology & Physiology (NPP), University College London (UCL), Gower Street, London, WC1E 6BT, UK. b.king@ucl.ac.uk.

Purinergic Signalling
|October 24, 2022
PubMed

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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