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Experimental and modeling studies of desensitization of P2X3 receptors

Sokolova, E.
•
Skorinkin, A.
•
Moiseev, I.
altro
Giniatullin, R.
2006
  • journal article

Periodico
MOLECULAR PHARMACOLOGY
Abstract
The function of ATP-activated P2X3 receptors involved in pain sensation is modulated by desensitization, a phenomenon poorly understood. The present study used patch-clamp recording from cultured rat or mouse sensory neurons and kinetic modeling to clarify the properties of P2X3 receptor desensitization. Two types of desensitization were observed, a fast process (t1/2 = 50 ms; 10 μM ATP) following the inward current evoked by micromolar agonist concentrations, and a slow process (t1/2 = 35 s; 10 nM ATP) that inhibited receptors without activating them. We termed the latter high-affinity desensitization (HAD). Recovery from fast desensitization or HAD was slow and agonist-dependent. When comparing several agonists, there was analogous ranking order for agonist potency, rate of desensitization and HAD effectiveness, with 2-methylthioadenosine triphosphate the strongest and β,γ-methylene-ATP the weakest. HAD was less developed with recombinant (ATP IC50 = 390 nM) than native P2X 3 receptors (IC50 = 2.3 nM). HAD could also be induced by nanomolar ATP when receptors seemed to be nondesensitized, indicating that resting receptors could express high-affinity binding sites. Desensitization properties were well accounted for by a cyclic model in which receptors could be desensitized from either open or closed states. Recovery was assumed to be a multistate process with distinct kinetics dependent on the agonist-dependent dissociation rate from desensitized receptors. Thus, the combination of agonist-specific mechanisms such as desensitization onset, HAD, and resensitization could shape responsiveness of sensory neurons to P2X3 receptor agonists. By using subthreshold concentrations of an HAD-potent agonist, it might be possible to generate sustained inhibition of P2X 3 receptors for controlling chronic pain. Copyright © 2006 The American Society for Pharmacology and Experimental Therapeutics.
DOI
10.1124/mol.106.023564
WOS
WOS:000238438100041
Archivio
http://hdl.handle.net/20.500.11767/16740
info:eu-repo/semantics/altIdentifier/scopus/2-s2.0-33745232481
Diritti
metadata only access
Soggetti
  • ROOT GANGLION NEURONS...

  • CHOLINERGIC RECEPTORS...

  • HIPPOCAMPAL-NEURONS

  • NICOTINIC RECEPTORS

  • ATP CONCENTRATIONS

  • RAT

  • ACETYLCHOLINE

  • AGONIST

  • ACTIVATION

  • RECOVERY

  • Settore BIO/14 - Farm...

  • Settore MAT/05 - Anal...

Scopus© citazioni
58
Data di acquisizione
Jun 15, 2022
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Web of Science© citazioni
56
Data di acquisizione
Mar 21, 2024
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Data di acquisizione
Apr 19, 2024
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